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Three-Dimensional Printed Insulation For Dynamic Thermoelectric Harvesters With Encapsulated Phase Change Materials

机译:具有封装相变材料的动态热电采集器的三维印刷绝缘

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摘要

Energy harvesting devices have demonstrated their ability to provide power autonomy to wireless sensor networks. However, the adoption of such powering solutions by the industry is challenging due to their reliance on very specific environmental conditions such as vibration at a specific frequency, direct sunlight, or a local temperature difference. Dynamic thermoelectric harvesting has been shown to expand the applicability of thermoelectric generators by creating a local spatial temperature gradient from a temporal temperature fluctuation. Here, a simple method for prototyping or short-run production of such devices is introduced. It is based on the design and 3-D printing of an insulating container, insertion of a phase change material in encapsulated form, and use of commercial thermoelectric generators. The simplicity of this dry assembly method is demonstrated. Two prototype devices with double-wall insulation structures are fabricated, using a stainless-steel and a plastic phase change material encapsulation and a commercial TEG. Performance tests under a temperature cycle between ±25 °C show energy output of 43.6 and 32.1 J from total device masses of 69 and 50 g, respectively. Tests under multiple temperature cycles demonstrate the reliability and performance repeatability of such devices. The proposed method addresses the complication of requiring a wet stage during the final assembly of dynamic thermoelectric harvesters. It allows design and customization to particular size, energy, and insulation geometry requirements. This is important because it makes dynamic harvesting prototyping widely available and easy to reproduce, test, and integrate into systems with various energy requirements and size restrictions.
机译:能量收集设备已经证明了它们能够为无线传感器网络提供电力自主的能力。然而,由于它们依赖于非常特定的环境条件,例如特定频率的振动,直射阳光或局部温差,因此业界采用这种供电解决方案具有挑战性。动态热电收集已显示通过根据时间温度波动创建局部空间温度梯度来扩展热电发电机的适用性。在此,介绍了一种用于这种设备的原型制作或短期生产的简单方法。它基于绝缘容器的设计和3D打印,以封装形式插入相变材料以及使用商用热电发电机。演示了这种干式组装方法的简单性。使用不锈钢和塑料相变材料封装以及商用TEG,制造出两个具有双层绝缘结构的原型设备。在±25°C的温度循环下进行的性能测试表明,设备总质量分别为69和50 g,能量输出分别为43.6和32.1J。在多个温度循环下的测试证明了此类器件的可靠性和性能可重复性。所提出的方法解决了在动态热电收集器的最终组装期间需要湿台的复杂性。它允许根据特定的尺寸,能量和绝缘几何形状要求进行设计和定制。这很重要,因为它使动态采集原型可以广泛使用,并且易于复制,测试和集成到具有各种能量要求和尺寸限制的系统中。

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