2 Thermodynamic questions

In summary: When does heat flow into the system? (ie. does heat flow into or out of the system in each of AB, BC, CD, DA?). How much heat flows into/out of in each of these segments (use the first law: dQ = dU + W = dU + PdV ). Add them up (using correct signs) and that gives you the net heat flow.I think it flows into the system in AB and DA and flows out in BC and CD. AB: heat flows into the system:dQ = nCvdT = nCVdT = 3/2nRdT = (3/2)(1 mol)(8.31 J/molk)(9
  • #1
~christina~
Gold Member
714
0
[SOLVED] 2 Thermodynamic questions

Homework Statement


1.
a) Determine the work done on a fluid that expands from i to f as indicated in picture below.
b) How much work is performed on the fluid if it is compressed from f to i along the same path?

http://img340.imageshack.us/img340/6344/82457490fq4.jpg [Broken]

2. An ideal gas initially at Pi, Vi and Ti is taken through a cycle as shown.
a) find the net work done on the gas per cycle
b) What is the net energy added by heat to the system per cyle
c) Obtain a numerical value for the net work done per cycle for 1.00 mol of gas initially at 0C

Homework Equations


[tex]\Delta E_{int}= Q+ W [/tex]

The Attempt at a Solution



1.

a)Determine the work done on a fluid
I thought that work was the area under the curve...but acording to my book for constant pressure.. I think it is
[tex]P_i(V_f-V_i) [/tex]

Now I'm thinking that If I find the are under the curve then it would be=>
(4-1m^3)(2x10^6Pa)+ (2-1m^3)(6x10^6-2x10^6)+ 1/2(3-2m^3)(6x10^6-2x10^6)=
(6x10^6)+(4x10^6)+ (2x10^6)= 1.2x10^7 J

b) How much work is performed on the fluid if it is compressed from f to i along the same path?
here I'm not sure what they want, when they say that the fluid is compressed along the same path. I assume that would mean that the pressure changes? But how would that look on the graph? Am I supposed to draw a new graph?

_________________________________________________________________________
2.

a) net work done on the gas per cycle
I would say work done is = area of the cyclic cycle thus:

(3Pi-Pi)(3Vi-Vi)= 4J

b) What is the net energy added by heat to the system per cyle

if it is cyclic I think that the net energy added by heat would be =
Q= -W because the [tex]E_{int}= 0[/tex] thus would it would be -4J ?

c) Obtain a numerical value for the net work done per cycle for 1.00 mol of gas initially at 0C

Not sure how I would do this if they say that there is 1.00mol of gas at 0C.
I know that [tex]Q=nc\Delta T[/tex] but if you don't have the final temp then how do you do the question, and also if you don't have c?

I need help on kowing whether I'm correct or not and need help on parts c for #2 and also on part b) of #1.

Please help me out. :frown:

Thank you.
 
Last edited by a moderator:
Physics news on Phys.org
  • #2
um..does anyone know how to do thermodynamic Q's?
not so sure b/c I haven't seen a lot of people ask them...

Well If anyone is capable and willing to help me out I'd greatly appreciate it :smile:
 
  • #3
~christina~ said:
a)Determine the work done on a fluid
I thought that work was the area under the curve...but acording to my book for constant pressure.. I think it is
[tex]P_i(V_f-V_i) [/tex]
Your first thought is correct. Pi(Vf-Vi) IS the area under a constant pressure PV graph. But in this case, you do not have constant pressure.

Now I'm thinking that If I find the are under the curve then it would be=>
(4-1m^3)(2x10^6Pa)+ (2-1m^3)(6x10^6-2x10^6)+ 1/2(3-2m^3)(6x10^6-2x10^6)=
(6x10^6)+(4x10^6)+ (2x10^6)= 1.2x10^7 J

Read the question carefully. You are asked for the work done ON the fluid. Is positive work being done on the fluid here?

b) How much work is performed on the fluid if it is compressed from f to i along the same path?
here I'm not sure what they want, when they say that the fluid is compressed along the same path. I assume that would mean that the pressure changes? But how would that look on the graph? Am I supposed to draw a new graph?

