Kern Method of SHELL-AND-TUBE HEAT EXCHANGER Analysis

Slides:



Advertisements
Similar presentations
Heat Exchangers Design Considerations. Heat Exchangers Key Concepts Heat Transfer Coefficients Naming Shell and Tube Exchangers Safety In Design of Exchangers.
Advertisements

Heat Exchanger Design Thermal / Fluid System Design Final Project Department of Mechanical Engineering Fall 2005 December 13, 2005 Team Members: Andrew.
Conduction & Convection Quiz 9 – TIME IS UP!!! A flat furnace wall is constructed with a 4.5-inch layer of refractory brick (k = Btu/ft·h·
Convection in Flat Plate Turbulent Boundary Layers P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi An Extra Effect For.
Estimation of Convective Heat Transfer Coefficient
Design Clues for STHE as Condenser P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Guidance to Handle Huge Variation in Thermo-
ME421 Heat Exchanger and Steam Generator Design Lecture Notes 7 Part 1 Shell-and-Tube Heat Exchangers.
Kern’s Description of Shell Side Flow in SHELL-AND-TUBE HEAT EXCHANGER P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Another.
Chapter 4.2: Flow Across a Tube Bundle Heat Exchanger (Tube Bank)
 A 'heat exchanger' may be defined as an equipment which transfers the energy from a hot fluid to a cold fluid. Here, the process of heating or cooling.
Internal Convection: Fully Developed Flow
Heat transfer to fluids without phase change
1 Dept. of Energy Technology, Div. of Applied Thermodynamics and Refrigeration Tube diameter influence on heat exchanger performance and design. Single.
Design of Systems with INTERNAL CONVECTION P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi An Essential Part of Exchanging.
CHE/ME 109 Heat Transfer in Electronics LECTURE 18 – FLOW IN TUBES.
Why Laminar Flow in Narrow Channels (Heat Transfer Analysis)
Thermal Development of Internal Flows P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi Concept for Precise Design ……
P M V Subbarao Professor Mechanical Engineering Department I I T Delhi
Closure of Kern’s Method
Kern’s Description of Shell Side Flow in SHELL-AND-TUBE HEAT EXCHANGER
SHELL-AND-TUBE HEAT EXCHANGERS
Correlations for INTERNAL CONVECTION P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi An Essential Part of Exchanging Heat……..
One Dimensional Steady Heat Conduction problems P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi Simple ideas for complex.
Computation of FREE CONVECTION P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi Quantification of Free …….
Actual Shell Side Pressure Drop : Bell-Delaware Method
Heat Convection : Cylinder in Cross Flow P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi A Common Industrial Application.
Heat Exchangers with Cross Flow past Cylinders P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Another Common Industrial Application!!!
Kern Method of SHELL-AND-TUBE HEAT EXCHANGER Analysis
Design of Condensers/Condensing Zones
Recent Advances in Condensation on Tube Banks P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Reduce the Degree of Over Design!!!
Hydraulic Analysis of STHE Using Bell Delaware Method
Results of Kern Method Basic Kinematic Details Group No. Tube Side Velocity (m/s) Number of Tubes Shell Diameter length STHX (m) Ds/L
Cross Flow Heat Exchangers P M V Subbarao Professor Mechanical Engineering Department I I T Delhi A Major Element for the Success of Combustion based.
Thermo-economic Optimization of STHE P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Minimizing capital and operating costs of shell.
ME421 Heat Exchanger and Steam Generator Design
THERMAL ANALYSIS OF SHELL AND TUBE HEAT EXCHANGER
Shell and Tube Heat Exchangers
Exergy Analysis of STHE P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Formalization of Thermo-economics…..
Chapter 4.3: Compact Heat Exchangers
ME421 Heat Exchanger and Steam Generator Design Lecture Notes 6 Double-Pipe Heat Exchangers.
Shell and Tube Heat Exchangers. Goals: By the end of today’s lecture, you should be able to:  describe the common shell-and-tube HE designs  draw temperature.
Heat Exchanger Design Anand V P Gurumoorthy Associate Professor
Fouling Factor: After a period of operation the heat transfer surfaces for a heat exchanger become coated with various deposits present in flow systems,
A Presentation on HEAT EXCHANGER DESIGN
Pressure drop during fluid flow
SHELL AND TUBE HEAT EXCHANGER
Enhancement of Heat Transfer P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi Invention of Compact Heat Transfer Devices……
Design Formulae for Mingled Shell-side stream P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Corrections for Non-Ideal (Cross.
Design Formulae for Mingled Shell-side stream P M V Subbarao Professor Mechanical Engineering Department I I T Delhi A Confluence Model for A Circuitous.
Large Shell Heat Exchangers P M V Subbarao Professor Mechanical Engineering Department I I T Delhi An Engineering Solution to the Crisis of Massive Volume.
The Family of Shell and Tube Heat Exchangers P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Family members with Simple Geometrical.
Double Pipe HEAT EXCHANGERS with Finned Inner Tube P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Ideas for Creation of Compact.
Convection in Flat Plate Boundary Layers P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi A Universal Similarity Law ……
Analysis of Mingled Shell-side stream P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Splitting of A Circuitous Flow into Simple.
FOOD ENGINEERING DESIGN AND ECONOMICS
Convection Heat Transfer in Manufacturing Processes P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Mode of Heat Transfer due to.
Heat Transfer Su Yongkang School of Mechanical Engineering # 1 HEAT TRANSFER CHAPTER 7 External flow.
Comparison of Heat Exchanger Types Shannon Murphy, Conor Sandin, Erin Tiedemann Department of Chemical Engineering, University of New Hampshire Results.
Chapter 8: Internal Forced Convection
Heat Transfer Su Yongkang School of Mechanical Engineering # 1 HEAT TRANSFER CHAPTER 9 Free Convection.
DESIGN OF SHELL AND TUBE HEAT EXCHANGER
Unit 42: Heat Transfer and Combustion
Natural Convection New terms Volumetric thermal expansion coefficient
Chapter 18 ChEN 4253 Terry A. Ring
PLATE HEAT EXCHANGERS Gasketed plate heat exchangers
Heat-transfer Equipment
Heat Exchangers Heat Exchangers.
SHELL-AND-TUBE HEAT EXCHANGERS
P M V Subbarao Professor Mechanical Engineering Department I I T Delhi
Heat Transfer Correlations for Internal Flow
Presentation transcript:

