Thermal integrity testing of cast in situ piles: An alternative interpretation approach

Author:

Sun Qianchen12ORCID,Elshafie Mohammed3,Barker Chris4,Fisher Anthony5,Schooling Jennifer2,Rui Yi6ORCID

Affiliation:

1. Laing O’Rourke Centre for Construction Engineering and Technology, Department of Engineering, University of Cambridge, Cambridge, UK

2. Centre for Smart Infrastructure & Construction, Department of Engineering, University of Cambridge, Cambridge, UK

3. Department of Civil and Architectural Engineering, College of Engineering, Qatar University, Doha, Qatar

4. Ove Arup & Partners Limited, London, UK

5. Cementation Skanska, Skanska, London, UK

6. School of Engineering, University of Aberdeen, Aberdeen, UK

Abstract

Integrity testing of deep cast in situ concrete foundations is challenging due to the intrinsic nature of how these foundations are formed. Several integrity test methods have been developed and are well established, but each of these have strengths and weaknesses. A relatively recent integrity testing method is thermal integrity testing. The fundamental feature is the early age concrete release of heat during curing; anomalies such as voids, necking, bulging and/or soil intrusion inside the concrete body result in local temperature variations. Temperature sensors installed on the reinforcement cage collect detailed temperature data along the entire pile during concrete curing to allow empirical identification of these temperature variations. This article investigates a new approach to the interpretation of the temperature variations from thermal integrity testing of cast in situ concrete piles and presents a field case study of this approach. The approach uses the heat of hydration and heat transfer theory and employs numerical modelling using the finite element method. The finite element model can be customised for different concrete mixes and pile geometries. The predicted temperature profile from the numerical model is then compared, in a systematic manner, to the field test temperature data. Any temperature discrepancies indicate potential anomalies of the pile structure. The proposed new interpretation approach could potentially reduce construction costs and increase the anomaly detection accuracy compared to traditional interpretation methods.

Funder

Marie Skłodowska-Curie Action grant

Publisher

SAGE Publications

Subject

Mechanical Engineering,Biophysics

Cited by 7 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Non-Destructive Evaluation of Material Stiffness beneath Pile Foundations Tip Using Harmonic Wavelet Transform;Buildings;2024-02-13

2. Thermal integrity profiling of cast-in-situ piles in sand using fiber-optic distributed temperature sensing;Journal of Rock Mechanics and Geotechnical Engineering;2023-12

3. Pile defect assessment using distributed temperature sensing: fundamental questions examined;Structural Health Monitoring;2023-09-06

4. Data Interpretation Framework for Pile Thermal Integrity Testing;The International Conference on Civil Infrastructure and Construction;2023-02

5. Pile integrity testing;ICE Manual of Geotechnical Engineering, Second edition, Volume II;2023-01

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