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Modeling and Analysis of Pneumatic Cushioning Systems Under Energy-Saving Measures

机译:节能措施下气动缓冲系统的建模与分析

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Pneumatic cylinder drives are widely used in automation technology-mainly for two reasons: They are cheap to acquire and easy to handle. At the same time, it is well known that there is a significant potential of energy savings when changing the control pattern from a standard scheme toward a task-specific scheme. In order to maintain a reliable operation and low wear of pneumatic cylinders, it is essential not to exceed the manufacturer's specifications on kinetic impact energy at stroke end. Lowering the kinetic impact energy is typically done either by external shock absorbers (increasing the acquisition cost and requiring installation space) or internal solutions, i.e., pneumatic cushioning systems. In this article, we give a comprehensively identified and validated model extension to common modeling approaches for pneumatic cylinder drives regarding pneumatic end cushioning systems. Based on this model, we analyze, optimize, and evaluate the potential and applicability of energy-saving control strategies for pneumatic cylinder drives in the context of internal pneumatic cushioning systems. The results illustrate the large savings potential and point out which strategy is best to use for a specific application. Note to Practitioners-This article addresses the topic of energy efficiency of pneumatic drives, which are widely used in automation technology due to their low cost and high reliability. It is well known that pneumatic drives are often oversized and cause waste of energy. By changing the valve hardware and control pattern, energy savings of more than half of the compressed air consumption can be achieved as demonstrated in many scientific works. One main barrier to using such energy-saving strategies in practice is the concern about losing robustness. In this article, we analyze the influence of energy-saving strategies on impact velocity and the functionality of internal cushioning systems. By this, the robustness issue is addressed from two sides: the kinetic energy that needs to be absorbed at stroke end, and the kinetic energy that can be absorbed by internal damping systems. From a practical point of view, this contribution motivates and helps one to decide on the choice of energy-saving measures for pneumatic drives.
机译:气动缸驱动器广泛用于自动化技术 - 主要是有两个原因:他们是便宜的,获得易于处理。同时,众所周知,当从标准方案朝向任务特定方案改变控制模式时,节能存在显着潜力。为了保持可靠的操作和气动气缸的低磨损,因此必须不超过制造商在行程结束时对动力冲击能量的规格。降低动力学冲击能量通常通过外部减震器(增加采集成本和安装空间)或内部解决方案,即气动缓冲系统来完成。在本文中,我们为关于气动末端缓冲系统的气动缸驱动器的共同建模方法提供了全面识别和验证的模型扩展。基于该模型,我们分析,优化和评估节能控制策略在内部气动缓冲系统的背景下的节能控制策略的潜力和适用性。结果说明了大量的节省潜力,并指出哪种策略最适合用于特定应用。从业者注意 - 本文涉及气动驱动器的能效主题,由于其低成本和高可靠性,广泛用于自动化技术。众所周知,气动驱动器经常超大并导致能量浪费。通过改变阀门硬件和控制模式,可以实现超过一半的压缩空气消耗的节能,如许多科学作品中所示。在实践中使用这种节能策略的一个主要障碍是对失去稳健性的关注。在本文中,我们分析了节能策略对内部缓冲系统的冲击速度和功能的影响。由此,鲁棒性问题是从两侧寻址的:需要在行程结束时吸收的动能,以及可以被内部阻尼系统吸收的动能。从实际的角度来看,这一贡献激励并帮助人们决定对气动驱动器的节能措施的选择。

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