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Micro solar thermal energy development and use for MEMS power applications.

机译:微型太阳能热能的开发和用于MEMS电源应用。

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摘要

Increasing focus on alternative energy sources has produced significant progress across a wide variety of research areas. One particular area of interest has been solar energy. The sun represents sustainable and renewable energy source capable of meeting present energy needs without compromising the ability of future generations to meet theirs. Energy from the sun can be utilized in multiple ways. Direct rise in modern power generation typically involves either photovoltaic systems or large-scale solar thermal energy installations. While large-scale solar thermal energy generation is well advanced, there has been comparatively little research on smaller scale thermal energy collection and application. This work presents investigations into micro solar thermal energy development and use for MEMS-based power applications. This approach is divergent from traditional micro solar photovoltaic devices, relying on transforming incoming solar energy to heat for use by devices like thermoelectric generators (TEG) and other heat engines. The ability to maximize temperature gain from the sun's heat energy while minimizing heat losses is critical for a system that relies on solar energy for useful mechanical or electrical work output. The use of a manometer-scale solar selective absorber coating to enhance the performance of a TEG module in solar thermal energy harvesting is presented. The thin film coating is fabricated by electrochemical deposition of a bimetallic layer of tin and nickel on copper substrate. Further, the use of vacuum packaging to limit heat losses from the collector plate is examined. Limiting heat losses is shown to improve the overall efficiency of these devices. Also, a thermal scavenging technique that relies on phase change within the working fluid in a micro capillary channel heat exchanger is presented. These devices have the potential to provide autonomous power for micro electronics, and represent sustainable alternatives to battery-powered MEMS-based devices.
机译:对替代能源的日益关注已在许多研究领域取得了重大进展。感兴趣的一个特定领域是太阳能。太阳代表了可持续和可再生能源,能够满足当前的能源需求,而不会损害子孙后代的能力。来自太阳的能量可以多种方式利用。现代发电的直接兴起通常涉及光伏系统或大型太阳能热能装置。尽管大规模的太阳能热发电已经很先进,但是对较小规模的热能收集和应用的研究相对较少。这项工作提出了对微型太阳能热能的开发以及基于MEMS的电源应用的研究。这种方法与传统的微型太阳能光伏设备不同,后者依赖于将入射的太阳能转换为热量,以供热电发电机(TEG)和其他热机之类的设备使用。最大程度地利用太阳热能的温度增益,同时又将热量损失最小的能力,对于依靠太阳能来获得有用的机械或电气功输出的系统而言至关重要。提出了使用压力计规模的太阳能选择性吸收器涂层来增强TEG模块在太阳能热能收集中的性能。通过在铜基板上电化学沉积锡和镍的双金属层来制造薄膜涂层。此外,研究了使用真空包装来限制来自集热板的热损失。显示出限制热量损失可以提高这些设备的整体效率。此外,提出了一种热清除技术,该技术依赖于微毛细管通道热交换器中工作流体内的相变。这些设备具有为微电子设备提供自主电源的潜力,并且可以替代基于电池的MEMS设备。

著录项

  • 作者

    Ogbonnaya, Emmanuel.;

  • 作者单位

    Louisiana Tech University.;

  • 授予单位 Louisiana Tech University.;
  • 学科 Engineering General.;Nanotechnology.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 159 p.
  • 总页数 159
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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