Question

5. Find the quasi-static (reversible) work done and the net heat absorbed by the system40.00 in each of the following three processes, all of which take the system from state A to state B Please refer to the diagram on the right. The blue curve and the equation that refers to it are for an adiabatic process. a is a constant. 2.63. a) The system is expanded from its original to its final volume heat being added to maintain the pressure constant. The volume i then kept constant, and heat is extracted to reduce the pressure to 2.63 atm. 1.00 8.00 V(L) b) The volume is increased, and heat is supplied to cause the pressure to decrease linearly with the volume c) The two steps of process (a) are performed in the opposite order (but in the same direction)
0 0
Add a comment Improve this question Transcribed image text
Answer #1

(a)

dW=PdV

The process is from A to B` and from B` to B.

From A to B` , the process is at constant pressure, so work done,

W_1=P\int dV=40\int_1^8 dV

W = 40 x 7 = 280 J

From B` to B, the process is at constant volume, hence dV=0 and so work done =

W_2=\int PdV=0

Total Work = W1 + W2 = 280 J

(b)

The process is through the straight blue line from to A to B.

Slope of line,

2.63-40 m= ー-5.33 8-1

Hence, we can write the equation as,

(P - 2.63) = - 5.33(V - 8)

P = -5.33V + 45.33

Work done in going from A to B,

W=\int PdV= \int_1^8(-5.33V+45.33)dV

Integrating, we get,

W = 149.41 J

(c)

dW=PdV

The process is from A to A` and from A` to B.

From A to A` , the process is at constant volume, hence dV=0 and so work done =
W_1=\int PdV=0
From A` to B, the process is at constant pressure,

W_1=P\int dV=2.63\int_1^8 dV

W = 2.63 x 7 = 18.41 J

Total Work = W1 + W2 = 18.41 J

Add a comment
Know the answer?
Add Answer to:
5. Find the quasi-static (reversible) work done and the net heat absorbed by the system40.00 in...
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for? Ask your own homework help question. Our experts will answer your question WITHIN MINUTES for Free.
Similar Homework Help Questions
  • 4. [After Reif Problem 5.1] When an ideal gas undergoes an adiabatic (thermally insu- lated) quasi-static...

    4. [After Reif Problem 5.1] When an ideal gas undergoes an adiabatic (thermally insu- lated) quasi-static expansion, its pressure and volume are related by p = constant. where γ = cp/cv is the ratio of heat capacities. If the gas expands from an initial volume Vi at temperature T to a final volume V2, calculate the final temperature T2 in terms of γ, Vi, Ti, and ½.

  • Which of the following statements about pressure-volume work is true? The reversible process provides the maximum amou...

    Which of the following statements about pressure-volume work is true? The reversible process provides the maximum amount of work. Work done at constant-pressure is zero. When work is done on the system in an adiabatic process there is a decrease in the internal energy of the system. Changes in pressure-volume work must always be offset by changes in the heat of the system. A free expansion takes place against a constant external pressure of 1 bar.

  • In an adiabatic free expansion a. no heat is transferred between a system and its surroundings....

    In an adiabatic free expansion a. no heat is transferred between a system and its surroundings. b. the pressure remains constant. c. the volume remains constant. d. the process is reversible. e. the temperature remains constant.

  • One mole of an ideal mono-atomic gas is in a state A characterized by a temperature...

    One mole of an ideal mono-atomic gas is in a state A characterized by a temperature TA. The gas is then subjected to a succession of three quasi-static reversible processes: An isothermal expansion A → B, which increases the volume by a factor y. The expansion factor is therefore y = VB / VA> 1. An adiabatic compression B → C which increases the pressure by a factor w. The compression factor is w = pC / pB> 1. A...

  • Consider n moles of ideal gas kept in a heat-isolated cylinder (all processes are adiabatic) with...

    Consider n moles of ideal gas kept in a heat-isolated cylinder (all processes are adiabatic) with a piston at external pressure p0, and at temperature T0. The external pressure is suddenly changed to p=2p0, and we wait for the system to equilibrate. The volume and the temperature of the ideal gas after equilibration is V and T, respectively. a) Calculate the amount w of work produced on the system in terms of p, p0, V, T0, and n. Using the...

  • 1) Calculate  the  heat  through  a  glass  window  that  is 30.0  cm*150  cm  in  area  and  1.20  mm&n

    1) Calculate  the  heat  through  a  glass  window  that  is 30.0  cm*150  cm  in  area  and  1.20  mm  thick.  Assume  the temperature onthe inside of the window is 25.0�C while the outside temperature is 8.00�C. 2)Five hundred joules of heat is absorbed by a system that does 200 J of work on its surroundings. What is the change in the internal energy of the system?    3)An ideal gas expands isothermally, performing 8.80 kJ of work  in  the  process.  Calculate  the  heat  absorbed  during  the expansion. 4)A gas contained in a cylinder that has a piston is kept at a  constant  pressure  of  2.80*10^5Pa. The  gas  expands  from0.500 m^3to 1.50 m^3 when 300 kJ...

  • available ur tank V=0.2 m reversible, adiabatic compressor R22 Thank = -20°C Vii = 0.05 m...

    available ur tank V=0.2 m reversible, adiabatic compressor R22 Thank = -20°C Vii = 0.05 m I Wc Tomo = -10°C m=0.1 kg/s for t = 10 min Pcout = 18 bar Problem sketch A tank with volume V = 0.2 m2 contains refrigerant R22 at Ttank = -20°C, as shown in the problem sketch. Initially the tank contains V1,1 = 0.05 m2 of liquid R22 and the rest of the tank contains vapor R22. A reversible, adiabatic compressor operating...

  • I. (30 pts.) One mole of an ideal gas with constant heat capacities and ? 5/3...

    I. (30 pts.) One mole of an ideal gas with constant heat capacities and ? 5/3 is compressed adiabatically in a piston-cylinder device from T1-300 K, pi = 1 bar to p2 = 10 bar at a constant external pressure Pext"- P2 -10 bar. Calculate the final temperature, T2, and W, Q. AU, AH for this process. 2. (20 pts.) Repeat problem 1 for an adiabatic and reversible compression. 3. (20 pts.) A rigid, insulated tank is divided into two...

  • can you help me with this plesae? O 3.5/7 points Previous Answers Tipler6 19 PO34 My...

    can you help me with this plesae? O 3.5/7 points Previous Answers Tipler6 19 PO34 My Notes One mole of an ideal monatomic gas at an initial volume Vi30 L follows the cycle shown in the figure. All the processes are quasi-static. PkPa 200 Isotherm 100 2V, v.L (a) Find the temperature of each state of the cycle. X K (state 1) X K (state 2) X K (state 3) q (b) Find the heat flow for each part of...

  • 6. The formula dS = dQ/T makes it look like a system can only increase its...

    6. The formula dS = dQ/T makes it look like a system can only increase its entropy by absorbing heat. You must however remember that this equation is only true for reversible processes. Entropy can change for a system without absorbing any heat. Consider the following scenario. You are given an insulated container with two compartments. The whole container is at the temperature T which remains constant. One compartment has a volume V1 and has n1 moles of an ideal...

ADVERTISEMENT
Free Homework Help App
Download From Google Play
Scan Your Homework
to Get Instant Free Answers
Need Online Homework Help?
Ask a Question
Get Answers For Free
Most questions answered within 3 hours.
ADVERTISEMENT
ADVERTISEMENT
ADVERTISEMENT