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A novel Fluid-Structure Interaction modelling and optimisation of roofing designs of buildings for typhoon resilience

机译:台风弹性屋顶设计的新型流体结构交互建模与优化

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Stronger typhoons have been more frequent in the Western Pacific region. Typhoon Haiyan caused widespread loss of life and destruction to properties when in made landfall in the Philippines in 2013. An estimated 1.1 million homes were damaged or destroyed in the aftermath. Damage surveys show extensive roofing damage evident in most detached structures attributed to strong winds. Clearly, there is a need to evaluate the current roofing designs and its structural integrity for it to properly respond to extreme environmental events in the future. Using a novel Fluid Structure Interaction (FSI) approach, this study evaluated a single detached gabled building made of timber which is common in the Philippines. The building was subjected to typhoon strength winds in an urban environment using Computational Fluid Dynamics (CFD) analysis. Atmospheric Boundary Layer (ABL) flow simulation was conducted to predict the pressure distribution around the structure. A structural model of the roofing support was then developed, and the structural analysis performed using FSI to predict failure in the sheathing and the supports. The results of the study show the structural weaknesses in the current design considering the wind angle, structural frame and materials.
机译:西太平洋地区强劲的台风更频繁。 2013年在菲律宾在菲律宾登陆时,台风海燕引起了普遍存存与物业的毁灭。估计的110万房,在后果中受损或摧毁。损坏调查显示大多数脱离的结构归因于强风的大部分屋顶损伤。显然,需要评估当前的屋顶设计及其结构完整性,以便在未来妥善响应极端环境事件。使用新型流体结构相互作用(FSI)方法,本研究评估了由菲律宾常见的木材制成的单个独立式驻留大楼。使用计算流体动力学(CFD)分析,该建筑物在城市环境中进行台风强度风。进行大气边界层(ABL)流模拟以预测结构周围的压力分布。然后开发出屋顶支撑件的结构模型,并且使用FSI进行的结构分析来预测护套和支撑件的故障。考虑风角,结构框架和材料,研究结果表明了当前设计中的结构弱点。

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