September 22, 2010

Going green at home-creating power system

Translate Request has too much data
Parameter name: request
Translate Request has too much data
Parameter name: request

Creating a Home Energy Generation System

These days, going green at home is becoming more and more mainstream and do-it-yourself home energy generation systems are finding their way into more and more homes. Creating a home energy generation system is the solution if you want to cut those bills down and utilize alternative energy around you just waiting to be tapped anytime.

Wouldn't it be nice to see significant declines in your home energy bills and feel some savings from doing small, do-it-yourself home improvement projects? There is a right thing to do: invest in one or more home energy generation systems. A home energy generation system provides you with the best way to get the maximum financial freedom on home energy.

Going green now and making small investments in your home will spare yourself from the present cost of home energy and the future increases that may occur. And most of all, an energy efficient homes will not only help your wallet, but it will also help the environment. Home energy generation systems only use harmless and clean source of energy.

Among all types of alternative energy that can be used, solar energy and wind energy are the most common.

Solar power home energy - Houses that are built under the sun will compensate on the free solar energy.

There are 6 main advantages in installing solar panels on your roof.

1. Solar panels are lightweight, safe and most of all, easy to install. These are essential in order to place them above your roof.

2. Roof is also susceptible in UV exposure. The solar panel eliminates this. Your roof will also be protected from weather.

3. Solar panel contributes in keeping your house well insulated. They provide extra covering and enable you to save as much as 30% on heating expenses.

4. Drilling holes in your roof is very risky. The interlocking solar panels eliminate this risk.

5. Solar panel design is perfect on any roof type and size. In other words, you can get the perfect solar panel no matter what the size and shape of your roof is.

6. Solar panels are installed without requiring you to modify your roof. It will adapt instantly.

Residential Solar Power will tremendously help you cut down the cost of your electric bill. If you think you are in for this investment and if you think your location is most suited to have this, then the choice is fully yours.

DIY home energy gernation from solar is easier than you think. First you must understand exactly how residential solar energy works and how it can benfit your home. Once you have a firm understanding of this, the next step is to find exactly what your home energy needs are and how to apply solar power correctly to your home generation system.

Another great alternative energy source for going green at home is wind.

Wind energy

Wind is very abundant in many parts of the country, thus, many households can capitalize on the use of wind as a source of home energy. It is also said the future's main source of energy would be the air. As the cost energy production through fuel and oil grows increasingly high, the clean, safe and free air is the better choice.

Wind power for your home, provides the financial freedom from expensive fuels. However, wind speed varies on a daily basis. This is one disadvantage of using wind power but wind patterns do exist. It is said that summer brings less wind while the winter brings stronger gusts of wind.

If you are planning to install wind turbines on your home, make sure that the local zoning allows wind turbine. You must also ensure that there is a good source of wind on most days. A wide and open space, at least 1 acre, would be ideal for wind turbines. And, if you are paying more than $150 on monthly electric bill, then it may be a good option for you.

There are 5 main components of wind power.

1.) The rotor is the set of rotating blades designed to capture air. The rotation brings power to the generator.

2.) The turbine or the generation is the one attached on the rotor. It stores energy that the house will use.

3.) The tail is located opposite of the rotor. It tracks the direction of the wind.

4.) The tower raises the turbine, rotor and tail up to the air to receive the most amount of wind possible.

5.) The governor is the mechanism that controls the production of energy. This is like the transformer you can see on electric posts.

Using wind energy at home can be a great way of creating a home energy generation system. One of the major drawback to using wind is the cost of a wind turbine. To counter this huge investment, alot of communities and neighborhoods are coming together to share the costs.

Wind turbines generate more than enough power for one home, so alot of people are teaming up with their neighbors and sharing the investment capital, sharing the energy, and sharing the savings.

DIY home energy generation can be a great way to make your home green and in the long-run, save alot of green.....if done correctly.

Every wonder why, no matter what you do, no matter how many lights you turn off, you can never save money on home energy bills? Most people just make changes to their home without truly assessing their home and establishing an energy budget.

Setting Up A Home Energy Budget

Step one of any DIY home energy generation is to set up an energy budget.

It's the same as setting up a financial budget. You assess how much money you use per month and how much money you need to make in order to survive. Same is true in the world of home energy. How much energy does your home use? How much is it costing you? Where can you cut back on home energy costs? How will you make those changes?

The next step is to Air Seal your home. Think about it, if you are going to save energy, the first thing to do is to make sure no energy is escaping your home. So, this step should not be overlooked or taken lightly.

One you've set your energy budget, got your home air sealed, you should be seeing some savings on your utility bills month by month. With your small incremental savings, you can stock pile that extra cash for a bigger step in making your home green.

The best way to tackle a DIY Home Energy Generation project is to have a system in place. What I mean is, you can't just throw some solar panels on your roof and sit back and be energy free. Whether your looking to be completely energy free (also known as "living off the grid"), or just want to find an alternative energy source to power your home to drastically cut your utility bills, find a system that's right for you. No two home are the same, however, the same principles apply to all homes when it comes to energy.

The future of green homes is now. There's no doubt that home energy generation is and will be here to stay. I see a major 'green' home revolution coming to America in the years to come, especially with the new Presidential administration coming in with so many clean energy goals and the economy shifting to a 'green' collar work force.

All the best in your own home generation system project.






READ MORE - Going green at home-creating power system

Energy requirements of the vehicle

Translate Request has too much data
Parameter name: request
Translate Request has too much data
Parameter name: request

How much energy does a vehicle use and how? A vehicle (your car) uses an enormous amount of energy to get us and our stuff around. Some seem to be confused about what those energy requirements are, or how that energy is used. So I thought I would try to clear the air on that subject. I will try to stay away from excessive math. I will also ignore some small details. They are not important to your understanding. My purpose is to explain the concepts.

But, before we continue, I want to define a few terms.



Energy is the ability to do work. A Unit of energy is defined by a few different terms. For our purposes they can be used interchangeably.
BTU (British thermal unit) is a unit of energy. 1 BTU is approximately the amount of energy in a kitchen match. BTU is commonly used to describe the energy content of a fuel.
KWh (Kilowatt-Hour) is likewise a unit of energy. 1 KWh equals 3,414 BTUs.
Joule - The metric (SI) form. There are 1055 Joules in a BTU, or 3,601,770 Joules in a KWh.

Work is the conversion of energy from one form to another (IE: Potential to kinetic). It is measured in ergs, foot-pounds, or, yes, the Joule.

Power is rate at which work is done or energy is converted (More power=faster conversion) It is measured in watts (SI) or horsepower. It can also be measured in BTUs per hour (BTU/h) One horsepower is equal to 746 watts, or 2,546 BTU/h.

Force is push. You apply force to cause acceleration. It is measured in Newton's. 1 Newton = 225 lbs of "push"

Mass - Mass is the amount of "stuff" something has. It is measured in Pounds or grams (Kilograms).

Weight. You might think this is the same as mass. It is NOT. Weight is the force that gravity exerts on a mass. This concept is important! For example, on the moon, your body will still have the same mass (amount of stuff), but your weight will be 1/6 of what it is here. In the absence of gravity, you will not have any weight, but you sill still have the same mass!

OK. Confused? It takes a while, and a bit of study, to understand the different units of measurement, and what the terms mean. Don't worry. Just understanding the conversion factors is sufficient for this discussion.

Lets think of it as a cereal box and a bowl. The box is the "gas tank". Inside it we have corn flakes. Those flakes are units of energy (Btu's or KWh). We have a bowl that will be our Mass. We accelerate that mass by filling it with corn flakes (energy). In order to fill it, we do Work by pouring the flakes out of a hole in the box. The size of that hole - how quickly we can do our work, is called power. Each time a new flake goes into the bowl, we have applied a bit of force, in the form of energy. The more flakes we put in the bowl, the larger the result (speed). I hope that helps, but, now I am hungry.

