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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 HX!!!

Double Pipe HEAT EXCHANGERS with Finned Inner Tube

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Page 1: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

Double Pipe HEAT EXCHANGERS with Finned Inner Tube

P M V SubbaraoProfessor

Mechanical Engineering DepartmentI I T Delhi

Ideas for Creation of Compact HX!!!

Page 2: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

NTU Curves: Counter flow

NTU

Page 3: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

How to decide the height of fin for a Double Pipe HX ?

Page 4: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

nth order Longitudinal Fins

2/1

212

2

2

0

b

nnn

khm

bmdxdnx

dxdx

b

L

x=a=0bx=b

bx

qb

L

b

qb

b

x=b x=a=0

xb

Page 5: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

Effect of geometrical Order on Fin Effectiveness

Page 6: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

Cost – Benefit Analysis of Fins

• The benefit of a fin is defined as effectiveness of a fin.• An ideal fin will have highest value of effectiveness.• An ideal fin is the one whose temperature is equal to temperature of

the surface.• This is possible only if the thermal conductivity of fin material is

infinitely high.• The effectiveness of an actual fin material is always lower than an

ideal fin.• The relative performance of a given fin is defined as efficiency of a

fin.• Provision of fins on a surface requires more material and hence more

capital cost.• A judicial decision is necessary to select correct factors of fin design.• Best fin design should have higher benefits with a lower amount of

material.

Page 7: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

Performance of Least Material Strip Fin

Optimum shape for a given qb & b

mbkhA

hkq bp

b tanh2

7918.023/12

2/1

And solve for Ap with [ tanh (1.4192) = 0.8894 ]

3

2

5043.0

b

bp

qkh

A

627.0

Page 8: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

Comparison of Longitudinal Strip Fin

profile area varies as the cube ofqb b/

To double the heat flow, you use two fins or make one fin eight times as large.

There is a virtue in using short stubby fins.

3

2

5043.0

b

bp

qkh

A

Page 9: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

Longitudinal Fin Of Triangular Profile

The differential equation for temperature excess :

b

L

x=a=0b

x=b

bx

qb

0)(

TThPdx

dxdTkAd c

b

csbLxxLxLxA

tan2)(

Page 10: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

Longitudinal Fin Of Triangular Profile

The differential equation for temperature excess is a form of Bessel’s equation:

xddx

ddx

m b2

22 0

; m

hk b

21 2

/

b

L

x=a=0b

x=b

bx

qb

Page 11: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

Triangular Fin : Adiabatic Tip

The particular solution for ( )x is:

( )x

I m bxI mbb 0

0

22

The fin heat dissipation is:

mbI

mbImLhq bb 2

220

1

The fin efficiency is:

I mb

mb I mb1

0

22

Page 12: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

Optimum Shape (Minimum Material) for Triangular Fin

bp

p

p

b

p

A h kA

hk

bA A k

h

4 22 6188

132632

210560

2

1 2 2 3

21 3

1 3

/.

.

.

/ / /

/

Page 13: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

Comparison of Longitudinal Fins

Ah k

q

Ah k

q

pb

b

pb

b

0 5043

0 3471

2

3

2

3

.

.

Rectangular Profile:

Triangular Profile:

For the same material, surrounding conditions and qb b/which is basically the user’s design requirement.

Triangular profile requires only about 68.8% as much metal as rectangular profile.

Page 14: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

Comparison of Longitudinal Fin

In both fins, profile area varies as the cube of qb b/

To double the heat flow, you use two fins or make one fin eight times as large.

There is a virtue in using short stubby fins.

Page 15: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

Longitudinal Fin Of Concave Parabolic Profile

The differential equation for temperature excess is an Euler equation:

xddx

xddx

m b

mh

k b

22

22 2

1 2

2 0

2

/

L

b

qb

b

x=b x=a=0

xb

Page 16: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

The heat dissipated is:

qk

bbb b

32

And the efficiency is:

23

or = 0.667

Optimum Shapes (Least Material) of Parabolic Profile

Page 17: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

Double Pipe HX with finned inner Tube

Equivalent diameter of annulus heat transfer, De:

perimeter ledheated/cooarea freenet 4

eD

Page 18: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

244

Area Free2

12

rs WWHWNDD

NWNHDDs 2Perimeter Cooled 1

NWNHDD

WWHWNHDD

Ds

rs

e

2244

4

1

21

2

Longitudinally Welded fins

Page 19: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

HSk

Ph

HSk

hP

QQ

fin

fin

f

ffin

tanh

max,

h, should be resulting heat transfer coefficient on annulus side.

Fins with surface area, Afin, communicate as much as heat as an area of tube surface equal to finAfin .

Therefore, the total annulus side effective area is Atube + finAfin.

The ratio of total surface area to effective surface area is called as overall finned tube efficiency factor.

Accounting of Heat Transfer due to strip Fins

Page 20: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

total

fin

total

finfin

basefin

basefinfinfinnedtube A

AAA

AAAA

1

Effective annulus side overall heat transfer coefficient:

hh finnedtube

Overall Heat Transfer coefficient of finned Double tube HX:

insidetube

total

tubepipe

total

AA

uLk

ADD

hU ,

1

12

ln11

Page 21: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

More Ideas for Compact Double Pipe HXs

• The configuration should be similar to a straight double-pipe heat exchanger.

• But both the tubes are concentrically curved to take advantage of the space saving characteristics and through enhanced heat transfer coefficients.

• One such idea is double pipe Hx with the helical geometry. • There are some distinct advantages from this type of

design over hair pin DPHX.• Firstly, the whole surface area of the coil will be exposed

to moving fluid, eliminating the dead-zones that could be found in the outer tube of hair pin hx.

• Secondly, the flow in the outside tube will also experience secondary flows.

Page 22: Double Pipe HEAT EXCHANGERS with Finned Inner Tube

Helical Double-tube HX