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Spherical micro-glass particle impingement studies of thermoplastic materials at normal incidence

机译:垂直入射时热塑性材料的球形微玻璃颗粒碰撞研究

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摘要

Light optical and scanning electron microscope studies were conducted to characterize the erosion resistance of polymethyl methacrylate (PMMA), polycarbonate (PC), polytetrafluoroethylene (PTFE) and ultra-high-molecular-weight-polyethylene (UHMWPE). Erosion was caused by a jet of spherical micro-glass beads at normal impact. During the initial stages of damage, the surfaces of these materials were studied using a profilometer. Material buildup above the original surface was observed on PC and PMMA. As erosion progressed, this buildup disappeared as the pit became deeper. Little or no buildup was observed on PTFE and on UHMWPE. UHMWPE and PTFE are the most resistant materials and PMMA the least. Favorable properties for high erosion resistance seem to be high values of ultimate elongation, and strain energy and a low value of the modulus of elasticity. Erosion-rate-versus-time curves of PC and PTFE exhibit incubation, acceleration and steady state periods. A continuously increasing erosion rate period was observed however for PMMA instead of a steady state period. At early stages of damage and at low impact pressure material removal mechanisms appear to be similar to those for metallic materials.
机译:进行了光学和扫描电子显微镜研究,以表征聚甲基丙烯酸甲酯(PMMA),聚碳酸酯(PC),聚四氟乙烯(PTFE)和超高分子量聚乙烯(UHMWPE)的耐蚀性。腐蚀是由正常冲击下的球形微玻璃珠喷射引起的。在损坏的初始阶段,使用轮廓仪对这些材料的表面进行了研究。在PC和PMMA上观察到原始表面上方的材料堆积。随着侵蚀的进行,随着深坑的增加,这种堆积消失了。在PTFE和UHMWPE上几乎没有观察到堆积。 UHMWPE和PTFE是最坚固的材料,而PMMA则是最不坚固的材料。高耐蚀性的有利性质似乎是极限伸长率的高值,应变能和弹性模量的低值。 PC和PTFE的腐蚀速率与时间的关系曲线显示了孵育,加速和稳态时期。然而,对于PMMA,观察到腐蚀速率持续增加的时期,而不是稳态时期。在损坏的早期阶段和低冲击压力下,材料去除机理似乎与金属材料相似。

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    Buckley, D. H.; Rao, P. V.;

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  • 年度 1983
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