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首页> 外文期刊>Journal of Electronic Materials >Reliable Thermoelectric Module Design under Opposing Requirements from Structural and Thermoelectric Considerations
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Reliable Thermoelectric Module Design under Opposing Requirements from Structural and Thermoelectric Considerations

机译:来自结构和热电考虑的反对要求下可靠的热电模块设计

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摘要

Structural reliability of thermoelectric generation (TEG) systems still remains an issue, especially for applications such as large-scale industrial or automobile exhaust heat recovery, in which TEG systems are subject to dynamic loads and thermal cycling. Traditional thermoelectric (TE) system design and optimization techniques, focused on performance alone, could result in designs that may fail during operation as the geometric requirements for optimal performance (especially the power) are often in conflict with the requirements for mechanical reliability. This study focused on reducing the thermomechanical stresses in a TEG system without compromising the optimized system performance. Finite element simulations were carried out to study the effect of TE element (leg) geometry such as leg length and cross-sectional shape under constrained material volume requirements. Results indicated that the element length has a major influence on the element stresses whereas regular cross-sectional shapes have minor influence. The impact of TE element stresses on the mechanical reliability is evaluated using brittle material failure theory based on Weibull analysis. An alternate couple configuration that relies on the industry practice of redundant element design is investigated. Results showed that the alternate configuration considerably reduced the TE element and metallization stresses, thereby enhancing the structural reliability, with little trade-off in the optimized performance. The proposed alternate configuration could serve as a potential design modification for improving the reliability of systems optimized for thermoelectric performance.
机译:热电发电(TEG)系统的结构可靠性仍然是一个问题,特别是对于大规模工业或汽车废热回收的应用,其中TEG系统受到动态载荷和热循环。传统的热电(TE)系统设计和优化技术,专注于性能,可能导致在运行期间可能失效的设计,因为最佳性能的几何要求(特别是电源)通常与机械可靠性的要求发生冲突。本研究专注于减少TEG系统中的热机械应力,而不会影响优化的系统性能。进行有限元模拟,以研究Te元素(腿)几何形状,例如腿长和横截面形状在约束材料体积要求下的影响。结果表明,元素长度对元素应力产生了重大影响,而常规横截面形状具有轻微的影响。基于Weibull分析的脆性材料故障理论评估TE元件应力对机械可靠性的影响。研究了依赖于冗余元件设计行业实践的替代耦合配置。结果表明,替代配置显着降低了TE元件和金属化应力,从而提高了结构可靠性,在优化的性能下具有很少的折衷。所提出的替代配置可以用作提高用于热电性能优化的系统可靠性的潜在设计修改。

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