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Modeling and simulation of an M1 Abrams tank with advanced track dynamics and integrated virtual diesel engine

机译:具有先进轨道动力学和集成虚拟柴油发动机的M1艾布拉姆斯坦克坦克的建模和仿真

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New capabilities for simulating a tracked vehicle are presented, including an advanced dynamic track model, a high-fidelity diesel engine system model, and an integration scheme to perform a coupled simulation of vehicle/powertrain dynamics. These capabilities are essential for understanding the interplay of vehicle dynamics and powertrain dynamics, including track vibration (and durability), suspension response, and engine performance. The dynamic track model considers the track as an equivalentcontinuum and captures longitudinal and transverse track vibrations, static sag, and superposed translation. A low-order discrete model is developed by employing modal track coordinates. The continuum approximation for the track is validated throughexperiments on a representative track span. This track model is extended and implemented into a commercial multibody dynamics code-DADS-through development of a new user-support-force element that integrates the track element with the vehicle hull andsuspension system. A range of dynamic track models results that allows one to tailor the degrees of freedom to a selected frequency range of interest in order to balance computational cost and accuracy. A virtual diesel engine model is developed as a tool to investigate the possible replacement of the current gas turbine engine used in the M1 Abrams tank. This study demonstrates the power of this simulation tool for evaluating new vehicle concepts prior to prototyping and manufacturing. The engine model is developed within the MATLAB/Simulink environment. Therefore, the integrated vehicle/powertrain model requires the coordination of two coupled models that reside in distinct simulation environments. To achieve this integration, a new numericalmethod-referred to as the leading-following approach-is developed, based on an explicit predictor-corrector scheme. This approach allows independent simulation environments to be coupled, offers easy extension to multiple applications, promotes efficientsimulations, and requires only simple implementations of the software interfaces compared to the conventional master-slave integration approach. Numerical examples are reviewed in the paper, to highlight capabilities of the fully integrated simulation ofa diesel-powered M1 tank.
机译:提出了用于模拟履带车辆的新功能,包括先进的动态轨道模型,高保真柴油发动机系统模型以及执行车辆/动力总成动力学耦合仿真的集成方案。这些功能对于理解车辆动力学和动力总成动力学之间的相互作用至关重要,包括轨道振动(和耐久性),悬架响应和发动机性能。动态轨道模型将轨道视为等效连续体,并捕获纵向和横向轨道振动,静态下垂和叠加平移。通过使用模态轨迹坐标来开发低阶离散模型。通过在代表性轨道跨度上的实验来验证轨道的连续近似。通过开发一种新的用户支持力元件,该轨道模型被扩展并实现为商业多体动力学代码DADS,该元件将轨道元件与车辆的船体和悬架系统集成在一起。一系列动态轨道模型可以使自由度适应所选的感兴趣频率范围,从而平衡计算成本和准确性。开发了一个虚拟柴油发动机模型作为一种工具,以研究可能替换M1艾布拉姆斯油箱中使用的当前燃气涡轮发动机的情况。这项研究证明了该仿真工具在原型制造和制造之前评估新车辆概念的能力。引擎模型是在MATLAB / Simulink环境中开发的。因此,集成的车辆/动力总成模型需要协调位于不同仿真环境中的两个耦合模型。为了实现这种集成,基于显式的预测器校正器方案,开发了一种新的数值方法(称为超前跟踪方法)。与传统的主从集成方法相比,此方法允许耦合独立的仿真环境,可轻松扩展到多个应用程序,促进高效的仿真,并且仅需要软件接口的简单实现即可。本文对数值示例进行了回顾,以突出柴油动力M1储罐的完全集成仿真功能。

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