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A vibro-haptic human-machine interface for structural health monitoring

机译:触觉式人机界面,用于结构健康监测

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The goal of the structural health monitoring community has been to endow physical systems with a nervous system not unlike those commonly found in living organisms. Typically, the structural health monitoring community has attempted to do this by instrumenting structures with a variety of sensors and then applying various signal processing and classification procedures to the data in order to detect the presence of damage, the location of damage, the severity of damage, and to estimate the remaining useful life of the structure. This procedure has had some success, but we are still a long way from achieving the performance of nervous systems found in biology. This is primarily because contemporary classification algorithms do not have the performance required. In many cases, expert judgment is superior to automated classification. This work introduces a new paradigm. We propose interfacing the human nervous system to the distributed sensor network located on the structure and developing new techniques to enable human-machine cooperation. The results from the field of sensory substitution suggest this should be possible. This study investigates a vibro-haptic human-machine interface for structural health monitoring. The investigation was performed using a surrogate three-story structure. The structure features three nonlinearity-inducing bumpers to simulate damage. Accelerometers are placed on each floor to measure the response of the structure to a harmonic base excitation. The accelerometer measurements are preprocessed. The preprocessed data are then encoded as a vibro-tactile stimulus. Human subjects were then subjected to the vibro-tactile stimulus and asked to characterize the damage in the structure.
机译:结构健康监视社区的目标是赋予物理系统神经系统,与活生物体中常见的神经系统不同。通常,结构健康监视社区已尝试通过使用各种传感器对结构进行检测,然后对数据应用各种信号处理和分类程序来执行此操作,以检测损坏的存在,损坏的位置以及损坏的严重性,并估算该结构的剩余使用寿命。该方法取得了一定的成功,但距离实现生物学中神经系统的功能还有很长的路要走。这主要是因为现代分类算法没有所需的性能。在许多情况下,专家判断优于自动分类。这项工作引入了新的范例。我们建议将人类神经系统与位于结构上的分布式传感器网络接口,并开发新技术以实现人机协作。来自感觉替代领域的结果表明这应该是可能的。这项研究调查了用于结构健康监测的触觉式人机界面。该调查是使用代理三层结构进行的。该结构具有三个非线性感应保险杠,可以模拟损坏。加速度计放置在每层地板上,以测量结构对谐波基础激励的响应。加速度计的测量是预处理的。然后将预处理的数据编码为振动触觉刺激。然后,对人类受试者进行震动触觉刺激,并要求其表征结构中的损伤。

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