Again, this is a matter of a +- sign. How does your answer differ from that in a)?


_________________________________________________________________________
a) net work done on the gas per cycle
I would say work done is = area of the cyclic cycle thus:

(3Pi-Pi)(3Vi-Vi)= 4J
Be careful about the sign. The question asks for the work done ON the gas. Is net positive work done on the gas during a cycle?

b) What is the net energy added by heat to the system per cyle

if it is cyclic I think that the net energy added by heat would be =
Q= -W because the [tex]E_{int}= 0[/tex] thus would it would be -4J ?
That would make the system 100% efficient, which is not possible.

When does heat flow into the system? (ie. does heat flow into or out of the system in each of AB, BC, CD, DA?). How much heat flows into/out of in each of these segments (use the first law: dQ = dU + W = dU + PdV ). Add them up (using correct signs) and that gives you the net heat flow.

c) Obtain a numerical value for the net work done per cycle for 1.00 mol of gas initially at 0C

Not sure how I would do this if they say that there is 1.00mol of gas at 0C.
I know that [tex]Q=nc\Delta T[/tex] but if you don't have the final temp then how do you do the question, and also if you don't have c?
What is the final temperature after completing one full cycle? You can determine the temperature at each point using the ideal gas law.

AM
 
  • #4
Andrew Mason said:
Your first thought is correct. Pi(Vf-Vi) IS the area under a constant pressure PV graph. But in this case, you do not have constant pressure.

Read the question carefully. You are asked for the work done ON the fluid. Is positive work being done on the fluid here?
no it is negative

Again, this is a matter of a +- sign. How does your answer differ from that in a)?

It is possitive since the gas is compressed thus volume decreases instead of increases.


_________________________________________________________________________
Be careful about the sign. The question asks for the work done ON the gas. Is net positive work done on the gas during a cycle? That would make the system 100% efficient, which is not possible.
I'm not sure but I say no but if
WAB and WBC is = 0 then

WBC = 3Pi(3Vi-Vi) and the same is for the WAD just negative then wouldn't it = 0??


When does heat flow into the system? (ie. does heat flow into or out of the system in each of AB, BC, CD, DA?). How much heat flows into/out of in each of these segments (use the first law: dQ = dU + W = dU + PdV ). Add them up (using correct signs) and that gives you the net heat flow.
not sure...about this.


What is the final temperature after completing one full cycle? You can determine the temperature at each point using the ideal gas law.

[tex] Q=Mc\Delta T [/tex]
AM[/QUOTE]

Thank You
 
  • #5
~christina~ said:
I'm not sure but I say no but if
WAB and WBC is = 0 then

WBC = 3Pi(3Vi-Vi) and the same is for the WAD just negative then wouldn't it = 0??
You had the right idea - the work done by the gas is the area of the rectangle 2Pi x 2Vi. So the work done ON the gas is - 4PiVi. You can't convert this to Joules unless you know how Pi and Vi.
[tex]Q = Mc\Delta T[/tex]
You can determine the temperature at each point using the ideal gas law. The Q from A to B is simple since there is no work done: dQ = dU. What is dU for AB? ([itex]\Delta U = nC_v\Delta T; \Delta T = \Delta (PV)/nR = V_i\Delta P/nR[/itex]). You need to know the kind of gas (diatomic, monatomic) in order to find Cv.

In order to determine the heat flow from B to C, you have to determine the change in temperature using the Ideal gas law and determine the change in internal energy. The heat flow is the change in internal energy + work done (or you can use dQ = nCpdT since pressure is constant)

Repeat this for CD and DA (is the heat flow positive or negative?) and add them all together (careful with the signs) to get the total net heat flow.

