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Four-Phase Composite Material of Concrete Meso-Damage Dynamic Load Failure Test

机译:混凝土的四相复合材料细观动态载荷破坏试验

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At mesoscopic scale, the research proposed and established that concrete was a four-phase continuous and inhomogeneous composite material model consisting of coarse/fine aggregates, hydration products in cement, pores, and cracks. Under static and dynamic loads, micro-mechanics damage test simulation was based on the four-phase composite material model of concrete. The research's content was concrete uniaxial compression test, three-point bending girder's damage, and fracture under static and dynamic loads. The research found that the location of main crack in the beam shear was near the frailest part. The crack was along the bone and sand slurry's combination, extending to the loading point direction and showing tortuosity. The crack extended surface was uneven, which was temporary deflection of the crack propagation direction due to the heterogeneity of concrete and aggregate distribution in it. The stress-strain curves of static and dynamic loads were similar, and the starting points of fracture initiation were basically identical. The stress wave in the specimen propagated back and forth many times, which led to the specimen fracture. Under the dynamic load, the elastic modulus of concrete was higher than that under the static load, and the numerical simulation results agreed with the experimental results. When the strain rate was less than a critical value, concrete strength increased slowly. When the strain rate was more than the value, concrete strength increased quickly. This research established five-layer, eight-layer, and 10-layer concrete frame structural models, which were simulated at the damage process of frame structure in strong earthquake. The study found that beam and column alternating failure belongs to the mixed collapse mechanism. The weaker the stiffness of foundation was, the earlier the failure time of lower floors was and the deeper the structural settlement was. The stronger the stiffness of foundation was, the earlier the failure point generated. The low floor failure of frame structure consumed a part of seismic energy, which reduced the effect of earthquake on upper frame structure partly.
机译:在介观尺度上,研究提出并确定了混凝土是由粗/细骨料,水泥中的水合产物,孔隙和裂缝组成的四相连续非均质复合材料模型。在静态和动态载荷下,基于混凝土的四相复合材料模型,进行了微机械损伤测试模拟。研究内容为混凝土单轴压缩试验,三点弯曲梁的破坏以及在静,动态载荷下的断裂。研究发现,梁剪切中主裂纹的位置靠近最脆弱的部分。裂纹沿着骨和砂浆的结合,延伸到加载点方向并显示出曲折。裂纹扩展表面是不平坦的,这是由于混凝土的异质性和骨料分布导致的裂纹扩展方向的暂时偏斜。静载荷和动载荷的应力-应变曲线相似,并且断裂开始的起点基本相同。试样中的应力波来回传播了许多次,导致试样断裂。在动载荷下,混凝土的弹性模量高于静载荷,其数值模拟结果与实验结果吻合。当应变率小于临界值时,混凝土强度缓慢增加。当应变率大于该值时,混凝土强度迅速增加。本研究建立了五层,八层,十层混凝土框架结构模型,并在强震中对框架结构的破坏过程进行了模拟。研究发现,梁柱交替破坏属于混合破坏机制。基础刚度越弱,下层楼板的破坏时间越早,结构沉降越深。基础的刚度越强,破坏点就越早产生。框架结构的低底板破坏消耗了一部分地震能量,从而部分减少了地震对上部框架结构的影响。

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