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首页> 外文期刊>Journal of the Brazilian Society of Mechanical Sciences and Engineering >Improving the performance of a thermoelectric generator system utilizing the thermal energy of air compressed in the compressor of a turbocharged tractor based on different-sized modules
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Improving the performance of a thermoelectric generator system utilizing the thermal energy of air compressed in the compressor of a turbocharged tractor based on different-sized modules

机译:利用基于不同尺寸模块的涡轮增压拖拉机压缩机中压缩空气的热能,提高热电发电机系统的性能

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The present study includes a numerical analysis on the electrical power output of a thermoelectric generator system placed between the compressor and intercooler of a turbocharged tractor. While thermal energy of exhaust gases is used in thermoelectric generators of automobiles in the current literature, in this study, in contrast, the thermal energy of the compressed air in the compressor was used in the thermoelectric generator. This constituted the authenticity of the present study. In addition, the effect of cross-sectional areas of p- and n-type thermoelements on the energy conversion from thermal to electrical was investigated. To that end, numerical analyses of three different modules, the TGM-199-1.4-2.0 (commercial module), the TGM-199-1.5-2.0 (designed module), and the TGM-199-1.6-2.0 (designed module) were conducted; these were also comprised of the identical number of thermocouples. As a result of numerical analyses, for the TGM-199-1.6-2.0 module, the increase in the electrical current was found to be 14.67 at R-r = 0.75; 15.4 at R-r = 1; 15.95 at R-r = 1.25; and 16.2 at R-r = 1.5 in comparison with the TGM-199-1.4-2.0 commercial module. Additionally, it was determined that the thermal efficiency values of the TGM-199-1.4-2.0 module were greater than those of the TGM-199-1.5-2.0 and TGM-199-1.6-2.0 modules. In the turbocharged tractor with the assembled thermoelectric generator, the temperature of the air coming out of the intercooler was decreased by 4.27 at 268 K outdoor temperature, in comparison with the one without the thermoelectric generator (for R-r = 1.25). This decrease was determined to be 4.34 for the TGM-199-1.5-2.0 and 5.22 for the TGM-199-1.6-2.0, which indicates a specific enhancement of engine performance.
机译:本研究包括对放置在涡轮增压拖拉机压缩机和中冷器之间的热电发电机系统的电功率输出进行数值分析。在目前的文献中,废气的热能用于汽车的热电发电机,而在本研究中,相比之下,压缩机中压缩空气的热能用于热电发电机。这构成了本研究的真实性。此外,还研究了p型和n型热能元件的横截面积对热能到电能转换的影响。为此,对TGM-199-1.4-2.0(商用模块)、TGM-199-1.5-2.0(设计模块)和TGM-199-1.6-2.0(设计模块)三个不同模块进行了数值分析;它们也由相同数量的热电偶组成。数值分析结果显示,TGM-199-1.6-2.0模块在R-r = 0.75时电流增加14.67%;R-r = 1 时为 15.4%;R-r = 1.25 时为 15.95%;与TGM-199-1.4-2.0商用模块相比,R-r = 1.5时为16.2%。此外,还确定TGM-199-1.4-2.0模块的热效率值大于TGM-199-1.5-2.0和TGM-199-1.6-2.0模块的热效率值。在带有组装热电发电机的涡轮增压拖拉机中,从中冷器出来的空气温度降低了4。在 268 K 室外温度下为 27%,与没有热电发电机的温度相比(R-r = 1.25)。TGM-199-1.5-2.0 和 TGM-199-1.6-2.0 的下降幅度分别为 4.34% 和 5.22%,这表明发动机性能得到了特定提升。

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