氧化石墨烯纳米流体对热管热性能影响的实验研究

Weilin Zhao, Jun Xu, Jinkai Li
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引用次数: 0

摘要

合成了氧化石墨烯-去离子水(GO-DW)和氧化石墨烯-乙二醇(GO-EG)纳米流体。获得了较好的纳米流体悬浮液。分析了两种纳米流体的导热性。结果表明,氧化石墨烯纳米颗粒对DW基液导热系数的提高幅度为22.6% ~ 61.7%,对EG基液导热系数的提高幅度为15.3% ~ 32.8%。实验研究了四根充注氧化石墨烯-DW和氧化石墨烯纳米流体以及DW和EG基液的铜热管,发现在热管中加入氧化石墨烯非颗粒可以提高冷凝器壁面温度,减小温差。进一步分析发现,相对于DW和GO-EG流体热管,空气冷却时GO-DW和GO-EG纳米流体热管的热阻分别降低了42.6-52.4%和31.9%-38.4%,冷凝器段水冷时GO-DW和GO-EG纳米流体热管的热阻分别降低了15.5-16.7%和11.5%-18.9%。利用扫描电镜对氧化石墨烯- dw纳米流体热管的芯芯结构进行了表征,并对流体-芯芯组合的有效导热系数进行了评价。结果表明:蒸发器芯表面约有0375 ~ 1.24μm的氧化石墨烯纳米粒子涂层;假设涂层厚度为0.75μm,在70℃时,GO-DW非流体热管的有效导热系数提高了66.92%,GO-EG非流体热管的有效导热系数提高了37.32%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Investigation of Graphene Oxide Nanofluids on Thermal Performance of Heat Pipe
The graphene oxide-deionized water (GO-DW) and graphene oxide-ethylence glycol (GO-EG) nanofluids were synthesized. The better suspension of nanofluids was achieved. The thermal conductivity of both nanofluids was analyzed. It indicates that GO nanoparticles can strengthen the thermal conductivity of DW base fluids by 22.6%–61.7% and EG base fluids by 15.3%–32.8%. Four copper heat pipes charged with GO-DW and GO-EG nanofluids as well as DW and EG base fluids were experimentally researched, it is discovered that the addition of GO nonoparticles in heat pipe can elevate the condenser wall temperature and reduce the temperature difference. Future analysis finds that, with respect to DW and EG fluids heat pipe, the thermal resistances of GO-DW and GO-EG nanofluids heat pipe are respectively decreased 42.6–52.4% and 31.9%–38.4% for air cooling, and 15.5–16.7% and 11.5%–18.9% for water cooling at condenser section. Besides, the wick structure of GO-DW nanofluids heat pipe was examined by Scanning Electron Microscope, and the effective thermal conductivity of fluid-wick combination was evaluated. The outcomes demonstrate that the evaporator wick surface contains about 0375–1.24μm coating film of GO nanoparticles. Assumed the coating film is 0.75μm, the effective thermal conductivity of fluid-wick combination is respectively enhanced by 66.92 % for GO-DW nonofluids heat pipe and 37.32% for GO-EG nonofluids heat pipe at 70 °C.
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