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The Design of Cu-Doped ZnO Thermoelectric Module (Simulation Study)

机译:Cu掺杂ZnO热电模块的设计(仿真研究)

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The p-type semiconductor of Cu-doped ZnO-based thermoelectric material has already been synthesized and studied as an energy harvester. The next challenge is manufacturing the thermoelectric module in the development of thermoelectric as an eco-friendly material in the future. This research aims to investigate the effect of thermoelectric geometric design on the electrical output power and voltage and to recommend the most appropriate thermoelectric geometric design. The design of thermoelectric generator (TEG) includes the determinations of dimension (width, length, and height), number of modules, and semiconductor materials. The simulation used the coupled-field analysis of ANSYS APDL 14.5 in the steady state condition. The p- and n- type thermoelectric material used Cu-doped ZnO and Al-doped ZnO, respectively. The width of element and the number of thermoelectric module were varied to obtain a thermoelectric design, which produces the largest current, power, and voltage. The result of research shows that the t hermoelectric generator with the element widths of 0.94 mm, 1.125 mm, 1.05 mm, and 1.2 mm generates the largest power output and voltage, namely: 0.32 W and 0.89 V, 0.38 W and 0.98 V, 0.45 W and 1.06 V, and 0.52 W and 1.13 V, respectively.
机译:Cu掺杂ZnO的热电材料的p型半导体已经合成并作为能量收割机研究。下一个挑战是在将来的热电开发中制造热电模块,作为生态友好友好的材料。本研究旨在研究热电几何设计对电输出电源和电压的影响,推荐最合适的热电几何设计。热电发电机(TEG)的设计包括确定尺寸(宽度,长度和高度),模块数和半导体材料的确定。仿真在稳态条件下使用了ANSYS APDL 14.5的耦合场分析。 P-和N型热电材料分别使用Cu掺杂的ZnO和Al掺杂的ZnO。改变元件的宽度和热电模块的数量以获得热电设计,其产生最大电流,功率和电压。研究结果表明,T个元素宽度为0.94毫米,1.125毫米,1.05mm,1.2毫米的元件宽度产生最大功率输出和电压,即:0.32 W和0.89 V,0.38W和0.98 V,0.45 W和1.06 V和0.52 W和1.13 V。

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