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Self-repairing design process applied to a 4-bar linkage mechanism

机译:自修复设计过程适用于4巴连杆机构

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摘要

Despite significant advances in modelling and design, mechanical systems almost inevitably fail at some point during their operative life. This can be due to a pre-existing design flaw, which is usually overcome in a revision, or more commonly due to some unexpected damage during operation. To overcome a failure during operation, a new method in designing machines or systems is proposed that creates a result, that is, resilient to both expected and unexpected failure. By shifting the focus from a detailed assessment of the underlying cause of failure to how that failure will manifest, a system becomes inherently resilient against a wide range of failure modes. The proposed process involves five steps: cause, detection, diagnosis, confirmation and correction. This is demonstrated with an application to a generic 4 bar linkage mechanism. Through this process, the system is able to return to a near perfect state even after a permanent deformation occurs in the mechanism. These results show the potential that this self-repairing design process has applications including robotics, manufacturing and other systems.
机译:尽管建模和设计具有显着进展,但在操作寿命期间,机械系统几乎不可避免地失败。这可能是由于预先存在的设计缺陷,这通常是由于在操作期间发生了一些意外损坏而在修改中克服。为了在操作期间克服失败,提出了一种在设计机器或系统中的新方法,从而创建结果,即适用于预期和意外故障。通过将焦点从详细评估转移到失败的潜在原因,该故障将如何表现出来,系统对广泛的故障模式具有固有的弹性。拟议的过程涉及五个步骤:原因,检测,诊断,确认和校正。这是用施加到通用4巴连杆机制的应用。通过这个过程,即使在机构中发生永久变形后,系统也能够返回到近乎完美状态。这些结果表明,这种自修复设计过程具有包括机器人,制造和其他系统的应用。

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