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使用无人机辅助摄影测量法测定大型浮盖的应变状态

Determination of the State of Strain of Large Floating Covers Using Unmanned Aerial Vehicle (UAV) Aided Photogrammetry.

作者信息

Ong Wern Hann, Chiu Wing Kong, Kuen Thomas, Kodikara Jayantha

机构信息

Department of Mechanical & Aerospace Engineering, Monash University, Clayton, Victoria 3800, Australia.

Melbourne Water, 990 La Trobe Street, Docklands, Victoria 3008, Australia.

出版信息

Sensors (Basel). 2017 Jul 28;17(8):1731. doi: 10.3390/s17081731.

Abstract

Floating covers used in waste water treatment plants are one of the many structures formed with membrane materials. These structures are usually large and can spread over an area measuring 470 m × 170 m. The aim of this paper is to describe recent work to develop an innovative and effective approach for structural health monitoring (SHM) of such large membrane-like infrastructure. This paper will propose a potentially cost-effective non-contact approach for full-field strain and stress mapping using an unmanned aerial vehicle (UAV) mounted with a digital camera and a global positioning system (GPS) tracker. The aim is to use the images acquired by the UAV to define the geometry of the floating cover using photogrammetry. In this manner, any changes in the geometry of the floating cover due to forces acting beneath resulting from its deployment and usage can be determined. The time-scale for these changes is in terms of weeks and months. The change in the geometry can be implemented as input conditions to a finite element model (FEM) for stress prediction. This will facilitate the determination of the state of distress of the floating cover. This paper investigates the possibility of using data recorded from a UAV to predict the strain level and assess the health of such structures. An investigation was first conducted on a laboratory sized membrane structure instrumented with strain gauges for comparison against strains, which were computed from 3D scans of the membrane geometry. Upon validating the technique in the laboratory, it was applied to a more realistic scenario: an outdoor test membrane structure and capable UAV were constructed to see if the shape of the membrane could be computed. The membrane displacements were then used to calculate the membrane stress and strain, state demonstrating a new way to perform structural health monitoring on membrane structures.

摘要

污水处理厂中使用的浮动覆盖物是由膜材料构成的众多结构之一。这些结构通常很大,面积可达470米×170米。本文旨在描述近期开展的一项工作,即开发一种创新且有效的方法,用于对此类大型膜状基础设施进行结构健康监测(SHM)。本文将提出一种潜在成本效益高的非接触式方法,利用搭载数码相机和全球定位系统(GPS)追踪器的无人机(UAV)进行全场应变和应力测绘。目的是利用无人机获取的图像,通过摄影测量法确定浮动覆盖物的几何形状。通过这种方式,可以确定由于其展开和使用时下方作用力导致的浮动覆盖物几何形状的任何变化。这些变化的时间尺度为几周和几个月。几何形状的变化可作为有限元模型(FEM)的输入条件用于应力预测。这将有助于确定浮动覆盖物的损伤状态。本文研究了利用无人机记录的数据预测应变水平并评估此类结构健康状况的可能性。首先对一个实验室规模的、安装了应变片的膜结构进行了研究,以便与根据膜几何形状的三维扫描计算出的应变进行比较。在实验室验证该技术后,将其应用于一个更实际的场景:构建了一个户外测试膜结构和一架功能合适的无人机,以查看是否能计算出膜的形状。然后利用膜的位移来计算膜的应力和应变,这一状态展示了一种对膜结构进行结构健康监测的新方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4434/5579522/7e2b3ab619dd/sensors-17-01731-g001.jpg

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