Question

The pressure and volume of a gas are changed along a path ABCA in the figure. The vertical divisions on the graph represent 3.50 × 105 Pa, and the horizontal divisions represent 4.50 × 10-3 m³. Determine the work done (including the algebraic sign) between C and A. Answer in J. Please provide a detailed answer. Thank you! Pressure, Pa m? C Volume,

0 0
Add a comment Improve this question Transcribed image text
Answer #1

We know,
Total Work done = Area under the curve = 1/2 * (3 * 4.5 * 10^-3 * 4 * 3.5 * 10^5) J
Wnet = 9450 J

Work done From A - B = 0
Work From B = C , = 7 * 3.5 * 10^5 * (3 * 4.5 * 10^-3) = 33075 J

Work done from C - A = 33075 - 9450 = 23625 J

Add a comment
Know the answer?
Add Answer to:
The pressure and volume of a gas are changed along a path ABCA in the figure....
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
  • The pressure and volume of a gas are changed along a path ABC A in the...

    The pressure and volume of a gas are changed along a path ABC A in the figure. The vertical divisions on the graph represent 3.00 times 10^5 Pa, and the horizontal divisions represent 5.00 times 10^-3 m^3. Determine the work done (including the algebraic sign) between C and A.

  • The figure displays a closed cycle for a gas. The change in internal energy along path...

    The figure displays a closed cycle for a gas. The change in internal energy along path ca is –180 J. The energy transferred to the gas as heat is 210 J along path ab, and 30 J along path bc. How much work is done by the gas along (a) path abc and (b) path ab?

  • The figure below is a pressure versus volume graph where the different curves represent different processes...

    The figure below is a pressure versus volume graph where the different curves represent different processes done on a gas. Starting at the origin to point 1, the pressure and volume are increased to 2972 Pa and 3.74 m3 respectively. From 1 to 2 the gas expands at constant pressure to a volume of 6.74 m3. From 2 to 3 the pressure rises to 4246 Pa. And finally from 3 to 4 the gas expands again to 10.34 m. Using...

  • The figure below is a pressure versus volume graph where the different curves represent different processes...

    The figure below is a pressure versus volume graph where the different curves represent different processes done on a gas. Starting at the origin to point 1, the pressure and volume are increased to 2972 Pa and 3.74 m3 respectively. From 1 to 2 the gas expands at constant pressure to a volume of 6.74 m3. From 2 to 3 the pressure rises to 4246 Pa. And finally from 3 to 4 the gas expands again to 10.34 m3. Using...

  • A diatomic ideal gas expands from a volume of VA-1.00 mºto V, - 3.00 m along...

    A diatomic ideal gas expands from a volume of VA-1.00 mºto V, - 3.00 m along the path shown in the figure below. The initial pressure is PA-2.00 x 10 Pa and there are 67.3 mol of gas. P(10%Pa) 4.00 8.00 2.00 1.00 1.00 2.00 3.00 100V (m) (a) Calculate the work done on the gas during this process. (b) Calculate the change in temperature of the gas. (c) Calculate the change in internal energy of the gas. (Take the...

  • A1. An ideal gas is slowly compressed at a constant pressure of from 2.5 L to...

    A1. An ideal gas is slowly compressed at a constant pressure of from 2.5 L to 1.0 L. Heat is then added to the gas, holding the volume constant, until its pressure reaches . How much total work (J) is done on the gas? 1.0 × 105 Pa 1.0 × 105 Pa

  • When a gas follows path 123 on the PV diagram in the figure below, 419 J...

    When a gas follows path 123 on the PV diagram in the figure below, 419 J of energy flows into the system by heat and −171 J of work is done on the gas. A rectangular path is plotted on a PV diagram that has a horizontal axis labeled V, and a vertical axis labeled P. The vertices of the rectangle, starting from the bottom-left corner and continuing clockwise, are labeled in the following order: 1, 2, 3, 4. The...

  • The figure below is a pressure versus volume graph where the different curves represent different processes...

    The figure below is a pressure versus volume graph where the different curves represent different processes done on a gas. Starting at the origin to point 1, the pressure and volume are increased to 2677 Pa and 3.91 m3 respectively. From 1 to 2 the gas expands at constant pressure to a volume of 6.91 m3. From 2 to 3 the pressure rises to 4328 Pa. And finally from 3 to 4 the gas expands again to 10.00 m3. Using...

  • The figure below is a pressure versus volume graph where the different curves represent different processes...

    The figure below is a pressure versus volume graph where the different curves represent different processes done on a gas. Starting at the origin to point 1, the pressure and volume are increased to 2559 Pa and 3.74 m3 respectively. From 1 to 2 the gas expands at constant pressure to a volume of 6.74 m3 From 2 to 3 the pressure rises to 4.000 10 Pa. And finally from 3 to 4 the gas expands again to 11.19 m3...

  • One mole of an ideal diatomic gas goes from a to c along the diagonal path...

    One mole of an ideal diatomic gas goes from a to c along the diagonal path in the figure below. The scale of the vertical axis is set by Pab = 4.8 kPa and pc = 2.2 kPa, and the scale of the horizontal axis is set by Vbc-4.4 m3 and Va 2.2 m 3 bc Volume (m) (a) During the transition, what is the change in internal energy of the gas? (b) How much energy is added to the...

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