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Investigations into the mechanical and physical behavior of thermoplastic elastomers.

机译:研究热塑性弹性体的机械和物理行为。

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This thesis describes investigations into the physical and mechanical characteristics of two commercial thermoplastic elastomer (TPE) systems. Both systems studied exhibit elastomeric behavior similar to more traditional crosslinked elastomers; however, in these TPEs non-conventional polymer architectures and morphologies are used to produce their elastomeric behavior. The two TPEs of interest are ethylene-propylene random copolymers and dynamically vulcanized blends of ethylene-propylene-diene monomer (EPDM) and isotactic polypropylene (iPP). Very few studies have examined the mechanical behavior of these materials in terms of their composition and morphology. As such, the primary goal of this research is to both qualitatively and quantitatively understand the influence of composition and morphology on mechanical behavior. In additional very little information is available that compares their performance with that of crosslinked elastomers. As a result, the secondary goal is to qualitatively compare the mechanical responses of these TPEs with that of their more traditional counterparts.; The ethylene-propylene copolymers studied have very high comonomer contents and exhibit slow crystallization kinetics. Their morphology consists of nanoscale crystallites embedded in an amorphous rubbery matrix. These crystallites act as physical crosslinks that allow for elasticity. Slow crystallization causes subsequent changes in mechanical behavior that take place over days and even weeks. Physical responses (e.g., density, crystallization kinetics, and crystal structure) of five copolymer compositions are investigated. Mechanical responses (e.g., stiffness, ductility, yielding, and reversibility) are also examined. Finally, the influence of morphology on deformation is studied using in situ analytical techniques.; The EPDM/iPP blends are dynamically vulcanized which produces a complex morphology consisting of chemically crosslinked EPDM domains embedded within a semicrystalline iPP matrix. Six compositions are investigated as a function of three parameters: major volume fraction, iPP molecular weight, and EPDM cure state. The influence of these parameters on morphology and resulting mechanical behavior is examined. This work culminates in the development of a morphological model to describe the steady-state reversibility of these EPDM/iPP blends. The model is then evaluated in terms of composition and cure state.
机译:本文描述了对两种商业热塑性弹性体(TPE)系统的物理和机械特性的研究。所研究的两种体系均表现出与更传统的交联弹性体相似的弹性体行为。但是,在这些TPE中,使用非常规的聚合物结构和形态来产生其弹性行为。感兴趣的两个TPE是乙烯-丙烯无规共聚物以及乙烯-丙烯-二烯单体(EPDM)和全同立构聚丙烯(iPP)的动态硫化共混物。很少有研究从成分和形态方面研究这些材料的机械性能。因此,这项研究的主要目的是定性和定量地了解组成和形态对机械性能的影响。另外,很少有信息可以将其性能与交联的弹性体进行比较。因此,次要目标是定性地比较这些TPE和较传统的TPE的机械响应。所研究的乙烯-丙烯共聚物具有非常高的共聚单体含量,并且显示出缓慢的结晶动力学。它们的形态由嵌入无定形橡胶基质中的纳米级微晶组成。这些微晶充当允许弹性的物理交联键。缓慢的结晶会导致随后几天甚至几周的机械行为发生变化。研究了五种共聚物组合物的物理响应(例如,斜体,密度,结晶动力学和晶体结构)。还检查了机械响应(,例如。),刚度,延展性,屈服和可逆性。最后,采用就地分析技术研究了形态对变形的影响。 EPDM / iPP共混物经过动态硫化,产生复杂的形态,该形态由嵌入半结晶iPP基质中的化学交联的EPDM结构域组成。根据三个参数来研究六个组成:主要体积分数,iPP分子量和EPDM固化状态。检查了这些参数对形态和所产生的机械性能的影响。这项工作最终发展为描述这些EPDM / iPP共混物的稳态可逆性的形态学模型。然后根据组成和固化状态评估模型。

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