低成本3D打印机制造PDMS微通道散热器的传热和流体流动研究

Inês Maia, C. Rocha, P. Pontes, V. Cardoso, J. Miranda, A. Moita, G. Minas, A. Moreira, R. Lima
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引用次数: 10

摘要

聚二甲基硅氧烷(PDMS),由于其卓越的性能,如光学透明性和易于成型的能力,是微纳米流体中最受欢迎的聚合物之一。此外,3D打印技术由于其低成本和简单性也引起了微流控界的极大兴趣。在这项工作中,3D打印的潜力被展示在生产微流体装置,它们研究纳米流体流动和传热的能力,以及它们作为散热装置的应用。将低成本熔融沉积建模3D打印技术与PDMS铸造技术相结合,用于微流控器件的制造。该技术的潜力通过实验证明了流体流动和传热研究使用不同的流体,如蒸馏水-,氧化铝(Al 2o3)-和氧化铁(Fe 2o3)基纳米流体。该热沉装置具有简单、低成本和独特的特点,为研究当前传统系统无法研究的纳米流体流动和传热现象提供了一条有希望的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Heat Transfer and Fluid Flow Investigations in PDMS Microchannel Heat Sinks Fabricated by Means of a Low-Cost 3D Printer
Polydimethylsiloxane (PDMS), due to its remarkable properties such as optical transparency and ability to easily mold, is one of the most popular polymers used in micro- and nanofluidics. Furthermore, 3D printing technology due to its low cost and simplicity is also gaining a great interest among the microfluidic community. In this work, the potential of 3D printing is shown to produce microfluidic devices, their ability for studying flows and heat transfer of nanofluids, and their applica-bility as a heat sink device. The low-cost fused deposition modeling 3D printing technique was combined with a PDMS casting technique for the microfluidic device fabrication. The potential of this technique was experimentally demonstrated by fluid flow and heat transfer investigations using different fluids, such as distilled water-, alumina (Al 2 O 3 )-, and iron oxide (Fe 3 O 4 )-based nanofluids. The simplicity, low-cost, and unique features of the proposed heat sink device may provide a promising way to investigate nanofluids’ flow and heat transfer phenomena that are not possible to be studied by the current traditional systems.
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