On to the discussion. There are only four things that effect how much energy is necessary to move your vehicle. The first is the weight (mass, or amount of stuff) of the vehicle. This is important only when we need to change the speed - IE: Accelerate or decelerate. As we shall see though, it is very important for that. Two others factors are the frictional losses, mostly due to tires, and the aerodynamic drag - how much the air is pushing against the vehicle.

Finally, factor number four, gravity. Of course it takes more energy to go up a hill (fighting gravity) than it does to go down one (making use of gravity). However, since Gravity would unnecessarily complicate this discussion, we are going to pretend the world is flat, which will then allow us ignore it. With that out of the way, we are left with three things that determine your vehicles energy needs - Mass, Friction, and aerodynamic Drag. So, let's take a closer look.

First up is the vehicle mass. It takes certain quantity of energy to accelerate a given mass to a given speed. That energy is actually converted from the mechanical energy your car engine (or motor, or squirrel) produces into the kinetic energy, (or momentum), that is then stored in the mass of the vehicle.

Interestingly, once we are at a steady speed, the mass does not matter (remember, the world is flat, we are ignoring gravity!). Once accelerated, and at a that steady speed, the vehicle's mass possesses all the energy that was put into it while accelerating as kinetic energy - also known as momentum. And, it will continue to travel at that speed using no further energy, unless acted upon by another force. Indeed this is how our interplanetary spacecraft operate, it is how our space probes go on for years without needing any fuel. Unfortunately for us though, here on earth there are two other forces that exist to complicate our lives.

So, next up we have friction: Friction is always present (there is no perfect system). In a car, in addition to the bearings and gears, the primary source of friction is the tires against the roadway. Now, this is can be a good thing because that friction, going by another name - traction, is what keeps your vehicle going in the right direction! But, when considering energy, as long as the vehicle is moving it is having to overcome that friction, using some amount of energy in the process. Friction is always trying to slow your car down by removing kinetic energy from it. That means we have to continually add that energy back to maintain the same speed.

And, the last factor is aerodynamic drag. Any time your vehicle is moving, air is pushing back, trying to slow it down by removing the kinetic energy from it. Again, the same as for friction, we have to continually add energy to the vehicle to maintain a constant speed. This is literally the amount of energy needed to "shove" the air out of the way.

A quick fun factoid: Aerodynamic drag increases with the square of the velocity, however, the power (force) needed to overcome aerodynamic drag increases with the cube of the velocity. So, if you double the speed, there is four times as much air pressure pushing against you. To overcome that drag will require eight times the power (2x2x2). A car going 50 mph may require only 10 horsepower to overcome aerodynamic drag, but that same car at 100 mph requires 80 hp!

Another fun fact. As you can ascertain, when travelling at a fixed speed, the mass (weight) of the vehicle is of little concern. A heavier vehicle will cause more frictional losses (tires are squished more), but, if they are the same size as far as aerodynamic drag is concerned, it doesn't matter if your vehicle weighs 2000 pounds, or 200,000 pounds it will take the same amount of energy to keep it going. Once in motion, it stays in motion until an outside force acts on it - in our case, friction and aerodynamic drag. This is the reason railroads are incredibly efficient. For their weight, they have very little frontal area (aerodynamic drag), and since the wheels are steel, on steel tracks, they have much less friction than a road vehicle with rubber tires. Of course, a train also does not start and stop very much.

There it is. These are essentially the ONLY things that effect the amount of energy your vehicle needs! (Note, for the physicists, I did say essentially!). Once again, they are: The energy needed for acceleration, and the energy necessary to overcome mechanical friction and aerodynamic drag.

As to how much energy. Well, there is a very fixed requirement for the amount of energy needed to accelerate a mass. Issac Newton told us so! The larger the mass (more weight) the more is needed. An important point here: It does not matter how quickly you accelerate. The amount of energy needed and consumed to accelerate a specific mass to a specific velocity is the same. This is true whether you impart it quickly to get to a certain speed, or if you take your time to attain the same speed. In the end, the same mass at the same speed will contain the same amount of kinetic energy (momentum). The formula is kinetic energy = ? times mass times velocity squared. And, note that the velocity is squared. So, to go twice as fast will require adding four times as much energy to the mass.

Now, you are probably wondering about Power. Specifically Horsepower. What role does it play? Well, we know that to accelerate a specific mass to a specific speed, we need to impart a specific amount of energy into it. Is that specific? If we have "more power" defined as the capacity to do work, we can impart that energy to our mass faster. That means we will achieve our velocity quicker. But, we have used the same amount of energy. We have simply put that energy into our mass quicker, and for a shorter period of time.

Let me return to that box of cereal. The box is our energy source (gas tank). Inside that box are individual corn flakes. Each flake is a BTU of energy. In order to achieve a certain speed we need to transfer all of the flakes inside that box into our bowl (our vehicle). If we make a small hole in the top of the box, we can pour a certain amount of flakes through that hole. With a small hole, it may take us 30 seconds to pour them all into the bowl. If we make the hole twice as big, we can pour them out twice as fast, and achieve our objective (speed to breakfast) twice as fast. Well, you've hopefully figured it out by now. The hole is our engine, and the size of the hole is the power that engine has (HP-Hole Power). Bigger hole (power), quicker result. But, note, we have transferred the same exact amount of flakes (energy from the gas tank) to achieve our goal, no matter the size of the engine (hole). We just did it quicker!

OK. Hopefully you now have some idea of the factors that affect your vehicle's energy needs. But, before we go on, just for fun, lets figure out how much energy we need to accelerate a typical 3000 pound (1360 Kilogram) car to 65 Mph (29 Meters per second). We will use the formula for momentum. Once again, it is: Momentum = the mass (in kilograms) times the square of the velocity (in meters per second), divided by 2. The result is the number of Joules needed.

29 squared is 841 times 1360 = 1143760/2 = 571,880 Joules. As we will learn in part two there are 1055 Joules in a BTU. So, we used 542 BTUs of energy to accelerate the car. Doesn't sound like much... So far we know there are basically three things that determine the amount of energy a vehicle needs. The mass (or weight) of the vehicle, (which is only important when it is changing speed or direction), friction drag from the drivetrain - predominantly the tires, and aerodynamic drag - how much the air "pushes back".

We have also learned that it does not matter how quickly the vehicle accelerates, at the end of that acceleration it will have used the same amount of energy to get there, and it will contain the same amount of kinetic energy (momentum). We learned the only thing that effects this is the mass of the vehicle.

I want to make a note right here that the above statement is not entirely true. Remember that aerodynamic drag increases at the square of the speed. While at low speeds this is negligible, as the terminal speed goes up we will have to consume an extra amount of energy in order to overcome this drag. I am going to ignore this for now as the math would only get more complex. That is simply not necessary to understand the concepts, at least for an automobile at highway speeds. A racing vehicle, on the other hand, is another story...

So, how much does it need to overcome drag? Well, that gets much, much, more complex. I also cannot write the formula in this blog (or, I don't know how). The amount of aerodynamic drag on a particular vehicle depends on the shape of the vehicle, it's frontal area, it's coefficient of drag (how slippery it is), and, of course, the exact speed it is travelling at. The math gets rather complicated, and it is different for every single different design or shape of vehicle. Since we are talking concepts here, and not a specific vehicle, we simply cannot readily figure this one out. So.

Because of that, I will offer a generic number. At 65 MPH, the average car needs about 30 horsepower to overcome drag. Not very accurate, after all, what is average? But, hey, this is concepts. Let's apply that to a practical example calculation. 30 hp equals 76,380 BTUs per hour. A gallon of gasoline contains 124,000 BTUs. A modern car converts about 22% of that (or 27,280 BTUs) to useable power at the wheels. So, 89,100/27280 equals 2.7 gallons of gasoline in one hour, or 24 MPG.

