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- W3182748569 endingPage "105449" @default.
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- W3182748569 abstract "In this study, a double-scale composite microgroove wick (DCMW) fabricated using crisscross plough-extrusion (CPE) method and subsequent chemical corrosion surface treatment is proposed for improving the heat transfer performance of copper‑aluminum composite vapor chambers (CACVCs). The wicking capability of a DCMW was characterized using a capillary rise experiment with ethanol as the working fluid. The wicking rise process was recorded using an infrared thermal imager, and the surface morphology and surface wettability of the DCMW were investigated. The effect of corrosion time on the wicking capability of the DCMW was also studied. The experimental results indicated that the equilibrium wicking height of the DCMW was significantly higher than that of an uncorroded microgroove wick. The optimal corrosion time was determined to be 15 min. DCMW with the optimal treatment exhibits a capillary performance parameter (KReff) of 3.81 μm and volumetric flow rate of 3.64 mm3/s, an increase of 442% and 127.5% relative to that of an uncorroded microgroove wick, respectively. Furthermore, the results indicated that the combination of the CPE process and chemical corrosion provides a simple and effective method for improving the wicking capabilities of the wicks and the thermal performances of CACVCs." @default.
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- W3182748569 date "2021-07-01" @default.
- W3182748569 modified "2023-10-02" @default.
- W3182748569 title "Capillary wicking in double-scale composite microgroove wicks for copper-aluminum composite vapor chambers" @default.
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- W3182748569 doi "https://doi.org/10.1016/j.icheatmasstransfer.2021.105449" @default.
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