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Microscale crossflow heat exchanger fabricated by laser-based xurography.

机译:通过基于激光的X射线照相术制造的微型错流热交换器。

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摘要

Commercial applications of microfluidic systems have been expanding exponentially over the last decade. Most commercial systems are fabricated using silicon processing; however, development costs remain high. For fundamental process development, a less expensive alternative is desirable. Xurography is an inexpensive rapid prototyping technology for microfluidic systems that is becoming more prevalent in research labs. In this technology, patterns are cut in double-sided adhesive polyimide tape, which is then sandwiched between two substrates. Traditionally, a cutting tool forms the patterns, which are relatively imprecise and subject to defects. To improve the cutting process, a laser has been implemented in this work. Due to the laser energy input, features are found to be more precise, but subject to soot production and melting. Laser-based xurography has been used to create five multilayer heat exchangers to explore the feasibility of thermal processing in devices sealed with the polyimide tape. The crossflow and counterflow heat exchangers were tested under a wide range of conditions; however, turbulent flow was not achieved due to pressure drop limitations. The devices performed leak free at temperatures up to 75 °C and pressures as high as 2520 kPa. Heat exchanger effectiveness matched theoretical predictions within experimental uncertainties. Using an exergy analysis, it was determined that the heat exchangers performed most efficiently at low Reynolds number. This work represents the first time laser-based xurography has been used to develop multilayer microfluidic devices.
机译:在过去的十年中,微流体系统的商业应用已呈指数增长。大多数商业系统都是使用硅工艺制造的。但是,开发成本仍然很高。对于基本的工艺开发,需要较便宜的替代方案。 Xurography是一种用于微流体系统的廉价快速原型技术,在研究实验室中正变得越来越普遍。在这项技术中,将图案切割在双面聚酰亚胺胶带中,然后将其夹在两个基板之间。传统上,切割工具形成图案,该图案相对不精确并且容易产生缺陷。为了改善切割过程,已在这项工作中使用了激光。由于输入了激光能量,因此发现特征更精确,但会产生烟灰并熔化。基于激光的X线照相术已用于创建五个多层热交换器,以探索在用聚酰亚胺胶带密封的设备中进行热处理的可行性。横流和逆流换热器在各种条件下进行了测试。但是,由于压降的限制,没有实现湍流。该设备在高达75°C的温度和高达2520 kPa的压力下无泄漏。在实验不确定性范围内,换热器效率与理论预测相符。使用火用分析确定热交换器在低雷诺数下的运行效率最高。这项工作代表了首次将基于激光的X线摄影技术用于开发多层微流控设备。

著录项

  • 作者

    Fathiel, Faisal Abdulazeez.;

  • 作者单位

    The University of Utah.;

  • 授予单位 The University of Utah.;
  • 学科 Mechanical engineering.
  • 学位 M.S.
  • 年度 2012
  • 页码 130 p.
  • 总页数 130
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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