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Mechanical Properties of Load-Bearing Beam with Tree Root Type Steel-Concrete Structure

机译:钢筋混凝土结构承载梁的力学性能

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In traditional design of anti-seismic steel-concrete structure, the strength of steel-concrete directly affected the shear capacity of load-bearing beam frame joints. The interfacial size and shear interface of the load-bearing beam decreased with the increasing of the steel-concrete strength when the joints were under a certain load. It was unfavorable to anti-seismic ability under a certain stirrup ratio. To solve the problem, one innovative bionic designing thought - structure of tree root type was introduced in this paper. Feasibility of this structural design was confirmed by studying on the composite effect of tree root type. Three kinds of different beam were prepared: common steel-concrete load-bearing beam, primary load-bearing beam with tree root type steel-concrete structure (bifurcation angle of 45°), secondary load-bearing beam with tree root type steel-concrete structure (bifurcation angle of 30°, 45°, 60° respectively). Microstructure of prepared steel-concrete sample was characterized by scanning electron microscope (SEM) and EDS. Mechanical properties were characterized by universal pressure experimental machine with a concentrated pressure. Results indicate that lateral branches of bionic rebar bear partial compressive press and tensile stress. Mechanical properties of bionic reinforcement concrete improved with the effect of shear interface between lateral branches and concrete, which anti-compression ability is 135 percentages to common reinforced concrete. Compared with the primary, the secondary load-bearing beam with tree root type steel-concrete structure present the optimal mechanical properties and anti-seismic efficiency when lateral beam is located in the bottom and bifurcation angle is 45°.
机译:在传统的抗震钢混凝土结构设计中,钢混凝土的强度直接影响了承载梁框架接头的剪切能力。承载光束的界面尺寸和剪切界面随着接头在一定负载下的钢混凝土强度的增加而下降。在某种搅拌率下,它不利于抗震能力。为了解决这个问题,本文介绍了树根类型的一种创新仿生设计思想结构。通过研究树根类型的复合效果来确认这种结构设计的可行性。制备了三种不同光束:普通钢 - 混凝土承重梁,初级承载梁,具有树根型钢混凝土结构(分叉角45°),二次承载梁与树根型钢混凝土结构(分别为30°,45°,60°的分叉角度)。通过扫描电子显微镜(SEM)和EDS,表征制备的钢混凝土样品的微观结构。通过具有浓缩压力的通用压力实验机的特征在于机械性能。结果表明,仿生钢筋的横向分支轴心压缩压力和拉伸应力。仿生钢筋混凝土机械性能随着侧枝和混凝土剪切界面的影响,抗压缩能力为135百分比,普通钢筋混凝土。与初级,具有树根型钢混凝土结构的二次承载光束呈现出最佳的机械性能和抗震效率,当横向梁位于底部,分叉角度为45°时。

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