Of course, in the real, practical, world, we are more concerned about things like MPG, and the energy needed to travel a mile (or 100 miles) in a real vehicle. I will wrap up this discussion by looking at some real world examples of energy consumption. And, again, the point I want you to take away is that these energy requirements are independent of the means or efficiency of propulsion. The energy needs are the same. So, I will diverge from the theoretical discussion, and discuss what these things mean as relates to our real world use of fuels. There is not room for a detailed examination, so I will just throw some numbers out there. Again, understand the concepts!

The actual amount of fuel that is needed will depend entirely on the efficiency of the power source. A modern Internal Combustion automotive engine is approximately 28% efficient. That means only 28% of the BTUs in the gasoline are actually used to apply force to the vehicle. The rest are wasted as heat. Since that ICE vehicle needs a lot of gears - transmission, differential, there is also a significant loss of energy (due to friction) before the power gets to the wheels. Estimates of these losses are anywhere from 5% to 12%. That means, even in the best case scenario, only 23% of the BTUs in the gasoline are available to actually power the car. Many estimate this number to be as low as 15% for real world vehicles.

Compare that to an electric vehicle. Electric motors are better than 90% efficient. Since most times the motors are more directly coupled to the wheels, the frictional losses are also less. That means that maybe 85-90% of the energy stored in the batteries is available to power the vehicle. Remember, the vehicle still has the same energy requirements, and we have to put that energy into the batteries in the form of electricity. Electricity that is simply generated elsewhere.

In the world of electric vehicles, since they are very sensitive to energy consumption, the amount of energy they consume is a readily available statistic. The Tesla roadster is a real world 2700 pound car, powered solely by electricity. According to Tesla it uses.217 KWh (740 BTUs) for each mile traveled. The Chevy Volt is a near real world Plug in hybrid that weighs 3500 lbs, and reportedly uses.250 KWh (853 BTUs) per mile.

For a conventional Gasoline powered vehicle, I use my own 2005 Chevy Malibu for an example. It weighs 3700 pounds, and has gotten 24 MPG over it's life, mostly in-town. A gallon of gasoline contains 124,000 BTU's. Applying an 18% total efficiency factor (middle of the range) we can calculate that each gallon is contributing 22,320 BTU's to actually powering the vehicle. That would mean it is using 930 BTUs, or.272 KWh. per mile.

What we can see here, is that as the weight goes up, the energy requirement also goes up, but not by much. Remember, the only time that weight itself comes into play is when we accelerate. We can also make the assumption (in fact true) that the Chevy Malibu has more aerodynamic and frictional drag than either the Tesla, or the Chevy Volt, which accounts for much of it's increased need for energy.

I hope you understand from this discussion what affects the amount of energy a vehicle needs. These are basic rules of physics. It does not matter WHERE the vehicle gets it's energy from, this is the energy it needs to operate. One more time, that is an important distinction. Whether it is a gasoline, diesel, biodiesel, electric, hybrid, hydrogen, or sled dogs, any particular size, shape and weight vehicle needs a certain amount of energy put into it in order to move you and your stuff to Grandma's house. And, that, I guess, is my point.






READ MORE - Energy requirements of the vehicle

What is renewable energy?

Translate Request has too much data
Parameter name: request
Translate Request has too much data
Parameter name: request

Unlike fossil fuels which are also natural but are only available in limited supply. Renewable energy sources can be used over and over again without depleting them. There are five main sources of renewable energy that humans can use:

1. Bio energy -

Bio energy is created from plants or grains that can be replanted and replenished. Ethanol is an example of using bio energy. Ethanol is a fuel that is a hybrid of petroleum and an alcohol-based fuel that is made primarily from corn in most of the United States, although some other countries, like Brazil, make ethanol using sugar cane instead of corn. Ethanol is widely used in other countries and is becoming more popular in the United States.

Many companies and scientific labs are experimenting with different bio fuels to find a bio fuel that works with already existing vehicles to help reduce dependence on petroleum. Hybrid vehicles that run on a combination of petroleum based fuel and bio fuels are becoming more and more popular. Some vehicles that run on diesel fuel are being converted to run on bio-diesel which is a fuel made from used vegetable oil that is discarded by restaurants and food plants.

2. Hydro power -

Hydro power is using the power of flowing water to create electricity. Hydro power is one of the oldest continually used forms of creating energy and was extremely popular before it become common to use fossil fuels. For hundreds of years rushing water was used to create energy that would operate a grain mill and grind corn and wheat, power steam engines, and provide energy for other common tasks. The first known use of hydro power to provide electricity was in 1880, and hydro power has been used to generate electricity every since.

Hydro power is still used today. About 7% of the electricity used in the United States each year comes from hydro electric plants. Because it's necessary for a large hydro electric plant to be located directly on a large body of water in order to have enough water to generate the kind of power that is needed to make electricity hydro electric power plants are not widespread. More than half of the many hydro power plants in the United States are located in only three states: Oregon, California, and Washington.

Hydro power is often considered to be the ideal form of renewable energy because it's practically free, it creates no pollutants that harm the environment, and it has almost no waste products of any kind.

The drawback is that hydro power can only be located in a small number of areas with the right natural features. Plus, the large dams needed to harness hydro power can dramatically alter the landscape and affect wildlife.

3. Geothermal power -

Geothermal power comes from using the natural heat from deep inside the earth. The core of the Earth generates a lot of heat and water that is heated deep within the Earth and released to the surface through hot springs and geysers. Even volcanoes can be used to heat buildings and homes as well to provide electricity.

The most common use of geothermal power is direct heating. Direct geothermal heating consists of piping hot water from below the surface of the Earth directly into buildings or homes to heat the buildings. Iceland gets up to 95% of their heat from geothermal direct heating. The island nation sits on the world's most easily accessible source of heat energy from volcanic magma close to the Earth's surface.

The United States is the biggest user of geothermal energy for electricity in the world but still less than 1% of all the electricity produced in the United States is generated from geothermal energy. There are about 50 geothermal electricity plants in the United States, mostly in California and Nevada. Since the easiest place to access the water heated within the earth is along fault lines and on the edges of tectonic plates it's not surprising that those two states have the most geothermal energy plants. Geothermal energy produces no pollution or greenhouse gases but can be expensive to utilize and can only be used in a small number of areas that have the proper geology.

4. Wind -

Wind energy was probably the first type of natural, renewable energy that was used by people to provide power. Wind energy has no pollutants or contaminates and is great for the environment, but sometimes it can be hard to harness enough wind to generate significant energy.

Wind energy is mainly used locally, supplying electricity on and around wind farms. The United States is third on the list of countries that have the most capacity to produce wind energy yet wind energy is not yet widely used in the United States. In the past this was mostly because building the machines, called wind turbines, which are used to harness wind energy, was expensive and consumed a lot of natural resources. Since 2005 there have been some great technological advances that have made it much more cost-effective to build turbines so the use of wind energy is beginning to grow in the United States.

One of the biggest problems of producing enough wind energy to meet the huge electricity demands of the people in the United States is the weather. Since wind can't be grown like the crops that are used for bio energy, and wind is not as constant as the water used to create hydro or geothermal energy there is a limit to how much energy wind can produce. The variability of the wind is also a crucial factor. I there isn't much wind on a particular day there might be very little or no electricity generated that day. Another drawback to wind energy is that a large number of very large wind turbines (they can run up to 25 stories tall) are needed to create a significant amount of energy.

Wind energy is a good source of renewable energy under certain conditions but in the long run wind energy is not going to be the best source of renewable energy for countries to use.

