BRB式消能桁架的力学模型研究
[Abstract]:The truss frame structure has the characteristics of low steel content, light and beautiful, but its seismic performance is poor. The truss structure is prone to overall instability. BRB type energy dissipation truss structure is used to replace the lower chord at the end of the truss. The stiffness of the structure can be reduced and the further input of energy can be prevented when the earthquake action is great. At the same time, the ductility. BRB type energy dissipation truss frame structure has the advantages of common truss frame structure, and the seismic performance is good. It has high research value and application prospect. In this paper, the mechanical model of BRB energy dissipation truss frame structure is studied. Firstly, the design assumption of BRB type energy dissipation truss frame structure is put forward, the range of BRB yield bearing capacity is determined, and the design based on property state is realized, and then a four-story truss frame structure is designed by using 3D3S software. The second layer is chosen as the standard layer, and the finite element model of the standard layer is established by Abaqus software. By controlling variables, the truss form is studied emphatically. The influence of the yield bearing capacity and truss height of BRB on the mechanical properties such as bearing capacity, lateral stiffness, rotational stiffness and ductility are discussed. The design method of BRB type energy dissipation truss frame structure is verified. The results show that: (1) according to the design method provided in this paper, the BRB type energy dissipation truss frame structure can be designed based on properties, and the yield bearing capacity of BRB can be adjusted. (2) when the structure is in normal condition or when the seismic load is small, the BRB truss frame structure has higher stiffness and bearing capacity, which is not different from the common structure, and when the load reaches a certain level, BRB takes the lead to yield. The plastic hinge formed at the end of the truss can reduce the stiffness of the structure, prevent the further input of energy, improve the ductility of the structure, and be beneficial to the energy dissipation and post-earthquake repair of the structure. (3) in the BRB type energy dissipation truss frame structure, Whether the truss has vertical webs or not has little influence on the mechanical properties of the structure. The yield bearing capacity of BRB has a great influence on the mechanical properties. In a reasonable range, the bearing capacity and lateral stiffness of the structure can be improved by increasing the yield bearing capacity of BRB. The stiffness and ductility of the truss and the height of the truss have great influence on the mechanical properties of the structure. The bearing capacity and stiffness of the structure can be obviously improved by increasing the height of the truss under the same conditions. Finally, this paper summarizes the analysis results of Abaqus, gives the influence of various parameters on the mechanical properties of BRB truss frame structure, and puts forward some suggestions for the later research in view of the shortcomings of this paper.
【学位授予单位】:山东建筑大学
【学位级别】:硕士
【学位授予年份】:2017
【分类号】:TU391
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