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Dynamic compression behaviors of concrete under true triaxial confinement: An experimental technique

机译:真正三轴约束下混凝土的动态压缩特性:一种实验技术

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摘要

A dynamic testing system for concrete-like material under static triaxial confinements is developed in the present article. The cubic specimen with length 50 mm is constrained by six steel square bars. The static triaxial confinements are applied on the specimen through six steel bars that independently servo-controlled by three hydraulic cylinders. A striker is then launched to impact the incident bar along the x-axis. The dynamic responses of the cubic specimen are measured by strain gauges stuck on the middle surfaces of the six bars. The dynamic compressive behaviors of concrete specimens under various static triaxial confinements are investigated accordingly. The 3-D dynamic engineering stress- engineering strain relationship, the dynamic volumetric strain-hydrostatic pressure relationship, and the equivalent stress- equivalent strain relationship are obtained and analyzed in details. The results show evidently the load path dependence and the strain rate dependence. Based on the Drucker-Prager (D-P) strength criterion, the effect of the intermediate stress on dynamic strength is discussed, and the material parameters (e.g. a(0) and k(0)) and the strength parameters (e.g. the cohesion c and the inner friction angle phi) at various strain rates are demonstrated. The results show that with increasing strain rate, the friction angle phi increases, and the cohesion c decreases. The technique provides profound and comprehensive understanding of the dynamic failure properties for concrete-like material under complex stress states.
机译:本文开发了静态三轴约束下的混凝土样材料动态测试系统。长度为50 mm的立方试样受六根钢方棒约束。静态三轴约束通过六个由三个液压缸独立伺服控制的钢筋施加在样品上。然后启动撞针以沿x轴撞击入射棒。立方试样的动态响应通过粘贴在六根钢筋中间表面的应变仪进行测量。相应地研究了在各种静态三轴约束下混凝土试件的动态压缩行为。并详细分析了3D动态工程应力-工程应变关系,动态体积应变-静水压关系以及等效应力-等效应变关系。结果清楚地表明了载荷路径的依赖性和应变率的依赖性。基于Drucker-Prager(DP)强度准则,讨论了中间应力对动强度的影响,以及材料参数(例如a(0)和k(0))以及强度参数(例如内聚力c和c示出了在各种应变率下的内摩擦角φ)。结果表明,随着应变率的增加,摩擦角φ增大,内聚力c减小。该技术提供了对复杂应力状态下类混凝土材料动态破坏特性的深刻而全面的理解。

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