Heat pump COP theoretical maximum

In summary: The formulas in the wikipedia seems to be wrong and I want to derive the correct formulas from the thermodynamic laws. With current Wikipedia formula it is normal to get COP >2.The COP>2 is possible for land to air pump, when the cold reservoir is hotter than the air aruond the building to where the heat is lost. But not for the air to air.
  • #1
Thermolelctric
28
0
Hello everybody.

I have trouble of proving the theoretical maximum of heat pump Coefficent of Performance.
The thing I'm trying to calculate is for heat pump pumping heat from colder reservoir to the hotter reservoir:
COP=Qh/W
Qh - heat supplied to the hot reservoir(output)
W - mechanical work consumed by the pump(input)

The formulas in the wikipedia seems to be wrong and I want to derive the correct formulas from the thermodynamic laws. With current Wikipedia formula it is normal to get COP >2. Search wikipedia:Coefficent of Performance.

As I calculate the heat balance of the basic air to air heat pump, any COP values above 2 will violate the second law of the thermodynamics, and therefore make perpetual motion machine possible.

So is what is the correct formula and what is the way to prove it?

I argued a lot with my friend about that, when he wanted to buy the heat pump to heat his office. Eventually he still bought the pump because I could not provide the calculation and he decided to believe what the sales man told him (COP=3 or something). But now he do not seem very happy with the electricity bill.

Thanks in advance.
 
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  • #2
The formulas in the wikipedia seems to be wrong
I don't think so.

A COP>2 is possible, if the temperature difference is not too large. Looks like you have some error in your calculations.
 
  • #3
According to my understanding COP >2 is not possible for air to air heat pump. Based on assumption that heat from the building is lost to the same air (cold reservoir) from where it is pumped to inside the building (hot reservoir).

The COP>2 is possible for land to air pump, when the cold reservoir is hotter than the air aruond the building to where the heat is lost. But not for the air to air.

The formula COP=Thot/(Thot-Tcold) maybe it is for calculating the possible improvment over air to air pump. Thot being the Earth and Tcold being the air around the building. The common miscontseption being that using Tcold = outside temp, and Thot = temp inside building. While should be Tcold =outside temp, and Thot = Earth (or other heat) source temperature.

Huge amount of people are scammed with this false calculation!
 
  • #4
OK, let me put it that way:

Can anyone prove that COP>2 is possible, based on thermodynamic laws and other postulates?
Conditions: pumping heat from cold reservoir(Tcold) to the hot reservoir(Thot). Tcold<Thot.
 
  • #5
Thermolelctric said:
OK, let me put it that way:

Can anyone prove that COP>2 is possible, based on thermodynamic laws and other postulates?
Conditions: pumping heat from cold reservoir(Tcold) to the hot reservoir(Thot). Tcold<Thot.
[itex]Q_h[/itex]: heat pumped into the building
[itex]Q_c[/itex]: heat taken from outside the building
[itex]W[/itex]: electrical energy used by the heat pump
[itex]T_h[/itex]: temperature inside the building
[itex]T_c[/itex]: temperature outside the building

1st law: [itex]Q_h = W + Q_c[/itex]

Therefore [tex]\mathrm{COP} = \frac{Q_h}{W} = {Q_h}{Q_h - Q_c} = \frac{1}{1 - Q_c/Q_h} > 1[/tex]

2nd law: [tex]\frac{Q_h}{T_h} \ge \frac{Q_c}{T_c}[/tex] therefore [tex]1 - \frac{T_c}{T_h} \le 1 - \frac{Q_c}{Q_h}[/tex] for which we get [tex]\mathrm{COP} \le \frac{1}{1 - T_c/T_h} = \frac{T_h}{T_h - T_c}[/tex]
There is no fundamental reason why the COP cannot be greater than 2.

Thermolelctric said:
According to my understanding COP >2 is not possible for air to air heat pump. Based on assumption that heat from the building is lost to the same air (cold reservoir) from where it is pumped to inside the building (hot reservoir).
I don't see how any losses from the building come into play in the calculation of the COP of heat pump itself.
 
  • #6
Thanks DrClaude.
DrClaude said:
[itex]Q_h[/itex]: heat pumped into the building

Therefore [tex]\mathrm{COP} = \frac{Q_h}{W} = {Q_h}{Q_h - Q_c} = \frac{1}{1 - Q_c/Q_h} > 1[/tex]
Can you explain more how you get this?

