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Packaging of Small-Scale Thermoelectric Generators for Autonomous Sensor Nodes

机译:用于自主传感器节点的小型热电发电机的包装

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This paper focuses on packaging of small-scale thermoelectric generators (TEGs) for energy harvesting applications in sensor nodes for industry 4.0 and for the Internet of Things. The TEGs are suitable to enable self-powered sensor systems with unlimited energy lifetime, but they have to withstand high mechanical loads during the assembly and packaging process and further stress due to the mismatch of the coefficient of thermal expansion of the different materials. Devices with different underfills (UFs) and stress decoupling thermal adhesives were evaluated with a shear force test apparatus and a four-line bending test together. In addition to these mechanical tests, the thermal influence of the UF on the system performance was investigated with measurements, finite element method, and computational fluid dynamics simulations. The shear force per area could be enhanced up to the factor of two by using capillary UF. All TEGs with and without UFs passed the reliability investigations without any electrical defects. All TEGs with UF passed the given quality criteria with the four-line bending test. With some of the stress decoupling thermal adhesives, the TEGs could withstand the loads without UF. The simulation model was evaluated with a measurement setup, and the differences between the simulation model and the measurements concerning the temperature difference of the TEGs were in an acceptable range (<21%). Furthermore, the influence of the UF on the temperature difference of the TEGs in the given measurement scenario was smaller than 15%, which makes the application of a UF a realistic approach.
机译:本文重点介绍用于工业4.0和物联网传感器节点中能量收集应用的小型热电发电机(TEG)的包装。 TEG适合使能量无限的自供电传感器系统成为可能,但是它们必须在组装和包装过程中承受较高的机械负载,并且由于不同材料的热膨胀系数不匹配而承受更大的压力。分别使用剪切力测试仪和四线弯曲测试评估了具有不同底部填充胶(UFs)和应力去耦热粘合剂的器件。除了这些机械测试外,还通过测量,有限元方法和计算流体动力学模拟研究了超滤对系统性能的热影响。使用毛细管超滤可以将每单位面积的剪切力提高到两倍。所有带和不带超滤的TEG都通过了可靠性调查,没有任何电气缺陷。所有带有超滤的TEG均通过四线弯曲测试通过了给定的质量标准。使用某些应力去耦热粘合剂,TEG可以承受负载而无需超滤。使用测量设置评估了仿真模型,并且仿真模型和与TEG的温度差有关的测量之间的差异在可接受的范围内(<21%)。此外,在给定的测量方案中,UF对TEG的温差的影响小于15%,这使得UF的应用成为现实。

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