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Finite Element Analysis on Multi-Layer-Steel Cylinder Head Gaskets

机译:多层钢缸盖垫圈的有限元分析

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Sealing system is an important subsystem of modern high-performance engine. Sealing system reliability directly affects the engine operating conditions. Cylinder head gaskets(CHG) sealing system is of the most importance to the engine sealing system, which is not only responsible for sealing chamber, the cooling fluid and lubricating oil passage, for preventing gas leakage, water leakage and oil leakage, but also responsible for force transferring between cylinder head and cylinder body. Basing on nonlinear solution method, the sealing performance of multi-layer-steel cylinder head gaskets to a gasoline engine is studied with the finite element software ABAQUS. The deformations of the cylinder liners and engine block are also considered. By setting up 3D model of cylinder head gaskets sealing system, setting up boundary condition, using gasket elements with load-deflection curves, the distribution of contact stress and strain on the cylinder head gaskets under pretension status and deformations of the engine block are obtained. The stress distribution rules of simulation fitted the experiment data well compared to the experiment result. Results show that: The minimum contact stress of the full bead on the cylinder port is greater than 50MPa and the minimum contact stress of the half bead on the oil hole is greater than 20MPa, which can meet the sealing requirements of the engine. Varied bead structure affects stress and strain distribution of cylinder head gaskets. The bead height has an effect on the contact stress and the bead width has an effect on the contact strain. Cylinder head gaskets also affect the deformations of the engine block, which should be taken into consideration in design.
机译:密封系统是现代高性能发动机的重要子系统。密封系统可靠性直接影响发动机操作条件。气缸盖垫圈(CHG)密封系统对发动机密封系统最为重重,这不仅负责密封室,冷却液和润滑油通道,用于防止气体泄漏,漏水和漏油,还负责用于在气缸盖和缸体之间传输的力。基于非线性溶液方法,研究了多层钢瓶垫到汽油发动机的密封性能与有限元软件ABAQUS研究。还考虑了汽缸衬里和发动机块的变形。通过设定气缸盖垫圈密封系统的3D模型,使用带有负载偏转曲线的垫圈元件的边界条件,获得了在预张紧状态下在气缸盖垫圈上的接触应力和应变的分布和发动机块的变形。与实验结果相比,模拟的应力分配规则拟合了实验数据。结果表明:气缸端口上的全珠的最小接触应力大于50MPa,油孔上半珠的最小接触应力大于20MPa,可以满足发动机的密封要求。各种珠子结构影响气缸盖垫圈的应力和应变分布。珠子高度对接触应力的影响,并且珠宽对接触应变具有效果。气缸盖垫圈也影响发动机块的变形,这应该考虑到设计。

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