DrClaude said:
[itex]Q_h[/itex]
I don't see how any losses from the building come into play in the calculation of the COP of heat pump itself.
For building heating, this is the main goal to determine most economic way to get the energy needed to maintain the temperature inside the building above the ambient. So naturally one wants to compare how much heating energy he gets using different apparatus. Correct understanding of the COP of the heat pump is needed for those calculations.

There must be error in those calculations, because when simple heat pump has a COP of over 2, it is possible to reheat the input with the energy from the output and with that increase the COP infinetly resulting in infinite COP -- the mashine that pumps heat from cold reservoir to hot reservoir without needing any additional energy to run.
 
  • #7
Thermolelctric said:
There must be error in those calculations, because when simple heat pump has a COP of over 2, it is possible to reheat the input with the energy from the output and with that increase the COP infinetly resulting in infinite COP -- the mashine that pumps heat from cold reservoir to hot reservoir without needing any additional energy to run.
Please show your calculations for this claim.
 
  • #8
Thermolelctric said:
Thanks DrClaude.
Can you explain more how you get this?

Sorry, a part of the equation didn't come out right. [tex]\mathrm{COP} = \frac{Q_h}{W} = \frac{Q_h}{Q_h-Q_c} = \frac{1}{1-Q_c/Q_h} >1[/tex] I hope it is now clear.

Thermolelctric said:
For building heating, this is the main goal to determine most economic way to get the energy needed to maintain the temperature inside the building above the ambient. So naturally one wants to compare how much heating energy he gets using different apparatus.
Yes, but this can be made independent of the COP of the pump, by assuming that you have a desired indoor temperature, for a given outdoor temperature. Of course, if your goal is to maintain an indoor temperature relative to the outside, it becomes more complicated. Note also that actual COPs are usually given for a standard pair of indoor and outdoor temperatures, and are mostly useful in comparing one pump with another. If you want to calculate the actual energy needed over a year, including variations of the outside temperature, you would need measured COPs as a function of inside/outside temperatures.

Thermolelctric said:
There must be error in those calculations, because when simple heat pump has a COP of over 2, it is possible to reheat the input with the energy from the output and with that increase the COP infinetly resulting in infinite COP -- the mashine that pumps heat from cold reservoir to hot reservoir without needing any additional energy to run.
No error, it is just how the COP is defined. Infinite COP will only occur for [itex]T_h=T_c[/itex], in which case the pump is not doing anything, so indeed it doesn't need any energy to run! Event for finite but huge COPs, they correspond to extremely small differences in temperatures that are not realistic in real world applications. And it is just an inequality: for real heat pumps [tex]\mathrm{COP} = \eta \frac{T_h}{T_h-T_c}[/tex] with [itex]\eta < 1[/itex] and itself a function of [itex]T_h[/itex] and [itex]T_c[/itex].
 
  • #9
DrClaude said:
No error, it is just how the COP is defined. Infinite COP will only occur for [itex]T_h=T_c[/itex], in which case the pump is not doing anything, so indeed it doesn't need any energy to run! Event for finite but huge COPs, they correspond to extremely small differences in temperatures that are not realistic in real world applications. And it is just an inequality: for real heat pumps [tex]\mathrm{COP} = \eta \frac{T_h}{T_h-T_c}[/tex] with [itex]\eta < 1[/itex] and itself a function of [itex]T_h[/itex] and [itex]T_c[/itex].

Thanks.
But what happens to COP when Th closes to infinity?
 
  • #10
Thermolelctric said:
But what happens to COP when Th closes to infinity?
The ideal COP approaches 1 as Th approaches infinity.
 
  • #11
DaleSpam said:
Please show your calculations for this claim.

This is what I am working on.

We have cold reservoir, and hot reservoir. We are pumping from cold to hot.
Lets assume we have a COP=5
Mehanical work into the pump=1kW
Heat output to the hot reservoir=5kW

So now we let 2kw go back to heat the cold reservoir.
This leaves us still 3kW output to hot reservoir, this heats the hot reservoir, but we do not let the hot reservoir temperature increase, the exess heat is conducted away. So Th=const.
But added 2kW to cold reservoir will increase the cold reservoir temperature. And this increases the COP by formula COP=Th/(Th−Tc). So now we get even more output heat because of increased COP. And the cycle repeats. The COP is increased to infinity.
We have perpetum mobile!
 
