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Composite materials with integrated embedded sensing networks.

机译:具有集成嵌入式传感网络的复合材料。

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摘要

The increasing demand for in-service structural health monitoring has stimulated efforts to integrate self and environmental sensing capabilities into materials and structures. The present work is directed towards the development of a new means of fabricating composites that allows for integrating a high density of small, advanced sensors into a laminated composite in a way that enables sensing without compromising the structural integrity of the host composite material.;This work presents efforts to develop structural composite materials which include networks of embedded sensors with decision-making capabilities that extend the functionality of the composite materials to be information-aware. These structurally-integrated embedded microsensors render the composite information-based, so that it can monitor and report on the local structural environment, on request or in real-time as necessary.;The integration of sensors, actuators, and their subsequent devices into a structure is vital in smart applications. Essential to the application of smart composites is the issue of the mechanical coupling of the sensor to the host composite material. Therefore, the question of the impact of such devices on the various mechanical properties of the host composite material is both relevant and important. This work characterizes the effects of introducing simulated microsensors, commonly used printed circuit board material (G-10/FR4 Garolite), and various piezo thin film sensors on the mechanical properties of the host structural composite material.;Quasi-static tension tests are conducted in order to characterize the mechanical properties of the host composite material as well as the effects the embedments have upon the host material. Quasi-static three-point bending (short-beam shear) and fatigue three-point bending (short-beam shear) tests are conducted in order to characterize the effects of introducing the sensors and such devices on the short-beam shear strength and fatigue life of the host structural composite material. Furthermore, various embedding configurations are examined.;The thrust of the research presented here is to characterize the effects of embedding sensors and their subsequent devices on the mechanical properties of the host structural composite material in order to select a sensor and embedding configuration that can seamlessly be integrated into the host composite without compromising the integrity of the structure.
机译:对在役结构健康监测的需求不断增长,促使人们努力将自我和环境感知功能集成到材料和结构中。本工作致力于开发一种新的复合材料制造方法,该方法可以将高密度的小型先进传感器集成到层压复合材料中,从而能够在不损害主体复合材料结构完整性的情况下进行传感。这项工作提出了开发结构复合材料的努力,该结构包括具有决策能力的嵌入式传感器网络,这些决策能力将复合材料的功能扩展为具有信息意识。这些结构集成的嵌入式微传感器提供了基于复合信息的信息,因此可以根据需要或实时监控和报告本地结构环境;将传感器,执行器及其后续设备集成到一个结构在智能应用程序中至关重要。智能复合材料的应用必不可少的是传感器与主体复合材料的机械耦合问题。因此,这种装置对主体复合材料的各种机械性能的影响的问题既相关又重要。这项工作的特点是引入模拟微传感器,常用的印刷电路板材料(G-10 / FR4 Garolite)和各种压电薄膜传感器对主体结构复合材料的机械性能的影响。进行了准静态拉伸试验。为了表征基质复合材料的机械性能以及嵌入物对基质材料的影响。进行准静态三点弯曲(短梁剪切)和疲劳三点弯曲(短梁剪切)测试,以表征引入传感器等设备对短梁剪切强度和疲劳的影响主体结构复合材料的使用寿命。此外,还研究了各种嵌入结构。本文提出的研究重点是表征嵌入传感器及其后续设备对基质结构复合材料的机械性能的影响,以便选择可以无缝集成的传感器和嵌入结构可以集成到主体组合物中,而不会损害结构的完整性。

著录项

  • 作者

    Schaaf, Kristin Leigh.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Engineering Civil.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 145 p.
  • 总页数 145
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;机械、仪表工业;
  • 关键词

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