Question

In: Chemistry

Calculate the work (in Joules) for the isothermal, reversible compression of 0.787 mol of an Ideal...

Calculate the work (in Joules) for the isothermal, reversible compression of 0.787 mol of an Ideal gas going from 0.95 L to 0.081 L, if the temperature is 17.4 °C. R = 8.314472 L•atm/mol•K. Report your answer to three significant figures.

What is the final temperature in °C of 0.398 mol of a monatomic ideal gas that performs 79 J of work adiabatically if the initial temperature is 221? R = 8.314472 L•atm/mol•K. Report your answer to three significant figures.

Solutions

Expert Solution


Related Solutions

A 10.0 mol sample of an IG with a CV,m = 1.5R undergoes reversible isothermal compression...
A 10.0 mol sample of an IG with a CV,m = 1.5R undergoes reversible isothermal compression from 0.200 to 0.500 atm at 373K. a. Calculate the initial and final volumes. b. q c. w d. ∆U
An ideal gas is brought through an isothermal compression process. The 4.00 mol of gas goes...
An ideal gas is brought through an isothermal compression process. The 4.00 mol of gas goes from an initial volume of 227.5×10−6 m3 to a final volume of 101.0×10−6 m3. If 8890 J is released by the gas during this process, what are the temperature ? and the final pressure ?? of the gas?
An ideal gas is brought through an isothermal compression process. The 3.00 mol of gas goes...
An ideal gas is brought through an isothermal compression process. The 3.00 mol of gas goes from an initial volume of 222.0 × 10 − 6 m 3 to a final volume of 123.5 × 10 − 6 m 3 . If 7.60 × 10 3 J is released by the gas during this process, what are the temperature T and the final pressure p f of the gas
4). (a). Calculate an expression for the work done during an isothermal, reversible expansion for a...
4). (a). Calculate an expression for the work done during an isothermal, reversible expansion for a gas which is described using the van der Waals equation of state. (b). The van der Waals constants for a gas are a = 506.5 kPa L2 mol2 and b = 6.0x10−2 L mol−1. Determine the work done by 2.0 moles of a gas that expands from 1.5 L to 10 L at 325 K. (c). The a constant is attributed to attractive forces...
Calculate deltaS total for the isothermal irreversible free expansion of 1.00 mol of ideal gas from...
Calculate deltaS total for the isothermal irreversible free expansion of 1.00 mol of ideal gas from 8.0 L to 20.0 L at 298 K
Calculate the work done in joules when 1.50 mol of water vaporizes at 2.00 atm and...
Calculate the work done in joules when 1.50 mol of water vaporizes at 2.00 atm and 100oC, assuming that the volume of the water is negligible compared with that of the steam formed.
Derive an expression for the reversible isothermal work done on n moles of gas at temperature...
Derive an expression for the reversible isothermal work done on n moles of gas at temperature T if the volume changes from V1 to V2 and the gas obeys van der Walls’ equation.
(1) Derive all thermodynamic parameters (dH, dU, dw, dq and dS) for an isothermal reversible expansion/compression...
(1) Derive all thermodynamic parameters (dH, dU, dw, dq and dS) for an isothermal reversible expansion/compression at (a) isothermal , (b) isochoric and (c) isobaric conditions. Also draw relevant PV diagram and highlight work-done during each process. Thank you!!
Physical Chemistry: Calculate ΔG for the isothermal compression of 10.0 g of water from 1.0 atm...
Physical Chemistry: Calculate ΔG for the isothermal compression of 10.0 g of water from 1.0 atm to 100.0 atm at 25°C
A reversible engine contains 0.350 mol of ideal monatomic gas, initially at 586 K and confined...
A reversible engine contains 0.350 mol of ideal monatomic gas, initially at 586 K and confined to a volume of 2.42 L . The gas undergoes the following cycle: ⋅ Isothermal expansion to 4.74 L ⋅ Constant-volume cooling to 252 K ⋅ Isothermal compression to 2.42 L ⋅ Constant-volume heating back to 586 K Determine the engine's efficiency in percents, defined as the ratio of the work done to the heat absorbed during the cycle.
ADVERTISEMENT
ADVERTISEMENT
ADVERTISEMENT