On computation of reliability index for tensile membrane structures based on limit state of deflection

IF 3.5 Q1 ENGINEERING, MULTIDISCIPLINARY
B. Rana, Subhrajit Dutta, P. Maiti, C. Putcha
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引用次数: 0

Abstract

PurposeThe present study is based on finding the structural response of a tensile membrane structure (TMS) through deformation. The intention of the present research is to develop a basic understanding of reliability analysis and deflection behavior of a pre-tensioned TMS. The mean value first-order second-moment method (MVFOSM) method is used here to evaluate stochastic moments of a performance function with random input variables. Results suggest the influence of modulus of elasticity, the thickness of the membrane, and edge span length are significant for reliability based TMS design.Design/methodology/approachA simple TMS is designed and simulated by applying external forces (along with prestress), as a manifestation of wind and snow load. A nonlinear analysis is executed to evaluate TMS deflection, followed by calculating the reliability index. Parametric study is done to consider the effect of membrane material, thickness and load location. First-order second moment (FOSM) is used to evaluative the reliability. A comparison of reliability index is done and deflection variations from μ − 3s to μ + 3s are accounted for in this approach.FindingsThe effectiveness of deflection is highlighted for the reliability assessment of TMS. Reliability and parametric study collectively examine the proposed geometry and material to facilitate infield design requirements. The estimated β value indicates that most suitable fabric material for a simple TMS should possess an elasticity modulus in the range of 1,000–1,500 MPa, the thickness may be considered to be around 1.00 mm, and additional adjustment of around 5–10 mm is suggested for edge length. The loading position in case of TMS structures can be a sensitive aspect where the rigidity of the surface is dependent on the pre-tensioning of the membrane.Research limitations/implicationsThe significance of the parametric study on material and loading for deflection of TMS is emphasized. Due to the lack of consolidated literature in the field combining reliability with deflection limits of a TMS, this work can be very useful for researchers.Practical implicationsThe present work outcome may facilitate practitioners in determining effective design methodology and material selection for TMS construction.Originality/valueThe significance of parametric study for serviceability criteria is emphasized. Parameters like pre-stress can be included in future parametric studies to witness in depth behavior of TMS. Due to lack of consolidated literature in the field combining reliability with deflection limits of a TMS, this work can be very useful for the researchers. The present work outcome may facilitate practitioners in determining effective design methodology and material selection for TMS construction.
基于挠度极限状态的张拉膜结构可靠性指标计算
目的本研究的基础是通过变形来寻找拉伸膜结构(TMS)的结构响应。本研究的目的是对预应力TMS的可靠性分析和挠度行为有一个基本的了解。本文使用均值一阶二阶矩法(MVFOSM)来评估具有随机输入变量的性能函数的随机矩。结果表明,弹性模量、膜厚度和边跨长度的影响对于基于可靠性的TMS设计是显著的。设计/方法/方法通过施加外力(以及预应力)来设计和模拟简单的TMS,作为风和雪荷载的表现。对TMS挠度进行非线性分析,然后计算可靠性指标。对膜材料、厚度和载荷位置的影响进行了参数化研究。一阶二阶矩(FOSM)用于可靠性评估。对可靠性指标进行了比较,并考虑了从μ−3s到μ+3s的挠度变化。发现偏转的有效性是TMS可靠性评估的重点。可靠性和参数研究共同检查了拟议的几何形状和材料,以促进内场设计要求。估计的β值表明,用于简单TMS的最合适的织物材料应具有1000–1500 MPa的弹性模量,厚度可考虑在1.00 mm左右,建议对边缘长度进行5–10 mm左右的额外调整。TMS结构情况下的加载位置可能是一个敏感的方面,其中表面的刚度取决于膜的预张紧。研究局限性/含义强调了材料和载荷参数研究对TMS偏转的意义。由于该领域缺乏将TMS的可靠性与偏转极限相结合的综合文献,这项工作对研究人员非常有用。实际意义目前的工作成果可能有助于从业者确定TMS施工的有效设计方法和材料选择。原创性/价值强调了参数研究对正常使用标准的重要性。预应力等参数可以包括在未来的参数研究中,以见证TMS的深入行为。由于该领域缺乏将TMS的可靠性与偏转极限相结合的综合文献,这项工作对研究人员非常有用。目前的工作成果可能有助于从业者确定TMS施工的有效设计方法和材料选择。
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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来源期刊
International Journal of Structural Integrity
International Journal of Structural Integrity ENGINEERING, MULTIDISCIPLINARY-
CiteScore
5.40
自引率
14.80%
发文量
42
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