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A dynamic simulator for the ergonomics evaluation of powered torque tools for human assembly

机译:用于人体组装动力扭矩工具的人体工程学评估的动态模拟器

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摘要

Purpose - The .purpose of this study is to design and develop a testing device to simulate interaction between human hand-arm dynamics, right-angle (RA) computer-controlled power torque tools and joint-tightening task-related variables. Design/methodology/approach - The testing rig can simulate a variety of tools, tasks and operator conditions. The device includes custom data-acquisition electronics and graphical user interface-based software. The simulation of the human hand-arm dynamics is based on the rig's four-bar mechanism-based design and mechanical components that provide adjustable stiffness (via pneumatic cylinder) and mass (via plates) and non-adjustable damping. The stiffness and mass values used are based on an experimentally validated hand-arm model that includes a database of model parameters. This database is with respect to gender and working posture, corresponding to experienced tool operators from a prior study. Findings - The rig measures tool handle force and displacement responses simultaneously. Peak force and displacement coefficients of determination (R2) between rig estimations and human testing measurements were 0.98 and 0.85, respectively, for the same set of tools, tasks and operator conditions. The rig also provides predicted tool operator acceptability ratings, using a data set from a prior study of discomfort in experienced operators during torque tool use. Research limitations/implications - Deviations from linearity may influence handle force and displacement measurements. Stiction (Coulomb friction) in the overall rig, as well as in the air cylinder piston, is neglected. The rig's mechanical damping is not adjustable, despite the fact that human hand-arm damping varies with respect to gender and working posture. Deviations from these assumptions may affect the correlation of the handle force and displacement measurements with those of human testing for the same tool, task and operator conditions. Practical implications - This test rig will allow the rapid assessment of the ergonomic performance of DC torque tools, saving considerable time in lineside applications and reducing the risk of worker injury. DC torque tools are an extremely effective way of increasing production rate and improving torque accuracy. Being a complex dynamic system, however, the performance of DC torque tools varies in each application. Changes in worker mass, damping and stiffness, as well as joint stiffness and tool program, make each application unique. This test rig models all of these factors and allows quick assessment. Social implications - The use of this tool test rig will help to identify and understand risk factors that contribute to musculoskeletal disorders (MSDs) associated with the use of torque tools. Tool operators are subjected to large impulsive handle reaction forces, as joint torque builds up while tightening a fastener. Repeated exposure to such forces is associated with muscle soreness, fatigue and physical stress which are also risk factors for upper extremity injuries (MSDs; e.g. tendinosis, myofascial pain). Eccentric exercise exertions are known to cause damage to muscle tissue in untrained individuals and affect subsequent performance. Originality/value - The rig provides a novel means for quantitative, repeatable dynamic evaluation of RA powered torque tools and objective selection of tightening programs. Compared to current static tool assessment methods, dynamic testing provides a more realistic tool assessment relative to the tool operator's experience. This may lead to improvements in tool or controller design and reduction in associated musculoskeletal discomfort in operators.
机译:目的-这项研究的目的是设计和开发一种测试设备,以模拟人的手臂动力学,直角(RA)计算机控制的动力扭矩工具和与关节拧紧相关的变量之间的相互作用。设计/方法/方法-测试设备可以模拟各种工具,任务和操作员条件。该设备包括定制的数据采集电子设备和基于图形用户界面的软件。人体手臂动力学的仿真基于该钻机基于四连杆机构的设计和机械组件,这些组件提供可调节的刚度(通过气压缸)和质量(通过板)和不可调节的阻尼。所使用的刚度和质量值基于经过实验验证的手臂模型,该模型包括模型参数数据库。该数据库是关于性别和工作姿势的,对应于先前研究中经验丰富的工具操作员。发现-钻机同时测量工具手柄的力和位移响应。对于同一套工具,任务和操作员条件,在钻具估算和人工测试之间的峰值力和确定的位移系数(R2)分别为0.98和0.85。该钻机还使用先前对有经验的操作员在使用扭矩工具期间的不适感进行研究的数据集,提供了预测的工具操作员可接受性等级。研究局限/含义-线性偏差可能会影响手柄力和位移测量。忽略了整个钻机以及气缸活塞中的静摩擦(库仑摩擦)。尽管人的手臂阻尼会因性别和工作姿势而有所不同,但钻机的机械阻尼无法调节。与这些假设的差异可能会影响手柄力和位移测量值与针对相同工具,任务和操作员条件的人工测试的相关性。实际意义-该测试台将允许快速评估直流扭矩工具的人体工程学性能,从而节省了在线路侧应用中的大量时间,并降低了工人受伤的风险。直流扭矩工具是提高生产率和提高扭矩精度的极其有效的方法。但是,作为复杂的动态系统,直流转矩工具的性能在每种应用中都会有所不同。工人质量,阻尼和刚度以及接头刚度和工具程序的变化,使每种应用都独一无二。该测试平台可对所有这些因素进行建模,并可以快速评估。社会影响-使用此工具测试平台将有助于识别和了解导致与使用扭矩工具相关的肌肉骨骼疾病(MSD)的风险因素。由于拧紧紧固件时会形成接头扭矩,因此工具操作员会承受较大的脉冲手柄反作用力。反复接触这种力量会导致肌肉酸痛,疲劳和身体压力,这也是上肢受伤(MSD;例如肌腱病,肌筋膜疼痛)的危险因素。众所周知,离心运动会导致未经训练的人的肌肉组织受损,并影响随后的表现。原创性/价值-该钻机为RA动力扭矩工具的定量,可重复的动态评估以及拧紧程序的客观选择提供了新颖的手段。与当前的静态工具评估方法相比,动态测试相对于工具操作员的经验提供了更现实的工具评估。这可以导致工具或控制器设计的改进,并减少操作员相关的肌肉骨骼不适。

著录项

  • 来源
    《Assembly Automation》 |2017年第1期|1-12|共12页
  • 作者单位

    Department of Show Software Engineering, Walt Disney Imagineering, Glendale, California, USA;

    Department of Mechanical Engineering, Ohio State University, Columbus, Ohio, USA;

    Department of Integrated Systems Engineering, Ohio State University, Columbus, Ohio, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Ergonomics; Fastening; Manual assembly; Torque tool;

    机译:人机工程学;紧固;手工组装;扭力工具;

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