  • #12
Thermolelctric said:
So now we let 2kw go back to heat the cold reservoir.
This leaves us still 3kW output to hot reservoir, this heats the hot reservoir, but we do not let the hot reservoir temperature increase, the exess heat is conducted away. So Th=const.
But added 2kW to cold reservoir will increase the cold reservoir temperature. And this increases the COP by formula COP=Th/(Th−Tc).
Even with the increased COP it still takes work to move the heat back up. You seem to think that the heat that leaks into the cold reservoir is somehow free to move back to the hot reservoir.
 
  • #13
Thermolelctric said:
Thanks.
But what happens to COP when Th closes to infinity?
[itex]\mathrm{COP} \sim 1[/itex]

Consider the following hypothetical situation. An ideal (Carnot engine) heat pump installed between a hot sink at [itex]T_h[/itex] and a cold source at [itex]T_c[/itex], and functions with a constant consumption of electrical energy ([itex]W = \mathrm{const.}[/itex]). Both sources are connected such that heat can flow from hot to cold to maintain the hot source at [itex]T_h[/itex] (imagine that we have a demon that can do that so that we don't need to worry about entropy here). The temperature of the cold source will vary according to
[tex]
T_c = T_{c0} - \frac{Q_c}{C} t + \frac{Q_h}{C} t
[/tex]
where [itex]T_{c0}[/itex] is the initial temperature of the cold source and [itex]C[/itex] its heat capacity. Since [itex]Q_h = W+Q_c[/itex], we have
[tex]
T_c = T_{c0} - \frac{Q_c}{C} t + \frac{W + Q_c}{C} t = T_{c0} + \frac{W}{C} t
[/tex]
so the heat pump is basically heating up the cold source as would a perfect electrical heater. No "over unity" or other violation of the laws of TD.

Note that the initial value of the COP is of no relevance. This will work even if it is initially < 2. The value of the COP grows towards infinity during the process, but so what?

Hope this helps.
 
  • #14
DaleSpam said:
Even with the increased COP it still takes work to move the heat back up. You seem to think that the heat that leaks into the cold reservoir is somehow free to move back to the hot reservoir.

This is what I'm trying to prove. That this COP formula is incorrect.
 
  • #15
Thermolelctric said:
This is what I'm trying to prove. That this COP formula is incorrect.

But the COP formula is just
[tex]
\mathrm{COP} = \frac{\textrm{benefit}}{\textrm{cost}} = \frac{Q_h}{W}
[/tex]
 
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  • #16
DrClaude said:
By the COP formula is just
[tex]
\mathrm{COP} = \frac{\textrm{benefit}}{\textrm{cost}} = \frac{Q_h}{W}
[/tex]

Not that one!
 
  • #17
Thermolelctric said:
Not that!
I derived the COP in terms of temperatures above. If you can't find any fault with the derivation, then both are equivalent.

Thermolelctric said:
So now we get even more output heat because of increased COP.
Or you just need less [itex]W[/itex] for the same [itex]Q_h[/itex], which makes sense: the heat pump requires less work if the sink and the source are close to the same temperature.

Thermolelctric said:
The COP is increased to infinity.
We have perpetum mobile!
No, you reach [itex]T_c = T_h[/itex] and you don't have a heat pump anymore! Or, see my previous post, you just continue heating the cold source as would a electrical heater.
 
  • #18
DrClaude said:
[itex]\mathrm{COP} \sim 1[/itex]

Consider the following hypothetical situation. An ideal (Carnot engine) heat pump installed between a hot sink at [itex]T_h[/itex] and a cold source at [itex]T_c[/itex], and functions with a constant consumption of electrical energy ([itex]W = \mathrm{const.}[/itex]). Both sources are connected such that heat can flow from hot to cold to maintain the hot source at [itex]T_h[/itex] (imagine that we have a demon that can do that so that we don't need to worry about entropy here). The temperature of the cold source will vary according to
[tex]
T_c = T_{c0} - \frac{Q_c}{C} t + \frac{Q_h}{C} t
[/tex]
where [itex]T_{c0}[/itex] is the initial temperature of the cold source and [itex]C[/itex] its heat capacity. Since [itex]Q_h = W+Q_c[/itex], we have
[tex]
T_c = T_{c0} - \frac{Q_c}{C} t + \frac{W + Q_c}{C} t = T_{c0} + \frac{W}{C} t
[/tex]
so the heat pump is basically heating up the cold source as would a perfect electrical heater. No "over unity" or other violation of the laws of TD.

