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Development of a MEMS-based in-place inclinometer-accelerometer array for monitoring and evaluation of geotechnical systems.

机译:基于MEMS的就地测斜仪-加速度计阵列的开发,用于监测和评估岩土系统。

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摘要

Real-time monitoring of civil infrastructure provides valuable information to assess the health and condition of specific associated systems. An important effort for the future of civil engineering is thus the development of instrumentation capable of accurate real-time monitoring of geotechnical systems. The use of Micro-Electro-Mechanical Systems (MEMS) accelerometers in geotechnical instrumentation is relatively new but on the rise. This thesis describes a new MEMS-based system for in situ deformation and vibration monitoring. The system has been developed in an effort to combine recent advances in the miniaturization of sensors and electronics with an established wireless infrastructure for on-line geotechnical monitoring. The concept is based on triaxial MEMS accelerometer measurements of static acceleration (angles relative to gravity) and dynamic accelerations. The dynamic acceleration sensitivity range provides signals proportional to vibration during earthquakes or construction activities. This MEMS-based in-place inclinometer system utilizes the measurements to obtain three-dimensional (3D) ground acceleration and permanent deformation profiles up to a depth of one hundred meters. Each sensor array, which can be used vertically or horizontally, or group of arrays can be connected to a wireless earth station to enable real-time monitoring as well as remote configuration. This thesis provides a technical assessment of MEMS-based in-place inclinometer systems for geotechnical instrumentation applications by reviewing the sensor characteristics and providing small- and full-scale laboratory calibration tests.;Descriptions and validations of recorded field data from a bridge replacement site and two unstable slopes are included. This new instrumentation system was also included in full-scale laminar box tests of level and sloping saturated fine sand deposits. These full-scale tests provided a means of evaluating measured acceleration data. In all cases, data recorded with the developed in-place inclinometer system is compared to data measured with state-of-the-practice instrumentation. These comparisons were extremely favorable and justified the future use of this instrumentation for many geotechnical applications. This study also includes a practical evaluation of commercially available geotechnical software predictions as compared to measured site data.
机译:对民用基础设施的实时监控可提供有价值的信息,以评估特定关联系统的健康状况。因此,土木工程未来的一项重要工作是开发能够精确实时监测岩土系统的仪器。在岩土工程仪表中使用微机电系统(MEMS)加速度计是一个相对较新的技术,但仍在增加。本文介绍了一种新的基于MEMS的原位变形和振动监测系统。开发该系统的目的是将传感器和电子设备小型化的最新进展与用于在线岩土监测的已建立无线基础设施相结合。该概念基于静态加速度(相对于重力的角度)和动态加速度的三轴MEMS加速度计测量值。动态加速度灵敏度范围提供与地震或建筑活动中的振动成比例的信号。这种基于MEMS的就地测斜仪系统利用这些测量值来获得三维(3D)地面加速度和直至100米深度的永久变形轮廓。每个传感器阵列(可以垂直或水平使用)或阵列组可以连接到无线地球站,以实现实时监视和远程配置。本文通过回顾传感器特性并提供小规模和全面规模的实验室校准测试,对岩土仪器应用中基于MEMS的原位测斜仪系统进行了技术评估。描述和验证了桥梁更换现场记录的现场数据和包括两个不稳定的斜坡。这种新的仪器系统还包括在水平和倾斜饱和细砂沉积物的完整层流箱测试中。这些全面测试提供了一种评估测得的加速度数据的方法。在所有情况下,都将使用已开发的就地测斜仪系统记录的数据与使用实际状态的仪器测量的数据进行比较。这些比较是非常有利的,并证明了该仪器将来在许多岩土工程中的使用是合理的。这项研究还包括与测量的现场数据相比,对市售岩土软件预测的实际评估。

著录项

  • 作者

    Bennett, Victoria Gene.;

  • 作者单位

    Rensselaer Polytechnic Institute.;

  • 授予单位 Rensselaer Polytechnic Institute.;
  • 学科 Engineering Geological.;Engineering Civil.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 197 p.
  • 总页数 197
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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