Shear behavior of single cast-in anchor simulating characteristics of bridge bearing anchor

Author:

Choi Jin-Seok,Chin Won Jong,Yuan Tian-Feng,Yoon Young-Soo

Abstract

AbstractA bridge bearing anchor transmits various loads of a superstructure to a substructure. Most anchors are generally designed without consideration of characteristics such as concrete pedestal, grout bedding, and anchor socket. This study investigated the shear behavior of anchors in accordance with the edge distance, embedment depth, compressive strength of concrete, and height of the concrete pedestal in order to simulate the practical characteristics of the bridge bearing anchors. The actual shear capacity of the anchor differs from the shear strengths calculated by the ACI 318 and EN 1992-4; especially, the importance of the embedment depth is underestimated in these codes. An increase in the height of the concrete pedestal has a negative effect on the shear capacity because of the stress concentration. The grout is fractured prior to the occurrence of local damages in concrete, resulting in a secondary moment. As a result, the effect of the level arm is observed. An equation, which can predict the relative cracking degree of concrete, is proposed by analyzing the displacement of grout and concrete. High strain occurs in the stirrups close to the anchor, and the behavior of the strain is more influenced by the embedment depth than the edge distance. The comparison of obtained and analytically evaluated failure loads by calculations according to EN 1992-4, Schmid model and Sharma model was conducted to consider the effect of supplementary reinforcement. Finally, the design equation of concrete breakout strength is modified to predict the more precise shear resistance of a bridge bearing anchor.

Funder

National Research Foundation of Korea

Publisher

Springer Science and Business Media LLC

Subject

Multidisciplinary

Reference68 articles.

1. ACI Committee 355. Qualification of Post-installed Mechanical Anchors in Concrete and Commentary (American Concrete Institute, 2007).

2. ACI Committee 318. Building Code Requirements for Structural Concrete (ACI 318-19) and Commentary (318R-19) (American Concrete Institute, 2019).

3. EN1992-4. Eurocode 2: Design of Concrete Structures–Part 4: Design of Fastenings for Use in Concrete (European Committee for Standardization, CEN/TC 250, 2018).

4. ACI Committee 349. Code Requirements for Nuclear Safety Related Structures (ACI 349-90) (American Concrete Institute, 1990).

5. Fuchs, W., Eligehausen, R. & Breen, J. E. Concrete capacity design (CCD) approach for fastening to concrete. ACI Struct. J. 92(1), 73–94. https://doi.org/10.14359/1533 (1995).

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