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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Multiphase CFD-CHT optimization of the cooling jacket and FEM analysis of the engine head of a V6 diesel engine
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Multiphase CFD-CHT optimization of the cooling jacket and FEM analysis of the engine head of a V6 diesel engine

机译:V6柴油发动机冷却套的多相CFD-CHT优化和发动机盖的有限元分析

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The present paper proposes a numerical methodology aiming at analyzing and optimizing an internal combustion engine water cooling jacket, with particular emphasis on the assessment of the fatigue strength of the engine head. Full three-dimensional CFD and FEM analyses of the conjugate heat transfer and of the thermo-mechanical loading cycles are presented for a single bank of a currently made V6 turbocharged Diesel engine under actual operating conditions. A detailed model of the engine, consisting of both the coolant galleries and the surrounding metal components is employed in both fluid-dynamic and structural analyses to accurately mimic the influence of the cooling system layout on the thermo-mechanical behavior of the engine. In order to assess a proper CFD setup useful for the optimization of the thermal behavior of the engine, the experimentally measured temperature distribution within the engine head is compared to the CFD forecasts. Particular attention is paid to the modeling of the phase transition and of the vapor nuclei formation within the coolant galleries. Thermo-mechanical analyses are then carried out aiming at addressing the design optimization of the engine in terms of fatigue strength. Because of the wide range of thermal and mechanical loadings acting on the engine head, both high-cycle and low-cycle fatigue are considered. An energy-based multi-axial criterion specifically suited for thermal fatigue is employed in the low-cycle fatigue region (i.e. the combustion dome) while well-established multi-axial stress/strain-based criteria are adopted to investigate the high-cycle fatigue regions of the engine head (i.e. the coolant galleries). The proposed methodology shows very promising results in terms of point-wise detection of possible engine failures and proves to be an effective tool for the accurate thermo-mechanical characterization of internal combustion engines under actual life-cycle operating conditions.
机译:本文提出了一种数值方法,旨在分析和优化内燃机水冷套,特别着重于评估发动机缸盖的疲劳强度。给出了在实际工况下对一列当前制造的V6涡轮增压柴油机的共轭传热和热机械负载循环的完整三维CFD和FEM分析。在流体动力学和结构分析中均采用了由冷却剂通道和周围金属成分组成的发动机详细模型,以准确模拟冷却系统布局对发动机热机械性能的影响。为了评估对优化发动机热性能有用的正确CFD设置,将发动机缸盖内实验测量的温度分布与CFD预测进行了比较。要特别注意冷却剂通道内的相变和蒸气核形成的建模。然后进行热力学分析,以解决疲劳强度方面的发动机设计优化问题。由于作用在发动机盖上的热负荷和机械负荷的范围很广,因此要考虑高循环疲劳和低循环疲劳。在低周疲劳区域(即燃烧圆顶)中采用了一种特别适合于热疲劳的基于能量的多轴准则,而采用公认的基于多轴应力/应变的准则来研究高周疲劳发动机缸盖的各个区域(即冷却液通道)。所提出的方法在逐点检测可能的发动机故障方面显示出非常有希望的结果,并被证明是在实际生命周期运行条件下准确地对内燃机进行热机械特性表征的有效工具。

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