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Heat transfer study of enhanced additively manufactured minichannel heat exchangers

机译:增强含有较薄的迷你扬语换热器的传热研究

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Three-dimensional (3D) printing, known as additive manufacturing, provides new opportunities for the design and fabrication of highly efficient industrial components. Given the widespread use of this technique by industries, 3D printing is no longer limited to building prototypes. Instead, small-to-medium scale production units focus on reducing the cost associated with each part. Among the various industrial components that can be developed with this manufacturing technology are heat transfer components such as heat exchangers. To this end, this study investigated the heat transfer characteristics of minichannel-based heat exchangers embedded with longitudinal vortex generators, both experimentally and numerically. Three enhanced prototypes with different vortex generator design parameters and a smooth channel as a reference case were printed with an aluminum alloy (AlSilOMg) using direct metal laser sintering (DMLS). The rectangular minichannel had a hydraulic diameter of 2.86 mm. Distilled water was used as the test fluid, and the Reynolds number varied from 170 to 1380 (i.e., laminar flow). Prototypes were tested under two different constant heat fluxes of 15 kWm~(-2) and 30 kWm~(-2). The experimental results were verified with a commercial simulation tool, Comsol Multiphysics®, using the 3D conjugate heat transfer model. In the case of the smooth channel, the experimental results were also compared with well-known correlations in the field. The results showed that 95% and 79% of the experimental data were within 10% of the numerical simulation results and the values from the existing correlations, respectively. For the channel enhanced with the vortex generators, the numerical predictions agreed well with the experimental results. It was determined that the vortex generators can enhance the convective heat transfer up to three times with the designed parameter. The findings from this research underline the potential of additive manufacturing in the development of more sophisticated minichannel heat exchangers.
机译:三维(3D)印刷,称为添加剂制造,为高效工业部件的设计和制造提供了新的机会。鉴于行业广泛使用这种技术,3D打印不再限于构建原型。相反,小于中等规模的生产单位专注于降低与每个部分相关的成本。在可以利用该制造技术开发的各种工业部件中,传热部件如热交换器。为此,本研究研究了嵌入纵向涡流发生器的迷你涡流发生器的迷你涡流的热交换器的传热特性,两者在实验和数值上。使用直接金属激光烧结(DMLS)用铝合金(Alsilomg)印刷三种具有不同涡流发生器设计参数和光滑通道的增强频道。矩形迷你通道的液压直径为2.86毫米。使用蒸馏水作为试验流体,雷诺数从170〜1380(即层流)变化。在15kWm〜(-2)和30kWm〜(-2)的两种不同恒定热通量下测试原型。使用3D共轭传热模型,用商业仿真工具COMSOLMultibyhysics®验证了实验结果。在平滑通道的情况下,还将实验结果与现场中的众所周知的相关性进行了比较。结果表明,95%和79%的实验数据分别在数值模拟结果的10%以内,以及现有相关性的值。对于涡流发生器增强的通道,数值预测与实验结果很好。确定涡流发生器可以通过设计参数增强多达三次的对流热传递。该研究的发现强调了添加剂制造在更复杂的迷你沟热交换器中的潜力。

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