5. Solar energy -

Solar energy is collecting and then using the energy generated by the sun for things like electricity and heating. Solar energy is being used more and more by businesses and homeowners as a way to fight rising electricity bills and also to live in a more environmentally friendly way.

One of the first recorded uses of solar energy was in the 1830's when a British explorer in Africa built a box to collect the energy from the sun's rays and used it to cook his food. Today solar energy is used mainly to create heat and to create electricity.

There are two ways to generate electricity from solar energy. The first is using the Photovoltaic method. This method uses a collection of cells made of certain materials to grab the sun's energy and directly convert it to electricity. Since the sun's rays are diffuse it takes a large number of these photovoltaic cells working together to provide any real power.

The second way is using solar power plants. These huge plants use sunlight indirectly to create electricity. In simple terms the sunlight heats water which produces steam and the steam powers a generator that creates electricity. There are 15 large solar power plants in the United States. 10 are in California, and 5 are in Arizona.

Solar energy is totally renewable and has no measurable impact on the environment which is why it's the renewable energy system of choice for many environmentally conscious people. However there are a few drawbacks to using solar energy. One disadvantage of using solar energy is that because the energy created by the sun is so diffuse it takes a lot of sunlight to generate power. This means that solar plants have to have a large surface area.

Another disadvantage of solar energy is that the amount of the sun's energy that reaches the solar cells depends on things like the amount of cloud cover, the temperature, the time of day and other factors that can't be controlled. Scientists are trying to develop ways of using solar energy to generate large amounts of power, similar to central power plants burning fossil fuels today. Most experts agree that the best way to use solar energy for electricity and heating is for individual homeowners and building owners to use solar panels to generate heat and electricity for their own buildings.






READ MORE - What is renewable energy?

China-Dragon Asia energy

Translate Request has too much data
Parameter name: request
Translate Request has too much data
Parameter name: request

China is presently engaged in a massive effort to control its rising energy use while promoting the rapid growth of its economy. The numbers involved evidence the magnitude of the challenge: in real terms, China's 2007 GDP was more than double that of 2000; the electric power sector added more than 90 GW of capacity in just one year; and 100 million tonnes of coal-equivalent energy savings are to be achieved by engaging nearly 1,000 of the economy's largest energy-using enterprises. Though the Chinese leadership has demonstrated its eagerness to learn from international experience, there is simply no precedent for the proposed development path. The policies and programs that China has introduced are necessarily unique given the challenge that is confronted, and original approaches are being developed to implement these policies and programs in the country's economy.

It is not just the scope of China's energy efficiency endeavours that sets them apart. China's administrative structure both enables and requires new approaches with a "Chinese character". Within the structure of a mixed economy, referred to as "socialism with Chinese Characteristics", the government retains considerable authority to shift the economies allocation of resources toward energy efficient industries and products. The vertical Integration of government agencies means that those in the central government that are responsible for defining energy efficiency policies are also present at the local level to monitor implementation. Pre-existing lines of communication, responsibility, and accountability can be turned toward the objectives of energy efficiency. The initial impression is that it is an ideal environment in which to make rapid progress in improving energy efficiency.

But the actual situation is much more complicated and often defies understanding by the international community. China is an economy in transition, both planned and market driven, and it is experiencing rapid development. Majority state-owned companies that respond well to government reward systems operate alongside private enterprises that respond more readily to price signals. The economies of some coastal provinces host advanced manufacturing facilities and a vibrant service sector, while the economies of interior provinces remain predominantly agrarian. Evaluations of China's energy efficiency polices at the national level do not capture the variation found across these geographies of energy efficiency in China.

"Wealth is unevenly distributed across China's provinces; per-capita income ranges from just CNY10,000 in Gansu to nearly CNY66,000 in Shanghai. China is the world's largest energy producer and second-largest energy consumer (IEA 2008)."

China is home to some of the most advanced green companies - such as solar cell and wind turbine manufacturers - but on the other hand, as of 2000, coal use per unit of electricity in the power sector was more than 20 percent higher than the level in advanced economies.

The most advanced provinces of China have an average per-capita gross regional product of CNY66,000, while the figure for interior provinces is about one fifth that. In some special economic zones, industries pay market prices for energy, but in most of China retail energy prices remain subsidized. According to a recent study, one province has published building specific energy use data for 526 public buildings, but obtaining reliable energy use data for many other provinces remains difficult. To achieve the energy efficiency targets of the central government, the implementation of energy efficiency policies in China must succeed in all of these settings.

China's growing experience in implementing energy efficiency policies holds lessons for many observers. Other economies in transition can learn from the mix of approaches that China is developing; even within China itself, one province can learn from the experiences of another. Energy businesses must understand the depth and breadth of energy efficiency programs both to gauge the impact of China's development on international energy markets and to understand this enormous potential market for energy efficient products and services. And certainly, those who wish to understand China's commitment to mitigating the environmental impacts of development should understand the many, varied geographies of energy efficiency in China.

China has a long history of pursuing energy efficiency and conservation. Now, having recognized the threat to energy security, sustainable economic growth, and the environment that is posed by rapid energy demand growth, China has placed energy efficiency and conservation as its highest priority energy strategy. Since issuing the Medium- and Long-term Plan for Energy Conservation in 2004, several important high-level actions has been taken to put China on a path toward less energy-intensive development. These have been greeted by observers with praise but also some skepticism.

The 11th Five-Year Plan has been the proving ground for China's resource-conserving, environmentally friendly development strategy. China's leadership and observers around the world are watching to see if the national energy efficiency and conservation policies can reduce the rate of energy growth of this rapidly growing industrial economy.

Previous studies, have pointed to the challenges of implementing energy policy in this economy, in which the forces of development, market reform, industrialization, urbanization and globalization have been unleashed. That is why this report has focused on implementation - to understand how the energy efficiency policies of the central government are being implemented by the provinces, local governments, sectors, and enterprises of China. Evidence of success in implementation provides an indication of the feasibility of the strategy, which dramatically impacts the world energy outlook. Moreover, successful implementation strategies might inform further efforts toward energy efficiency, both in and out of China.

To provide a better standard of living, the government aims to achieve a 2020 per-capita GDP four times that of 2000. China's leadership has recognized two looming obstacles to achieving this goal by energy intensive development. On the one hand, an insecure supply of energy may impede growth. On the other, rapid and unregulated growth in the energy sector might provide the necessary energy supply at an environmental cost that would threaten the improved standards of living that are the ultimate objective. Thus, reducing the economy's energy intensity by 20 percent was set as an obligatory target in the 11th Five-Year Plan (2006-2010).

"In 2007, China's population was 1.32 billion, up from 1.27 billion in 2000."

This important change in China's national energy policy is implemented first by the universal adoption of supporting, binding provincial energy intensity targets. The provinces have then responded by further decomposing those targets within their jurisdiction and by the adoption of policies and measures, which respond to centrally-issued requirements or convey national regulations to their jurisdiction. Evidence gathered to date shows that all provinces have taken action toward achieving their targets and that many provinces are well on their way toward delivering on this contribution to the national objective. However, a minority of provinces are not progressing at the planned pace, and many central measures have yet to achieve universal adoption.

The simple fact that data with regard to achievement of energy efficiency and conservation objectives is available represents a level of success. It shows that progress toward achieving change is being measured, which is a key step in accountability. In fact, a clear method has been established to evaluate the performance of provinces and key energy using enterprises. Various regulations and laws, issued both by central and provincial governments, suggest that the scores from these evaluations will effectively motivate action by turning the pre-existing methods of administrative performance review, reward, and public praise to the task of spurring energy efficiency and conservation.

