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Rate-dependent mechanical properties and elastic modulus of ETFE foils used in inflated forming of transparency air-inflated cushion membrane structures

机译:用于膨胀空气膨胀缓冲膜结构的ETFE箔的速率依赖性机械性能和弹性模量

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YETFE (ethylene tetrafluoroethylene) air-inflated cushion structure has become one of the primary choices for being roofs and facades of large-span structures. Prior to the load bearing stages, it is required to firstly inflate the ETFE cushion envelope to gain the desired initial geometrical height and structural stiffness. This paper thus proposes a combination of analytical, experimental, and numerical methods to evaluate the rate-dependent mechanical properties and elastic modulus of ETFE foils used in the inflated forming processes of ETFE cushion structures. Starting from the typical uniaxial tensile stress-strain curve, the existing geometrical and mathematical method and a new proposed equivalent energy method are utilized to determine the mechanical parameters of ETFE foils together. Subsequently, a series of uniaxial tensile tests at the strain rates of 0.1-1000%/min were conducted on the dumbbell specimens of ETFE foils in order to acquire the yield strength and strain, the tangent, secant and equivalent moduli. Such results can be used to uncover the rate-dependent mechanical properties of ETFE foils and analyze the structural behaviors of ETFE cushions. Finally, numerical simulations of inflated forming were completed on four flat-patterning ETFE cushion models with considering the nonlinear material model of Perzyna model and the linear material properties of tangent, secant and equivalent moduli, respectively. As such, this research provides a new opportunity to elucidate the most appropriate choice of elastic moduli in design, analysis and optimization of ETFE membrane structures.
机译:然而,乙烯(四氟乙基)空气膨胀的缓冲结构已成为大跨度结构的屋顶和外墙的主要选择之一。在承载阶段之前,需要首先将ETFE垫罩包膜充气以获得所需的初始几何高度和结构刚度。因此,本文提出了分析,实验性和数值方法的组合,以评估ETFE缓冲结构的膨胀成形过程中使用的ETFE箔的速率依赖性机械性能和弹性模量。从典型的单轴拉伸应力 - 应变曲线开始,利用现有的几何和数学方法和新的所提出的等效能量方法,以确定ETFE箔的机械参数在一起。随后,在ETFE箔的哑铃标本上进行一系列在0.1-1000%/ min的一个单轴拉伸试验,以获得屈服强度和菌株,切线,割线和等同的模液。这些结果可用于揭示ETFE箔的速率依赖性机械性能,并分析ETFE垫的结构行为。最后,在四个平板图案化ETFE缓冲模型中完成了膨胀成形的数值模拟,考虑了Perzyna模型的非线性材料模型和切线,割线和等效模量的线性材料性质。因此,本研究提供了一种新的机会,可以阐明ETFE膜结构的设计,分析和优化中最合适的弹性模态选择。

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