EBK FUNDAMENTALS OF CHEMICAL ENGINEERIN
EBK FUNDAMENTALS OF CHEMICAL ENGINEERIN
15th Edition
ISBN: 8220100479694
Author: VISCO
Publisher: CENGAGE L
Question
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Chapter 4.7, Problem 4E

(A)

Interpretation Introduction

Interpretation:

The change in entropy (ΔS)

Concept Introduction:

The expression to determine the constant volume heat capacity (C^V) on a mass basis.

C^V=C^PR

Here, constant pressure heat capacity on a mass basis is C^P and gas constant is R.

The expression to determine the change in entropy (ΔS) for heated reversible process.

ΔS=MC^Vln(T2/T1)

Here, mass of system is M, initial temperature is T1, and final temperature is T2.

(B)

Interpretation Introduction

Interpretation:

The change in entropy (ΔS)

Concept Introduction:

Write the expression to determine the change in entropy (ΔS) for heated reversible process.

ΔS=MC^Vln(T2/T1)

Here, mass of system is M, initial temperature is T1, and final temperature is T2.

(C)

Interpretation Introduction

Interpretation:

The change in entropy (ΔS).

Concept Introduction:

Write the expression to determine the change in entropy (ΔS) for heated reversible process.

ΔS=MC^Vln(T2/T1)

Here, mass of system is M, initial temperature is T1, and final temperature is T2.

(D)

Interpretation Introduction

Interpretation:

The change in entropy (ΔS)

Concept Introduction:

Write the expression to determine the change in entropy (ΔS) for heated reversible process.

ΔS=MC^Vln(T2/T1)

Here, mass of system is M, initial temperature is T1, and final temperature is T2.

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Students have asked these similar questions
Rotorences] Use the data below from an electron impact mass spectrum of a pure compound to deduce its structure. Draw your structure in the drawing window. Data selected from the NIST WebBook, https://webbook.nist.gov/chemistry/ m/z Relative intensity 73 1.0 72 25 57 8 43 100 29 17 • You do not have to consider stereochemistry. • You do not have to explicitly draw H atoms. • In cases where there is more than one answer, just draw one. 81 + ་་ CH4 { [ ? Previous Next
Only focus on H(3), which the answer is minus 1.26 KJ/mol.  This also has the ideal gas of nitrogen gas N2.  Two enthalpies need to be calculated for this.  The first enthalpy is H = (specific volume) times (pressure difference).  For the specific volume of nitrogen, how was 12.089 x10^(-5) m^3/mol obtained? I understand the second enthalpy for the heat capacity for nitrogen gas.
chemical engineering.    The answer for H(3) is minus 1.26 KJ/mol.  Demonstrate the reference state to the process state for nitrogen gas.  I know that is an ideal gas law for the nitrogen gas.  I know how to calculate the heat capacity for this.
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