Loose Leaf For Introduction To Chemical Engineering Thermodynamics
Loose Leaf For Introduction To Chemical Engineering Thermodynamics
8th Edition
ISBN: 9781259878084
Author: Smith Termodinamica En Ingenieria Quimica, J.m.; Van Ness, Hendrick C; Abbott, Michael; Swihart, Mark
Publisher: McGraw-Hill Education
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Chapter 7, Problem 7.31P
Interpretation Introduction

Interpretation:

To find the enthalpy (H2) and entropy (S2) of steam in its final state

To find the Power (W) required of the compressor

Concept Introduction:

Using Steam Tables, find Enthalpy and Entropy for saturated steam at 125 kPa.

For Isentropic expansion,

S'2=S1

Where S1= Entropy of Saturated Steam at 125 kPa

S’2= Entropy of Saturated Steam after isentropic expansion

ΔH=H'2H1η

Where

ΔH = Change of Enthalpy

H1= Enthalpy at initial state at 125 kPa

H’2= Enthalpy after isentropic expansion, at 700 kPa

η = Efficiency of compressor = 78% = 0.78

ΔH = Change of Enthalpy = H2- H1W=m.ΔH

W = Power required for the compressor

M = Mass flow rate = 2.5 kg.s-1

ΔH = Change of Enthalpy

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1. (20 points) Steam (6000 kg/h, 10 bar, 400°C) is passed through an adiabatic turbine that drives a shaft to generate power. The steam leaving the turbine is at 0.5 bar and passes to a chiller where heat is removed at the rate of 1.25 x 107 kJ/h. Saturated liquid leaves the chiller at 0.5 bar. (a) How much work (kW) is produced in the turbine? (b) What is the quality of steam leaving the turbine? Sometimes, steam produced is 'wet' in nature, and is composed of saturated water vapor and entrained water droplets. In such cases, quality is defined as the fraction of steam that is vapor.
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