首页> 外文会议>2002 Spring Technical Conference of the ASME Internal Combustion Engine Division, Apr 14-17, 2002, Rockford, Illinois >SOME BASIC ELEMENTS TO ACHIEVE A FUTURE 1D SIMULATION OF WAVE PROPAGATION IN I.C.E. PIPES
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SOME BASIC ELEMENTS TO ACHIEVE A FUTURE 1D SIMULATION OF WAVE PROPAGATION IN I.C.E. PIPES

机译:在I.C.E.中实现波传播的未来一维模拟的一些基本要素管道

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The assumption of one-dimensional unsteady flows in the inlet and exhaust systems of turbocharged diesel engines is widely used although multi-dimensional simulations using fluid dynamics are also possible. However, difficulties persist concerning the boundary conditions, particularly at the pipe ends (inflow or outflow) and at the ultra-pipe boundary conditions (sudden or gradual area changes, bends, junctions, etc.). This paper focuses on the two first steps leading to a ID flow simulation code: the selection of a numerical scheme and the study of an open end boundary condition. The first section compares several numerical algorithms, including Lax-Wendoff, Flux-Corrected-Transport methods (FCT), and Harten-Lax-Leer (Riemann solver), extended to the second order. The selection criterion is the best compromise between numerical instabilities and computational time. A numerical study using the Fluent CFD code is then presented on a constant area duct in order to determine some characteristics at the pipe end, specifically the dead zone length and the throat area. Finally, a model parameterized by the pressure ratio between inlet and outlet is proposed.
机译:尽管也可以使用流体动力学进行多维模拟,但广泛使用涡轮增压柴油机的进气和排气系统中的一维非稳态流动的假设。但是,在边界条件方面仍然存在困难,特别是在管道末端(流入或流出)和超管道边界条件(突然或逐渐的面积变化,弯曲,交汇处等)。本文重点介绍导致ID流仿真代码的两个第一步:数字方案的选择和开放端边界条件的研究。第一部分比较了几种数值算法,包括扩展到第二阶的Lax-Wendoff,磁通校正的运输方法(FCT)和Harten-Lax-Leer(黎曼求解器)。选择标准是数值不稳定性和计算时间之间的最佳折衷。然后使用Fluent CFD代码对恒定面积的管道进行了数值研究,以确定管道末端的某些特性,特别是死区长度和喉道面积。最后,提出了由入口和出口之间的压力比参数化的模型。

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