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Experimental Study of Filling Ratio Effect on the Thermal Performance in a Multi-Heat Pipe with Graphene Oxide/Water Nanofluids

机译:填充比对氧化石墨烯/水纳米流体多热管热性能影响的实验研究

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This experimental study is performed to investigate heat transfer performance of a multi-heat pipe cooling device in the condition of different filling ratios (40%, 60%, 80% and 100%) and different constant heat fluxes (10 - 30 W). Here, pure water (distilled water) and graphene oxide (GO)/water nanofluids are employed respectively as working fluid. GO/water nanofluids were synthesized by the modified Hummers method with 0.05%, 0.10%, 0.15%, and 0.20% volume concentrations. Multi-heat pipe is fabricated from copper; the heating and cooling sections are the same size and both are connected by four circular parallel tubes. Temperature fields and thermal resistance are measured for different filling ratio, heat fluxes and volume concentrations. The results indicated that the thermal performance of heat pipe increased with increasing the concentration of GO nanoparticles in the base fluid, while the maximum heat transfer enhancement was observed at 0.20% volume concentration. GO/water nanofluids showed lower thermal resistance compared to pure water; the optimal thermal resistance was obtained at 100% filling charge ratio with 0.20% volume concentration. Studies were also demonstrated that heat transfer coefficient of the heat pipe significantly increases with increasing the input heat flux and GO nanoparticles concentration.
机译:进行该实验研究以研究在不同填充率(40%,60%,80%和100%)和不同恒定热通量(10-30 W)的情况下多热管冷却装置的传热性能。在此,纯水(蒸馏水)和氧化石墨烯(GO)/水纳米流体分别用作工作流体。 GO /水纳米流体通过改进的Hummers方法合成,体积浓度为0.05%,0.10%,0.15%和0.20%。多热管由铜制成;加热和冷却部分的尺寸相同,并且均通过四个圆形平行管连接。测量了不同填充率,热通量和体积浓度的温度场和热阻。结果表明,随着基液中GO纳米颗粒浓度的增加,热管的热性能也随之提高,而在体积浓度为0.20%时,传热效果最大。与纯水相比,GO /水纳米流体显示出较低的热阻;在填充率为100%,体积浓度为0.20%时获得了最佳的热阻。研究还表明,随着输入热通量和GO纳米颗粒浓度的增加,热管的传热系数显着增加。

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