首页> 外文会议>Conference on Structures Under Shock and Impact >IMPACT OF WALL SUPPORT CONDITIONS ON SEISMIC RESPONSE OF GROUND-SUPPORTED REINFORCED CONCRETE CONTAINMENT TANKS
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IMPACT OF WALL SUPPORT CONDITIONS ON SEISMIC RESPONSE OF GROUND-SUPPORTED REINFORCED CONCRETE CONTAINMENT TANKS

机译:墙壁支撑条件对地面支撑钢筋混凝土容纳箱地震响应的影响

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Concrete liquid storage tanks are commonly used in regions that may be highly seismic, for the storage of water, petroleum products and other chemicals. In some cases, such as for liquefied natural gas (LNG) tanks, a secondary concrete containment is designed for external protection, ignoring any direct contact or interaction with the inner storage liquid by creating a gap, as another inner tank is used to hold the liquid. Typical secondary containment tanks for LNG are circular, upright concrete tanks, with fixed roofs, while the support wall conditions at its base can be hinged or fixed. In this study, the nonlinear behavior of ground supported circular reinforced concrete containment tank under the effect of the seismic loads is investigated for both hinged and fixed wall support conditions. A three-dimensional finite element model considering material nonlinearities was included. In particular, the Concrete Damage Plasticity (CDP) model, capturing the possible tensile cracking and compressive crushing of the concrete containment systems under seismic loads was adopted. By adopting time history analyses, deformation and stresses developed in the tank were assessed when subjected to large earthquakes, namely the 1994 Northridge and 1995 Kobe earthquakes, while frequency domain analyses were also conducted, to obtain the natural period and mode shapes for different wall support conditions. The results showed that in the hinged tank, the walls experience higher structural responses (in terms of shear force and bending moment); compared with the fixed tank, particularly around the mid-height zone of the tank wall. Conversely, at the base of the fixed tank, shear forces and bending moments were higher, compared with the hinged tank's base. Under the effects of large earthquakes, both tanks experienced damage, yet larger seismic forces upon a hinged tank could potentially create more damage.
机译:混凝土液体储罐通常用于可能具有高度地震的区域,用于储存水,石油产品和其他化学品。在某些情况下,例如液化天然气(LNG)罐,专为外部保护而设计的二级混凝土容纳,通过产生间隙忽略任何与内部储存液体的直接接触或相互作用,因为另一个内坦克用于保持液体。用于LNG的典型的二级容纳罐是圆形,直立的混凝土罐,固定屋顶,而底座的支撑壁条件可以铰接或固定。在该研究中,研究了接地支撑的圆形钢筋混凝土容纳罐的非线性行为,对铰接和固定壁支撑条件进行了抗震载荷的效果。考虑材料非线性的三维有限元模型。特别地,采用了混凝土损伤塑性(CDP)模型,捕获了在地震载荷下的混凝土容器系统的可能拉伸裂缝和压缩碎裂。通过采用时间历史分析,在进行大地震时,坦克中开发的变形和应力进行评估,即1994年的诺维奇和1995年神户地震,而频域分析也进行了分析,以获得不同墙壁支架的自然时期和模式形状状况。结果表明,在铰接罐中,墙壁体验更高的结构响应(在剪切力和弯矩方面);与固定罐相比,特别是在坦克墙的中高区域周围。相反,与铰接坦克的基部相比,在固定罐的底部,剪切力和弯曲时刻更高。在大地震的影响下,两个坦克都经历了损害,但铰接坦克时的震动力较大可能会产生更多的损害。

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