Topology optimization for microchannel heat sinks with nanofluids using an Eulerian-Eulerian approach

Fuente: arXiv
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Auteurs principaux: Chen, Chih-Hsiang, Yaji, Kentaro
Format: Preprint
Publié: 2025
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author Chen, Chih-Hsiang
Yaji, Kentaro
author_facet Chen, Chih-Hsiang
Yaji, Kentaro
contents The demand for high-performance heat sinks has significantly increased with advancements in computing power and the miniaturization of electronic devices. Among the promising solutions, nanofluids have attracted considerable attention due to their superior thermal conductivity. However, designing a flow field that effectively utilizes nanofluids remains a significant challenge due to the complex interactions between fluid and nanoparticles. In this study, we propose a density-based topology optimization method for microchannel heat sink design using nanofluids. An Eulerian-Eulerian framework is utilized to simulate the behavior of nanofluids, and the optimization problem aims to maximize heat transfer performance under a fixed pressure drop. In numerical examples, we investigate the dependence of the optimized configuration on various parameters and apply the method to the design of a manifold microchannel heat sink. The parametric study reveals that the number of flow branches increases with the increased pressure drop but decreases as the particle volume fraction increases. In the heat sink design, the topology-optimized flow field achieves an 11.6% improvement in heat transfer performance compared to a conventional parallel flow field under identical nanofluid conditions.
format Preprint
id arxiv_https___arxiv_org_abs_2501_16749
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Topology optimization for microchannel heat sinks with nanofluids using an Eulerian-Eulerian approach
Chen, Chih-Hsiang
Yaji, Kentaro
Optimization and Control
Fluid Dynamics
The demand for high-performance heat sinks has significantly increased with advancements in computing power and the miniaturization of electronic devices. Among the promising solutions, nanofluids have attracted considerable attention due to their superior thermal conductivity. However, designing a flow field that effectively utilizes nanofluids remains a significant challenge due to the complex interactions between fluid and nanoparticles. In this study, we propose a density-based topology optimization method for microchannel heat sink design using nanofluids. An Eulerian-Eulerian framework is utilized to simulate the behavior of nanofluids, and the optimization problem aims to maximize heat transfer performance under a fixed pressure drop. In numerical examples, we investigate the dependence of the optimized configuration on various parameters and apply the method to the design of a manifold microchannel heat sink. The parametric study reveals that the number of flow branches increases with the increased pressure drop but decreases as the particle volume fraction increases. In the heat sink design, the topology-optimized flow field achieves an 11.6% improvement in heat transfer performance compared to a conventional parallel flow field under identical nanofluid conditions.
title Topology optimization for microchannel heat sinks with nanofluids using an Eulerian-Eulerian approach
topic Optimization and Control
Fluid Dynamics
url https://arxiv.org/abs/2501.16749