Machines use energy to work. 
Machines use energy to do jobs. 
Sometimes, some energy is lost. It might turn into heat. This means we do not use all the energy we put in.
We use a special way to measure this. It shows how much useful work we get. A light bulb is one kind of machine. It turns electricity into light.
We want to use as much energy as we can. Using more energy is better. It helps us save money too.
It is impossible to use every bit of energy. Some is always lost. We can still try to be smart with it.
Machines change one kind of power into another. This is called energy conversion. 
We use a number to see how well a machine works. This number is called efficiency. It compares the useful power we get to the power we put in. Efficiency is a number between 0 and 1. It can also be a percentage from 0% to 100%.
Most machines cannot be 100% efficient. Some power is always lost. It often turns into heat that we do not want. For example, a light bulb turns electricity into light. But some electricity turns into heat instead.
Some tools work differently. Heat pumps move heat instead of just changing it. They use something called the coefficient of performance, or COP. This number can be higher than 1. Most air conditioners have a COP between 2.3 and 3.5.
Light also has its own rules. We can measure how much light our eyes can see. This is called luminous efficiency. Our eyes see green and yellow light best.
Energy conversion efficiency is a way to measure how well a machine works. 

How does this work in real life? When a machine changes energy, it is rarely perfect. Some of the input energy always turns into something else. For example, a light bulb turns electricity into light. However, some of that electricity turns into heat instead. This extra heat is often called waste heat because it is not the goal. Because of this loss, efficiency can never be higher than 100%. A machine that stayed at 100% forever would be a perpetual motion machine. Scientists say such a machine is impossible to build.
Some devices use a different way to measure success. Heat pumps and air conditioners do not just change energy. Instead, they move heat from one place to another. For these tools, we use the coefficient of performance, or COP. The COP can actually be higher than 1. This happens because the device pumps extra heat from a source. Most air conditioners have a COP between 2.3 and 3.5. A higher COP means the machine uses less power to do its job. This can help lower the cost of running the device.
Light also has special rules for efficiency. We can look at wall-plug efficiency to see how much electricity becomes light. We also use luminous efficiency to see how much light our eyes can actually see.
Scientists use many specific terms to be very precise. They might talk about electrical efficiency or mechanical efficiency. There is also thermal efficiency, which looks at fuel used for heat. In Europe, people often use the lower heating value, or LHV, to measure fuel. This method assumes water vapor stays as a gas. In the U.S., people often use the higher heating value, or HHV. This method includes the energy from turning vapor back into liquid water. Using these specific names helps prevent confusion when talking about big power stations.
Energy conversion efficiency is a technical measure of how well a machine performs its task. 
To understand the mechanism, we must look at how energy transforms. When an energy converter, like a light bulb, operates, it changes one form of energy into another. However, the process is rarely perfect. For example, if you are using a thermodynamic cycle to produce work, some of the heat produced from burning fuel may become rejected waste heat. This waste heat is energy that was part of the input but did not contribute to the desired useful output. Because of these losses, efficiency can never exceed 100%. A machine with over 100% efficiency would be a perpetual motion machine, which is physically impossible.
There are several specific types of efficiency used depending on the system being studied. Electrical efficiency measures the useful power output relative to the electrical power consumed. Mechanical efficiency looks at how one form of mechanical energy, such as the potential energy of water, is converted into mechanical work. Thermal efficiency, or fuel efficiency, measures the useful heat or work output per unit of fuel consumed. In complex systems like cogeneration, scientists use "total efficiency" to account for both useful electric power and heat output from the same fuel source. 
Some devices use a different measurement called the coefficient of performance, or COP. This is used for heat pumps and refrigerators, which move heat rather than simply converting it. Unlike standard efficiency, the COP can be greater than 1.0. This is because these devices do not just convert work into heat; they also pump additional heat from a source to where it is needed. For instance, most air conditioners have a COP between 2.3 and 3.5. A higher COP means the device is more effective and has lower operating costs.
In chemistry, efficiency is often tied to the change in Gibbs energy. This is the minimum theoretical energy required to make a chemical transformation occur. For example, an ideal fuel cell operating at 25 °C can produce a maximum of 237.129 kJ of electrical energy per gram mol of water produced. This process involves gaseous hydrogen and oxygen turning into liquid water. Conversely, an electrolysis unit uses electricity to split water into gases. At 25 °C, an ideal electrolysis unit requires a minimum input of 237.129 kJ per gram mol of water consumed. If the unit operates without extra heat, it might require 285.830 kJ, resulting in an efficiency of 0.83 compared to the ideal.
Light production involves two different ways to measure success: wall-plug efficiency and luminous efficiency. Wall-plug efficiency measures the output radiative energy in watts per total electrical input watts.
Finally, the way we calculate fuel energy can change our efficiency results. In Europe, many use the lower heating value (LHV), which assumes water vapor from combustion stays as a gas. This can lead to a "heating efficiency" that appears to exceed 100% in condensing boilers because they recover heat that the LHV definition ignores. In the United States, the higher heating value (HHV) is more common. The HHV includes the energy released when water vapor condenses into liquid. Using these specific conventions is vital to avoid confusion when discussing the efficiency of large power stations.
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