Note that the initial value of the COP is of no relevance. This will work even if it is initially < 2. The value of the COP grows towards infinity during the process, but so what?

Hope this helps.

Thanks, we are getting closer to the solution -- proving the maximum efficiency of the air to air, building heating, heat pump.
 
  • #19
Thermolelctric said:
This is what I'm trying to prove. That this COP formula is incorrect.
It is correct, your perpetual motion argument is wrong. You should post your argument in full.
 
  • #20
DaleSpam said:
It is correct, your perpetual motion argument is wrong.

What do you mean wrong. Is the formula COP=Th/(Th−Tc) wrong, or is there something else wrong?
 
  • #21
Thermolelctric said:
What do you mean wrong. Is the formula COP=Th/(Th−Tc) wrong, or is there something else wrong?
The formula COP≤Th/(Th−Tc) is correct. Your argument that COP>2 → perpetual motion is wrong.
 
  • #22
DaleSpam said:
The formula COP=Th/(Th−Tc) is correct. Your argument that COP>2 → perpetual motion is wrong.

Can you point out what exactly is wrong?
 
  • #23
Thermolelctric said:
Can you point out what exactly is wrong?
No, not until you post the whole argument in detail. Please show in detail why you think COP>2 implies perpetual motion.
 
  • #24
DaleSpam said:
No, not until you post the whole argument in detail. Please show in detail why you think COP>2 implies perpetual motion.

Lets analyse the example I posted about COP=5 first.
 
  • #25
DrClaude said:
[itex]\mathrm{COP} \sim 1[/itex]

Consider the following hypothetical situation. An ideal (Carnot engine) heat pump installed between a hot sink at [itex]T_h[/itex] and a cold source at [itex]T_c[/itex], and functions with a constant consumption of electrical energy ([itex]W = \mathrm{const.}[/itex]). Both sources are connected such that heat can flow from hot to cold to maintain the hot source at [itex]T_h[/itex] (imagine that we have a demon that can do that so that we don't need to worry about entropy here). The temperature of the cold source will vary according to
[tex]
T_c = T_{c0} - \frac{Q_c}{C} t + \frac{Q_h}{C} t
[/tex]
where [itex]T_{c0}[/itex] is the initial temperature of the cold source and [itex]C[/itex] its heat capacity. Since [itex]Q_h = W+Q_c[/itex], we have
[tex]
T_c = T_{c0} - \frac{Q_c}{C} t + \frac{W + Q_c}{C} t = T_{c0} + \frac{W}{C} t
[/tex]
so the heat pump is basically heating up the cold source as would a perfect electrical heater. No "over unity" or other violation of the laws of TD.


Hope this helps.

[STRIKE]How would be the good way to describe the point when the pump begins to heat the cold source instead of hot reservoire as intended? This is the point from where where Qh/W≠Th/(Th−Tc). Simply saying the heat is not pumped any more to the hot reservoire but instead goes to the cold reservoire[/STRIKE] . Sorry, stupid question. Let's just stick to analysing the COP=5 example, for now.
 
Last edited:
  • #26
Thermolelctric said:
How would be the good way to describe the point when the pump begins to heat the cold source instead of hot reservoire as intended? This is the point from where where Qh/W≠Th/(Th−Tc). Simply saying the heat is not pumped any more to the hot reservoire but instead goes to the cold reservoire .

Well, that is what the "demon" has been doing all along. By moving the heat from Th to Tc, you are basically just heating Tc.

If you want to imagine a more realistic situation, take a heat pump connected to two finite reservoirs, which can also exchange heat directly between each other. This direct exchange will depend on a thermal conductivity between the two and the difference in their temperature. As the heat pump works, heat from the cold reservoir will flow to the hot one, but a part will come back to the cold one. Both will slowly increase in temperature, up to a point where Th = Tc = Tf. At this point, you can calculate that the total energy consumed by the pump will be equal to the amount of energy needed to bring Th to Tf and Tc to Tf (conservation of energy). In a real situation, the heat pump itself stops working here because Tc = Th, but you could imagine that compressors are still working, etc., such that both Th and Tc will increase beyond Tf as the electrical energy continues to be converted to heat.
[Edit: I am assuming here that at all times the heat going back to the colr reservoir is > Qc]
 
Last edited:
  • #27
@Thermolelctric: All equations for heat pumps assume two reservoirs - heat is pumped from the cold reservoir to the hot one, and the required work goes to the hot one as well (this is just a convention). Neglecting engineering issues like thermal conductivity and heat capacity of the materials, there is no difference between outside air and outside ground.

