Analysis of the Effects of Path Properties on Autonomous Motion Control of a Hydraulic Tracked Vehicle

Teemu Mononen, M. M. Aref, J. Mattila
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引用次数: 2

Abstract

Mobile working machines have recently been developed towards field robotics systems that are more self-aware, intelligent, autonomous and energy-efficient. Such autonomy can offer advantages in, for example, construction sites, where a number of tasks involve accurate path following. From the robotic viewpoint, a mobile robot is supposed to follow the desired values perfectly to remain on a certain path as long as its localization provides the necessary pose feedback. In field robotics, especially in the cases of hydraulic working machines, there are nonlinear system dynamics affecting the mobile platform, which makes accurate motion control challenging. The sources of these nonlinearities can be the internal system dynamics or environmental effects. Due to the use of generic autonomous motion planning and control methods in the existing literature, there are certain effects of hydrostatic driveline on the system that have been overlooked. To fill such a gap, this paper first analyzes and points out the effects of geometrical path properties on the performance of hydraulic actuators in path-following control. Then, using a closed-loop model of a skid-steered vehicle with hydraulic propulsion, we show simulation results with the machine following paths with different curvatures around an obstacle. Analysis of the results show the significant role of the system dynamics in shifting the optimal path when the dynamics of the driveline and terrain contact are included.
路径特性对液压履带车辆自主运动控制的影响分析
最近,移动工作机器朝着更具有自我意识、智能、自主和节能的现场机器人系统发展。这种自主性可以提供优势,例如,在建筑工地,许多任务需要精确的路径跟踪。从机器人的角度来看,只要移动机器人的定位提供了必要的姿态反馈,它就应该完美地遵循期望的值,保持在特定的路径上。在现场机器人中,特别是在液压作业机械中,存在影响移动平台的非线性系统动力学,这给精确的运动控制带来了挑战。这些非线性的来源可以是内部系统动力学或环境影响。由于现有文献中使用了通用的自主运动规划和控制方法,静压传动系统对系统的某些影响被忽视了。为了填补这一空白,本文首先分析和指出了路径跟踪控制中几何路径特性对液压执行器性能的影响。然后,利用液压推进的滑动导向车辆的闭环模型,我们展示了机器沿着不同曲率的路径绕过障碍物的仿真结果。分析结果表明,当考虑传动系统动力学和地形接触时,系统动力学对最优路径的转移起着重要作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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