首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part K: Journal of Multi-body Dynamics >Efficient modelling and analysis for crankshaft three-dimensional vibrations under firing conditions
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Efficient modelling and analysis for crankshaft three-dimensional vibrations under firing conditions

机译:点火条件下曲轴三维振动的高效建模与分析

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The three-dimensional vibrations of an engine crankshaft system under firing conditions were investigated by simple modelling and analysis using the dynamic stiffness matrix method (DSMM). In the analyses, the authors took account of the dynamic behaviour of cylinder block, oil film and torsional damper. To simplify the analyses, the crankshaft was idealized by a set of jointed structures consisting of simple round rods and simple beam blocks of rectangular cross-section. The main journal bearings were idealized by a set of linear springs and dash-pots, and the flywheel was modelled by finite elements. Then the dynamic stiffness matrix (DSM) was derived in closed form for each constituent member.To eliminate the complicated finite element method (FEM) analysis for a cylinder block of complicated structure [1,2], the authors derived the dynamic stiffness matrix from the inverse matrix of the compliance matrix. Here, the compliance matrix was derived in analytical form from the modal parameters obtained from a series of hammering tests. Finally, the dynamic stiffness matrix was constructed for the total engine system consisting of the crankshaft system and the cylinder block.The three-dimensional vibrations of the crankshaft system and cylinder block surface vibrations near the main bearings under firing conditions were calculated for an automobile diesel engine in which five kinds of solid pulley, each with different masses and moments of inertia, and a torsional damper were attached to the crankshaft. The calculated results were compared with the experimental results.
机译:通过简单的建模和使用动态刚度矩阵法(DSMM)进行分析,研究了发动机曲轴系统在点火条件下的三维振动。在分析中,作者考虑了气缸体,油膜和扭转阻尼器的动态特性。为了简化分析,曲轴通过一组由简单的圆杆和简单的矩形截面梁块组成的接合结构实现了理想化。主轴颈轴承由一组线性弹簧和减震器理想化,而飞轮则由有限元建模。然后,为每个组成构件以封闭形式导出动态刚度矩阵(DSM)。为消除复杂结构的气缸体的复杂有限元方法[FEM] [1,2],作者从以下公式导出了动态刚度矩阵:顺从矩阵的逆矩阵。在此,从一系列锤击测试获得的模态参数以分析形式导出了柔度矩阵。最后,建立了由曲轴系统和气缸体组成的整个发动机系统的动态刚度矩阵,并计算了汽车柴油机在点火条件下曲轴系统的三维振动和主轴承附近的气缸体表面振动。发动机上装有五种分别具有不同质量和惯性矩的实心皮带轮和扭力阻尼器。将计算结果与实验结果进行比较。

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