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High-Performance Thermoelectric Generators for Field Deployments

机译:用于现场部署的高性能热电发电机

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摘要

Thermoelectric power generation is a reliable energy harvesting technique for directly converting heat into electricity. Recent studies have reported the thermal-toelectrical energy conversion efficiency of thermoelectric generators (TEGs) up to 11% under laboratory settings. However, the practical efficiency of TEGs deployed under real environments is still not more than a few percent. In this study, we provide fundamental insight on the operation of TEGs in realistic environments by illustrating the combinatory effect of thermoelectric material properties, device boundary conditions, and environmental thermal resistivity on TEG performance in conjunction with the module parameters. Using numerical and experimental studies, we demonstrate the existence of a critical heat transfer coefficient that dramatically affects the design and performance of TEGs. Results provide a set of concrete design criteria for developing efficient TEGs that meet the metrics for field deployments. High-performance TEGs demonstrated in this study generated up to 28% higher power and 162% higher power per unit mass of thermoelectric materials as compared to the commercial module deployed for low-grade waste heat recovery. This advancement in understanding the TEG operation will have a transformative impact on the development of scalable thermal energy harvesters and in realizing their practical targets for efficiency, power density, and total output power.
机译:热电发电是一种可靠的能量收集技术,可直接将热量转换为电力。最近的研究报告了在实验室环境下热电发电机(TEG)高达11%的热电能转换效率。然而,在真实环境下部署的TEGS的实际效率仍然不超过百分点。在本研究中,我们通过说明热电材料特性,装置边界条件和环境热阻率结合模块参数,提供了对现实环境中TEGS在现实环境中的操作的根本洞察。使用数值和实验研究,我们证明了临界传热系数的存在,从而显着影响TEGS的设计和性能。结果提供了一套具体的设计标准,用于开发符合现场部署度量的高效TEG。与部署低级废热回收的商业模块相比,本研究中展示的高性能TEG在该研究中产生的功率高达28%,功率高达162%的热电材料功率。理解TEG操作的这种进步将对可扩展的热能收割机的开发具有变革性影响,并实现其实际目标的效率,功率密度和总输出功率。

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