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The effects of feed force on rivet bucking bar vibrations

机译:进给力对铆钉屈曲杆振动的影响

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摘要

Percussive riveting is the primary process for attaching the outer sheet metal “skins” of an aircraft to its airframe. Workers using manually-operated riveting tools (riveting hammers and rivet bucking bars) are exposed to significant levels of hand-transmitted vibration (HTV) and are at risk of developing components of hand-arm vibration syndrome (HAVS). To protect workers, employers can assess and select riveting tools that produce reduced HTV exposures. Researchers at the National Institute for Occupational Safety & Health (NIOSH) have developed a laboratory-based apparatus and methodology to evaluate the vibrations of rivet bucking bars. Using this simulated riveting approach, this study investigated the effects of feed force on the vibrations of several typical rivet bucking bars and that transmitted to the bucking bar operator’s wrist. Five bucking bar models were assessed under three levels of feed force. The study results demonstrate that the feed force can be a major influencing factor on bucking bar vibrations. Similar feed force effects were observed at the bucking bar operator’s wrist. This study also shows that different bucking bar designs will respond differently to variations in feed force. Some bucking bar designs may offer reduced vibration exposures to the bar operator’s fingers while providing little attenuation of wrist acceleration. Knowledge of how rivet bucking bar models respond to riveting hammer vibrations can be important for making informed bucking bar selections. The study results indicate that, to help in the appropriate selection of bucking bars, candidate bar models should be evaluated at multiple feed force levels. The results also indicate that the bucking bar model, feed force level, or the bucking bar operator have no meaningful effects on the vibration excitation (riveting hammer), which further suggests that the test apparatus proposed by NIOSH researchers meets the basic requirements for a stable vibration source in laboratory-based bucking bar vibration assessments. This study provides relevant information that can be used to help develop a standardized laboratory-based bucking bar evaluation methodology and to help in the selection of appropriate bucking bars for various workplace riveting applications.Relevance to Industry:Because the feed force level can affect HTV exposures to bucking bar operators, the feed force required for specific riveting operations should be an important consideration when selecting bucking bar models. This study provides useful information about bucking bar responses to riveting hammer vibrations; this knowledge can improve bucking bar selections.
机译:冲击铆接是将飞机的外部钣金“蒙皮”附着到其机身的主要过程。使用手动铆接工具(铆锤和铆钉压杆)的工人会遭受大量的手传递振动(HTV),并有发展成手臂振动综合症(HAVS)的风险。为了保护工人,雇主可以评估和选择能够减少HTV暴露的铆接工具。美国国家职业安全与健康研究所(NIOSH)的研究人员已经开发出了一种基于实验室的仪器和方法,用于评估铆钉弯曲棒的振动。使用这种模拟铆接方法,本研究调查了进给力对几种典型的铆钉扣紧棒的振动以及传递到扣紧棒操作员手腕的振动的影响。在三个进给力水平下评估了五个屈曲杆模型。研究结果表明,进给力可能是影响弯曲杆振动的主要因素。在屈曲杆操作员的手腕处观察到类似的进给力效果。这项研究还表明,不同的屈曲杆设计将对进给力的变化做出不同的响应。某些弯曲的杆设计可能会减少杆操作员手指受到的振动,同时手腕加速度的衰减很小。了解铆钉弯曲杆模型如何响应铆锤振动对于选择明智的弯曲杆非常重要。研究结果表明,为帮助适当选择抗弯钢筋,应在多个进给力水平下评估候选钢筋模型。结果还表明,屈曲杆模型,进给力水平或屈曲杆操作员对振动激励(铆锤)没有有意义的影响,这进一步表明,NIOSH研究人员提出的测试设备符合稳定的基本要求。基于实验室的屈曲杆振动评估中的振动源。这项研究提供了相关信息,可用于帮助开发基于实验室的标准化屈曲杆评估方法,并有助于为各种工作场所铆接应用选择合适的屈曲杆。与行业相关:因为进给力水平会影响HTV暴露对于屈曲杆操作员,在选择屈曲杆型号时,特定铆接操作所需的进给力应成为重要考虑因素。这项研究提供了有关弯曲棒对铆锤振动的响应的有用信息。这些知识可以改善抗弯钢筋的选择。

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