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Experimental and CFD Simulation-Based Analytical Optimization of Air-Cooling System for a Small 4-Stroke Scooter Engine

机译:小型4行程踏板车发动机空气冷却系统的实验性和CFD仿真分析优化

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Progressive demand being placed on more efficient and quite engines require engine subsystem to be optimized without compromising their performance. Cooling system is one of the important engine sub system to be optimized to achieve better performance with reduced noise levels and with minimum power consumption. In the present paper an effort is made to optimize a fan-driven air-cooling system for a small 4-stroke scooter engine. Complete three-dimensional analysis has been done with commercially available computational fluid dynamics (CFD) codes. Analytical results are validated with the experimental results. A good correlation has been observed between analytical and experimental results. The work is done in two phases. In the first phase, complete flow and heat transfer analysis of the present system has been done. Flow analysis revealed flow blockage, significance of leakage through various parts of the cowling, and separation of the flow inside the vane passages of the fan. In the second phase, the system is modified to minimize the leakages and streamlining the flow inside the cowling. Vane layout of the fan is changed to decrease the fan power consumption and fan loses. Improvement in the efficiency of the cooling system without compromising on engine performance has been achieved. Quantitatively, a decrease of 43% fan power consumption and 3 dB of the noise level have been achieved.
机译:逐步需求放置在更高效,并且相当的发动机需要优化发动机子系统,而不会影响其性能。冷却系统是优化的重要发动机子系统之一,以实现更好的性能,降低噪声水平和最小功耗。在本文中,努力优化用于小型4行程踏板车发动机的风扇驱动的空气冷却系统。已经使用市售的计算流体动力学(CFD)代码完成了完整的三维分析。分析结果用实验结果验证。在分析和实验结果之间观察到良好的相关性。这项工作是两阶段完成的。在第一阶段,已经完成了本系统的完整流动和传热分析。流量分析显示了通过整流罩的各个部分的流动阻塞,泄漏的意义,以及在风扇的叶片通道内的流动分离。在第二阶段,修改系统以最小化泄漏并简化整流罩内的流动。风扇的叶片布局改变为减少风扇功耗和风扇输出。已经实现了在不影响发动机性能的情况下改善冷却系统的效率。定量地,已经实现了43%的风扇功耗和3 dB的噪声水平降低。

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