Recent years have featured several attempts to reorganize the national energy agencies in order to clarify and consolidate responsibility for energy policy. The National Development and Reform Commission remains the key oversight body for implementation of energy efficiency and conservation in the 11th Five-Year Plan. But aggressive energy saving goals require that implementation activities push farther and deeper into the various sectors, which requires greater collaboration among the various Ministries and departments that are responsible for those sectors. Administration in China is vertically integrated, thus achieving the participation of various ministries enables the local offices of those ministries to deliver on the EE&C measures. Facilitating this collaboration is the objective of the recently established National Energy Commission.

China is large and diverse in many measures and especially so in terms of energy efficiency. From one province to the next there are large differences in energy intensity, and within a given industry there are vast differences in efficiency between top performers and laggards. To some extent this variation has been recognized in the pursuit of the EE&C agenda. Different provinces have been assigned different targets according to their situation. Industries are being pushed to benchmark against the top-performers in order to guide their improvements. And local governments have flexibility to experiment with different approaches to meeting their assigned targets. A one-size fits all approach does not suite China's distinct geographies of energy efficiency, and the growing diversity of approaches is promising.

Within the power sector, the heat rate of thermal power plants and transmission and distribution line losses, are focused on as key indicators of energy efficiency. China has over 6,000 thermal power units, more than three-quarters of which have a capacity of less than 100 MW. The efficiency of the small thermal units is well below that of the large, over 600 MW, high-efficiency units that China has recently been deploying. Current policy aims to improve the overall efficiency of the power sector by shutting down small and aging plants. This policy is often unpopular with the small plants' local stakeholders, but it has nonetheless succeeded in eliminating 23.4 GW of small power plants in 2007, and the average heat rate of thermal power stations improved from 356 to 345 grams coal-equivalent per kWh.

Continued culling of the small thermal power plants is likely to produce further efficiency gains. Recent increases to investments in transmission and distribution support this consolidation of capacity and are also expected to improve grid stability and reduce line losses. While working with the national generation and grid companies to improve supply-side efficiency, the government has also encouraged local governments to develop combined heat and power, which a large project in Beijing has shown to offer very high system efficiency.

"Secondary industry (mining and quarrying, manufacturing, production and supply of electricity, water and gas, and construction) provides nearly half of China's GDP (NBS 2008b)".

China's iron and steel industry is by far the largest in the world and it is responsible for 18 percent of China's final energy demand. It is also remarkably geographically dispersed and fragmented. The industry includes small producers using outdated technologies but also massive production groups with more than 30 million tonnes of relatively modern production capacity. As part of China's broad economic reform process, the government reduced its direct operating control in the industry. As steel producers became independent, their inefficiencies were revealed. Correcting these inefficiencies led to a period of energy intensity improvements that continued until 2003. Now, the government is utilizing its close ties with the industry to promote further efficiency improvements through more aggressive industry restructuring.

Through agreements with provinces and individual companies, China has succeeded in eliminating over 46 million tonnes of inefficient steel making capacity. New capacity is required to meet the government's requirements as to efficiency of scale, processes, and equipment.

Furthermore, more than 250 iron and steel enterprises are engaged in the Top-1000 Energy Consuming Enterprise program, which requires them to achieve specific energy intensity reductions, under the scrutiny of the provincial governments. Technology specifications and energy saving targets are thus amply provided, but finance is a potential weak link. Industry consolidation and foreign investment may provide some of the financing for energy efficiency improvements, but additional government financial support could hasten the deployment of efficient technologies. Groups such as the Asian Energy Investment Council are playing a key role in funding for these issues.

China's manufacturing industries play a dual role in the drive to improve energy intensity. First, they are improving the energy efficiency of the products that they supply to the Chinese market. And second, they are reducing their own energy intensity by increasing the value added of their products while improving the energy efficiency of their facilities. China's coastal manufacturing hubs, and especially the special economic zones within those areas, are the incubators for this process. Despite the increasing privatization of businesses in these areas, the government maintains close cooperation with industry. Local officials are responding to EE&C objectives by favouring low energy intensity businesses in their jurisdiction. At the same time, manufacturers are motivated to bring efficient products to the marketplace by the central government's promotion of those products. Continued efforts to deregulate energy prices will push manufacturers to further improve the efficiency of their operations. Success in the coastal development areas may subsequently be transferable to less-developed regions of China.

Though today the residential and commercial sectors are considerably less important than industry in China's total energy consumption, they are areas of rapid demand growth. There is a large potential for energy efficiency in these sectors and the government has sought to improve their efficiency for many years. Recent policies have introduced higher energy reduction targets, particularly in the building sector, and expanded coverage by including more products under performance standards and labelling programs. Supervision and enforcement of these policies and programs is essential to slow the pace of energy growth in these sectors.

"China's primary energy mix includes: coal (73 percent), oil (21 percent), gas (4 percent), hydro (3 percent), and nuclear (less than 1 percent). Large domestic coal resources and the economy's heavy reliance on that fuel have been a source of energy security. However, since becoming a net oil importer in 1996, China's energy imports have steadily grown". Recent programs have provided enterprises with both incentives for producing efficient products for the residential and commercial sectors, as well as penalties for failure to comply with minimum energy performance standards.

Importantly, these provisions are backed by recent amendments to China's Energy Conservation Law. Early evidence indicates that provincial and local governments are strengthening supervision and enforcement activities during the 11th Five-Year Plan period. The rapid expansion of building floor space and appliance usage creates a challenging environment in which to develop such supervision, but also shows its necessity. The vast infrastructure that is now being deployed will shape future energy consumption in these sectors for decades to come.

One area where China has a uniquely large potential for reducing energy demand is among the state-funded institutions. These institutions are responsible for a massive building stock; over 100 million square meters, which includes both office buildings and residential housing.

The energy consumption per unit area of these buildings is much higher than similarly purposed buildings in Europe and Japan. A process was initiated in 2001, under the leadership of the Government Offices Administration of the State Council (GOASC), to understand energy usage of state-funding institutions, and then design and implement an EE&C program to reduce that usage. The program that has emerged from this process includes building energy monitoring, building retrofits, improved vehicle management, and government procurement of energy efficient products. GOASC reports that electricity consumption per square meter of building area fell from 81.3 kWh in 2005 to 73.1 kWh in 2008 as a result of these programs.

China has deployed a wide variety of implementation strategies to its diverse geographies of energy efficiency. Just as importantly, it is gathering continuous feedback on the performance of these strategies and using it to make adjustments and improve performance. This process, which in China is sometimes referred to as 'feeling the way across the river', will provide experience that will guide the expansion of China's energy efficiency and conservation programs in the remainder of the 11th Five-Year Plan and beyond, as China strives to create a resource conserving and environmentally friendly development path.

Conclusions:

A challenge that China faces with regard to energy efficiency in the residential and commercial sectors is the need to improve energy intensity without impending economic development. As analysis has illustrated, increasing income increases energy consumption in the residential sector. Energy efficiency, especially as implemented through building and product standards, offers a promising approach to improving energy intensity while increasing the competitiveness of domestic manufacturers.

The role of enterprises is crucial in improving energy efficiency. Some assignment of responsibility, including the penalties for non-compliance and awards for exceptional performance that are specified in the national policies, spur action at the local level. The bottom-up approach of the manufacturers will improve the effectiveness of policies implemented at the national level.

As for the government, a nationwide monitoring system for civil buildings will be needed to strengthen implementation of energy efficient policies. To this end, further action such as establishing a comprehensive data gathering system and increasing the capacity to monitor appropriately will be necessary.

