首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Solid particle erosion studies on polyphenylene sulfide composites and prediction on erosion data using artificial neural networks
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Solid particle erosion studies on polyphenylene sulfide composites and prediction on erosion data using artificial neural networks

机译:聚苯硫醚复合材料的固体颗粒侵蚀研究及基于人工神经网络的侵蚀数据预测

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摘要

Solid particle erosion behavior of polyphenylene sulfide, reinforced by short glass fibers with varying fiber content (0-40 wt%) has been studied. Steady-state erosion rates have been evaluated at different impact angles (15-90°) and impact velocities (25-66 m/s) using silica sand particles (200 ± 50μm) as an erodent. PPS and its composites exhibited maximum erosion rate at 30° impact angle indicating ductile erosion behavior. Though PPS is a brittle thermoplastic, incubation period was found for neat resin and its composites at normal impact (α = 90°). The erosion rates of PPS composites increased with increasing amount of glass fiber. Morphology of eroded surfaces was examined using scanning electron microscopy (SEM) and possible wear mechanisms were discussed. Also, artificial neural networks (ANNs) technique has been used to predict the erosion rate based on the experimentally measured database of PPS composites. The results show that the predicted data are well acceptable when comparing them to measured values. A well-trained ANN is expected to be very helpful for prediction of wear data for systematic parameter studies.
机译:已经研究了由具有不同纤维含量(0-40 wt%)的短玻璃纤维增​​强的聚苯硫醚的固体颗粒腐蚀行为。使用硅砂颗粒(200±50μm)作为侵蚀剂,已评估了在不同撞击角度(15-90°)和撞击速度(25-66 m / s)下的稳态腐蚀速率。 PPS及其复合材料在30°冲击角处显示出最大的腐蚀速率,表明其韧性腐蚀行为。尽管PPS是一种脆性的热塑性塑料,但发现纯树脂及其复合材料在正常冲击下(α= 90°)的潜伏期。 PPS复合材料的腐蚀速率随玻璃纤维含量的增加而增加。使用扫描电子显微镜(SEM)检查了腐蚀表面的形貌,并讨论了可能的磨损机理。而且,基于实验测量的PPS复合材料数据库,人工神经网络(ANNs)技术已用于预测腐蚀速率。结果表明,将预测数据与测量值进行比较时可以很好地接受预测数据。训练有素的人工神经网络有望对系统参数研究的磨损数据预测非常有帮助。

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