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Effect of joystick stiffness, movement speed and movement direction on joystick and upper limb kinematics when using hydraulic-actuation joystick controls in heavy vehicles

机译:在重型车辆中使用液压致动操纵杆控件时,操纵杆刚度,移动速度和移动方向对操纵杆和上肢运动学的影响

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Despite the widespread use of hydraulic-actuation joysticks in mobile North American construction, mining and forestry vehicles, the biomechanical effects that joysticks have on their human operators has not been studied extensively. Using nine unskilled joystick operators and a laboratory mock-up with a commonly used North American heavy off-road equipment hydraulic-actuation joystick and operator seat, the purpose of this work was to quantify and compare the effects of three hydraulic-actuation joystick stiffnesses and two movement speeds on upper limb and joystick kinematics as one of the initial steps towards the development of a hydraulic-actuation joystick design protocol. In addition to providing a detailed description of the kinematics of a constrained occupational task, coupled with the corresponding effects of the task on operator upper limb kinematics, results from principal component analysis and ANOVA procedures revealed a number of differences in joystick and upper limb angle ranges and movement curve shapes resulting nom the various joystick stiffness-speed combinations tested. For the most part, these joystick motion alterations were caused by small, insignificant changes in one or more upper limb joint angles. The two exceptions occurred for forward movements of the joystick; the fast speed - light stiffness condition movement pattern shape change was caused primarily by an alteration of the elbow flexion-extension movement pattern. Similarly, the fast speed - normal stiffness condition movement curve shape perturbation - was caused principally by a combination of significant movement curve shape alterations to elbow flexion-extension, external-internal shoulder rotation and flexion-extension of the shoulder. The finding that joystick stiffness and speed alterations affect joystick and upper limb kinematics minimally indicates that the joystick design approach of modelling the joystick and operator upper limb as a closed linkage system should be pursued. This approach would allow one to simulate the upper limb and joystick kinematics that result from virtual changes to upper limb and joystick lengths.
机译:尽管在北美移动式建筑,采矿和林业车辆中广泛使用了液压致动操纵杆,但尚未广泛研究操纵杆对其操作员的生物力学影响。使用九名非熟练的操纵杆操作员和带有北美常用重型越野设备液压致动操纵杆和操作员座椅的实验室模型,该工作的目的是量化和比较三种液压致动操纵杆刚度和上肢和操纵杆运动学上的两种运动速度是开发液压致动操纵杆设计方案的第一步。除了提供对受限职业任务的运动学的详细描述,以及该任务对操作者上肢运动学的相应影响之外,主成分分析和ANOVA程序的结果还显示出操纵杆和上肢角度范围的许多差异以及运动曲线的形状,这是所测试的各种操纵杆刚度-速度组合的标称值。大多数情况下,这些操纵杆运动变化是由一个或多个上肢关节角度的微小变化引起的。操纵杆的向前运动有两个例外。快速-轻度僵硬状态运动模式的形状变化主要是由于肘部屈伸运动模式的改变引起的。类似地,快速运动-正常刚度条件下的运动曲线形状扰动-主要是由于对肘部屈伸,肩膀内外肩旋转和肩膀屈伸进行了明显的运动曲线形状改变而引起的。操纵杆刚度和速度变化对操纵杆和上肢运动学的影响最小,这一发现表明,应该采用将操纵杆和操作员上肢建模为闭合连杆系统的操纵杆设计方法。这种方法将允许模拟由于上肢和操纵杆长度的虚拟变化而导致的上肢和操纵杆运动。

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