Finally, public consciousness and awareness of energy saving is still a difficult barrier in the residential and commercial sectors. It takes time to change not only public consciousness but also attitudes and behaviour. Therefore, it is essential to continuously inform the public about how much energy can be saved through the use of energy efficient appliances and equipment






READ MORE - China-Dragon Asia energy

Three methods for analysis of Bill a powerful tool for Energy Manager

Translate Request has too much data
Parameter name: request
Translate Request has too much data
Parameter name: request

ABSTRACT

Utility Bill Tracking systems are at the center of an effective energy management program. However, some organizations spend time and money putting together a utility bill tracking system and never reap any value. This paper presents three utility bill analysis techniques which energy managers can use to arrive at sound energy management decisions and achieve cost savings.

INTRODUCTION

Utility bill tracking and analysis is at the center of rigorous energy management practice. Reliable energy management decisions can be made based upon analysis from an effective utility bill tracking system. From your utility bills you can determine:

- whether you are saving energy or increasing your consumption,

- which buildings are using too much energy,

- whether your energy management efforts are succeeding,

- whether there are utility billing or metering errors, and

- when usage or metering anomalies occur (ie. when usage patterns change)

Any energy management program is incomplete if it does not track utility bills. Equally, any energy management program is rendered less effective when its utility tracking system is difficult to use or does not yield valuable information. In either case, fruitful energy savings opportunities are lost.

Many practical energy managers make the smart choice and invest in utility bill tracking software, but then fail to recover their initial investment in energy savings opportunities. How could this be?

This paper introduces three simple and useful procedures that can be performed with utility bill tracking software. Just performing and acting upon the first two types of analysis will likely save you enough money to pay for your utility bill tracking system in the first year. The three topics are Benchmarking, Load Factor Analysis, and Weather Normalization as shown in Table 1.

BENCHMARKING

Let's suppose you were the new energy manager in charge of a portfolio of school buildings for a district. Due to a lack of resources, you cannot devote your attention to all the schools at the same time. You must select a handful of schools to overhaul. To identify those schools most in need of your attention, one of the first things you might do is find out which schools were using too much energy. A simple comparison of Total Annual Utility Costs spent would identify those buildings that spend the most on energy, but not why.

Benchmarking Different Categories of Buildings

When benchmarking, it is also useful to only compare similar facilities. For example, if you looked at a school district and compared all buildings by $/SQFT, you might find that the technology centers administration buildings were at the top of the list, since administration buildings and technology centers often have more computers and are more energy intensive than elementary schools and preschools. These results are expected and not necessarily useful. For this reason, it might be wise to break your buildings into categories, and then benchmark just one category at a time.

Different Datasets

You can benchmark your buildings against each other (as we did in our example) or against publicly available databases of similar buildings in your area. Energy Star's Portfolio Manager allows you to compare your buildings against others in your region. Perhaps those buildings in your portfolios that looked the most wasteful are still in the top 50th percentile of all similar buildings in your area. This would be useful to know.

Occasionally, management decides that their organization needs to save some arbitrary percentage (5%, 10%, etc.) on utility costs each year. Depending upon the goal, this can be quite challenging, if not impossible. Energy managers can use benchmarking to guide management in setting realistic energy management goals. For example, our school district energy manager might decide to create a goal that the three most energy consuming schools use only $0.80/SQFT. Since this is about as much as the lowest energy consuming schools are currently using, this could be an attainable goal.

If you can find a dataset, you may also be able to benchmark your buildings against a set of similar buildings in your area and see the range of possibilities for your buildings. In any case, benchmarking will focus your energy management efforts and provide realistic goals for the future.

Rules of Thumb

New energy managers often search for a "rule of thumb" to use for benchmarking. An example could be: "If your building uses more than $2/SQFT/Year then you have a problem." Unfortunately, this won't work. Different types of buildings have different energy intensities. Moreover, different building locations will require differing amounts of energy for heating and cooling. In San Francisco, where temperatures are consistently in the 60s, there is almost no cooling requirement for many building types; whereas in Miami, buildings will almost always require cooling. Different building types, with their characteristic energy intensities, different weather sites, and different utility rates all combine to make it hard to have rules of thumb for benchmarking. However, energy managers whose portfolios are all close by, can develop their own rules of thumb. These rules will most likely not be transferable to other energy managers in different locations, with different building types, or using different utility configurations.

Benchmarking Buildings in Different Locations

There are some complications associated with benchmarking. Suppose you were the energy manager of a chain store, and you had buildings in different national locations. Then benchmarking might not be useful in the same sense. Would it be fair to compare a San Diego store to a Chicago store, when it is always the right temperature outside in San Diego, and always too hot or too cold in Chicago? The Chicago store will constantly be heating or cooling, while the San Diego store might not have many heating or cooling needs. Comparing at $/SQFT might help decide which store locations are most expensive to operate due to high utility rates and different heating and cooling needs.

Some energy analysts benchmark using kBtu/SQFT to remove the effect of utility rates (replacing $ with kBtu). Some will take it a step further using kBtu/SQFT/HDD to remove the effect of weather (adding HDD), but adding HDD (or CDD) is not a fair measurement, as it assumes that all usage is associated with heating. This measurement also does not take into account cooling (or heating) needs. Many thoughtful energy managers shy away from benchmarking that involves CDD or HDD.

Different Benchmarking Units

Another popular benchmarking method is to use kBtu/SQFT (per year), rather than $/SQFT (per year). By using energy units rather than costs, "rules of thumb" can be created that are not invalidated with each rate increase. In addition, the varying costs of different utility rates does not interfere with the comparison.

Benchmarking Summation

Benchmarking is a simple and convenient practice that allows energy managers to quickly assess the energy performance of their buildings by simply comparing them against each other using a relative (and relevant) yardstick. Buildings most in need of energy management practice are easily singled out. Reasonable energy usage targets are easily determined for problem buildings.

LOAD FACTOR ANALYSIS

Once you have identified which buildings you want to make more efficient, you can use Load Factor Analysis to concentrate your energy management focus towards reducing energy or reducing demand.

What Load Factor is

Load Factor is commonly calculated by billing period, and is the ratio between average demand and peak (or metered) demand. Average demand is the average hourly draw during the billing period.

What Load Factor Means

High Load Factors (greater than 0.75) represent meters that have nearly constant loads. Equipment is likely not turned off at night and peak usage (relative to off peak usage) is low.

Low Load Factors (less than 0.25) belong to meters that have very high peak power draws relative to the remainder of the sample. These meters could be associated with chillers or electric heating equipment that is turned off for much of the day. Low Load Factors can also be associated with buildings that shut off nearly all equipment during non-running hours, such as elementary schools.

Load Factors greater than 1 are theoretically impossible , but appear occasionally on utility bills. Isolated instances of very high or low Load Factors are usually an indicator of metering errors.

One school, Tyler MS, consistently has a much lower Load Factor than the others (hovering consistently around 20%). Low Load Factors can be ascribed to either very high peak loads or very low loads during other hours. In this case, we cannot blame the Load Factor problem on "peaky" cooling loads, as the problem exists all year. A likely cause can be that Tyler MS is doing a better job at shutting off all lighting and other equipment at night than the other schools. One school (Jackson MS) typically has higher Load Factors than the other schools. One reason may be that lighting, HVAC and other equipment is running longer hours than at Tyler MS.

A good energy manager would investigate what building operational behavior is contributing to the low Load Factor values (and consequently relatively high demand) for Tyler MS, and would investigate whether the demand could be decreased. Inquiring about whether Jackson MS is turning off equipment at night is also advisable.

Load Factor Rules of Thumb

Load Factor analysis is an art, not a science. Different building types (i.e. schools, offices, hospitals, etc.) will have different Load Factor ranges. Since hospitals run many areas 24 hours a day, one might expect higher Load Factors than for schools, which can turn off virtually everything at night. Also many things contribute to a particular building's Load Factor. A building left on 24 hours a day can still have a low Load Factor if there are large peaks each month - for example, a 20 bed hospital that has a scheduled MRI truck visit once each month. The MRI demand is large, and can greatly impact the Load Factor of a small facility.

