Unit Operations Of Chemical Engineering
Unit Operations Of Chemical Engineering
7th Edition
ISBN: 9789339213237
Author: MCCABE, WARREN
Publisher: Tata McGraw-Hill Education India
Question
Book Icon
Chapter 7, Problem 7.1P
Interpretation Introduction

Interpretation: The pressure drop through packed tubes is to be calculated for the different conditions of the pellets.

Concept introduction: The pressure drop through the packed tubes is calculated by the Ergun equation which is a combination of the Kozeny-Carman equation and Burke-Plummer equation.

The Kozeny-Carman equation is applicable for the particles in a bed whose Reynold’s number is less than 1. It is given as,

  ΔPL=150V¯0μ(1-ε)2ϕs2Dp2ε3.......(1)

In the above formula, the notations used are,

  ΔP=PressuredropthroughpackedtubesL=LengthoftubeV¯0=Superficialvelocityμ=Viscosityoffluidε=BedporosityDp=Pelletdiameterϕs=Sphericityofparticles

The Burke Plummer equation is applicable for the particles in a bed whose Reynold’s number is more than 1000. It is given as,

  ΔPL=1.75V¯02ρ(1-ε)ϕsDpε3.......(2)

  ρ=Densityofair

The density of air can be given as,

  ρ=PMRT.......(3)

In the equation (3), notations used are,

P is the pressure at which air enters

M is the molecular weight of air

R is the Universal Gas constant

T is the temperature at which air enters

Combining equation (1) and equation (2) we get Ergun equation.

  ΔPL=150V¯0μ(1-ε)2ϕs2Dp2ε3+1.75V¯02ρ(1-ε)ϕsDpε3 ……. (4)

Expert Solution & Answer
Check Mark

Answer to Problem 7.1P

The pressure drop for diameter of pellets 0.003 m is 18465.6 Pa and when the diameter of pellet is increased to 0.004 m, the pressure drop is reduced by 5667.1 Pa or 30.7%.

Explanation of Solution

The data given for the air density calculation is,

  P=2atm=2×101325Pa=202650PaM=30g/mol=0.030kg/molR=8.314Pa-m3/mol.KT=350°C=623K

Substitute this data in equation (3),

  ρ=(202650Pa)×(0.030kg/mol)(8.314 Pa-m3/mol.K)×( 623K)ρ=1.174kg/m3

Now other data given to calculate pressure drop is,

  V¯0=1m/sε=0.4Dp=3mm=0.003mϕs=1(Forsphericalparticles)

For air at the given temperature, the viscosity from appendix is, μ=3×10-5kg/m.s .

Substitute all the required data from above in equation (4),

  ΔP2=150×(1m/s)×(3×10-5kg/m.s)×(1-0.4)2(1)2×(0.003m)2×(0.4)3+1.75×(1.174kg/m3)×(1m/s)2×(1-0.4)1×(0.003m)×(0.4)3

  Solvingaboveequation,ΔP=(2m)×[(2812.5kg/m2.s2)+(6420.3kg/m2.s2)]ΔP=18465.6kg/ms2ΔP=18465.6Pa

When diameter is increased from 0.003 m to 0.004 m, the increase in diameter is 1.33 times the original so pressure drop will reduce by the same factor as all conditions are identical as previous conditions.

Thus,

  ΔP=[( 2812.5Pa (1.333) 2 )+( 6420.3Pa 1.333)]ΔP=2×[(1582.82Pa)+(4816.43Pa)]ΔP=12798.5Pa.......(6)

The reduction in pressure is the difference between equation (5) and equation (6).

Reduction in pressure = 18465.6 Pa − 12798.5 Pa = 5667.1 Pa

  %Reduction=ReductioninPressureInitialPressure×100%Reduction=5667.1Pa18465.6Pa×100%Reduction=30.7%

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
chemical engineering Material-energy balance.   Only focus on the nitrogen gas, which is H(3)
1. The settling chamber, shown schematically in Figure 2E1.1, is used as a primary separation device in the removal of dust particles of density 1500 kg/m³ from a gas of density 0:7 kg/m³ and viscosity 1.90 x 10-5 Pa s. Gas inlet Elevation Gas Gas exit exit H Collection surface -W Section X-X Dimensions: H=3m L = 10 m W=2m Figure 2E1.1 Schematic diagram of settling chamber Assuming Stokes' law applies, show that the efficiency of collection of particles of size x is given by the expression collection efficiency, x = x²8(pp - Pi)L 18μHU where U is the uniform gas velocity through the parallel-sided section of the chamber. State any other assumptions made. (b) What is the upper limit of particle size for which Stokes' law applies? (c) When the volumetric flow rate of gas is 0.9 m³/s, and the dimensions of the chamber are those shown in Figure 2E1.1, determine the collection efficiency for spherical particles of diameter 30 mm.
Can you answer this sequantially correct like show me the full process. Also, since it is chemical engineering related problem a perry's handbook is used. Thank you
Knowledge Booster
Background pattern image
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Introduction to Chemical Engineering Thermodynami...
Chemical Engineering
ISBN:9781259696527
Author:J.M. Smith Termodinamica en ingenieria quimica, Hendrick C Van Ness, Michael Abbott, Mark Swihart
Publisher:McGraw-Hill Education
Text book image
Elementary Principles of Chemical Processes, Bind...
Chemical Engineering
ISBN:9781118431221
Author:Richard M. Felder, Ronald W. Rousseau, Lisa G. Bullard
Publisher:WILEY
Text book image
Elements of Chemical Reaction Engineering (5th Ed...
Chemical Engineering
ISBN:9780133887518
Author:H. Scott Fogler
Publisher:Prentice Hall
Text book image
Process Dynamics and Control, 4e
Chemical Engineering
ISBN:9781119285915
Author:Seborg
Publisher:WILEY
Text book image
Industrial Plastics: Theory and Applications
Chemical Engineering
ISBN:9781285061238
Author:Lokensgard, Erik
Publisher:Delmar Cengage Learning
Text book image
Unit Operations of Chemical Engineering
Chemical Engineering
ISBN:9780072848236
Author:Warren McCabe, Julian C. Smith, Peter Harriott
Publisher:McGraw-Hill Companies, The