Optimization of Higher-Order Harmonic Surface Tessellations for Additively Manufactured Air-to-Air Heat Exchangers
Patrick Adegbaye, Aigbe E. Awenlimobor, Justin An, Zhang Xiao, Jiajun Xu

TL;DR
This paper introduces an optimized higher-order harmonic surface tessellation for additively manufactured air-to-air heat exchangers, enhancing thermal performance while managing pressure drops through a combined analytical and numerical optimization approach.
Contribution
It develops a novel harmonic surface tessellation optimization framework that improves heat exchanger effectiveness and reduces pressure drops compared to traditional TPMS structures.
Findings
Secondary surface modification increases effectiveness up to 70%.
Wave frequency is more influential than amplitude for performance.
Harmonic structures outperform gyroid in turbulent regimes.
Abstract
Air-to-air heat exchangers are vital for energy recovery and thermal management but often suffer from reduced effectiveness, high pressure losses, and increased pumping power in conventional designs. Advances in additive manufacturing have enabled nature-inspired geometries, such as lattice and triply periodic minimal surface (TPMS) structures, which enhance heat transfer through complex first-order surfaces but frequently cause excessive pressure drops. This study proposes an optimized higher-order harmonic heat-transfer surface tessellation developed through an optimization framework integrating analytical and numerical methods. The goal is to improve the overall thermal-hydraulic performance of the heat exchanger over a range of operating conditions. Results of sensitivity analysis show that secondary surface modification of this type can yield significant increase in the…
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Taxonomy
TopicsHeat Transfer and Optimization · Plasma and Flow Control in Aerodynamics · Heat Transfer Mechanisms
