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TRIAL MODEL TESTS WITH SIMULATION MATERIAL TO OBTAIN FAILURE MODES OF PIPES UNDER EXCESSIVE SEISMIC LOADS

机译:地震荷载作用下管材获得破坏模式的模拟模型试验

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Piping systems are one of the central components of NPP; It is well known that the major failure mode under seismic loads is likely to be fatigue failure. Other failure modes, however, such as ratchet-buckling failure, have been reported to occur under particular conditions. It is necessary to clarify the conditions that cause different failure modes of piping systems under very high seismic motion, but experimental studies with steel pipes are difficult to achieve, mainly due to the limitations of testing facilities and safety concerns. In order to overcome such difficulties, we propose a new experimental approach that uses pipes made of a simulation material instead of steel. Lead (Pb) pipes were used for the simulation material, and shaking table tests were conducted on lead elbow pipe specimens. Results showed that ratchet-collapse and overall deformation of pipe specimens were possible failure modes. The ratchet-collapse failure mode appeared to be affected not only by input acceleration level but also by the direction of gravity, the primary constant stress level of its own weight, and the frequencies of the input motion. The dynamic behaviors of pipes in the high inelastic region where a nearly fully plastic section was assumed were quite different from those in the elastic region, and those of the steel pipes in previous studies. We demonstrate that the proposed test approach is effective for qualitatively clarifying various kinds of failure behaviors with large plasticity under excessive seismic load.
机译:管道系统是核电厂的主要组成部分之一。众所周知,地震载荷下的主要失效模式很可能是疲劳失效。然而,据报道在特定条件下会发生其他失效模式,例如棘轮屈曲失效。有必要弄清楚在极高地震运动下导致管道系统不同故障模式的条件,但是钢管的实验研究很难实现,这主要是由于测试设备的局限性和安全性问题。为了克服这些困难,我们提出了一种新的实验方法,该方法使用由模拟材料制成的管道代替钢。铅(Pb)管用作模拟材料,并在铅肘管样品上进行了振动台测试。结果表明,棘轮塌陷和管道试样的整体变形是可能的破坏模式。棘轮塌陷失效模式似乎不仅受到输入加速度水平的影响,还受到重力方向,其自重的主要恒定应力水平以及输入运动频率的影响。高非弹性区域中假定几乎完全塑性的管道的动力特性与弹性区域以及先前研究中的钢管的动力特性完全不同。我们证明了所提出的测试方法对于定性地澄清在过度地震载荷下具有大可塑性的各种破坏行为是有效的。

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