Kern Method of SHELL-AND-TUBE HEAT EXCHANGER Analysis P M V Subbarao Professor Mechanical Engineering Department I I T Delhi A Knowledge Bank for Run-of-the Mill Problems.….

From the Preface of The book A portion of the material which is included in conventional texts is rarely if ever applied in the solution of run-of-the-mill engineering problems. …..

Major Steps in Design Initial Decisions. Tube side Thermal Analysis. Thermal analysis for Shell side flow. Overall Heat Transfer coefficient. Hydraulic Analysis of Tube side. Hydraulic Analysis of Shell side.

Initial Decisions Spatial allocation of fluid. Determination of flow velocity. Initial guess for number of tubes. Correction for standard tube diameter. Effect of number of tubes on tube length….

Tube Outside Diameter From the heat transfer viewpoint, smaller-diameter tubes yield higher heat transfer coefficients and result in a more compact exchanger. However, larger-diameter tubes are easier to clean and more rugged. For mechanical cleaning, the smallest practical size is 19.05 mm. For chemical cleaning, smaller sizes can be used. Small tube diameters (8 to 15mm) are preferred for greater area to volume density but are limited for the purposes of cleaning. Large tube diameters are often required for condensers and boilers. The most common plain tube sizes have 15.88,19.05, and 25.40 mm tube outside diameters.

Tube Wall Thickness The wall thickness of heat exchanger tubes is standardized in terms of Birmingham Wire Gage BWG of the tube. Tube thickness is selected based on pressure of the fluid and erosion/corrosion characteristics of the fluid.

Number of Tubes Vs Reynolds Number

Tube Length Tube length affects the cost and operation of heat exchangers. Longer the tube length (for any given surface area), Fewer tubes are needed, requiring less complicated header plate with fewer holes drilled. Shell diameter decreases resulting in lower cost. Typically tubes are employed in 8, 12, 15, and 20 foot lengths. Mechanical cleaning is limited to tubes 20 ft and shorter, although standard exchangers can be built with tubes up to 40 ft. Shell-diameter-to-tube-length ratio should be within limits of 1/5 to 1/15 Maximum tube length is dictated by Architectural layouts Transportation (to about 30m.) Structural stability

Tube Length : Tube & Header Plate Deformation

Tube Length : Tube & Header Plate Deformation Thermal expansion of tubes needs to be taken into account for heat exchangers operating at elevated temperatures. Tube elongation due to thermal expansion causes: Header plate deformation Shell wall deformation near the header plate Fatigue strength of the tube, header plate and shell joint needs to be considered when using Longer tubes High operating tube side temperatures Cyclic thermal loads Creative Ideas are Essential to Handle Long Tube/Shell length Applications. These Ideas can Help in Solving Few More Issues…. Any New Issues due to New Ideas????

Tube Passes A pass is when liquid flows all the way across from one end to the other of the exchanger. An exchanger with one shell pass and two tube passes is a 1-2 exchanger. At any time halve the number of tubes present in a shell will handle the entire flow. Almost always, the tube passes will be in multiples of two (1-2, 1-4, 2-4, etc.) Odd numbers of tube passes have more complicated mechanical stresses, etc. A large number of tube passes are used to increase the tube side fluid velocity and heat transfer coefficient and minimize fouling. This can only be done when there is enough pumping power since the increased velocity and additional turns increases the pressure drop significantly.

Single Pass and Double Pass S&T Hx

Four Pass S & T Hx

Eight Pass S & T Hx

Partitions in End Bonnets

Shell Diameter Vs Number of Passes Additional conditions to select number of passes:

Tube-Side Nusselt Number For turbulent flow, the following equation developed by Petukhov-Kirillov is used: Properties are evaluated at mean bulk temperature and constants are adjusted to fit experimental data. Validity range: 104 < Ret < 5 x 106 and 0.5 < Prt < 2000 with 10% error.

For laminar flow, the Sieder and Tate correlation is be used. is applicable for 0.48 < Prt < 16700 and (Ret Prt di/L)1/3 > 2. The heat transfer coefficient for the tube-side is expressed as follows: