Heat Exchanger Volume for Air Separation Applications Solution

STEP 0: Pre-Calculation Summary
Formula Used
Heat Exchanger Volume = (Heat Duty of Heat Exchanger/Log Mean Temperature Difference)/50000
Vh = (Q/ΔTLMTD)/50000
This formula uses 3 Variables
Variables Used
Heat Exchanger Volume - (Measured in Cubic Meter) - Heat Exchanger Volume refers to the physical space or capacity occupied by a heat exchanger within a system or structure.
Heat Duty of Heat Exchanger - (Measured in Watt) - Heat Duty of Heat Exchanger refers to the amount of heat transfer that occurs between two fluid streams as they pass through the exchanger.
Log Mean Temperature Difference - (Measured in Kelvin) - Log Mean Temperature Difference is the logarithmic temperature difference averaged between 2 fluid streams exchanging heat.
STEP 1: Convert Input(s) to Base Unit
Heat Duty of Heat Exchanger: 173 Watt --> 173 Watt No Conversion Required
Log Mean Temperature Difference: 39.1667 Kelvin --> 39.1667 Kelvin No Conversion Required
STEP 2: Evaluate Formula
Substituting Input Values in Formula
Vh = (Q/ΔTLMTD)/50000 --> (173/39.1667)/50000
Evaluating ... ...
Vh = 8.8340350348638E-05
STEP 3: Convert Result to Output's Unit
8.8340350348638E-05 Cubic Meter --> No Conversion Required
FINAL ANSWER
8.8340350348638E-05 8.8E-5 Cubic Meter <-- Heat Exchanger Volume
(Calculation completed in 00.004 seconds)

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25 Basic Formulas Of Heat Exchanger Designs Calculators

Pressure Drop of Vapor in Condensers given Vapors on Shell Side
​ Go Shell Side Pressure Drop = 0.5*8*Friction Factor*(Length of Tube/Baffle Spacing)*(Shell Diameter/Equivalent Diameter)*(Fluid Density/2)*(Fluid Velocity^2)*((Fluid Viscosity at Bulk Temperature/Fluid Viscosity at Wall Temperature)^-0.14)
Shell Side Pressure Drop in Heat Exchanger
​ Go Shell Side Pressure Drop = (8*Friction Factor*(Length of Tube/Baffle Spacing)*(Shell Diameter/Equivalent Diameter))*(Fluid Density/2)*(Fluid Velocity^2)*((Fluid Viscosity at Bulk Temperature/Fluid Viscosity at Wall Temperature)^-0.14)
Tube Side Pressure Drop in Heat Exchanger for Turbulent Flow
​ Go Tube Side Pressure Drop = Number of Tube-Side Passes*(8*Friction Factor*(Length of Tube/Pipe Inner Diameter)*(Fluid Viscosity at Bulk Temperature/Fluid Viscosity at Wall Temperature)^-0.14+2.5)*(Fluid Density/2)*(Fluid Velocity^2)
Tube Side Pressure Drop in Heat Exchanger for Laminar Flow
​ Go Tube Side Pressure Drop = Number of Tube-Side Passes*(8*Friction Factor*(Length of Tube/Pipe Inner Diameter)*(Fluid Viscosity at Bulk Temperature/Fluid Viscosity at Wall Temperature)^-0.25+2.5)*(Fluid Density/2)*(Fluid Velocity^2)
Reynolds Number for Condensate Film Outside Vertical Tubes in Heat Exchanger
​ Go Reynold Number = 4*Mass Flowrate/(pi*Pipe Outer Diameter*Number of Tubes*Fluid Viscosity at Bulk Temperature)
Reynolds Number for Condensate Film Inside Vertical Tubes in Condenser
​ Go Reynold Number = 4*Mass Flowrate/(pi*Pipe Inner Diameter*Number of Tubes*Fluid Viscosity at Bulk Temperature)
Number of Tubes in Shell and Tube Heat Exchanger
​ Go Number of Tubes = 4*Mass Flowrate/(Fluid Density*Fluid Velocity*pi*(Pipe Inner Diameter)^2)
Shell Area for Heat Exchanger
​ Go Shell Area = (Tube Pitch-Pipe Outer Diameter)*Shell Diameter*(Baffle Spacing/Tube Pitch)
Stack Design Pressure Draft for Furnace
​ Go Draft Pressure = 0.0342*(Stack Height)*Atmospheric Pressure*(1/Ambient Temperature-1/Flue Gas Temperature)
Number of Transfer Units for Plate Heat Exchanger
​ Go Number of Transfer Units = (Outlet Temperature-Inlet Temperature)/Log Mean Temperature Difference
Equivalent Diameter for Triangular Pitch in Heat Exchanger
​ Go Equivalent Diameter = (1.10/Pipe Outer Diameter)*((Tube Pitch^2)-0.917*(Pipe Outer Diameter^2))
Equivalent Diameter for Square Pitch in Heat Exchanger
​ Go Equivalent Diameter = (1.27/Pipe Outer Diameter)*((Tube Pitch^2)-0.785*(Pipe Outer Diameter^2))
Viscosity Correction Factor for Shell and Tube Heat Exchanger
​ Go Viscosity Correction Factor = (Fluid Viscosity at Bulk Temperature/Fluid Viscosity at Wall Temperature)^0.14
Pumping Power Required in Heat Exchanger Given Pressure Drop
​ Go Pumping Power = (Mass Flowrate*Tube Side Pressure Drop)/Fluid Density
Heat Exchanger Volume for Hydrocarbon Applications
​ Go Heat Exchanger Volume = (Heat Duty of Heat Exchanger/Log Mean Temperature Difference)/100000
Heat Exchanger Volume for Air Separation Applications
​ Go Heat Exchanger Volume = (Heat Duty of Heat Exchanger/Log Mean Temperature Difference)/50000
Provision for Thermal Expansion and Contraction in Heat Exchanger
​ Go Thermal Expansion = (97.1*10^-6)*Length of Tube*Temperature Difference
Number of Tubes in Eight Pass Triangular Pitch given Bundle Diameter
​ Go Number of Tubes = 0.0365*(Bundle Diameter/Pipe Outer Diameter)^2.675
Number of Tubes in Six Pass Triangular Pitch given Bundle Diameter
​ Go Number of Tubes = 0.0743*(Bundle Diameter/Pipe Outer Diameter)^2.499
Number of Tubes in Four Pass Triangular Pitch given Bundle Diameter
​ Go Number of Tubes = 0.175*(Bundle Diameter/Pipe Outer Diameter)^2.285
Number of Tubes in One Pass Triangular Pitch given Bundle Diameter
​ Go Number of Tubes = 0.319*(Bundle Diameter/Pipe Outer Diameter)^2.142
Number of Tubes in Two Pass Triangular Pitch given Bundle Diameter
​ Go Number of Tubes = 0.249*(Bundle Diameter/Pipe Outer Diameter)^2.207
Number of Tubes in Center Row Given Bundle Diameter and Tube Pitch
​ Go Number of Tubes in Vertical Tube Row = Bundle Diameter/Tube Pitch
Number of Baffles in Shell and Tube Heat Exchanger
​ Go Number of Baffles = (Length of Tube/Baffle Spacing)-1
Shell Diameter of Heat Exchanger Given Clearance and Bundle Diameter
​ Go Shell Diameter = Shell Clearance+Bundle Diameter

Heat Exchanger Volume for Air Separation Applications Formula

Heat Exchanger Volume = (Heat Duty of Heat Exchanger/Log Mean Temperature Difference)/50000
Vh = (Q/ΔTLMTD)/50000

What is the significance of heat exchanger volume?

The significance of the heat exchanger volume lies in its role in facilitating efficient and controlled heat transfer between two fluids. The volume within a heat exchanger allows for a sufficient surface area and space for the exchange of thermal energy. This facilitates efficient heating or cooling of one fluid by another, which is crucial in various industrial processes. In summary, the heat exchanger volume is significant because it directly affects the efficiency, effectiveness, and practicality of heat exchange processes in various engineering and industrial applications.

How to Calculate Heat Exchanger Volume for Air Separation Applications?

Heat Exchanger Volume for Air Separation Applications calculator uses Heat Exchanger Volume = (Heat Duty of Heat Exchanger/Log Mean Temperature Difference)/50000 to calculate the Heat Exchanger Volume, The Heat Exchanger Volume for Air Separation Applications formula is defined as physical space or capacity within a heat exchanger when the heat transfer takes place between fluids where cooling medium involved is air. Heat Exchanger Volume is denoted by Vh symbol.

How to calculate Heat Exchanger Volume for Air Separation Applications using this online calculator? To use this online calculator for Heat Exchanger Volume for Air Separation Applications, enter Heat Duty of Heat Exchanger (Q) & Log Mean Temperature Difference (ΔTLMTD) and hit the calculate button. Here is how the Heat Exchanger Volume for Air Separation Applications calculation can be explained with given input values -> 0.000115 = (173/39.1667)/50000.

FAQ

What is Heat Exchanger Volume for Air Separation Applications?
The Heat Exchanger Volume for Air Separation Applications formula is defined as physical space or capacity within a heat exchanger when the heat transfer takes place between fluids where cooling medium involved is air and is represented as Vh = (Q/ΔTLMTD)/50000 or Heat Exchanger Volume = (Heat Duty of Heat Exchanger/Log Mean Temperature Difference)/50000. Heat Duty of Heat Exchanger refers to the amount of heat transfer that occurs between two fluid streams as they pass through the exchanger & Log Mean Temperature Difference is the logarithmic temperature difference averaged between 2 fluid streams exchanging heat.
How to calculate Heat Exchanger Volume for Air Separation Applications?
The Heat Exchanger Volume for Air Separation Applications formula is defined as physical space or capacity within a heat exchanger when the heat transfer takes place between fluids where cooling medium involved is air is calculated using Heat Exchanger Volume = (Heat Duty of Heat Exchanger/Log Mean Temperature Difference)/50000. To calculate Heat Exchanger Volume for Air Separation Applications, you need Heat Duty of Heat Exchanger (Q) & Log Mean Temperature Difference (ΔTLMTD). With our tool, you need to enter the respective value for Heat Duty of Heat Exchanger & Log Mean Temperature Difference and hit the calculate button. You can also select the units (if any) for Input(s) and the Output as well.
How many ways are there to calculate Heat Exchanger Volume?
In this formula, Heat Exchanger Volume uses Heat Duty of Heat Exchanger & Log Mean Temperature Difference. We can use 1 other way(s) to calculate the same, which is/are as follows -
  • Heat Exchanger Volume = (Heat Duty of Heat Exchanger/Log Mean Temperature Difference)/100000
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