4.7 Article

Distributed sensing of a masonry vault during nearby piling

Journal

STRUCTURAL CONTROL & HEALTH MONITORING
Volume 24, Issue 3, Pages -

Publisher

WILEY
DOI: 10.1002/stc.1872

Keywords

distributed sensing; fibre optics; laser scanning; cloud comparison; masonry arch bridge; settlement

Funding

  1. EPSRC
  2. Innovate UK, through the Cambridge Centre for Smart Infrastructure and Construction [EP/L010917/1]
  3. EPSRC [EP/K000314/1, EP/L010917/1, EP/N021614/1, EP/I019308/1] Funding Source: UKRI

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Piles were constructed inside historic brick barrel vaults during the London Bridge Station Redevelopment. In order to ensure safe operation of the tracks above, movements of the vaults were monitored regularly by total stations. Concurrently, two distributed sensing technologies, fibre optic cables and laser scanners, were used to investigate the vault response to settlements. This paper discusses the monitoring data retrieved from these ` point' and ` distributed' sensing technologies and evaluates their use in structural assessment. The total station data are examined first. It is characterized by high precision and limited spatial coverage due to the use of optical targets. As a result, the total station data are useful for threshold detection but do not provide a detailed understanding of structural response or damage. In contrast, by utilizing distributed fibre optic sensors based on Brillouin optical domain reflectometry, the strain development in the structure during piling is quantified. The location and width of resulting crack openings are also determined, providing useful indicators for damage evaluation. The comparison of point clouds from laser scanners obtained at different stages of pile construction further expands the spatial coverage by detecting global movement of the structure on all visible surfaces. Using these data, the two hingeresponse mechanism of the vault is revealed. The rich distributed data enable the calibration of the 2D mechanism and the finite element models, elucidating the contribution of arch stiffness, arch and backfill interaction, potential lateral movements and inter-ring sliding to the response. (C) 2016 The Authors. Structural Control and Health Monitoring published by John Wiley & Sons, Ltd.

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