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Evaluation of heat-exchange performance of carbon-based nanofluids for air-cooled exchangers with different cross-section shapes

机译:不同横截面形状的空气冷却交换机碳纳米流体热交换性能评价

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摘要

In this study, a vortex trap method was employed to produce carbon-based nanofluids (CBNFs) as working fluids for air-cooled heat exchangers (ACHEs) with rectangular and circular tubes. Poly(sodium 4-styrenesulfonate) was added to the produced CBNFs as a dispersant to enhance their stability, and the CBNF concentration was adjusted to 0.01 wt% (S1) and 0.05 wt% (S2). The viscosity, density, and specific heat of CBNFs were measured and analyzed. Finally, CBNFs were tested in the rectangular- and circular-tube ACHEs to evaluate their heat-exchange capacity, the electricity consumption of pumps, and the system efficiency factor under various temperatures (40 and 55 degrees C) and flow rates. The results revealed that for S2, a maximum enhancement ratio of 8.17% was achieved for the heat-exchange capacity at a flow rate of 2.0 L/min (LPM) and temperature of 40 degrees C in the rectangular-tube ACHE, whereas for Sl, that of 4.88% was achieved at a flow rate of 2.5 LPM and temperature of 40 degrees C in the circular-tube ACHE. Moreover, for S1 achieved a maximum enhancement ratio of 8.24% for the system efficiency factor at a flow rate of 2.0 LPM and a temperature of 40 degrees C in the rectangular-tube ACHE and of 6.37% at a flow rate of 2.5 LPM and temperature of 55 degrees C in the circular-tube ACHE. Considering the overall trend of system efficiency based on the experimental parameters of the rectangular- and circular-tube ACHEs, S1 was deemed more suitable than S2 to serve as the working fluid.
机译:在该研究中,采用涡旋疏水阀方法以生产碳基纳米流体(CBNF)作为具有矩形和圆形管的空气冷却热交换器(ACHES)的工作流体。将聚(4-苯乙烯磺酸钠)加入到生产的CBNF中作为分散剂,以增强它们的稳定性,并将CBNF浓度调节至0.01wt%(S1)和0.05wt%(S2)。测量并分析CBNFS的粘度,密度和特异性。最后,在矩形和圆形管疼痛中测试CBNF,以评估它们的热交换能力,泵的电力消耗,以及各种温度(40和55摄氏度)和流速的系统效率因子。结果显示,对于S2,在2.0L / min(LPM)和40摄氏度温度的流速下,实现了8.17%的最大增强比率为8.17%,而矩形管疼痛的温度为40℃,而对于SL ,在圆管疼痛中以2.5Lpm的流速和40℃的温度的流速实现了4.88%。此外,对于S1以2.0Lpm的流速和矩形管疼痛中的40℃的温度为40℃的温度和4.37%,实现了8.24%的最大增强比率为8.24%,并以2.5Lpm和温度的流速为6.37%圆形管疼痛中的55℃。考虑到基于矩形和圆形管酸的实验参数的系统效率的总体趋势,S1被认为更合适的S2以用作工作流体。

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