Effect of Static Load Components in Seismic Loading on Gross Plastic Deformation on Structure

Satoru Kai, Akihito Otani
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Abstract

In general, a seismic load acting on a structure is considered to potentially cause unstable gross plastic deformation that is called as plastic collapse, because the seismic load induce an inertia force on the structure which may act as an external force onto the structure. The past researches by the authors to clarify the characteristic of seismic loads found that the way of the seismic response on the structure is driven by the correlation between the seismic loading and the natural frequency of the structure while only the dynamic loads are acting. On the other hand, existence of relatively large sustained loads such as a dead weight was also recognized to promote an unstable gross plastic deformation in the past experimental studies. Based on the previous studies, two factors that are the sustained load level and the correlation other than the dynamic load level are expected to play an important role in determining the dynamic behavior of a structure and potentially governing the failure mode. The several elastic-plastic analyses with an elastic-perfect-plastic (EPP) material property and a simplified structure were conducted in this paper by slightly changing the level of the sustained loads and the dynamic loads. From the analytical results focusing on the ratchet deformations and residual deformations, the level of the sustained load on the structure was found to promote ratcheting behavior on the structure with a specific trend and significantly affect the dynamic behavior at the conceptual conditions which were defined and identified in the past researches.
地震荷载中静荷载分量对结构总塑性变形的影响
一般来说,作用在结构上的地震荷载被认为可能导致不稳定的总塑性变形,称为塑性倒塌,因为地震荷载在结构上引起惯性力,这可能作为结构上的外力。作者在以往阐明地震荷载特性的研究中发现,地震荷载与结构固有频率的相关性驱动结构的地震反应方式,而动力荷载仅起作用。另一方面,在过去的实验研究中,也认识到存在较大的持续载荷,如自重,会促进不稳定的总塑性变形。根据以往的研究,持续荷载水平和非动荷载水平的相关性两个因素在确定结构的动力行为和潜在的破坏模式中起着重要作用。本文采用弹性-完美塑性(EPP)材料性能和简化结构,通过轻微改变持续载荷和动载荷水平,进行了几种弹塑性分析。从对棘轮变形和残余变形的分析结果来看,持续荷载水平对结构的棘轮行为有一定的促进作用,并对结构在以往研究中定义和确定的概念条件下的动力行为有显著影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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