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Puncture deformation and fracture mechanism of oriented polymers

机译:取向聚合物穿刺变形与断裂机理

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摘要

In this study, we investigated the effect of orientation by solid-state cross-rolling on the morphology, puncture deformation, and fracture mechanism of an amorphous TROGAMID material and three semicrystalline polymers: high-density polyethylene (HDPE), polypropylene (PP), and nylon 6/6. In amorphous TROGAMID, it was found that orientation preferentially aligned polymer chains along the rolling deformation direction and reduced the plastic deformation of TROGAMID in a low-temperature puncture test. The decrease of ductility with orientation changed the fracture mechanism of TROGAMID from ductile hole enlargement failure in the unoriented control to a more brittle delamination failure in TROGAMID cross-rolled to a 75 thickness reduction. For semicrystalline polymers HDPE, PP, and nylon 6/6, the randomly oriented crystalline lamellae in the controls were first oriented into an oblique angle to the rolling direction (RD) before the lamellae became fragmented and preferentially oriented with the chain axis parallel to the RD. The morphological change resulted in the decrease of ductility in HDPE in the low-temperature puncture test. In PP and nylon 6/6, the brittle fracture of unoriented controls was changed into ductile failure when they were cross-rolled to a 50 thickness reduction. This was attributed to the tilted crystal lamellae morphology, which permitted chain slip deformation of crystals with the chain axis parallel to the maximum shear stress direction. With further orientation of PP and nylon 6/6 to a 75 thickness reduction, the failure mechanism changed back to brittle fracture as the morphology transformed into a layered discoid structure with the chain axis of the fragmented crystal blocks parallel to the RD; this prevented chain slip deformation of the crystals.
机译:本研究研究了固态交叉滚动取向对非晶态TROGAMID材料和高密度聚乙烯(HDPE)、聚丙烯(PP)和尼龙6/6三种半结晶聚合物的形貌、穿刺变形和断裂机理的影响。在无定形TROGAMID中,在低温穿刺试验中发现,取向优先排列聚合物链沿滚动变形方向排列,并减小了TROGAMID的塑性变形。延性随取向的降低改变了TROGAMAMID 的断裂机理,从无取向控制的延性孔扩大失效转变为横轧TROGAMID 的更脆的分层失效,厚度降低了75%。对于半结晶聚合物HDPE、PP和尼龙6/6,对照中随机取向的结晶片片首先取向到与滚动方向(RD)成斜角,然后片片碎裂并优先取向,链轴平行于RD。在低温穿刺试验中,形态变化导致HDPE延展性降低。在 PP 和尼龙 6/6 中,当它们交叉轧制到厚度减少 50% 时,无取向对照的脆性断裂转变为延展性破坏。这归因于倾斜的晶片形态,允许链轴平行于最大剪切应力方向的晶体链滑移变形。随着PP和尼龙6/6的进一步取向,厚度降低了75%,破坏机理变回脆性断裂,形貌转变为层状盘状结构,碎裂晶块的链轴平行于RD;这防止了晶体的链滑变形。

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