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Performance Investigation of an Exhaust Thermoelectric Generator for Military SUV Application

机译:军用SUV用排气热电发电机的性能研究

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To analyze the thermoelectric power generation for sports utility vehicle (SUV) application, a novel thermoelectric generator (TEG) based on low-temperature Bi 2 Te 3 thermoelectric modules (TEMs) and a chaos-shaped brass heat exchanger is constructed. The temperature distribution of the TEG is analyzed based on an experimental setup, and the temperature uniformity optimization method is performed by chipping peak off and filling valley is taken to validate the improved output power. An automobile exhaust thermoelectric generator (AETEG) using four TEGs connected thermally in parallel and electrically in series is assembled into a prototype military SUV, its temperature distribution, output voltage, output power, system efficiency, inner resistance, and backpressure is analyzed, and several important influencing factors such as vehicle speed, clamping pressure, engine coolant flow rate, and ambient temperature on its output performance are tested. Experimental results demonstrate that higher vehicle speed, larger clamping pressure, faster engine coolant flow rate and lower ambient temperature can enhance the overall output performance, but the ambient temperature and coolant flow rate are less significant. The maximum output power of AETEG is 646.26 W, the corresponding conversion efficiency is 1.03%, and the increased backpressure changes from 1681 Pa to 1807 Pa when the highest vehicle speed is 125 km/h.
机译:为了分析运动型多功能车(SUV)的热电发电,构建了一种基于低温Bi 2 Te 3热电模块(TEM)和混沌形黄铜热交换器的新型热电发电机(TEG)。根据实验装置分析了TEG的温度分布,并通过削峰和填充谷来执行温度均匀性优化方法,以验证改进后的输出功率。一种汽车排气热电发电机(AETEG),它使用四个热并联并串联的TEG组装成军用SUV原型,分析了其温度分布,输出电压,输出功率,系统效率,内阻和背压,并分析了其中的几个测试了重要的影响因素,例如车速,夹紧压力,发动机冷却液流速和环境温度对其输出性能的影响。实验结果表明,较高的车速,较大的夹紧压力,更快的发动机冷却液流速和较低的环境温度可以提高总体输出性能,但环境温度和冷却液流速却不那么重要。 AEEEG的最大输出功率为646.26 W,相应的转换效率为1.03%,并且当最高车速为125 km / h时,增加的背压从1681 Pa变为1807 Pa。

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