AM
 
Last edited:
  • #6
Andrew Mason said:
You had the right idea - the work done by the gas is the area of the rectangle 2Pi x 2Vi. So the work done ON the gas is - 2PiVi. You can't convert this to Joules unless you know how Pi and Vi.

I still don't know how I'd determine that work was negative since the graph has the cylcle in a perfectlyshaped square so the volume both increases and decreases and my book doesn't explain this..:frown:

You can determine the temperature at each point using the ideal gas law. The Q from A to B is simple since there is no work done: dQ = dU. What is dU for AB? ([itex]\Delta U = nC_v\Delta T; \Delta T = \Delta (PV)/nR = V_i\Delta P/nR[/itex]). You need to know the kind of gas (diatomic, monatomic) in order to find Cv.

In order to determine the heat flow from B to C, you have to determine the change in temperature using the Ideal gas law and determine the change in internal energy. The heat flow is the change in internal energy + work done (or you can use dQ = nCpdT since pressure is constant)

Repeat this for CD and DA (is the heat flow positive or negative?) and add them all together (careful with the signs) to get the total net heat flow.

AM
Making sure I understand you here:

For AB
There is no work done for when there is no change in volume so W= 0 and

[tex]dU= dQ - dW[/tex]
W= 0 so
[tex]dU= dQ[/tex]

and I know that [tex]\Delta U = nC_v\Delta T[/tex]
and [tex]PV= nRT [/tex] and so [tex]\DeltaT= \Delta(PV)/nR [/tex]

and since V doesn't change but P does then: [tex]\DeltaT= \Delta P V_i /nR[/tex]

BC=> pressure constant
[tex]\Delta U=Q-W[/tex]
[tex]Q= nC_p \Delta T[/tex]
[tex]PV= nRT [/tex] and so [tex]\DeltaT= \Delta(PV)/nR [/tex]

CD is the same as AB except

[tex]dU= dQ[/tex]
[tex]\Delta U = nC_v\Delta T[/tex]
and [tex]PV= nRT [/tex] and so [tex]\DeltaT= \Delta(PV)/nR [/tex]

[tex]\Delta T= \Delta P 3V_i /nR[/tex]

DA is same as BC except that the volume decreases...

[tex]Q= nC_p \Delta T[/tex]
[tex]PV= nRT [/tex] and so [tex]\DeltaT= \Delta(PV)/nR [/tex]

I assume that I substitute the pressure into the equations and then add them..but I'm not sure about the signs...how would I know if it si +/-?
 
  • #7
~christina~ said:
I still don't know how I'd determine that work was negative since the graph has the cylcle in a perfectlyshaped square so the volume both increases and decreases and my book doesn't explain this..:frown:
Work done ON the gas is negative if positive work is done BY the gas. The direction of the path determines whether work is positive or negative. Generally, work done BY the system is positive and work done on the system is negative. The area under the path BC is positive. The area under the path DA is negative. Add them together to get the net work.

Making sure I understand you here:

For AB
There is no work done for when there is no change in volume so W= 0 and

[tex]dU= dQ - dW[/tex]
W= 0 so
[tex]dU= dQ[/tex]

and I know that [tex]\Delta U = nC_v\Delta T[/tex]
and [tex]PV= nRT [/tex] and so [tex]\Delta T= \Delta(PV)/nR [/tex]

and since V doesn't change but P does then: [tex]\Delta T= \Delta P V_i /nR[/tex]

BC=> pressure constant
[tex]\Delta U=Q-W[/tex]
[tex]Q= nC_p \Delta T[/tex]
[tex]PV= nRT [/tex] and so [tex]\Delta T= \Delta(PV)/nR [/tex]

CD is the same as AB except

[tex]dU= dQ[/tex]
[tex]\Delta U = nC_v\Delta T[/tex]
and [tex]PV= nRT [/tex] and so [tex]\Delta T= \Delta(PV)/nR [/tex]

[tex]\Delta T= \Delta P 3V_i /nR[/tex]

DA is same as BC except that the volume decreases...