Like Benchmarking, you can determine your own rules of thumb for your buildings, however, your range of acceptable Load Factors will vary based upon building type and climate. Rules of Thumb may not be that helpful though. Like Benchmarking, just identifying the buildings with unusually high and low Load Factors, relative to the other buildings in the portfolio, should be sufficient.

Load Factor Summation

Load Factor can be used to identify billing and metering errors, buildings that are not turning off equipment, and buildings with suspiciously high demands. While Benchmarking can identify buildings most likely to yield large energy efficiency payoffs, Load Factor Analysis can point to easily resolved scheduling and metering issues.

WEATHER NORMALIZATION

Another important utility bill analysis method is to normalize utility bills to weather. Weather Normalization allows the energy manager to determine whether the facility is saving energy or increasing energy usage, without worrying about weather variation.

Suppose an energy manager replaced the existing chilled water system in a building with a more efficient system. He likely would expect to see energy and cost savings from this retrofit.

A quarter-million dollar retrofit is difficult to justify with results like this. And yet, the energy manager knows that everything in the retrofit went as planned. What caused these results?

Clearly the energy manager cannot present these results without some reason or justification. Management may simply look at the figures and, since figures don't lie, conclude they have hired the wrong energy manager!

There are many reasons the retrofit may not have delivered the expected savings. One possibility is that the project is delivering savings, but the summer after the retrofit was much hotter than the summer before the retrofit. Hotter summers translate into higher air conditioning loads, which typically result in higher utility bills.

Hotter Summer -> Higher Air Conditioning Load -> Higher Summer Utility Bills

In other words, the new equipment really did save energy, because it was working more efficiently than the old equipment. The figures don't show this because this summer was so much hotter than last summer.

If the weather really was the cause of the higher usage, then how could you ever use utility bills to measure savings from energy efficiency projects (especially when you can make excuses for poor performance, like we just did)? Your savings numbers would be at the mercy of the weather. Savings numbers would be of no value at all (unless the weather was the same year after year).

Our example may appear a bit exaggerated, but it begs the question: Could weather really have such an impact on savings numbers?

It can, but usually not to this extreme. The summer of 2005 was the hottest summer in a century of record-keeping in Detroit, Michigan. There were 18 days at 90degF or above compared to the usual 12 days. In addition, the average temperature in Detroit was 74.8degF compared to the normal 71.4 degF. At first thought, 3 degrees doesn't seem like all that much; however, if you convert the temperatures to cooling degree days, the results look dramatic. Just comparing the June through August period, there were 909 cooling degree days in 2005 as compared to 442 cooling degree days in 2004. That is more than double! Cooling degree days are roughly proportional to relative building cooling requirements. For Detroit then, one can infer that an average building required (and possibly consumed) more than twice the amount of energy for cooling in the summer of 2005 than the summer of 2004. It is likely that in the Upper Midwestern United States there were several energy managers who faced exactly this problem!

How is an energy manager going to show savings from a chilled water system retrofit under these circumstances? A simple comparison of utility bills will not work, as the expected savings will get buried beneath the increased cooling load. The solution would be to apply the same weather data to the pre- and post-retrofit bills, and then there would be no penalty for extreme weather. This is exactly what weather normalization does. To show savings from a retrofit (or other energy management practice), and to avoid our disastrous example, an energy manager should normalize the utility bills for weather so that changes in weather conditions will not compromise the savings numbers.

More and more energy managers are now normalizing their utility bills for weather because they want to be able to prove that they are actually saving energy from their energy management efforts.

In many software packages, you can establish the relationship between weather and usage in just one click. Because the one-click "tunings" that the software gives you are not always acceptable, it does help to understand the underlying theory and methodology so that you can identify the problem tunings and make the necessary adjustments. The more you know about the topic the better. The section that follows explains in a little more detail the basic elements of weather normalization.

How Weather Normalization Works

Rather than compare last year's usage to this year's usage, when we use weather normalization, we compare how much energy we would have used this year to how much energy we did use this year. Many in our industry do not call the result of this comparison, "Savings", but rather "Usage Avoidance" or "Cost Avoidance" (if comparing costs). Since we are trying to keep this treatment at an introductory level, we will simply use the word Savings.

When we tried to compare last year's usage to this year's usage, we saw disastrous results. We used the equation:

Savings = Last year's usage - This year's usage

When we normalize for weather, we use the equation:

Savings = How much energy we would have used this year - This year's usage

The next question is how to figure out how much energy we would have used this year? This is where weather normalization comes in.

First, we select a year of utility bills to which we want to compare future usage. This would typically be the year before you started your energy efficiency program, the year before you installed a retrofit, or some year in the past that you want to compare current usage to. In this example, we would select the year of utility data before the installation of the chilled water system. We will call this year the Base Year .

Next, we calculate degree days for the Base Year billing periods. Because this example is only concerned with cooling, we need only gather Cooling Degree Days.

Base Year bills and Cooling Degree Days are then normalized by number of days. Normalizing by number of days (in this case, merely, dividing by number of days) removes any noise associated with different bill period lengths. This is done automatically by canned software and would need to be performed by hand if other means were employed.

To establish the relationship between usage and weather, we find the line that comes closest to all the bills. This line, the Best Fit Line, is found using statistical regression techniques available in canned utility bill tracking software and in spreadsheets.

The next step is to ensure that the Best Fit Line is good enough to use. The quality of the best fit line is represented by statistical indicators, the most common of which, is the R2 value. The R2 value represents the goodness of fit, and in energy engineering circles, an R2 > 0.75 is considered an acceptable fit. Some meters have little or no sensitivity to weather or may have other unknown variables that have a greater influence on usage than weather. These meters may have a low R2 value. You can generate R2 values for the fit line in Excel or other canned utility bill tracking software.

This Best Fit Line has an equation, which we call the Fit Line Equation, or in this case the Baseline Equation. The Fit Line Equation might be:

Baseline kWh =

(5 kWh/Day * #Days ) + ( 417 kWh/CDD * #CDD )

Once we have this equation, we are done with the regression process.

Base Year bills ~= Best Fit Line = Fit Line Equation

The Fit Line Equation represents how your facility used energy during the Base Year, and would continue to use energy in the future (in response to changing weather conditions) assuming no significant changes occurred in building consumption patterns.

Once you have the Baseline Equation, you can determine if you saved any energy. How? You take a bill from some billing period after the Base Year. You then plug in the number of days from your bill and the number of Cooling Degree Days from the billing period into your Baseline Equation.

Suppose for a current month's bill, there were 30 days and 100 CDD associated with the billing period.

Baseline kWh =

( 5 kWh/Day * #Days ) + ( 417 kWh/CDD * #CDD )

Baseline kWh =

( 5 kWh/Day * 30 ) + ( 417 kWh/CDD * 100 )

Baseline kWh = 41,850 kWh

Remember, the Baseline Equation represents how your building used energy in the Base Year. So, with the new inputs of number of days and number of degree days, the Baseline Equation will tell you how much energy the building would have used this year based upon Base Year usage patterns and this year's conditions (weather and number of days). We call this usage that is determined by the Baseline Equation, Baseline Usage.

Now, to get a fair estimate of energy savings, we compare:

Savings = How much energy we would have used this year - How much energy we did use this year

Or if we change the terminology a bit:

Savings = Baseline Energy Usage - Actual Energy Usage

where Baseline Energy Usage is calculated by the Baseline Equation, using current month's weather and number of days, and Actual Energy Usage is the current month's bill.

