Weld acoustic emission inspection of structural elements embedded in concrete

Author:

Carrion-Viramontes Francisco J1,Hernandez-Figueroa Jorge A1,Machorro-Lopez Jose M2ORCID,Quintana-Rodriguez Juan A1,Crespo-Sanchez Saul E3,Martinez-Trujano Luis A1,Gasca-Zamora Hector M1

Affiliation:

1. Instituto Mexicano del Transporte, Pedro Escobedo, Querétaro, México

2. Investigador CONACYT - Instituto Mexicano del Transporte, Pedro Escobedo, Querétaro, México

3. Tecnologico de Monterrey, School of Engineering and Science

Abstract

After a catastrophic failure of the weld of the anchoring element of one cable in a stayed bridge, a non-destructive inspection was required to evaluate the weld condition of the 111 remaining anchoring elements to prevent future and similar failures. This examination was quite complicated since the anchoring elements are partially embedded in the reinforced concrete tower, and the weld is fully integrated into the concrete. Considering that direct access to the weld was not possible, acoustic emissions (AE) were a feasible alternative for these inspections. This study describes the inspection method, from laboratory tests simulating actual conditions for calibration to field tests for the method's tuning and evaluation. The AE inspection results are presented, and welds’ condition is classified according to the acoustic energy, measured through a severity index and graded from a zonal intensity plot. Two structural elements were selected for concrete demolition to expose the weld for penetrant and ultrasonic inspections to correlate measurements of the actual condition of the welds and their defect size. Because of the analysis, welds are identified for immediate repair and the rest for AE monitoring to evaluate defect evolution through the increase of the severity index.

Funder

Consejo Nacional de Ciencia y Tecnología, CONACYT-Mexico

Publisher

SAGE Publications

Subject

Multidisciplinary

Reference27 articles.

1. ASTM A148/A 148M-15a. Standard specification for steel castings, high strength, for structural purposes.

2. Aguirre A, Carbajal J. Failure analysis of cable 11 of the Papaloapan Bridge. Report no. AF-IFT/00087, Corporación Mexicana de Investigación de Materiales S.A. de C.V., Mexico, May 2000.

3. López A, Poblano C. Failure analysis and fatigue tests of the failed anchoring element of Rio Papaloapan Bridge cable 11, landside, tower 3. Report no. EQ001/00, Instituto Mexicano del Transporte, Mexico, June 2000.

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