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A Modular Conjugate Heat Transfer Optimization Framework for Thermal Management of Electric AircraftConjugate heat transfer (CHT) analysis and optimization is a powerful method for improving thermal management, as it simultaneously resolves the temperature distribution in both fluid and solid domains. This paper presents a modular, discrete adjoint-based CHT optimization capability integrated within the OpenMDAO/MPhys framework. A unique feature of the proposed framework is its flexibility to extend to multidisciplinary optimization, including aero-structural-thermal applications. The fluid domain is modeled using a finite-volume Computational Fluid Dynamics (CFD) solver, and the solid domain with a conduction heat transfer solver. A mixed Neumann-Dirichlet boundary condition is developed to enable full submersion of the solid geometry within the fluid domain, while ensuring consistent temperature and heat flux coupling at the CHT interface. Gradient-based optimization is performed; the gradients are efficiently computed using the discrete adjoint solvers implemented in DAFoam. To demonstrate the method, this paper considers two cases related to electric aircraft thermal management: a U-bend heat exchanger and an actively cooled battery pack. The U-bend case aims to minimize pressure loss while maximizing heat flux by changing the pipe geometry. The optimized design reduces pressure loss by 52.7% and increases total heat flux by 2.3%. In the battery pack case, a 3-by-3 cell configuration is cooled by ambient airflow, with constant heat generation prescribed in the cells. The battery casing shape serves as the design variable, and the objective function is a weighted sum of pressure loss and pack weight, subject to a maximum temperature constraint. The optimized design achieves a 44.6% reduction in pressure loss and a 1.5% reduction in weight, while satisfying the thermal constraint. To ensure the reliability of the optimized designs, this study validates coarse-mesh, steady-state predictions against fine-mesh unsteady simulations, demonstrating consistency within acceptable errors. This work demonstrates the potential of the developed framework to enable rapid, high-fidelity design of thermal management systems for electric aircraft.
Document ID
20260000381
Acquisition Source
Glenn Research Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Christian Psenica
(Iowa State University Ames, United States)
Lean Fang
(Iowa State University Ames, United States)
Seth Zoppelt
(Iowa State University Ames, United States)
Mark Leader ORCID
(Glenn Research Center Cleveland, United States)
Ping He
(Iowa State University Ames, United States)
Date Acquired
January 13, 2026
Publication Date
February 1, 2026
Publication Information
Publication: International Journal of Heat and Mass Transfer
Publisher: Elsevier
Volume: 259
Issue Publication Date: May 15, 2026
ISSN: 0017-9310
e-ISSN: 1879-2189
Subject Category
Fluid Mechanics and Thermodynamics
Funding Number(s)
WBS: 647044.80.02.10
CONTRACT_GRANT: 80NSSC23M0159
CONTRACT_GRANT: 2138259
CONTRACT_GRANT: 2138286
CONTRACT_GRANT: 2138307
CONTRACT_GRANT: 2137603
CONTRACT_GRANT: 2138296
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
Single Expert
Keywords
heat transfer
shape optimization
thermal management
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