Stationary thermal-gas-dynamics of flows in the cylinder and exhaust system of a piston engine

L. Plotnikov, V. Shurupov, V. Slednev, D. Davydov, D. Krasilnikov
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Abstract

THE PURPOSE. To evaluate the influence of the exhaust manifold design on gas dynamics and heat transfer of stationary, turbulent gas flows in the cylinder and the exhaust system of a reciprocating internal combustion engine for different boundary conditions based on physical and mathematical modeling.METHODS. The study of gas dynamics and heat transfer of flows was carried out using the CFD approach in specialized Russian-made software. The simulation was performed for a pressure drop from 0.15 to 40 kPa (the flow velocity at the outlet of the system was 10-130 m/s). The k-e turbulence model was used for modeling. The computational grid consisted of 610,000 cells. The design change consisted in the use of profiled channels with cross sections in the form of a circle (diameter 30 mm), a square (side 30 mm) and a triangle (side 52 mm).RESULTS. The article describes the mathematical model, the studied geometry of the exhaust system and the analysis of the obtained data. The velocity field, isolines of equal velocities, and tangential velocity vectors were chosen as the gas-dynamic characteristics of the flow. The gas dynamics in the longitudinal section of the exhaust system and the valve, as well as the visualization of the flow structure in 4 control sections along the length of the exhaust system, were analyzed. The heat transfer coefficient in the exhaust system was used to evaluate the heat transfer characteristics of the flow. Qualitative and quantitative differences in gas dynamics and heat transfer processes are shown.CONCLUSION. It has been established that there are common gas-dynamic effects during the flow of gas in different elements of the exhaust system. The evolution of the flow structure along the length of the exhaust system is shown based on the change in the velocity field, isolines of equal velocities, and tangential velocity vectors. The vortex structures formed in the valve assembly and the corners of the profiled channels are revealed. It has been established that the use of profiled channels in the exhaust system leads to a decrease in the heat transfer coefficient by 5 to 12%.
活塞式发动机气缸和排气系统内流动的静止热-气动力学
的目的。在物理和数学建模的基础上,评价不同边界条件下排气歧管设计对往复式内燃机汽缸内静止、湍流气流和排气系统的气体动力学和传热的影响。在俄罗斯专门的软件中使用CFD方法进行了气体动力学和流动传热的研究。在压力降为0.15 ~ 40 kPa(系统出口流速为10 ~ 130 m/s)范围内进行模拟。采用k-e湍流模型进行建模。计算网格由610,000个单元组成。设计变化包括使用截面为圆形(直径30毫米)、正方形(边长30毫米)和三角形(边长52毫米)的异形通道。本文介绍了排气系统的数学模型、研究的几何结构以及所得数据的分析。选取速度场、等速等值线和切向速度矢量作为流动的气动力特征。分析了排气系统纵断面和气门内的气体动力学,以及沿排气系统长度方向的4个控制断面的流动结构的可视化。利用排气系统的换热系数来评价气流的换热特性。气体动力学和传热过程的定性和定量差异。研究表明,在排气系统中不同元件的气体流动过程中,存在着共同的气体动力学效应。根据速度场、等速等值线和切向速度矢量的变化,显示了沿排气系统长度流动结构的演变。揭示了气门组件和异形通道角处形成的涡结构。已经确定,在排气系统中使用异形通道可使传热系数降低5%至12%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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