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Heat Transfer and Pressure Drop in Single-Phase Flows in Tapered Microchannels

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Autor(es):
Moreira, Debora C. ; Ribatski, Gherhardt ; Kandlikar, Satish G.
Número total de Autores: 3
Tipo de documento: Artigo Científico
Fonte: JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME; v. 144, n. 7, p. 8-pg., 2022-07-01.
Resumo

This paper presents a comparison of heat transfer and pressure drop during single-phase flows inside diverging, converging, and uniform microgaps using distilled water as the working fluid. The microgaps were created with a plain 10 mm x 10 mm heated copper surface and a polysulfone cover that was either uniform or tapered with an angle of 3.4 deg, and average gap heights of 400 and 800 mu m. Experiments were conducted with single-phase water flow with an inlet temperature of 30 degrees C for flow rates varying from 57 to 498 mL/min and heat flux from 27 to 153 W/cm(2) depending on the flowrate and microgap configuration. The uniform configuration resulted in the lowest pressure drop due to the less constricted flow. A slight decrease of pressure drop with heat flux was observed due to temperature dependent properties. The best heat transfer performance was obtained with the converging configuration, which was especially significant at low flow rates and shorter average gap. This behavior could be explained by an increase in the heat transfer coefficient due to flow acceleration in the converging gaps, which compensates for the decrease in temperature difference between the fluid and the surface along the flow length. Overall, the converging microgaps have better performance than uniform or diverging ones for single-phase flows, and this effect is more pronounced at lower flow rates, where the fluid experiences higher temperature changes. (AU)

Processo FAPESP: 17/12576-5 - Projeto e caracterização experimental de absorvedores térmicos baseados em microcanais para coletores solares
Beneficiário:Debora Carneiro Moreira
Modalidade de apoio: Bolsas no Exterior - Estágio de Pesquisa - Pós-Doutorado
Processo FAPESP: 16/09509-1 - Processos de transferência de calor com mudança de fase de elevado desempenho aplicados ao aproveitamento de energia solar
Beneficiário:Gherhardt Ribatski
Modalidade de apoio: Auxílio à Pesquisa - Temático
Processo FAPESP: 15/24834-3 - Desenvolvimento de dissipadores de calor de alto desempenho baseados em multi-microcanais contendo superfícies micro- e nanoestruturadas visando aplicações em receptores solares
Beneficiário:Debora Carneiro Moreira
Modalidade de apoio: Bolsas no Brasil - Pós-Doutorado