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Thermoelectric System Economics - The Apex: New Paradigms in Manufacturing and Interface Performance Relationships Driving System Cost Optimizations

机译:热电系统经济学 - 顶点:制造和界面性能关系的新范式驱动系统成本优化

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Thermoelectric energy recovery systems require cost-optimized designs with high thermal and thermoelectric (TE) performance to surmount common commercialization barriers controlling the acceptance of thermoelectric generator (TEG) systems. Recent work has addressed this requirement with new analytic tools and paradigms that allow integrated TEG cost-performance analysis and optimization. New work herein has identified the existence of optimized TE element design (i.e., TE element length) for minimizing TEG cost and provides design guidelines associated with critical thermal and electrical contact resistance effects and TE manufacturing sensitivities. Once optimum hot-side heat flux criteria are satisfied, this work highlights the tradeoffs between interface resistance effects and manufacturing cost effects in determining optimum-cost TE element lengths, and then quantifies the increase in optimum-cost TE lengths as manufacturing costs become more sensitive to TE element lengths. Optimized TE element design criteria and key nondimensional design parameters (i.e., [C'"LTE/C"], [κTECON], [ρcon/(ρTE,aveLTE)]) driving the design are presented and explained showing the interdependencies between manufacturing cost parameters and thermal and electrical interface impacts on integrated TE cost-performance analysis and design. Comprehensive TEG system cost-performance relationships clearly demonstrate the two parameters that most greatly impact the TEG system cost are heat exchanger costs ($/(W/K)) and TE hot side heat flux. Reducing heat exhanger cost from $1/(W/K) to $0.5/(W/K) can decrease TEG system cost by $2/W to $4/W depending on TE hot side heat fluxes from 4-10 W/cm2. The impact of TE hot side heat flux on TEG system cost is larger; reducing TE system cost by factors of 2-4 as TE hot side heat flux increases from 4 W/cm2 to high levels around 18 W/cm2. The levels of thermal contact resistance and electrical contact resistance required to even approach the critical TEG system cost level of $1/W are characterized by ρcon = 1.0 x 10-10 Ω-m2 and r = 0.1, respectively. This not only lowers TEG costs, but it also makes the TEG system costs less sensitive to TE manufacturing dependences on TE element length. New design paradigms and relationships create holistic, integrated TE performance-cost models that enhance understanding of crucial interrelationships between component costs, TE design parameters and material properties, heat exchanger design parameters, interfacial heat flux, and now thermal and electrical interface effects in minimizing TEG system costs.
机译:热电能量回收系统需要具有高热和热电(TE)性能的成本优化的设计,以超越控制热电发电机(TEG)系统的普遍商业化障碍。最近的工作已经解决了新的分析工具和范例,允许集成TEG成本性能分析和优化。这里的新工作已经确定了优化的TE元件设计(即TE元件长度),以最小化TEG成本,并提供与临界热电接触电阻效应和TE制造灵敏度相关的设计指南。一旦满足最佳的热侧热通量标准,这项工作突出了接口电阻效应和制造成本效应之间的权衡,在确定最佳成本TE元件长度时,随着制造成本变得更加敏感,可以量化最佳成本TE长度的增加te元素长度。优化的TE元素设计标准和关键的非潜能设计参数(即[C'“L. te / c“],[κ te /κ. con ],[ρ con /(ρ. te,ave L. te )])提出和解释了驾驶设计,并说明了制造成本参数和热电接口影响对集成TE成本性能分析和设计之间的相互依赖性。全面的TEG系统成本性能关系清楚地证明了最大影响TEG系统成本的两个参数是热交换器成本($ /(w / k))和te热侧热通量。从$ 1 /(w / k)降至0.5美元/(w / k)的热力供电费用可以将TEG系统的成本降低2美元至4 / w,具体取决于4-10 W /的TE热侧热量通量厘米 2 。 TE热侧热通量对TEG系统成本的影响更大;通过2-4的因素减少TE系统成本,因为TE热侧热通量从​​4 W / cm增加 2 高级别约为18厘米/厘米 2 。甚至接近临界TEG系统成本水平为1 / w所需的热接触电阻和电接触电阻的水平特征在于ρ con = 1.0 x 10 -10 ω-M. 2 和r = 0.1分别。这不仅降低了TEG成本,而且还使TEG系统对TE元素长度的制造依赖性不太敏感。新的设计范式和关系创造了整体,集成的TE性能 - 成本模型,可以增强元件成本,TE设计参数和材料特性,热交换器设计参数,界面热量通量以及现在热电界面效应在最小化TEG中的热和电接口效果的关键相互关系的理解系统成本。

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