Answer to Question #273339 in Molecular Physics | Thermodynamics for B H Khan

Question #273339

The internal energy of the certain substance is given by the following equation

u = 3.56 pv + 184

where u is given in kJ/kg, p is in kPa and v is in m3

/kg.

A system composed of 3 kg of this substance expands from an initial pressure of 500

kPa and volume of 0.22 m3

to final pressure 100 kPa in a process in which pressure and

volume are related by pv1.2 = Constant. If expansion is quasi-static, find Q, ∆U and W

for the process.

Expert's answer

"u=3.56pv+184 \\\\\n\n\u2206u=u_2-u_1 \\\\\n\n\u2206u=3.56(p_2V_2-p_1V_1)\\\\\n\np_1V_1^{1.2}=p_2V_2^{1.2}\\\\\n\nV_2=V_1(\\frac{p_1}{p_2})^{\\frac{1}{1.2}} \\\\\n\nV_2=0.22\\times(\\frac{500}{100})^{\\frac{1}{1.2}}=0.841 \\; m^3 \\\\\n\n\u2206U= 3.56(100\\times10^3\\times 0.841-500\\times10^3\\times 0.22) \\\\\n\n\u2206U=3.56 (100\\times10^3(0.841-5 \\times 0.22 ) )\\\\\n\n\u2206U=-92.204 \\; kJ"

Quasi static process

"W=\\smallint p dV =\\frac{p_1V_1-p_2V_2}{n-1} \\\\\n\nW=\\frac{500\\times10^3\\times 0.21-100 \\times10^3 \\times 0.841}{1.2-1}=104.5 \\; J \\\\\n\nQ=\u2206U+W=-92.204+104.5=12.296 \\; kJ\n\nQ=12.3 \\; kJ"

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Answer to Question #273339 in Molecular Physics | Thermodynamics for B H Khan

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