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Additively-manufactured metallic porous lattice heat exchangers for air-side heat transfer enhancement

机译:用于空气侧传热增强的增材制造的金属多孔网格换热器

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In this study, two novel porous lattice air-cooled heat exchangers (Lattice 1 and Lattice 2) were fabricated by the selective laser melting (SLM) technique from an aluminum alloy (AlSi10Mg) powder. Repetitions of the Rhombi-Octet unit cells of different cell sizes were used to form the porous matrices. Experiments were carried out in a wind tunnel to evaluate the thermal-hydraulic performances of the heat exchangers. The thermal performance indicators such as the overall thermal conductance (UA), air-side thermal resistance (R_a), air-side heat transfer coefficient (h_a) and volumetric heat flux density (q_v) of the porous lattice heat exchangers were determined and comparisons were made against two conventional fin-tube heat exchangers (Fin-tube 1 and Fin-tube 2). In addition, the pressure drops across the heat exchangers were also measured. Based on our investigations, it was determined that Lattice 1 exhibited approximately 40%-45% higher UA and h_a than Lattice 2. However, the pressure drop across Lattice 1 was also higher than Lattice 2. At the same mass flow rate of air (m_a), it was found that the h_a values of the porous lattice heat exchangers were more than 2 times those of the fin-tube heat exchangers. The significantly higher h_a values of the porous lattice are mainly attributed to the presence of interconnected pores and the formation of eddies downstream of the ligaments that improved fluid mixing. For the same pumping power (W/H), the use of the porous lattice heat exchangers also resulted in consistently higher h_a values than the fin-tube heat exchangers. These results demonstrated the potential of using SLM to fabricate a new generation of commercial-scale compact heat exchangers made of porous lattices. These new porous lattice structures have enhanced the thermal performances of the heat exchanger with no penalty in pumping power.
机译:在这项研究中,使用铝合金(AlSi10Mg)粉末通过选择性激光熔化(SLM)技术制造了两个新型的多孔晶格风冷热交换器(晶格1和晶格2)。不同细胞大小的Rhombi-Octet晶胞的重复被用来形成多孔基质。在风洞中进行了实验,以评估热交换器的热工水力性能。确定了多孔格子式换热器的热性能指标,如总热导率(UA),空气侧热阻(R_a),空气侧传热系数(h_a)和体积热通量密度(q_v),并进行了比较分别针对两个传统的翅片管热交换器(翅片管1和翅片管2)制造。另外,还测量了穿过热交换器的压降。根据我们的调查,可以确定,格子1的UA和h_a比格子2高40%-45%。但是,在相同的空气质量流量下,格子1上的压降也高于格子2。 m_a),发现多孔晶格换热器的h_a值是翅片管换热器的h_a值的2倍以上。多孔晶格的h_a值明显较高,主要归因于存在相互连接的孔以及在韧带下游形成涡流,从而改善了流体混合。对于相同的泵浦功率(W / H),使用多孔晶格换热器还比翅片管换热器始终产生更高的h_a值。这些结果证明了使用SLM来制造由多孔晶格制成的新一代商用规模紧凑型热交换器的潜力。这些新的多孔晶格结构增强了热交换器的热性能,而不会增加泵送功率。

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