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 The project aims to design a 1-2 shell and
tube countercurrent heat exchanger of two
fluids and maximizing its efficiency based
on NRTL model with the help of CHEMCAD
v.7 software.
 75000 lb/hr of ethylene glycol is heated
from 100 to 200F using steam at 250F.
Available for the series is a 17.25 in. ID
1-2 exchanger having 111 tubes 0.75
OD, 14 BWG, 16’00” long on 15/16-in.
triangular pitch. Baffles are spaced 7 in.
apart, and there are two tube passes to
accommodate the steam. What are the
pressure drops, and what is the dirt
factor?
 CHEMCAD enables us to meet the ever-
expanding needs of the chemical
engineering profession.
 CHEMCAD helps to enhance designs,
analysis, and computer aid simulations so
that it can drive productivity to our work
and organization.
 We used CHEMCAD version .7, the reliable
and updated software.
 Heat exchanger consists of a shell with a
bundle of tubes inside it. One fluid runs
through the tubes, and another fluid flows over
the tubes (through the shell) to transfer heat
between the two fluids. The set of tubes is
called a tube bundle, and may be composed of
several types of tubes: plain, longitudinally
finned, etc.
 The configuration gives a large surface
area in a small volume.
 Good mechanical layout: a good shape for
pressure operation.
 Uses well established fabrication
techniques.
 Can be constructed from a wide range of
materials.
 Easily cleaned.
 Well established design procedure.
Ethylene glycol
Steam (water)
SHELL SIDE DATA
SQUARE PITCH TRIANGULAR PITCH
SQUARE PITCH
 It is generally used for
fouling service and
systems in which available
pressure drop is low.
 The tube pattern is 90/45
degree.
 It is preferred for parallel
and counter flow heat
exchangers
 TRINGULAR PITCH
 It is generally used for
non-fouling service where
frequent cleaning of heat
exchangers are not
required.
 The tube pattern is 30/60
degree.
 It is the preferred
configuration for cross
flow system. For e.g
condensers.
 As we can observe from outcome data
that the pressure decreases in forward
direction of fluid flow and it lies within
the maximum range of 24 psi
 Due the presence of fouling factor in the
heat exchanger the effective area for heat
transfer decreases.
 There is linear increase in temp of cold
fluid along its length.
 For low pressure drop square pitch is
efficient than triangular pitch.
 Number of tubes in square pitch
decreases than in triangular pitch for the
same heat transfer.
 The cost of designing and operating a
heat exchanger decreases for square
pitch.
 Since the number of tubes is less in
square pitch the overall area of heat
exchanger is less.
Doc 20181122-wa0005

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Doc 20181122-wa0005

  • 1.
  • 2.  The project aims to design a 1-2 shell and tube countercurrent heat exchanger of two fluids and maximizing its efficiency based on NRTL model with the help of CHEMCAD v.7 software.
  • 3.  75000 lb/hr of ethylene glycol is heated from 100 to 200F using steam at 250F. Available for the series is a 17.25 in. ID 1-2 exchanger having 111 tubes 0.75 OD, 14 BWG, 16’00” long on 15/16-in. triangular pitch. Baffles are spaced 7 in. apart, and there are two tube passes to accommodate the steam. What are the pressure drops, and what is the dirt factor?
  • 4.  CHEMCAD enables us to meet the ever- expanding needs of the chemical engineering profession.  CHEMCAD helps to enhance designs, analysis, and computer aid simulations so that it can drive productivity to our work and organization.  We used CHEMCAD version .7, the reliable and updated software.
  • 5.  Heat exchanger consists of a shell with a bundle of tubes inside it. One fluid runs through the tubes, and another fluid flows over the tubes (through the shell) to transfer heat between the two fluids. The set of tubes is called a tube bundle, and may be composed of several types of tubes: plain, longitudinally finned, etc.
  • 6.  The configuration gives a large surface area in a small volume.  Good mechanical layout: a good shape for pressure operation.  Uses well established fabrication techniques.  Can be constructed from a wide range of materials.  Easily cleaned.  Well established design procedure.
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  • 16. SQUARE PITCH  It is generally used for fouling service and systems in which available pressure drop is low.  The tube pattern is 90/45 degree.  It is preferred for parallel and counter flow heat exchangers  TRINGULAR PITCH  It is generally used for non-fouling service where frequent cleaning of heat exchangers are not required.  The tube pattern is 30/60 degree.  It is the preferred configuration for cross flow system. For e.g condensers.
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  • 19.  As we can observe from outcome data that the pressure decreases in forward direction of fluid flow and it lies within the maximum range of 24 psi  Due the presence of fouling factor in the heat exchanger the effective area for heat transfer decreases.  There is linear increase in temp of cold fluid along its length.
  • 20.  For low pressure drop square pitch is efficient than triangular pitch.  Number of tubes in square pitch decreases than in triangular pitch for the same heat transfer.  The cost of designing and operating a heat exchanger decreases for square pitch.  Since the number of tubes is less in square pitch the overall area of heat exchanger is less.