This study explores the design of highly compact air–fuel heat exchangers for high-performance aircraft turbine engines. The heat exchangers consist of a large number of modules that can be brazed together into a rectangular or annular outer envelope. Inside the module, fuel flows through parallel microchannels, while air flows externally perpendicular to the direction of the fuel flow over rows of short, straight fins. A theoretical model recently developed by the authors for a single module is both validated experimentally, by simulating aircraft fuel with water, and expanded to actual heat exchangers and JP-8 aircraft fuel. An optimization study of the module’s geometrical parameters is conducted for high-pressure-ratio engine conditions in pursuit of the highest heat transfer rate. These parameters are then adjusted based on such considerations as microfabrication limits, stress and rupture, and the need to preclude clogging of the fuel and air passage. Using the revised parameters, the analytical model is used to generate effectiveness plots for both rectangular and annular heat exchangers with one air pass and one, two, or three fuel passes. These results demonstrate both the effectiveness of the module design and the versatility of the analytical tools at designing complex heat exchangers for high-performance aircraft gas turbine engines.

References

1.
Rolls-Royce
, 1996,
The Jet Engine
, 5th ed.,
Rolls-Royce plc, Derby
,
England
.
2.
Bruening
,
G. B.
, and
Chang
,
W. S.
, 1999, “
Cooled Cooling Air Systems for Turbine Thermal Management
,” ASME Paper No. 99-GT-14.
3.
Huang
,
H.
,
Spadaccini
,
L. J.
, and
Sobel
,
D. R.
, 2004, “
Fuel-Cooled Thermal Management for Advanced Aero Engines
,”
ASME J. Eng. Gas Turbines Power
,
126
, pp.
284
293
.
4.
Kibbey
,
T. P.
, 2004, “
Impinging Jets for Application in High-Mach Aircraft Thermal Management
,” M.S. thesis, Purdue University, West Lafayette, IN.
5.
Herring
,
N. R.
, and
Heister
,
S. D.
, 2009, “
On the Use of Wire Coil Inserts to Augment Tube Heat Transfer
,”
J. Enhanced Heat Transfer
,
16
, pp.
19
34
.
6.
Willingham
,
T. C.
, and
Mudawar
,
I.
, 1992, “
Channel Height Effects on Forced-Convection Boiling and Critical Heat Flux From a Linear Array of Discrete Heat Sources
,”
Int. J. Heat Mass Transfer
,
35
, pp.
1865
1880
.
7.
Mudawar
,
I.
, 2001, “
Assessment of High-Heat-Flux Thermal Management Schemes
,”
IEEE Trans. Compon. Packag. Technol.
,
24
, pp.
122
141
.
8.
Mudawar
,
I.
, and
Wadsworth
,
D. C.
, 1991, “
Critical Heat Flux From a Simulated Electronic Chip to a Confined Rectangular Impinging Jet of Dielectric Liquid
,”
Int. J. Heat Mass Transfer
,
34
, pp.
1465
1480
.
9.
Wadsworth
,
D. C.
, and
Mudawar
,
I.
, 1992, “
Enhancement of Single-Phase Heat Transfer and Critical Heat Flux From an Ultra-High-Flux Simulated Microelectronic Heat Source to a Rectangular Impinging Jet of Dielectric Liquid
,”
ASME J. Heat Transfer
,
114
, pp.
764
768
.
10.
Rybicki
,
J. R.
, and
Mudawar
,
I.
, 2006, “
Single-Phase and Two-Phase Cooling Characteristics of Upward-Facing and Downward-Facing Sprays
,”
Int. J. Heat Mass Transfer
,
49
, pp.
5
16
.
11.
Ujereh
,
S.
,
Fisher
,
T.
, and
Mudawar
,
I.
, 2007, “
Effects of Carbon Nanotube Arrays on Nucleate Pool Boiling
,”
Int. J. Heat Mass Transfer
,
50
, pp.
4023
4038
.
12.
Nacke
,
R.
,
Northcutt
,
B.
, and
Mudawar
,
I.
, 2011, “
Theory and Experimental Validation of Cross-Flow Micro-Channel Heat Exchanger Module With Reference to High Mach Aircraft Gas Turbine Engines
,”
Int. J. Heat Mass Transfer
,
54
, pp.
1224
1235
.
13.
Incropera
,
F.
,
Dewitt
,
D.
,
Bergman
,
T.
, and
Lavine
,
A.
, 2007,
Fundamentals of Heat and Mass Transfer
, 6th ed.,
Wiley
,
Hoboken, NJ.
14.
Mason
,
J. L.
, 1954, “
Heat Transfer in Crossflow
,”
Proceedings of the 2nd U.S. National Congress of Applied Mechanics
,
Ann Arbor, MI
, pp.
801
803
.
15.
Beyer
,
W. H.
, 1976,
Standard Mathematical Tables
, 24th ed.,
CRC Press
,
Cleveland, OH.
16.
Klein
,
S. A.
, 2011,
Engineering Equation Solver (EES)
,
F-Chart Software
,
Madison, WI.
17.
Gnielinski
,
V.
, 1976, “
New Equations for Heat and Mass Transfer in Turbulent Pipe and Channel Flow
,”
Int. Chem. Eng.
,
16
, pp.
359
368
.
18.
Copeland
,
D.
,
Behnia
,
M.
, and
Nakayama
,
W.
, 1996, “
Manifold Microchannel Heat Sinks: Isothermal Analysis
,”
Proceedings of the 5th Intersociety Conference on Thermal Management in Electronic Systems (I-THERM V)
,
Orlando, FL
, pp.
251
257
.
19.
Huber
,
M. L.
, 2003,
NIST Thermophysical Properties of Hydrocarbon Mixtures Database (SUPERTRAPP), NIST Standard Reference Database 4
,
National Institute of Standards and Technology
,
Gaithersburg, MD.
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