arXiv:2505.18579cs.LGeess.SP2025-05被引 5

用可编程超材料传感器直接物理判断结构损伤,无需外部供电

Mechanical in-sensor computing: a programmable meta-sensor for structural damage classification without external electronic power

  • 用局域共振超材料板实现传感与计算一体化
  • 通过带隙特性区分损伤前后振动特征,支持9.54~81.86Hz系统
  • 无需电子设备即可完成损伤二分类,适合资源受限场景

结构健康监测(SHM)通常依赖繁琐的有线系统,信息处理依赖电子计算机,存在能耗高、吞吐量低等问题。本文提出一种可编程超材料传感器(MM-sensor),基于局域共振超材料板(LRMP)实现,将传感与计算融合为纯物理实体,无需外部电源。利用LRMP的带隙特性,物理区分结构损伤前后的动态行为。通过逆向设计几何参数,可调节带隙特征,适用于一阶固有频率在9.54 Hz至81.86 Hz范围内的工程系统。该传感器可在传感端原位完成结构损伤预警(二分类)任务,无需后续数据处理或资源消耗。

原文摘要 · Abstract (English)

Structural health monitoring (SHM) involves sensor deployment, data acquisition, and data interpretation, commonly implemented via a tedious wired system. The information processing in current practice majorly depends on electronic computers, albeit with universal applications, delivering challenges such as high energy consumption and low throughput due to the nature of digital units. In recent years, there has been a renaissance interest in shifting computations from electronic computing units to the use of real physical systems, a concept known as physical computation. This approach provides the possibility of thinking out of the box for SHM, seamlessly integrating sensing and computing into a pure-physical entity, without relying on external electronic power supplies, thereby properly coping with resource-restricted scenarios. The latest advances of metamaterials (MM) hold great promise for this proactive idea. In this paper, we introduce a programmable metamaterial-based sensor (termed as MM-sensor) for physically processing structural vibration information to perform specific SHM tasks, such as structural damage warning (binary classification) in this initiation, without the need for further information processing or resource-consuming, that is, the data collection and analysis are completed in-situ at the sensor level. We adopt the configuration of a locally resonant metamaterial plate (LRMP) to achieve the first fabrication of the MM-sensor. We take advantage of the bandgap properties of LRMP to physically differentiate the dynamic behavior of structures before and after damage. By inversely designing the geometric parameters, our current approach allows for adjustments to the bandgap features. This is effective for engineering systems with a first natural frequency ranging from 9.54 Hz to 81.86 Hz.

超材料结构健康监测无源传感物理计算

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