内燃机进气管内流动的模拟

A. Zaidi
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引用次数: 0

摘要

对典型内燃机弯曲进气歧管在雷诺数湍流范围内的流动特性进行了数值模拟研究。在内燃机中,紊流是保证空气和燃料良好混合以及空气-燃料混合物在歧管和汽缸内均匀分布的必要量。在目前的分析中,模拟仅限于内燃机进气歧管中流体扩散的研究。研究的重点是确定速度分布(或湍流产生)对内燃机进气歧管内流体扩散的影响。进气歧管内流体扩散对发动机后期燃烧起着至关重要的作用。模拟时采用k-omega湍流模型。选取了16000、33000、50000三个雷诺数,并将匀速剖面的结果与抛物线剖面的结果进行了比较。涡度和速度等面表明,流体雷诺数增大了流体的扩散。此外,对于每个雷诺数,在流体入口添加抛物线剖面可以使流体分布更均匀。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of Flow in the Intake Pipe of an Internal Combustion Engine
Numerical Simulations are done to study the flow characteristics associated with the curved intake manifold of a typical internal combustion engine at turbulent range of Reynolds Number. In Internal Combustion engines, turbulence is an essential quantity for good mixing of air and fuel and uniform distribution of air-fuel mixture in both the manifold and the cylinder. In present analysis, simulations are limited to study of spreading of fluid in the intake manifold of internal combustion engine. The main focus is to identify the effects of velocity profile (or turbulence generation) on the spreading of fluid in the intake manifold of internal combustion engine. Fluid spreading in intake manifold plays a critical role in combustion at later stage. For simulations, k-omega turbulence model is used. Three Reynolds Number i.e. 16000, 33000, 50000 are selected and the results for uniform velocity profile are compared with the parabolic profile. Iso-surfaces of vorticity and velocity showed that the spreading of fluid is augmented by the fluid Reynolds Number. Furthermore, for each Reynolds Number adding parabolic profile to the fluid inlet enables more uniform distribution of fluid.
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