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Experimental study on energy dissipation and damage of fabricated partially encased composite beams

  • Wu, Kai (College of Civil and Transportation Engineering, Hohai University) ;
  • Liu, Xiaoyi (College of Civil and Transportation Engineering, Hohai University) ;
  • Lin, Shiqi (College of Civil and Transportation Engineering, Hohai University) ;
  • Tan, Chengwei (College of Civil and Transportation Engineering, Hohai University) ;
  • Lu, Huiyu (College of Civil and Transportation Engineering, Hohai University)
  • Received : 2021.01.04
  • Accepted : 2022.10.06
  • Published : 2022.11.25

Abstract

The interfacial bond strength of partially encased composite (PEC) structure tends to 0, therefore, the cast-in-place concrete theoretically cannot embody better composite effect than the fabricated structure. A total of 12 specimens were designed and experimented to investigate the energy dissipation and damage of fabricated PEC beam through unidirectional cyclic loading test. Because the concrete on both sides of the web was relatively independent, some specimens showed obvious asymmetric concrete damage, which led to specimens bearing torsion effect at the later stage of loading. Based on the concept of the ideal elastoplastic model of uniaxial tensile steel and the principle of equivalent energy dissipation, the energy dissipation ductility coefficient is proposed, which can simultaneously reflect the deformability and bearing capacity. In view of the whole deformation of the beam, the calculation formula of energy dissipation is put forward, and the energy dissipation and its proportion of shear-bending region and pure bending region are calculated respectively. The energy dissipation efficiency of the pure bending region is significantly higher than that of the shear-bending region. The setting of the screw arbors is conducive to improving the energy dissipation capacity of the specimens. Under the condition of setting the screw arbors and meeting the reasonable shear span ratio, reducing the concrete pouring thickness can lighten the deadweight of the component and improve the comprehensive benefit, and will not have an adverse impact on the energy dissipation capacity of the beam. A damage model is proposed to quantify the damage changes of PEC beams under cyclic load, which can accurately reflect the load damage and deformation damage.

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Acknowledgement

The research described in this paper was financially supported by National Natural Science Foundation of China (Grant No. 51208175) and the Fundamental Research Funds for the Central Universities (Grant No. B200202067).