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Advanced engine dynamics using MBS: Application to twin-cylinder boxer engines

机译:使用MBS的高级发动机动力学:应用于双缸水平对置发动机

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Engine simulation is an important issue to design mechanical components and to reduce the development cost of new vehicles. Dynamic simulations of a twin-cylinder boxer engine are carried out with rigid and flexible multibody models using the finite element approach. In a first step, simulations of the engine running at constant revolution speed (4000 rpm) are done taking advantages of the actual geometry of engine parts coming from CAD models. Forces due to the gas pressure are added in the simulation to calculate more precisely the load applied on each engine part. A mixed model is developed; pistons and connecting rods are considered as rigid bodies while the crankshaft is meshed with flexible brick elements. With this model, calculation of crankshaft stresses and displacements is possible. Then, simulations are made with engine speed variations to evaluate the effect of inertia. Due to the complex shape of the crankshaft, the CPU time and computer resources can be important. As simulations with a variable rotation speed have to be carried out on a larger number of engine revolutions, it becomes difficult to work with the fully detailed crankshaft geometry. So, simplified models (a tridimensional model with simplified geometry and a beam model) of the crankshaft are developed and compared. These models are first validated with different tests including results of constant speed flexible simulations.
机译:发动机仿真是设计机械部件并降低新车开发成本的重要问题。使用有限元方法,使用刚性和柔性多体模型对双缸平角式发动机进行动态仿真。第一步,利用CAD模型得出的发动机零件的实际几何形状,对以恒定转速(4000 rpm)运行的发动机进行了仿真。在模拟中添加了由气压引起的力,以更精确地计算施加在每个发动机部件上的负载。开发了一个混合模型;活塞和连杆被视为刚性物体,而曲轴则与柔性砖形元件啮合。使用此模型,可以计算曲轴应力和位移。然后,通过发动机转速变化进行仿真,以评估惯性的影响。由于曲轴的形状复杂,因此CPU时间和计算机资源可能很重要。由于必须在较大数量的发动机转数上执行具有可变转速的模拟,因此很难使用完全详细的曲轴几何形状。因此,开发并比较了曲轴的简化模型(具有简化几何形状的三维模型和梁模型)。这些模型首先通过不同的测试进行了验证,包括恒速灵活仿真的结果。

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