(II) Consider the following two-step process. Heat is allowed to flow out of an ideal gas at constant volume so that its pres- sure drops from 2.2 atm to 1.4 atm. Then the gas expands at constant pressure, from a volume of 5.9L to 9.3 L, where the temperature reaches its original value. See Fig. 15–22. Calculate (a) the total work done by the gas in the process, (b) the change in internal energy of the gas in the process, and (c) the total heat 2.2 atm P a flow into or out of the gas. b 1.4 atm FIGURE 15-22 Problem 10. 5.9 L 9.3 L V

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(II) Consider the following two-step process. Heat is allowed
to flow out of an ideal gas at constant volume so that its pres-
sure drops from 2.2 atm to 1.4 atm. Then the gas expands at
constant pressure, from a volume of 5.9L to 9.3 L, where the
temperature reaches its original value. See Fig. 15–22. Calculate
(a) the total work done by the gas in the process, (b) the
change in internal
energy of the gas in
the process, and
(c) the total heat 2.2 atm
P
a
flow into or out of
the gas.
b
1.4 atm
FIGURE 15-22
Problem 10.
5.9 L 9.3 L
V
Transcribed Image Text:(II) Consider the following two-step process. Heat is allowed to flow out of an ideal gas at constant volume so that its pres- sure drops from 2.2 atm to 1.4 atm. Then the gas expands at constant pressure, from a volume of 5.9L to 9.3 L, where the temperature reaches its original value. See Fig. 15–22. Calculate (a) the total work done by the gas in the process, (b) the change in internal energy of the gas in the process, and (c) the total heat 2.2 atm P a flow into or out of the gas. b 1.4 atm FIGURE 15-22 Problem 10. 5.9 L 9.3 L V
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