So, using our example, suppose this month's bill was for 30,000 kWh:

Savings = Baseline Energy Usage - Actual Energy Usage

Savings = 41,850 kWh - 30,000 kWh

Savings = 11,850 kWh

SUMMARY

Utility Bill Tracking is at the center of a successful energy management system, but the bills must be used for sound analysis for any meaningful reduction in energy usage. By applying three analysis methods presented here (Benchmarking, Load Factor Analysis, and Weather Normalization), the energy manager can develop insight which should lead to sound energy management decisions.






READ MORE - Three methods for analysis of Bill a powerful tool for Energy Manager

How to transform sexual energy to succeed and manifest desires

Translate Request has too much data
Parameter name: request
Translate Request has too much data
Parameter name: request

Napoleon Hill and others have said that one of the secrets to success is to transmute your sexual energy into creative business energy. Mr. Hill says that this is why men usually become successful only after they pass the age of 40 when they loose interest in chasing after women and therefore transmute their sexual energy in to business rather than wasting it. Other writers have given advice on transmuting sexual energy into creative energy, but few ever explain the process.

Some people have naturally transmuted their sexual energy in to success. Think of the nerds you knew in high school who went on to be very successful in business. The assumption is that due to poor social skills they were unable to achieve sexual success so they turned their attention to technical subjects and created amazing technical inventions. Bill Gates is often used as an example; however, I don't really know what he was like in high school.

The ancient philosophies of eastern religion had very explicit instructions and practices designed to transmute sexual energy. The "aah" meditation that is commonly practiced is actually based on the transmutation of sexual energy.

Guru Baba explains that the mechanism of the "aah" meditation is moving the creative energy from the sexual chakra to the upper chakras using the creative sound of "aah." He speaks of using the sound to move the energy up through each of the chakras leading eventually to the forehead chakra. There, the energy will create whatever you are visualizing in your third eye.

The most thorough study I have found of transmuting sexual energy is in the Tao of Sexology by Steven Chang. The ancient Taoist understood the basic workings of the human body and its animal instincts. Rather than trying to suppress or fight against the animal instincts as many modern religions teach, the Taoist embraced the animal nature and used it to benefit the body and life in general.

In the Taoist teachings, the sexual nature of humans is not condemned in any way. Sexual energy can be used for healing the body, enhancing productivity, improving relationships and also in creative manifestation. Of all the religions and philosophies I have studied, the Taoist seemed to be the only ones who truly understood the power of transmuting sexual energy.

In our modern society, sexual stimulation is everywhere we look. This over stimulation is often condemned by religious and humanitarian groups. This form of sexual stimulation often results in the wasting of sexual energy or in the channeling of sexual energy into destructive paths.

Advertisers, politicians, drug companies and crime bosses all know the power of sexual stimulation in motivating people. Entire industries are based on ways to boost sexual prowess or to satisfy these urges. However all these methods only dissipate the sexual energy in unproductive or wasteful ways or they lead to more destructive uses of the powerful sexual energy.

Many so called men's magazines use sexual images of women to promote the idea that highly sexual and attractive women are somehow unapproachable and unattainable. They can only be found as fantasy in the pages of their books. This form of sexual stimulation leads to separation and loneliness rather than love and oneness.

Sexual energy is the most powerful force on the earth. It can be used to bring people together in love or it can be used to create separation and division. It depends on the way that energy is focused or transmuted as Mr. Hill calls it.

The entire material existence is based on thought energy combined with strong emotion. Sexual energy is the ultimate combination of the two. Many people only see the ability of sexual energy to procreate and reproduce a species. However, that same energy that can create a new being can also be used to create anything which you desire.

In fact, sexual energy is already being used to create the life you live. However, for most people it is used ineffectively and the energy is weak because it is being dissipated or wasted in useless sexual activity. Or that energy may consciously be repressed through guilt or other beliefs that using sexual energy is bad or wrong.

To understand the power of sexual energy, take a few moments to fantasize about a sexual situation. Within just a few seconds of getting a clear fantasy in you mind, you will feel your body starting to react. Depending on how you feel about the fantasy, you may experience hot or cold in the extremities. Your pulse will quicken and if you continue the fantasy, you will become sexually aroused. If you continued the fantasy even further you could likely even bring yourself to orgasm through just the power of your mind.

Now realize that it is possible to use this same energy to manifest other things that you desire in life instead of just orgasms. As if orgasms were not enough.

So how do you focus and use your sexual energy to manifest the things you desire instead of wasting it? The first step is to train the body how to handle your sexual energy. The Taoist deer exercise is designed for this purpose.

The deer exercise trains the muscles in the body how to control the flow of sexual hormones and other body fluids associated with sexual energy. In males, sexual energy is normally completely wasted through the process of ejaculation. This release of energy is why men feel so drained and sleepy after having sex. The deer exercise teaches men how to control ejaculation and how to separate the pleasure of orgasm from the ejaculation and loss of vital fluids and sexual energy.

Through the process of injaculation, men can maintain their sexual energy and also achieve multiple orgasms. Sexual energy is not lost during this type of sexual activity and the pleasure of orgasm is not distracted by the flow of seminal fluid. Many health benefits are gained as well though the conservation of the seminal fluid which contains vital energy.

To learn the deer exercise, see Steven Chang's Tao of Sexology or my other articles. This article will focus on how to transmute the sexual energy once you have learned to conserve it.

To use your transmuted sexual energy follow these basic steps:

Begin by building up you sexual energy. The deer exercise can be used for this purpose or you can use any other form of sexual stimulation that brings you joy. You may want to practice this alone at first as having a partner can be distracting. However, once you have mastered the process of sexual transmutation, having a partner in your manifestation process will multiply your power.

Once you have built up your sexual energy and have achieved a state of ecstasy and joy, begin to move the energy up your body to the higher chakras. Contract your pelvic floor muscles to pump the hormones up into the endocrine system. Make the sound of "aah" deep form you diaphragm to aid in moving the energy.

You will likely experience a tingling sensation in your spine as the energy moves up. Move the energy first in to the creative chakra. Visualize bright yellow colors as you feel your creativity expand. If you have any kind of problem in your life, now is the time to think of creative solutions. Don't loose your sexual stimulation by focusing too much on the problem. Allow only the solution to drift into your mind then let it go. Continue with the "aah" sound to help move the energy.

Move the energy up to the heart chakra. Feel the power of love and sexual energy combine. Feel loving appreciation for your sexual power and energy. Experience increasing joy and ecstasy as the sexual energy is transmuted into love.

Now continue to move the sexual energy into the throat chakra. Feel the vibration of the "aah" sound as it resonates in you throat. Feel the power to express your desires. Feel the tingle in your back. If you sexual energy is starting to fade, go back to your sexual stimulation. Build up as much energy as you can without releasing it through ejaculation.

Now bring the sexual energy up to the level of the third eye. Feel the power of your love and sexual energy in your forehead. Feel the tingle in your back.

Now picture the thing that you wish to manifest. Picture it clearly and feel the emotion that you wish to feel. Keep your visualization simple and short so that you are not distracted from you source of sexual stimulation. Now, direct all the power of your orgasm into the visualization. Imagine that your desires are already in place and you feel the orgasmic feeling of satisfaction in their manifestation.

Clench your pelvic muscles to send bursts of energy up through your body. Allow sounds of pleasure to escape your mouth.

Continue to send bursts of energy into your desires as long you feel happy doing so. Do not push yourself to exhaustion. Just enjoy the flow of energy. Maintain the state of ecstasy for as long as possible. Take some time before you return to your normal routine. Let the energy germinate and grow into your desired manifestation.

This process of sexual transmutation has been used for thousands of years to create events that seem miraculous to the outside observer. Due to our modern sexual practices and beliefs it may take some time to get proficient at this method of sexual transmutation. However, you will likely find it a pleasant enough exercise to do every day or multiple times each day. Through consistent practice you will get better and better at the process. You will then be amazed at the results.






READ MORE - How to transform sexual energy to succeed and manifest desires