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Study on the Failure Mode and Bearing Capacity of Unreinforced Steel Fiber-Reinforced Concrete Segment Joints
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Currently, unreinforced steel fiber-reinforced concrete (USFRC) has not been widely adopted in underground engineering within China. However, extensive research has demonstrated that incorporating steel fibers can effectively enhance the mechanical properties of concrete, such as tensile strength, shear strength, residual flexural tensile strength, and also improve its durability. This study, based on the Qiandong experimental section of Dalian Metro Line 4, aims to investigate the failure modes, bearing capacity, and calculation methods for reinforced concrete (RC) and USFRC lining segment joints under compression-bending loading. The objective is to provide a reference for the application of USFRC lining segments in domestic underground engineering. The main conclusions are as follows: (1) The primary failure mode of RC segment joints is large-area crushing of concrete on the outer curved surface, with tensile crack widths on the inner curved surface less than 0.20 mm. The failure mode of USFRC segment joints is characterized by a 2.50 mm wide tensile crack below the loading point. (2) The bolt strain at failure for RC segment joints is approximately twice that of USFRC joints, with both reaching the yield strength and entering the plastic deformation stage. The bolt stress versus bending moment curve exhibits two distinct growth stages. USFRC can effectively control bolt deformation and stress, thereby enhancing bearing capacity. (3) The joint rotation angle versus bending moment curve follows a bilinear model. Under identical bending moments, the rotation angle of RC segment joints is significantly larger than that of USFRC joints. In the two stages, the rotational stiffness of USFRC joints is 367.13% and 763.82% of that of RC joints, respectively. (4) Bolts do not influence the bearing capacity of the segment joints. Existing calculation models in current design codes can accurately predict the ultimate bearing capacity of both RC and USFRC segment joints, demonstrating high prediction accuracy.
Title: Study on the Failure Mode and Bearing Capacity of Unreinforced Steel Fiber-Reinforced Concrete Segment Joints
Description:
Currently, unreinforced steel fiber-reinforced concrete (USFRC) has not been widely adopted in underground engineering within China.
However, extensive research has demonstrated that incorporating steel fibers can effectively enhance the mechanical properties of concrete, such as tensile strength, shear strength, residual flexural tensile strength, and also improve its durability.
This study, based on the Qiandong experimental section of Dalian Metro Line 4, aims to investigate the failure modes, bearing capacity, and calculation methods for reinforced concrete (RC) and USFRC lining segment joints under compression-bending loading.
The objective is to provide a reference for the application of USFRC lining segments in domestic underground engineering.
The main conclusions are as follows: (1) The primary failure mode of RC segment joints is large-area crushing of concrete on the outer curved surface, with tensile crack widths on the inner curved surface less than 0.
20 mm.
The failure mode of USFRC segment joints is characterized by a 2.
50 mm wide tensile crack below the loading point.
(2) The bolt strain at failure for RC segment joints is approximately twice that of USFRC joints, with both reaching the yield strength and entering the plastic deformation stage.
The bolt stress versus bending moment curve exhibits two distinct growth stages.
USFRC can effectively control bolt deformation and stress, thereby enhancing bearing capacity.
(3) The joint rotation angle versus bending moment curve follows a bilinear model.
Under identical bending moments, the rotation angle of RC segment joints is significantly larger than that of USFRC joints.
In the two stages, the rotational stiffness of USFRC joints is 367.
13% and 763.
82% of that of RC joints, respectively.
(4) Bolts do not influence the bearing capacity of the segment joints.
Existing calculation models in current design codes can accurately predict the ultimate bearing capacity of both RC and USFRC segment joints, demonstrating high prediction accuracy.
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