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首页> 外文期刊>Journal of Applied Polymer Science >Model for the viscoelastic and viscoplastic responses of semicrystalline polymers
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Model for the viscoelastic and viscoplastic responses of semicrystalline polymers

机译:半结晶聚合物的粘弹性和粘塑性响应模型

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Constitutive equations are derived for the time-dependent behavior of semicrystalline polymers at isothermal loading with small strains. A semicrystalline polymer at temperatures above the glass-transition point for its amorphous phase is thought of as a network of macromolecules bridged by junctions (physical crosslinks, entanglements, and crystalline lamellae) that can slide with respect to their reference positions in the bulk material under straining. The network is assumed to be highly inhomogeneous, and it is modeled as an ensemble of mesoregions (MRs) with various strengths of interchain interaction. Two types of MRs are distinguished: passive, where these interactions prevent detachment of strands from junctions; and active, where active strands separate from junctions and dangling strands merge with the network at random times as they are thermally agitated. The viscoelastic response of a semicrystalline polymer reflects reformation of strands in active MRs, whereas its viscoplastic behavior is associated with sliding of junctions. Stress-strain relations for uniaxial deformation are developed by using the laws of thermodynamics. Adjustable parameters in the constitutive equations are found by fitting experimental data for isotactic polypropylene in a tensile test with a constant strain rate and in tensile relaxation tests at various strains. Fair agreement is demonstrated between the observations and the results of numerical simulation. It is revealed that the viscoplastic flow of junctions strongly affects the rearrangement process in active MRs, whose rate reaches a threshold value in the vicinity of the apparent yield point. (C) 2003 Wiley Periodicals, Inc. [References: 63]
机译:导出了等温载荷下小应变状态下半结晶聚合物随时间变化的本构方程。在其非晶态相的玻璃化转变温度以上的温度下,半结晶聚合物被认为是由结点(物理交联,缠结和结晶薄片)桥接的大分子网络,这些结点可以相对于它们在大体积材料中的参考位置滑动。紧张。该网络被认为是高度不均匀的,并且被建模为具有各种链间交互作用强度的中观区域(MRs)的集合。 MR分为两种类型:无源的,其中的相互作用阻止链从连接处脱离。活跃的,活跃的链从连接处分离出来,而悬空的链在被热搅动时随机地与网络融合。半结晶聚合物的粘弹性响应反映了活性MR中股线的重新形成,而其粘塑性行为与连接处的滑动有关。利用热力学定律建立了单轴变形的应力应变关系。通过拟合等规聚丙烯在恒定应变速率下的拉伸试验和各种应变下的拉伸松弛试验的实验数据,可以得出本构方程中的可调参数。观测值与数值模拟结果之间显示出合理的一致性。结果表明,连接处的粘塑性流强烈影响有源MR中的重排过程,其速率在表观屈服点附近达到阈值。 (C)2003 Wiley Periodicals,Inc. [参考:63]

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