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An Extensive Unified Thermo-Electric Module Characterization Method

机译:广泛的统一热电模块表征方法

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摘要

Thermo-Electric Modules (TEMs) are being increasingly used in power generation as a valid alternative to batteries, providing autonomy to sensor nodes or entire Wireless Sensor Networks, especially for energy harvesting applications. Often, manufacturers provide some essential parameters under determined conditions, like for example, maximum temperature difference between the surfaces of the TEM or for maximum heat absorption, but in many cases, a TEM-based system is operated under the best conditions only for a fraction of the time, thus, when dynamic working conditions occur, the performance estimation of TEMs is crucial to determine their actual efficiency. The focus of this work is on using a novel procedure to estimate the parameters of both the electrical and thermal equivalent model and investigate their relationship with the operating temperature and the temperature gradient. The novelty of the method consists in the use of a simple test configuration to stimulate the modules and simultaneously acquire electrical and thermal data to obtain all parameters in a single test. Two different current profiles are proposed as possible stimuli, which use depends on the available test instrumentation, and relative performance are compared both quantitatively and qualitatively, in terms of standard deviation and estimation uncertainty. Obtained results, besides agreeing with both technical literature and a further estimation method based on module specifications, also provides the designer a detailed description of the module behavior, useful to simulate its performance in different scenarios.
机译:热电模块(TEM)越来越多地用作发电的有效替代电池,从而为传感器节点或整个无线传感器网络提供了自主性,尤其是在能量收集应用中。通常,制造商会在确定的条件下提供一些基本参数,例如TEM表面之间的最大温度差或最大吸热,但是在许多情况下,基于TEM的系统只能在最佳条件下运行一小部分因此,当出现动态工作条件时,TEM的性能估算对于确定其实际效率至关重要。这项工作的重点是使用一种新颖的方法来估计电和热等效模型的参数,并研究它们与工作温度和温度梯度的关系。该方法的新颖性在于使用简单的测试配置来刺激模块并同时获取电和热数据,从而在一次测试中获得所有参数。提出了两种不同的电流曲线作为可能的刺激,其使用取决于可用的测试仪器,并在标准偏差和估计不确定性方面定量和定性地比较了相对性能。获得的结果除了与技术文献和基于模块规格的进一步评估方法相吻合外,还为设计人员提供了模块行为的详细描述,有助于在不同情况下模拟其性能。

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