首页> 外文会议>International Conference on Materials for Advanced Technologies;ICMAT; 20070701-06;20070701-06; Singapore(SG);Singapore(SG) >Application of Power Ultrasound in Cavitation Erosion Testing of Nano-Ceramic Particle/Polymer Composites
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Application of Power Ultrasound in Cavitation Erosion Testing of Nano-Ceramic Particle/Polymer Composites

机译:功率超声在纳米陶瓷颗粒/聚合物复合材料空化侵蚀试验中的应用

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Cavitation erosion is predominant in pipelines for liquid transportation, causing damage to pipe wall, impeller and their accessories. The present study is focused on development of cavitation -wear resistant nano-ceramic particle-reinforced polymer matrix material; and on study of its feasibility to be used as lining material in hydraulic transportation. The polymerano composite is fabricated using power ultrasound in all three process steps: synthesis of nano-dimensional particles of white fused alumina (WFA) from micron size particles, optimized blending and finally reinforcement into poly methyl methacrylate (PMMA) matrix. The effect of ultrasonic parameters on nano-composite/ virgin polymers (like polyethylene and polypropylene) is studied by measuring mass loss of the materials and suspension turbidity during exposure time. At low frequency (20-60 kHz), cavitation intensity is predominant; this effect is utilized for fabricating sub-micron particles, and for performing accelerated cavitation erosion tests. At high frequency, acoustic streaming is predominant; this effect is utilized for blending and reinforcing of the nano ceramic particles into polymer matrix. The size and quantity of the particles generated by cavitation erosion was analyzed by Laser Particle Size Analyzer (20 nm-1400 micron range). The nano-composite coupons were analyzed before and after the ultrasonic erosion test using SEM. It is concluded that low-frequency sonication is a viable option for cavitaton erosion testing of ceramic/polymer composites.
机译:气蚀主要发生在液体输送管道中,从而损坏了管壁,叶轮及其配件。本研究的重点是抗气蚀磨损的纳米陶瓷颗粒增强聚合物基体材料的开发。并研究了其在水力运输中用作衬砌材料的可行性。聚合物/纳米复合材料是使用功率超声在所有三个过程步骤中制造的:从微米级颗粒合成白色熔融氧化铝(WFA)的纳米级颗粒,优化掺混并最终增强到聚甲基丙烯酸甲酯(PMMA)基质中。超声波参数对纳米复合材料/原生聚合物(如聚乙烯和聚丙烯)的影响通过测量材料的质量损失和暴露时间的悬浮浊度来研究。在低频(20-60 kHz)下,空化强度占主导。这种效果可用于制造亚微米颗粒,并用于进行加速的空蚀腐蚀测试。在高频下,声音流占主导。该效果用于将纳米陶瓷颗粒共混和增强到聚合物基体中。通过激光粒度分析仪(20 nm-1400微米范围)分析由气蚀产生的颗粒的大小和数量。使用SEM在超声腐蚀试验之前和之后分析纳米复合试样。结论是,低频超声处理是陶瓷/聚合物复合材料的空洞腐蚀测试的可行选择。

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