Thermo-hydraulic characterization of a self-pumping corrugated wall heat exchanger

Compactness, efficiency and thermal control of the heat exchanger are of critical significance for many electronic industry applications. In this view, a new concept of heat exchanger at millimeter scale is proposed and numerically studied. It consists in dynamically deforming at least one of its wa...

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Veröffentlicht in:Energy (Oxford) 2017-06, Vol.128, p.713-728
Hauptverfasser: Schmidmayer, Kevin, Kumar, Prashant, Lavieille, Pascal, Miscevic, Marc, Topin, Frédéric
Format: Artikel
Sprache:eng
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Zusammenfassung:Compactness, efficiency and thermal control of the heat exchanger are of critical significance for many electronic industry applications. In this view, a new concept of heat exchanger at millimeter scale is proposed and numerically studied. It consists in dynamically deforming at least one of its walls by a progressive wave in order to create an active corrugated channel. Systematic studies were performed in single-phase flow on the different deformation parameters that allow obtaining the thermo-hydraulic characteristics of the system. It has been observed the dynamic wall deformation induces a significant pumping effect. Intensification of heat transfer remains very important even for highly degraded waveforms although the pumping efficiency is reduced in this case. The mechanical power applied on the upper wall to deform it dynamically is linked to the wave shape, amplitude, frequency and outlet-inlet pressure difference. The overall performance of the proposed system has been evaluated and compared to existing static channels. The performance of the proposed heat exchanger evolved in two steps for a given wall deformation. It declines slightly up to a critical value of mechanical power applied on the wall. When this critical value is exceeded, it deteriorates significantly, reaching the performance of existing conventional systems. •A new concept of heat exchanger within channel at millimeter scale is proposed.•Upper wall is deformed dynamically by applying external mechanical power.•Pumping effect is observed and is linked to the wave shape, amplitude and frequency.•Efficient proposed system in low Reynolds number range.•Overall performance is significantly high compared to static corrugated and straight channels.
ISSN:0360-5442
1873-6785
DOI:10.1016/j.energy.2017.04.048