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Electrodeposition preparation and optimization of fan-shaped miniaturized radioisotope thermoelectric generator

机译:扇形微型放射性同位素热电发生器的电沉积制备及优化

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摘要

In view of the current energy demand for miniaturized equipment in extreme environmental fields, such as in deep space exploration. A new fan-shaped radioisotope thermoelectric generator is innovatively presented and designed. Thin-film thermoelectric materials used for miniaturized radioisotope thermoelectric generators are first prepared by electrochemical methods. The prepared fan-shaped radioisotope thermoelectric generator has a volume of 5.75 cm~3 and consists of 8 thermoelectric modules and 32 thermoelectric legs. The study finds that when a 1.5 W heat source is loaded, the temperature difference of the device is 54.8 K, the output voltage and the maximum output power is 174.88 mV and 333.20 nW, respectively. On this basis, the number and size of the modules are optimized by the finite element method. When the thermoelectric leg size is optimized to 9 × 2 mm~2 and the number of modules is 8, the maximum output power can be up to 369.02 nW. The corresponding experimental verification work is further developed and discussed. This work provides a novel solution for the energy supply problem of small-volume devices in extreme space environments.
机译:鉴于当前在极端环境领域(例如深空探测)中对小型设备的能源需求。创新地展示和设计了一种新型的扇形放射性同位素热电发生器。首先通过电化学方法制备用于小型化放射性同位素热电发生器的薄膜热电材料。所制备的扇形放射性同位素热电发生器体积为5.75cm〜3,由8个热电模块和32个热电腿组成。研究发现,当加载1.5 W热源时,设备的温差为54.8 K,输出电压和最大输出功率分别为174.88 mV和333.20 nW。在此基础上,通过有限元方法优化模块的数量和尺寸。当热电支脚尺寸优化为9×2 mm〜2且模块数为8时,最大输出功率可高达369.02 nW。相应的实验验证工作将进一步发展和讨论。这项工作为极端空间环境中小体积设备的能源供应问题提供了一种新颖的解决方案。

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