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Main Authors: Chej, L. G., Carusela, M. F., Monastra, A. G., Harting, J., Malgaretti, P.
Format: Preprint
Published: 2026
Subjects:
Online Access:https://arxiv.org/abs/2603.09607
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author Chej, L. G.
Carusela, M. F.
Monastra, A. G.
Harting, J.
Malgaretti, P.
author_facet Chej, L. G.
Carusela, M. F.
Monastra, A. G.
Harting, J.
Malgaretti, P.
contents Microchannel heat sinks (MCHS) are widely used for thermal management in high-power electronics due to their ability to dissipate large heat fluxes with minimal coolant consumption. While numerous strategies - such as geometric modifications, surface disruptions, and enhanced coolant formulations - have been explored to improve heat transfer, many of these approaches increase hydraulic resistance and pumping power requirements. Recent studies have shown that slip/no-slip wall patterns can enhance flow rates and convective heat removal without additional energy input, and that patterned microstructures can induce secondary swirling motions known to promote mixing and heat transfer. Motivated by these findings, we investigate a slip/no-slip pattern specifically designed to generate swirl flow inside a straight microchannel. Building upon prior work on passive chaotic advection and boundary-condition engineering, we assess the hydrodynamic and thermal performance of this patterned configuration under conditions relevant to laminar microchannel cooling. Our results demonstrate that appropriately arranged slip/no-slip regions can induce swirl without geometric perturbations or increased pumping power, ultimately improving heat transfer efficiency at fixed volumetric flow rate. This study highlights the potential of boundary-condition patterning as a simple, energy-neutral strategy for enhancing the performance of microfluidic heat-transfer devices.
format Preprint
id arxiv_https___arxiv_org_abs_2603_09607
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Swirl flow in microchannels: patterned slip walls enhance heat transport
Chej, L. G.
Carusela, M. F.
Monastra, A. G.
Harting, J.
Malgaretti, P.
Fluid Dynamics
Microchannel heat sinks (MCHS) are widely used for thermal management in high-power electronics due to their ability to dissipate large heat fluxes with minimal coolant consumption. While numerous strategies - such as geometric modifications, surface disruptions, and enhanced coolant formulations - have been explored to improve heat transfer, many of these approaches increase hydraulic resistance and pumping power requirements. Recent studies have shown that slip/no-slip wall patterns can enhance flow rates and convective heat removal without additional energy input, and that patterned microstructures can induce secondary swirling motions known to promote mixing and heat transfer. Motivated by these findings, we investigate a slip/no-slip pattern specifically designed to generate swirl flow inside a straight microchannel. Building upon prior work on passive chaotic advection and boundary-condition engineering, we assess the hydrodynamic and thermal performance of this patterned configuration under conditions relevant to laminar microchannel cooling. Our results demonstrate that appropriately arranged slip/no-slip regions can induce swirl without geometric perturbations or increased pumping power, ultimately improving heat transfer efficiency at fixed volumetric flow rate. This study highlights the potential of boundary-condition patterning as a simple, energy-neutral strategy for enhancing the performance of microfluidic heat-transfer devices.
title Swirl flow in microchannels: patterned slip walls enhance heat transport
topic Fluid Dynamics
url https://arxiv.org/abs/2603.09607