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RCC Structural Deformation and Damage Quantification Using Unmanned Aerial Vehicle Image Correlation Technique

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TLDR
In this article , a non-contact UAV image correlation (UAVIC) technique is used on a scaled bridge girder and a contact method of measuring deformations with a dial gauge.
Abstract
Reinforced cement concrete (RCC) is universally acknowledged as a low-cost, rigid, and high-strength construction material. Major structures like buildings, bridges, dams, etc., are made of RCC and subjected to repetitive loading during their service life for which structural performance deteriorates with time. Bridges and high-rise structures, being above ground level, are hard to equip with the contact mechanical methods to inspect strains and displacements for structural health monitoring (SHM). A non-contact, optical and computer vision based full field measuring technique called digital image correlation (DIC) technique was developed in the recent past to specifically evaluate bridge decks. Generally, optical images of structure in field conditions are not acquired precisely perpendicular to the object, which instinctively affects the deformation results obtained during loading conditions. An unmanned aerial vehicle (UAV) equipped with DIC vision-based technique acts as a rapid and cost-effective tool to quantify the serviceability of bridges by measuring strains and displacements at inaccessible locations. In this study, a non-contact unmanned aerial vehicle image correlation (UAVIC) technique is used on a scaled bridge girder and a contact method of measuring deformations with a dial gauge. Both investigations are correlated for accuracy assessment, and it is understood that results in laboratory conditions are 90% accurate. Similarly, the UAVIC technique is also performed on a rail over the bridge in the field conditions to understand the feasibility of the proposed method and evaluate damage quantification of it.

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Journal ArticleDOI

The State of the Art of Artificial Intelligence Approaches and New Technologies in Structural Health Monitoring of Bridges

TL;DR: In this paper , an outline of the role AI and other technologies will play in structural health monitoring (SHM) systems of bridges in the future was provided, including conceptual frameworks, benefits and problems, and existing methods.
Journal ArticleDOI

Displacement Measurement Based on UAV Images Using SURF-Enhanced Camera Calibration Algorithm

TL;DR: In this paper , a low-cost and remote displacement measurement technique based on an unmanned aerial vehicle (UAV) and digital image correlation (DIC) is presented in which an auxiliary reference image that meets the requirements is fabricated using the selected first image.
Journal ArticleDOI

Vertical displacement monitoring using the modified leveling method

TL;DR: In this paper , the authors present and verify the effectiveness of a quick (modified) approach to measuring vertical displacements and then to measure with this method and calculate the values of vertical displacement assumed on real objects of the controlled points network.
Journal ArticleDOI

Augmented reality-computer vision combination for automatic fatigue crack detection and localization

TL;DR: In this paper , the authors used a computer vision algorithm combined with augmented reality (AR) to localize fatigue cracks during the visual inspection that otherwise may go unnoticed because of their size.
References
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Journal ArticleDOI

Ncorr: Open-Source 2D Digital Image Correlation Matlab Software

TL;DR: Ncorr is an open-source subset-based 2D DIC package that amalgamates modern DIC algorithms proposed in the literature with additional enhancements and several applications of Ncorr that both validate it and showcase its capabilities are discussed.
Journal ArticleDOI

A Vision-Based Sensor for Noncontact Structural Displacement Measurement

TL;DR: An advanced template matching algorithm, referred to as the upsampled cross correlation, is adopted and further developed into a software package for real-time displacement extraction from video images, with significant advantages of the noncontact vision sensor.
Journal ArticleDOI

Study of optimal subset size in digital image correlation of speckle pattern images

TL;DR: In this paper, the authors investigated the effect of subset size, associated with image pattern quality and subset displacement functions, on the accuracy of deformation measurements by digital image correlation (DIC).
Journal ArticleDOI

Full-field measurements of heterogeneous deformation patterns on polymeric foams using digital image correlation

TL;DR: The ability of a digital image correlation technique to capture the heterogeneous deformation fields appearing during compression of ultra-light open-cell foams support the interpretation that the collapse of light open- cell foams occurs as a phase transition phenomenon.
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