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TESTS AND NUMERICAL SIMULATIONS ON THE THERMAL LOAD OF THE CYLINDER HEAD IN HEAVY-DUTY VEHICLE DIESEL ENGINES

机译:重型车辆柴油发动机中气缸盖热负荷的试验和数值模拟

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The paper has explored the solutions to the thermal overload in the cylinder head of a heavy-duty vehicle 6-cylinder diesel engine and the thermal cracks in the valve-bridge of the engine. The experiments include measuring the temperature of the cylinder head bottom and testing the flow distribution of coolant through the upper nozzles of cylinder head bottom. The follow-up analysis was conducted on the causes of the excessive thermal load of the cylinder head bottom, the thermal cracks in the valve-bridge region, and the rationality of the structure of the water jacket for the cylinder head. The mechanism of the water jacket of cylinder head was further inquired. Then 3-D CFD numerical simulation of water jacket in the sixth cylinder, which is in the worst cooling condition, is performed. To enhance the flow form in water jacket and lower the cost of enhancement, we proposed 4 schemes of water jacket and conducted the numerical simulations to these schemes. It was identified that all these schemes have efficiently improved the flow field in water jacket. In the typical proposed scheme 1 in which 6 nozzles of all the 10 upper nozzles were blocked, the coolant flow rate on the bottom of the water jacket and in the cylinder head valve-bridge region increased by about 68.73%. The measuring results of the cylinder head bottom temperature show that themaximum temperature in the valve-bridge region of cylinder head is reduced by 9.2°C and the temperature gradient reduction is 19.55 percent, suggesting that the thermal load and thermal stress of the studied diesel engine cylinder head has been sienificantlv lowered.
机译:本文探索了重型车辆6缸柴油发动机的气缸头中的热过载的解决方案以及发动机阀桥中的热裂缝。实验包括测量气缸盖的温度底部并测试冷却剂的流动分布通过圆柱体底部的上喷嘴。随访分析对气缸盖底部的过度热负荷的原因,阀桥区域中的热裂纹以及气缸盖的水套结构的合理性。进一步询问气缸盖的水护套的机理。然后,执行在最差的冷却条件下的第六缸中的水护套的3-D CFD数值模拟。为了增强水套中的流动形式并降低增强成本,我们提出了4个水套等方案,并对这些方案进行了数值模拟。鉴定了所有这些方案有效地改善了水夹克中的流场。在典型的提出方案1中,其中所有10个上喷嘴的6个喷嘴被阻断,水护套底部和气缸盖阀桥区域底部的冷却剂流速增加了约68.73%。气缸盖底部温度的测量结果表明,气缸盖的阀桥区域中的最大温度降低了9.2°C,温度梯度减少为19.55%,表明研究了柴油发动机的热负荷和热应力汽缸盖已被索非统计放词降低。

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