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SCALABLE LARGE-AREA TWO-PHASE CAPILLARY-ENHANCED MICRO-COOLER USING SILICON MICROCHANNEL FIN ARRAY WITH 3D SILICON MANIFOLD FOR HIGH-HEAT-FLUX ELECTRONICS COOLING APPLICATION
- Kwon, Heungdong;
- Kong, Daeyoung;
- Lee, Hyoungsoon;
- Palko, James;
- Dede, Ercan M.;
- 외 2명
SCOPUS
3초록
We have developed a silicon-based capillary-enhanced two-phase micro-cooler capable of removing a high heat flux > 200 Wcm-2 with water mass flow rate ≈ 28 g(min)-1 (vapor quality, xe ≈ 0.8) over a large area ≈ 2 cm × 2 cm at superheat < 20 ℃, resulting in a thermal resistance of phase change, R″mean,2-ϕ ≈ 0.08 cm2℃W-1. By increasing the flow rate to ≈ 150 g(min)-1, a hybrid single/two phase regime prevails resulting in a critical heat flux ≈ 285 Wcm-2 (1.1 kW/chip) with minimal pressure drop ≈ 10 kPa, achieving 100× larger Coefficient of Performance (COP), compared to the conventional forced convective microchannel cooling. In this work, we utilize dense silicon channel fin array (height 100 µm, width 15 µm and 15 µm spacing) as capillary wicking structure in combination with a 3D silicon open-microchannel manifold (channel width and period ≈ 100 µm and 570 µm, respectively) for capillary-based liquid delivery and vapor extraction over large, heated area of 2 cm × 2 cm. The micro-cooler performs the best at low flow rates and high heat fluxes where the capillary flow and two-phase boiling dominates, resulting in a very uniform temperature distribution over the large area of the micro-cooler. At the high flow rates (pressurized flow), the coolant bursts out of the gap between the 3D manifold and the cold plate, resulting in single-phase cooling near the inlets of the micro-cooler. The temperature profile and its uniformity, or lack thereof, strongly depend on the competing effects of the single-phase and two-phase cooling regimes, which in turn depend on the flow rate and applied heat flux. Copyright © 2024 by ASME.
키워드
- 제목
- SCALABLE LARGE-AREA TWO-PHASE CAPILLARY-ENHANCED MICRO-COOLER USING SILICON MICROCHANNEL FIN ARRAY WITH 3D SILICON MANIFOLD FOR HIGH-HEAT-FLUX ELECTRONICS COOLING APPLICATION
- 저자
- Kwon, Heungdong; Kong, Daeyoung; Lee, Hyoungsoon; Palko, James; Dede, Ercan M.; Asheghi, Mehdi; Goodson, Kenneth E.
- 발행일
- 2024
- 유형
- Conference paper
- 저널명
- Proceedings of ASME 2024 International Technical Conference and Exhibition on Packaging and Integration of Electronic and Photonic Microsystems, InterPACK 2024
- 언어
- ENG
- 출판사
- American Society of Mechanical Engineers