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Studies on the Effect of In-Cylinder Charge Stratifications on High Load HCCI Combustion

机译:气缸电荷分层对高负荷HCCI燃烧影响的研究

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The objective of this article is to clarify the effect of thermal and equivalence ratio stratification on Homogeneous Charge Compression Ignition (HCCI) combustion under several conditions with three-dimensional computational fluid dynamics (3D CFD). Reynolds Averaged Navier-Stokes (RANS) simulation was used to calculate in-cylinder fluid dynamics. The 3D CFD simulation is also coupled with detailed chemical reaction to calculate HCCI combustion. First, the study with a simple engine model reveals that thermal stratification is more effective for prolonged combustion duration, which is a key factor for a high load limit of HCCI combustion, than equivalence ratio stratification. Thermal stratification has two-stage combustion: the combustion propagates from hot region slowly at first and then ignites in the entire in-cylinder region. Owing to this phenomenon, thermal stratification is more effective to mitigate HCCI combustion. Furthermore, thermal stratification enables combustion efficiency to be maintained: combustion efficiency would be a problem to relieve HCCI combustion by intake charge stratification. Second, the study with a detailed engine model was conducted to evaluate the improvement of the high load limit and thermal efficiency under the constraint of the maximum in-cylinder pressure and the pressure rise rate. In the second study, mixture stratification was produced by inducting hot and cold intake mixture from respective intake ports. The result shows that the temperature of in-cylinder hot gas region plays an important role to extend the high load limit of HCCI combustion.
机译:本文的目的是阐明在具有三维计算流体动力学(3D CFD)的若干条件下的均匀电荷压缩点火(HCCI)燃烧对热和等效比分层的影响。 Reynolds平均Navier-Stokes(RANS)模拟用于计算缸内流体动力学。 3D CFD模拟还与详细的化学反应相结合,以计算HCCI燃烧。首先,具有简单发动机模型的研究表明,热分层对长期燃烧持续时间更有效,这是HCCI燃烧高负荷限制的关键因素,而不是对等当量分层。热分层具有两级燃烧:燃烧首先从热区域传播,然后在整个缸内区域中点燃。由于这种现象,热分层更有效地减轻HCCI燃烧。此外,热分层使得能够保持燃烧效率:燃烧效率是通过进气电荷分层缓解HCCI燃烧的问题。其次,进行了具有详细发动机模型的研究,以评估在最大缸内压力和压力上升速率的约束下提高高负荷限制和热效率。在第二种研究中,通过从各自的进气口诱导热和冷进气混合物来制备混合分层。结果表明,缸内热气体区域的温度起到延长HCCI燃烧的高负荷极限的重要作用。

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