Thermal evaluation of flow boiling in a non-uniformly distributed pin-fin heat sink under transiently varying inlet temperatures

In real-world cooling applications, systems experience unsteady startup periods where evolving inlet temperatures significantly impact thermal management. Addressing this gap, this study is the first to experimentally investigate saturated flow boiling within a novel double-pool micro pin-finned heat sink (DP-HS) under transiently varying inlet temperatures. Time-dependent data and high-speed visualization (2000 fps) were recorded for inlet temperatures rising approximately from 37.5 °C to 77 °C, tested across heating powers of 180–270 W and mass fluxes of 189–265 kg m −2 s −1 . Results reveal that lower inlet temperatures enhance two-phase heat transfer coefficient, which drops by a maximum of 57.2% (at 180 W, 265 kg m −2 s −1 ) upon reaching steady-state. Under present conditions, a marked transition in the influence of mass flux was noted when mass flux increased from 189 to 227 kg m −2 s −1 , after which further improvements diminished. Moreover, forward-acting inertial forces and unbalanced surface tension force (unique to DP-HS) overcome resistive evaporation momentum, ensuring continuous surface rewetting. Furthermore, the DP-HS geometry efficiently manages high thermal loads, limiting the average wall superheat increase to 2.3 °C when heating power rises from 180 W to 270 W. Optimizing inlet temperature and exceeding this mass flux threshold are essential for maximizing flow boiling performance.

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Publication Details

Journal
International Communications in Heat and Mass Transfer
Published
2026-09-12
DOI
https://doi.org/10.1016/j.icheatmasstransfer.2026.112628
Primary Topic
Heat Transfer and Boiling Studies
Type
article
Field-Weighted Citation Impact
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article

Thermal evaluation of flow boiling in a non-uniformly distributed pin-fin heat sink under transiently varying inlet temperatures

Alperen Evcimen, Burak Markal, Ömer Öksüz
International Communications in Heat and Mass Transfer
Heat Transfer and Boiling Studies
article

Thermal evaluation of flow boiling in a non-uniformly distributed pin-fin heat sink under transiently varying inlet temperatures

Alperen Evcimen, Burak Markal, Ömer Öksüz
article en

Abstract

In real-world cooling applications, systems experience unsteady startup periods where evolving inlet temperatures significantly impact thermal management. Addressing this gap, this study is the first to experimentally investigate saturated flow boiling within a novel double-pool micro pin-finned heat sink (DP-HS) under transiently varying inlet temperatures. Time-dependent data and high-speed visualization (2000 fps) were recorded for inlet temperatures rising approximately from 37.5 °C to 77 °C, tested across heating powers of 180–270 W and mass fluxes of 189–265 kg m −2 s −1 . Results reveal that lower inlet temperatures enhance two-phase heat transfer coefficient, which drops by a maximum of 57.2% (at 180 W, 265 kg m −2 s −1 ) upon reaching steady-state. Under present conditions, a marked transition in the influence of mass flux was noted when mass flux increased from 189 to 227 kg m −2 s −1 , after which further improvements diminished. Moreover, forward-acting inertial forces and unbalanced surface tension force (unique to DP-HS) overcome resistive evaporation momentum, ensuring continuous surface rewetting. Furthermore, the DP-HS geometry efficiently manages high thermal loads, limiting the average wall superheat increase to 2.3 °C when heating power rises from 180 W to 270 W. Optimizing inlet temperature and exceeding this mass flux threshold are essential for maximizing flow boiling performance.

International Communications in Heat and Mass TransferVol. 180
Recep Tayyip Erdoğan University (TR), Karadeniz Technical University (TR)
Türkiye Bilimsel ve Teknolojik Araştırma Kurumu
Affordable and clean energy
Openalex Percentile: Top 20%
Heat Transfer and Boiling Studies
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Thermal evaluation of flow boiling in a non-uniformly distributed pin-fin heat sink under transiently varying inlet temperatures — Alperen Evcimen, Burak Markal, et al. · International Communications in Heat and Mass Transfer (2026) | TGRS Research Map | TGRS