[tex]Q= nC_p \Delta T[/tex]
[tex]PV= nRT [/tex] and so [tex]\Delta T= \Delta(PV)/nR [/tex]

I assume that I substitute the pressure into the equations and then add them..but I'm not sure about the signs...how would I know if it si +/-?
So far so good. If the path is from left to right the area under the graph (work done BY gas) is positive.

AM
 
  • #8
Andrew Mason said:
Work done ON the gas is negative if positive work is done BY the gas. The direction of the path determines whether work is positive or negative. Generally, work done BY the system is positive and work done on the system is negative. The area under the path BC is positive. The area under the path DA is negative. Add them together to get the net work.

how would I find a numerical value for part c if I don't know whether the gas is monotomic or diatomic? they give the temperature but..
and I thought I had to multiply to get the net work like I did in part A

So far so good. If the path is from left to right the area under the graph (work done BY gas) is positive.

AM

okay, so this is what I got when I add them but I don't think I can get a number, correct?

just this=> [tex]nC_v \Delta(P V_i)/nR + nC_p \Delta(PV)/nR - nC_v \Delta (PV_i)- nCp \Delta(PV)/nR [/tex][
 
  • #9
~christina~ said:
how would I find a numerical value for part c if I don't know whether the gas is monotomic or diatomic? they give the temperature but..
and I thought I had to multiply to get the net work like I did in part A
The area under BC is 6PiVi and the area under DA is -2PiVi so the total is 4PiVi. This represents the net work done BY the gas. So the net work done ON the gas is -4PiVi.
okay, so this is what I got when I add them but I don't think I can get a number, correct?

just this=> [tex]nC_v \Delta(P V_i)/nR + nC_p \Delta(PV)/nR - nC_v \Delta (PV_i)- nCp \Delta(PV)/nR [/tex][
Your answer has to be in terms of Cv and Cp.

The answer can be reduced:

[tex]C_v 2P_iV_i/R + C_p6P_iV_i/R - C_v6P_iV_i - C_p2P_iV_i/R = 4P_iV_i(C_p - C_v) /R [/tex]

What is Cp-Cv for any gas?

AM
 
  • #10
Andrew Mason said:
The area under BC is 6PiVi and the area under DA is -2PiVi so the total is 4PiVi. This represents the net work done BY the gas. So the net work done ON the gas is -4PiVi.

Oh so you have to get the whole area below the box...I thought all I had to do was get the area in the box, that's why I couldn't figure it out.

but that would be their definition of a numercal value? You don't have to use the given temperature of 0 C ? and 1mol ?

Your answer has to be in terms of Cv and Cp.

The answer can be reduced:

[tex]C_v 2P_iV_i/R + C_p6P_iV_i/R - C_v6P_iV_i - C_p2P_iV_i/R = 4P_iV_i(C_p - C_v) /R [/tex]

What is Cp-Cv for any gas?

AM

Cp-Cv= R

so it becomes [tex]4P_iV_i[/tex]
 
Last edited:
  • #11
~christina~ said:
Oh so you have to get the whole area below the box...I thought all I had to do was get the area in the box, that's why I couldn't figure it out.
If you take the area under BC and subtract the area under DA the result is the area in the box - the net work done.

but that would be their definition of a numercal value? You don't have to use the given temperature of 0 C ? and 1mol ?

Cp-Cv= R

so it becomes [tex]4P_iV_i[/tex]
Use the ideal gas law to determine PiVi (n = 1, T = 273K). That will give you the numerical result.

AM
 
  • #12
Andrew Mason said:
If you take the area under BC and subtract the area under DA the result is the area in the box - the net work done.

Use the ideal gas law to determine PiVi (n = 1, T = 273K). That will give you the numerical result.

AM

okay I got
PV= nRT

PV= 1(8.31J/K*mol)*273K= 2432.43

4(PV)= 9729.72 J

Thank You
 
  • #13
~christina~ said:
okay I got
PV= nRT

PV= 1(8.31J/K*mol)*273K= 2432.43

4(PV)= 9729.72 J
That is the net work done by the system per cycle for part c).

