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Thermoelectric generator characterization at extra-low-temperature difference for building applications in extreme hot climates: Experimental and numerical study

机译:极端炎热气候建筑应用超低温度差异的热电发电机特性:实验和数值研究

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In locations subject to extreme climate and air-conditioned spaces, a temperature gradient is usually present in various parts of air-conditioned buildings. Building envelopes separate the temperature-controlled space indoor and the extreme outdoor climate and the temperature gradients between the two sides of the building envelope drive energy flow. Thermoelectric Generator (TEG) modules can be used to harvest energy due to this thermal gradient to power sensor nodes and other low power applications. At high-temperature differences, these modules perform well, however, many current and future sensors and Internet of Things (IoT) applications in buildings only have access to the Low-Temperature difference. The research described herein focuses on the development of the experimental setup and the numerical model of a characterization test rig in the low-temperature region for a building envelope integrated TEG application in the United Arab Emirates (UAE). This is a field lacking research especially when combined in consideration with the United Arab Emirates (UAE) climatic conditions. Actual experimental results are presented together with the corresponding simulation results. COMSOL Multiphysics (R) computer modelling software was used as a platform to develop and test the model. The model allows a detailed characterization of the TEG in open-circuit and loaded conditions. The experimental work includes Current-Voltage (I-V) tracing and Maximum Power Point Tracking (MPPT) tests on the subject TEG at 10 degrees C temperature deference which is relevant to the expected indoors to outdoors temperature difference in the extreme climate conditions considered in this work. Similar tests were simulated using the computer model and the results were compared to experimental results. Results showed a generation capability of about 18 mW matched load output at 10 degrees C temperature difference. The simulation results were in agreement with the experimental results, root-mean-square deviation was found to be below 5% which is within the acceptable range compared to the available literature. (C) 2020 Elsevier B.V. All rights reserved.
机译:在受极端气候和空调空间的位置,温度梯度通常存在于空调建筑的各个部分中。建筑信封将温度控制的空间和极端户外气候和建筑物包络驱动能量流的两侧之间的温度梯度分开。热电发电机(TEG)模块可用于收获由于该热梯度而收获能量,以电源传感器节点和其他低功率应用。在高温差异下,这些模块表现良好,然而,许多电流和未来的传感器和内容的建筑物中的应用程序(IOT)应用程序只能获得低温差异。本文所述的研究侧重于在阿拉伯联合酋长国(阿联酋)在阿拉伯联合酋长国(阿联酋)的建筑包络集成TEG应用的低温区域中的实验装置和表征试验台的数值模型。这是一个缺乏研究的领域,特别是当与阿拉伯联合酋长国(阿联酋)的气候条件相结合时。实际实验结果与相应的模拟结果一起呈现。 COMSOL MultiphySics(R)计算机建模软件被用作开发和测试模型的平台。该模型允许在开路和加载条件下详细表征TEG。实验性工作包括在10摄氏度的温度下调对象TEG上的电流电压(IV)跟踪和最大功率点跟踪(MPPT)测试,其与在本工作中考虑的极端气候条件下的预期室外差异相关。使用计算机模型模拟类似的测试,结果与实验结果进行比较。结果显示,在10摄氏度的温度差异下的约18兆瓦匹配负载输出的产生能力。仿真结果与实验结果一致,发现根部平均方偏差低于5%,与可接受的文献相比是可接受的范围内。 (c)2020 Elsevier B.v.保留所有权利。

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