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Thermoelectric performance optimization when considering engine power loss caused by back pressure applied to engine exhaust waste heat recovery

机译:考虑因背压施加于发动机废气余热回收而造成的发动机功率损失时的热电性能优化

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A numerical model of a thermoelectric generator (TEG) is developed using the finite element method, and the convective heat-transfer coefficient and back pressure are calculated. The effect of the back pressure on the engine power loss is analyzed at different rotating speeds using GT-POWER simulation software. The optimal thermoelectric performance is analyzed considering the maximum net power output as the optimization objective. Results show that the net power output of the TEG can be considerably higher than the engine-power loss by optimizing the dimensions of the exhaust exchanger. When the rotating speed changes, the optimal height changes slightly; however, the optimal length and width change considerably. Considering the average values of the optimal length and width, the percentage deviation in the net power (approximately 4.2%) is the lowest for the following optimal dimensions: height = 0.005 m, length = 0.68 m, and width = 0.76 m. Further, a design height of less than 0.015 m also is acceptable if the corresponding optimal length and width are chosen, as a relatively high output power can be obtained with dev<10%. In brief, a high net power can be achieved by optimizing the design of the exhaust exchanger, regardless of the change in the rotating speed of the engine. (C) 2017 Elsevier Ltd. All rights reserved.
机译:利用有限元方法建立了热电发电机的数值模型,并计算了对流换热系数和背压。使用GT-POWER仿真软件在不同的转速下分析了背压对发动机功率损耗的影响。以最大净功率输出为优化目标,分析了最佳热电性能。结果表明,通过优化排气热交换器的尺寸,TEG的净功率输出可以大大高于发动机功率损失。当转速变化时,最佳高度略有变化。但是,最佳长度和宽度会发生很大变化。考虑最佳长度和宽度的平均值,对于以下最佳尺寸,净功率的百分比偏差(大约4.2%)最低:高度= 0.005 m,长度= 0.68 m,宽度= 0.76 m。此外,如果选择相应的最佳长度和宽度,则小于0.015 m的设计高度也是可以接受的,因为可以在dev <10%的情况下获得相对较高的输出功率。简而言之,无论发动机转速如何变化,都可以通过优化排气热交换器的设计来获得高的净功率。 (C)2017 Elsevier Ltd.保留所有权利。

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