Air at 20 Celsius and 483 kPa (70 psig) gauge expands to atmospheric pressure (79 kPa). If the process is isentropic, what is the final temperature in Celsius? Present answer using three significant digits.

asked Oct 1, 2021 185k views

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Answer:

Step-by-step explanation:

Process is isentropic that means the process is adiabatic .

$PV^\gamma = constant \\P^((1 -\gamma))* T^\gamma = constant$

$(T_1)/(T_2) = \frac{ P_1 ^ {(\gamma-1) }}{P_2^((\gamma-1 ))}$

For air

$\gamma = 1.4$

$(293)/(T_2) = \frac{ 483^ {(1.4-1) }}{79^((1.4-1 ))}$

(293)/(T_2) = 2.06

T_2 = 142 K

= - 131 ⁰C .

Steven Ogwal answered Oct 6, 2021

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