排气系统非定常气体流动和绝缘对增压柴油机性能的影响

C.D. Rakopoulos, E.C. Andritsakis, D.T. Hountalas
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引用次数: 27

摘要

采用综合的数字计算机程序对安装在实验室的一台多缸涡轮增压中高速四冲程柴油机的排气和进气系统中的非定常气体流动进行了模拟。该模拟假设发动机管道中的一维时变气体流动,并结合了许多现实的流体动力学,热力学和传热特征。气体流动动力学偏微分方程的特征数学变换解与气缸主室和预室的第一定律分析模型相结合。将模拟结果与发动机的实验性能结果进行了最有利的比较,实验结果包括平均空气消耗率、排气系统各位置的压力历史以及排气系统出口的能量平均温度值。仿真结果还可用于确定各气缸的排气波强度,因为它们是由排气歧管的设计特性所施加的。绘制相关图表,显示气体压力、温度和马赫指数随发动机曲柄角和管道长度的轮廓变化,有助于正确解释所观察到的行为。通过将上述第一定律与第二定律分析概念相结合,对发动机排气系统的流体动力学和传热场进行了详细的模拟,可以对排气系统的绝缘程度对涡轮增压器涡轮前废气的能量和可用性(可用性)含量的影响进行有趣的参数化研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The influence of the exhaust system unsteady gas flow and insulation on the performance of a turbocharged diesel engine

A comprehensive digital computer program is used to simulate the unsteady gas flow in the exhaust and inlet systems of a multi-cylinder, turbocharged, medium-high speed, four-stroke diesel engine installed at the authors' laboratory. The simulation assumes one-dimensional, time-varying gas flow in the engine pipes and incorporates numerous realistic fluid dynamic, thermodynamic and heat-transfer features. The characteristic mathematical transformation solution of the gas-flow dynamics partial differential equations is interfaced with First-Law analysis models of the cylinders main chambers and prechambers. The simulation results are compared most favourably against the engine's experimental performance results, which include mean air consumption rate, pressure histories at various locations on the exhaust system, and energy-mean temperature values at the exit of the exhaust system. The simulation results are also utilized for the determination of the various cylinders' exhaust waves intensity, as they are imposed by the design characteristics of the exhaust manifold. The plotting of relevant charts, showing the contour variation of gas pressure, temperature and Mach index against engine crank angle and pipe length, aids the correct interpretation of the observed behaviour. The detailed simulation of the fluid dynamic and heat-transfer fields in the engine exhaust system, permits an interesting parametric study of the influence of the degree of insulation of the exhaust system on the energy and exergy (availability) content of the exhaust gases before the turbocharger turbine, by coupling the above First-Law with Second-Law analysis concepts.

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