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Fabrication of Thermoelectric Devices Using Additive-Subtractive Manufacturing Techniques: Application to Waste-Heat Energy Harvesting.

机译:使用加减法制造技术制造热电设备:在废热能量收集中的应用。

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摘要

Thermoelectric generators (TEGs) are solid-state devices that convert heat directly into electricity. They are well suited for waste-heat energy harvesting applications as opposed to primary energy generation. Commercially available thermoelectric modules are flat, inflexible and have limited sizes available. State-of-art manufacturing of TEG devices relies on assembling prefabricated parts with soldering, epoxy bonding, and mechanical clamping. Furthermore, efforts to incorporate them onto curved surfaces such as exhaust pipes, pump housings, steam lines, mixing containers, reaction chambers, etc. require custom-built heat exchangers. This is costly and labor-intensive, in addition to presenting challenges in terms of space, thermal coupling, added weight and long-term reliability. Additive manufacturing technologies are beginning to address many of these issues by reducing part count in complex designs and the elimination of sub-assembly requirements. This work investigates the feasibility of utilizing such novel manufacturing routes for improving the manufacturing process of thermoelectric devices.;Much of the research in thermoelectricity is primarily focused on improving thermoelectric material properties by developing of novel materials or finding ways to improve existing ones. Secondary to material development is improving the manufacturing process of TEGs to provide significant cost benefits. To improve the device fabrication process, this work explores additive manufacturing technologies to provide an integrated and scalable approach for TE device manufacturing directly onto engineering component surfaces. Additive manufacturing techniques like thermal spray and ink-dispenser printing are developed with the aim of improving the manufacturing process of TEGs. Subtractive manufacturing techniques like laser micromachining are also studied in detail. This includes the laser processing parameters for cutting the thermal spray materials efficiently by optimizing cutting speed and power while maintaining surface quality and interface properties. Key parameters are obtained from these experiments and used to develop a process that can be used to fabricate a working TEG directly onto the waste-heat component surface. A TEG module has been fabricated for the first time entirely by using thermal spray technology and laser micromachining. The target applications include automotive exhaust systems and other high-volume industrial waste heat sources. The application of TEGs for thermoelectrically powered sensors for Small Modular Reactors (SMRs) is presented. In conclusion, more ways to improve the fabrication process of TEGs are suggested.
机译:热电发电机(TEG)是将热量直接转化为电能的固态设备。它们非常适合于余热能源收集应用,而不是一次能源发电。市售的热电模块是扁平的,不挠性的并且具有有限的可用尺寸。 TEG设备的最新制造依赖于通过焊接,环氧树脂粘合和机械夹持组装预制零件。此外,将它们结合到弯曲表面如排气管,泵壳,蒸汽管线,混合容器,反应室等的努力需要定制的热交换器。除了在空间,热耦合,增加的重量和长期可靠性方面提出挑战之外,这是昂贵且劳动密集的。增材制造技术开始通过减少复杂设计中的零件数量以及消除子装配要求来解决其中的许多问题。这项工作研究了利用这种新颖的制造途径来改善热电器件制造工艺的可行性。热电学的许多研究主要集中在通过开发新颖的材料或寻找改进现有材料的方法来改善热电材料的性能。材料开发的次要方法是改善TEG的制造工艺,以提供显着的成本效益。为了改善设备制造过程,这项工作探索了增材制造技术,以提供一种集成的,可扩展的方法来直接在工程组件表面上制造TE器件。为了改善TEG的制造工艺,开发了诸如热喷涂和油墨分配器印刷的增材制造技术。还详细研究了诸如激光微加工之类的减法制造技术。其中包括用于通过优化切割速度和功率,同时保持表面质量和界面特性来有效切割热喷涂材料的激光加工参数。从这些实验中获得关键参数,并将这些关键参数用于开发可用于将工作的TEG直接制造到废热组件表面的工艺。通过使用热喷涂技术和激光微加工,首次完全制造了TEG模块。目标应用包括汽车排气系统和其他大量工业废热源。介绍了TEG在小型模块化反应堆(SMR)的热电传感器中的应用。总之,提出了改进TEG制备工艺的更多方法。

著录项

  • 作者

    Tewolde, Mahder.;

  • 作者单位

    State University of New York at Stony Brook.;

  • 授予单位 State University of New York at Stony Brook.;
  • 学科 Engineering.;Energy.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 188 p.
  • 总页数 188
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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