Thermolelctric said:
This is what I am working on.

We have cold reservoir, and hot reservoir. We are pumping from cold to hot.
Lets assume we have a COP=5
Mehanical work into the pump=1kW
Heat output to the hot reservoir=5kW

So now we let 2kw go back to heat the cold reservoir.
This leaves us still 3kW output to hot reservoir, this heats the hot reservoir, but we do not let the hot reservoir temperature increase, the exess heat is conducted away. So Th=const.
But added 2kW to cold reservoir will increase the cold reservoir temperature. And this increases the COP by formula COP=Th/(Th−Tc). So now we get even more output heat because of increased COP. And the cycle repeats. The COP is increased to infinity.
We have perpetum mobile!
You pump 4kW of power out of the cold reservoir, and let 2kW flow back. You will cool the cold reservoir, so COP will go down.
If you would heat the cold reservoir in some way, COP would go up. So what?
 
  • #28
DrClaude said:
Well, that is what the "demon" has been doing all along. By moving the heat from Th to Tc, you are basically just heating Tc.

If you want to imagine a more realistic situation, take a heat pump connected to two finite reservoirs, which can also exchange heat directly between each other. This direct exchange will depend on a thermal conductivity between the two and the difference in their temperature. As the heat pump works, heat from the cold reservoir will flow to the hot one, but a part will come back to the cold one. Both will slowly increase in temperature, up to a point where Th = Tc = Tf. At this point, you can calculate that the total energy consumed by the pump will be equal to the amount of energy needed to bring Th to Tf and Tc to Tf (conservation of energy). In a real situation, the heat pump itself stops working here because Tc = Th, but you could imagine that compressors are still working, etc., such that both Th and Tc will increase beyond Tf as the electrical energy continues to be converted to heat.

Both will slowly come to the temperature Tf, near the Tf the COP will be very high. But this do not reflect the real Coefficent of Performance, because the heat goes to heating the low temp resevoire, we need to subtract the heat that goes to heating the cold side from Qh. Could this be the difficulty of calculating the COP and current cause of difficulty of thinking?
 
  • #29
Thermolelctric said:
Both will slowly come to the temperature Tf, near the Tf the COP will be very high. But this do not reflect the real Coefficent of Performance, because the heat goes to heating the low temp resevoire, we need to subtract the heat that goes to heating the cold side from Qh. Could this be the difficulty of calculating the COP and current cause of difficulty of thinking?

I don't get why the COP being high bugs you so much. What is the problem with a device that, by using 1 W of electricity, can transfer 1000 W from a cold reservoir to a hot reservoir? All the 2nd law tells you is that, to do that, you will need both reservoirs to be very close in temperature.
 
  • #30
mfb said:
You pump 4kW of power out of the cold reservoir, and let 2kW flow back. You will cool the cold reservoir, so COP will go down.
If you would heat the cold reservoir in some way, COP would go up. So what?

This is good observation. As long as the cool reservoir is below the ambient(outside temperature) it can absorb the heat from the ambient. So Tc < ambient temp. This brings in new reservoire.
It seems good idea to describe the pump as a system of 4 reservoirs: Input reservoir, pump cold reservoir, pump hot reservoir, and output reservoir. And try to calculate heat pumped from input reservoire to the output reservoire, and the work done to pump.
 
  • #31
DrClaude said:
I don't get why the COP being high bugs you so much. What is the problem with a device that, by using 1 W of electricity, can transfer 1000 W from a cold reservoir to a hot reservoir? All the 2nd law tells you is that, to do that, you will need both reservoirs to be very close in temperature.

Problem is that I tried to do that, but it does not work. I can not get the heat energy promised by the heat pump sales man. And instead there are some fundamental laws of nature that prohibit from getting such a good results from heat pumps.
That would be no problem if the pumps really could work at such a high efficiency as promised bu salesman:)
 
  • #32
Thermolelctric said:
Lets analyse the example I posted about COP=5 first.
That's fine. In that example I didn't see ANY work being extracted at all, let alone perpetual motion. So please use that example and demonstrate that it implies perpetual motion.
 
  • #33
mfb said:
@Thermolelctric: All equations for heat pumps assume two reservoirs - heat is pumped from the cold reservoir to the hot one, and the required work goes to the hot one as well (this is just a convention).
It is more than a convention!
During the cycle, the work goes into the internal energy of the working fluid (by compression). If the heat flow from the working fluid then went back to the cold reservoir (there are only two reservoirs) you would not have a heat pump!

