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Development of Embedded Sensing Technology for Structural Composite Materials

机译:结构复合材料嵌入式传感技术的开发

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Smart structural systems will increasingly demand integrated, well-designed and compatible technologies to address the structural problems of the future. We present efforts to adopt compact novel sensor technologies with integrated on-board logic, communications and power management into network arrays embedded within structural composite materials. The goal is to integrate structural health monitoring and other types of monitoring into the material itself. This integration includes not only the sensors, but also data acquisition and processing, communication and management of network assets. This work addresses a number of issues which are faced in the creation of such a network, including the micromechanics of embedment, implementation of a multi-drop network, the electronics requirements and limitations, and the sensor selection. However, this leads to severe bandwidth demands as the number of nodes scales upward. For many classes of problems, this can be addressed by in-network processing of information. Proper selection of network protocols and architecture can lead to optimized processing strategies. Further, it brings together many important developments over the last few years in several areas: developments in composites and the emergence of multifunctional composites, advances that drive smaller and lower power microelectronics with increased integrated functionality, and work to develop algorithms that extract important structural health information from large data sets. This work seeks to leverage these individual advances by solving the challenges needed to integrate these into an information-aware composite structure. Results of our efforts to embed moderate sized sensor arrays within fiber reinforced epoxy composites are presented, including details of the electrical operation of network communications within the composite environment and the survivability of the devices and connections during composite fabrication. Our research investigates methods to integrate microelectronic components within fiber/conductor braided bundles to minimize their impact as composite crack initiation centers. The braids are suitable for inclusion in woven composite fabrics or directly in the composite lay-up.
机译:智能结构系统将越来越多地需求集成,精心设计和兼容的技术,以解决未来的结构问题。我们努力采用集成的车载逻辑,通信和电源管理采用紧凑的新型传感器技术,进入结构复合材料内的网络阵列。目标是将结构健康监测和其他类型的监测整合到材料本身中。这种集成不仅包括传感器,还包括网络资产的数据采集和处理,通信和管理。这项工作解决了许多问题,这些问题面临着创建此类网络,包括嵌入的微机械,实现多滴网络,电子要求和限制以及传感器选择。但是,随着节点数量向上缩放,这导致严重带宽要求。对于许多类问题,这可以通过网络信息的网络处理来解决。正确选择网络协议和架构可以导致优化的处理策略。此外,它在几个领域汇集了过去几年的许多重要发展:复合材料的发展和多功能复合材料的出现,推动了较小的和较低的电力微电子的进步,并增加了综合功能,以及开发提取重要结构健康的算法来自大数据集的信息。这项工作要求利用这些个人通过解决将这些挑战集成到信息感知复合结构所需的挑战来实现。提出了我们在纤维增强环氧树脂复合材料中嵌入中等大小传感器阵列的努力的结果,包括复合环境内的网络通信的电气操作的细节以及在复合制造期间的装置和连接的生存性和连接。我们的研究调查了将微电子组件集成在纤维/导体编织束内的方法,以最小化它们作为复合裂纹启动中心的影响。辫子适用于涂层复合织物或直接在复合材料叠层中。

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