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Waste heat recovery of diesel engine using porous medium-assisted thermoelectric generator equipped with customized thermoelectric modules

机译:使用配有定制热电模块的多孔介质辅助热电发电机回收柴油机余热

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摘要

In this study, thirty of customized bismuth-telluride (Bi2Te3) thermoelectric modules (TEMs) were fabricated for waste heat recovery of a diesel engine using a thermoelectric generator (TEG). By installing a plate-type porous medium whose porosity ranges from 0.121 to 0.516 in the TEG, the effects of the porosity on energy harvesting performance were investigated. Experimental results show that at the highest engine rotation speed of 1400 rpm, a maximum power output of 98.3 W was obtained using the lowest porosity (0.121), and a maximum energy conversion efficiency of 2.83% was obtained using the optimal porosity (0.416). The most significant improvements in the power output and conversion efficiency compared with the base case without porous media were 44.5% and 10.1% with porosities of 0.121 and 0.416, respectively, at the lowest engine speed of 1000 rpm. We concluded that the conversion efficiency and power output of the present TEG can be maximized via application of porous media with porosities of 0.461 and 0.32, respectively. The use of a porous medium with a porosity of < 0.32 in the present TEG configuration should be avoided, as the backpressure would exceed the allowable limit of similar to 3 kPa for a passenger vehicle.
机译:在这项研究中,制造了三十个定制的碲化铋(Bi2Te3)热电模块(TEM),用于使用热电发电机(TEG)回收柴油机的余热。通过在TEG中安装孔隙率为0.121到0.516的板状多孔介质,研究了孔隙对能量收集性能的影响。实验结果表明,在最高发动机转速1400 rpm时,使用最低孔隙率(0.121)可获得98.3 W的最大功率输出,而使用最佳孔隙率(0.416)可获得的最大能量转换效率为2.83%。与没有多孔介质的基本情况相比,在最低转速为1000 rpm的情况下,孔隙率分别为0.121和0.416时,功率输出和转换效率的最显着改善分别为44.5%和10.1%。我们得出的结论是,通过使用孔隙率分别为0.461和0.32的多孔介质,可以使当前TEG的转换效率和功率输出最大化。在当前的TEG配置中,应避免使用孔隙率<0.32的多孔介质,因为背压将超过类似于乘用车3 kPa的允许极限。

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