AM
 
  • #34
Thermolelctric said:
Problem is that I tried to do that, but it does not work. I can not get the heat energy promised by the heat pump sales man.
That is just an engineering issue then - the efficiency might need special conditions to be reached.
And instead there are some fundamental laws of nature that prohibit from getting such a good results from heat pumps.
No, there are not.
It seems good idea to describe the pump as a system of 4 reservoirs
This is a bad idea for a theoretic consideration, it adds complexity but nothing interesting.
For a real heat pump, it can be relevant - if you stress it too much, the imperfect temperature exchange with the environment can become relevant - the temperature of the cool side drops below the air temperature outside (as air flow is not quick enough) and the efficiency reduces. The same can happen at the hot side - to heat the room with non-zero power, it has to be (a bit) hotter than the room in some way.

Andrew Mason said:
It is more than a convention!
During the cycle, the work goes into the internal energy of the working fluid (by compression). If the heat flow from the working fluid then went back to the cold reservoir (there are only two reservoirs) you would not have a heat pump!
You could define COP with the other possible choice as well. This would give more pumped heat, as you had to add your work input to this quantity. The result would be the same, but the notation would differ a bit.
 
  • #35
DaleSpam said:
That's fine. In that example I didn't see ANY work being extracted at all, let alone perpetual motion. So please use that example and demonstrate that it implies perpetual motion.

Mechanical work is no extracted, heat energy is extracted from pump hot reservoire.

A cyclic transformation whose only final result is to transfer heat from a body at a given temperature to a body at a higher temperature is impossible. - German physicist Rudolf Clausius

Agree to that?
 
<h2>What is a heat pump COP theoretical maximum?</h2><p>A heat pump COP theoretical maximum is the highest possible coefficient of performance (COP) that a heat pump can achieve. It is based on the laws of thermodynamics and is calculated by dividing the heat output by the energy input.</p><h2>How is the heat pump COP theoretical maximum calculated?</h2><p>The heat pump COP theoretical maximum is calculated by dividing the heat output by the energy input. This calculation takes into account the laws of thermodynamics, specifically the Carnot cycle, to determine the maximum efficiency of a heat pump.</p><h2>What factors affect the heat pump COP theoretical maximum?</h2><p>The heat pump COP theoretical maximum is affected by several factors, including the temperature difference between the heat source and the heat sink, the type of refrigerant used, and the design and efficiency of the heat pump itself.</p><h2>Why is the heat pump COP theoretical maximum important?</h2><p>The heat pump COP theoretical maximum is important because it serves as a benchmark for the efficiency of a heat pump. It allows scientists and engineers to compare the performance of different heat pumps and make improvements to increase efficiency.</p><h2>Can a heat pump ever achieve its theoretical maximum COP?</h2><p>No, a heat pump can never achieve its theoretical maximum COP. This is because there are always losses in the system, such as friction and heat transfer, that prevent the heat pump from achieving 100% efficiency. However, advancements in technology and design can bring heat pumps closer to their theoretical maximum COP.</p>

What is a heat pump COP theoretical maximum?

A heat pump COP theoretical maximum is the highest possible coefficient of performance (COP) that a heat pump can achieve. It is based on the laws of thermodynamics and is calculated by dividing the heat output by the energy input.

How is the heat pump COP theoretical maximum calculated?

The heat pump COP theoretical maximum is calculated by dividing the heat output by the energy input. This calculation takes into account the laws of thermodynamics, specifically the Carnot cycle, to determine the maximum efficiency of a heat pump.

What factors affect the heat pump COP theoretical maximum?

The heat pump COP theoretical maximum is affected by several factors, including the temperature difference between the heat source and the heat sink, the type of refrigerant used, and the design and efficiency of the heat pump itself.

Why is the heat pump COP theoretical maximum important?

The heat pump COP theoretical maximum is important because it serves as a benchmark for the efficiency of a heat pump. It allows scientists and engineers to compare the performance of different heat pumps and make improvements to increase efficiency.

Can a heat pump ever achieve its theoretical maximum COP?

No, a heat pump can never achieve its theoretical maximum COP. This is because there are always losses in the system, such as friction and heat transfer, that prevent the heat pump from achieving 100% efficiency. However, advancements in technology and design can bring heat pumps closer to their theoretical maximum COP.

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