Part b), the net heat energy added to the system is a not clear (the word "net" is confusing). If it refers to Qh - the heat flow into the system, it is asking for the heat flow in parts AB and BC only (heat flows out to the cold reservoir in CD and DA). In order to provide that as a numerical value you will need to know Cv.

AM
 
  • #14
Andrew Mason said:
That is the net work done by the system per cycle for part c).

Part b), the net heat energy added to the system is a not clear (the word "net" is confusing). If it refers to Qh - the heat flow into the system, it is asking for the heat flow in parts AB and BC only (heat flows out to the cold reservoir in CD and DA). In order to provide that as a numerical value you will need to know Cv.

AM

so it would just be [tex]4P_iV_i[/tex] since after you cancel, with (Cp- Cv= R)

Thanks
 
  • #15
~christina~ said:
so it would just be [tex]4P_iV_i[/tex] since after you cancel, with (Cp- Cv= R)

Thanks
For A-C?

For AB the heat in is Cv(2Pi)Vi/R. For BC, Qh is Cp(2Vi)(3Pi)/R. So the total is:

[tex]Q_{hAC} = P_iV_i(2C_v + 6C_p)/R = P_iV_i(2C_v + 6(C_v +R))/R = P_iV_i(8C_v + 6)/R[/tex]

AM
 
  • #16
Andrew Mason said:
For A-C?

For AB the heat in is Cv(2Pi)Vi/R. For BC, Qh is Cp(2Vi)(3Pi)/R. So the total is:

[tex]Q_{hAC} = P_iV_i(2C_v + 6C_p)/R = P_iV_i(2C_v + 6(C_v +R))/R = P_iV_i(8C_v + 6)/R[/tex]

AM


oh..okay (I thought I was getting the total heat of one cycle in the above calculations but I guess I was calculating wrong.

Thanks for your help Andrew :smile:
 

1. How are the laws of thermodynamics defined?

The laws of thermodynamics are fundamental laws in physics that describe the behavior of energy in a system. The first law states that energy cannot be created or destroyed, only transferred or converted. The second law states that the total entropy of a closed system will always increase over time. The third law states that it is impossible to reach absolute zero temperature.

2. What is the difference between heat and temperature?

Heat and temperature are closely related but have different definitions. Heat is the transfer of energy from a hotter object to a colder object. Temperature is a measure of the average kinetic energy of particles in a substance. In other words, heat is energy in transit, while temperature is a measure of the amount of energy present in a substance.

3. How does thermodynamics relate to other fields of science?

Thermodynamics has applications in many fields of science, including physics, chemistry, biology, and engineering. It is used to study and understand the behavior of energy in a wide range of systems, from microscopic particles to large-scale industrial processes.

4. Can the laws of thermodynamics be violated?

No, the laws of thermodynamics are universal laws that have been supported by countless experiments and observations. They cannot be violated or broken, but they can be applied in different ways to achieve different results.

5. What are some real-world applications of thermodynamics?

Thermodynamics has numerous practical applications, such as in designing more efficient engines and power plants, understanding chemical reactions, and developing new materials. It also plays a role in fields such as meteorology, geology, and even economics.

Similar threads

  • Introductory Physics Homework Help
Replies
2
Views
649
  • Introductory Physics Homework Help
Replies
32
Views
971
  • Introductory Physics Homework Help
Replies
3
Views
114
  • Introductory Physics Homework Help
Replies
1
Views
841
  • Introductory Physics Homework Help
Replies
5
Views
609
  • Introductory Physics Homework Help
Replies
3
Views
848
  • Introductory Physics Homework Help
Replies
10
Views
1K
  • Introductory Physics Homework Help
Replies
4
Views
1K
  • Introductory Physics Homework Help
Replies
2
Views
462
  • Introductory Physics Homework Help
Replies
4
Views
799
Back
Top