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Computationally efficient approach for simulation of multibody and hydraulic dynamics

机译:多体和液压动力学仿真的计算上的高效方法

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摘要

A realistic real-time simulation of a complex system, such as an excavator, requires detailed description of the machinery and its components. To take into account the dynamics of entire systems, the model must encompass descriptions of non-mechanical systems, such as hydraulics. For the multibody systems, use of the semi-recursive methods has often been found to be the most efficient solution when the system size increases. For the hydraulic dynamics, in turn, the recently introduced application of the singular perturbation method is a potential candidate for the real-time applications. The main benefit of the application of the singular perturbation method over the conventionally used lumped fluid method is that it overcomes the challenges that the lumped fluid method encounters when numerical stiffness caused by small hydraulic volumes is present in the circuit. Objective of this paper is to improve a recently proposed monolithic formulation for the combined simulation of multibody and hydraulic dynamics via the introduction of the singular perturbation method. Results indicate that the proposed method improves efficiency and robustness when compared to the formulation proposed earlier. (C) 2018 Elsevier Ltd. All rights reserved.
机译:诸如挖掘机的复杂系统的现实实际模拟需要详细描述机械及其组件。要考虑到整个系统的动态,该模型必须包括非机械系统的描述,例如液压系统。对于多体系系统,通常发现使用半递归方法是当系统尺寸增加时最有效的解决方案。反过来,对于液压动态,依次引入的奇异扰动方法的应用是实时应用的潜在候选者。奇异扰动方法在常规使用的集总体流体方法中施加奇异扰动方法的主要益处是它克服了当电路中小液压容积引起的数值刚度时遇到的簇液法遇到的挑战。本文的目的是通过引入奇异扰动方法,改善最近提出的单层和液压动力学的组合模拟。结果表明,与前面提出的制剂相比,该方法提高了效率和鲁棒性。 (c)2018年elestvier有限公司保留所有权利。

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