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首页> 外文期刊>Journal of Manufacturing Processes >Numerical and experimental studies about the effect of acoustic streaming on ultrasonic processing of metal matrix nanocomposites (MMNCs)
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Numerical and experimental studies about the effect of acoustic streaming on ultrasonic processing of metal matrix nanocomposites (MMNCs)

机译:声流对金属基纳米复合材料(MMNCs)超声处理影响的数值和实验研究

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Acoustic streaming is a non-linear physical effect which can assist in effective distribution of nanomaterials in a liquid medium subjected to ultrasonic processing. In this study, a time-dependent non-linear computational model was developed to study the effect of various geometrical configurations of the ultrasonic processing cell on the evolution of acoustic streaming flow. Three different geometrical configurations of a flat-bottomed cylindrical processing cell were analyzed for this study. The most well-developed flow pattern is obtained for the geometrical configuration providing the largest acoustic cavitation zone size. Validation of the computational model was performed by two separate experiments a sedimentation study and processing of a metal matrix nanocomposite (MMNC) composed of an aluminum alloy mixed with carbon nanofibers (CNFs) and silicon carbide (SiC) microparticles. CNFs sonicated in water using the optimum parameters showed the most stable dispersion after 43 h of observation. Microstructural analysis of a cast MMNC subjected to ultrasonic processing with the optimum parameters showed the effect of acoustic streaming in achieving more uniform distribution of solidified phases along with nanomaterials within the matrix compared to a mechanically stirred sample. Computational analysis showed that irregular bottom shapes of the processing cell significantly influence the acoustic cavitation and streaming flow patterns. These studies lay the groundwork for future research into optimizing the shape of the processing cell for scaling up ultrasonication to process larger volumes of liquid media. (C) 2017 The Society of Manufacturing Engineers. Published by Elsevier Ltd. All rights reserved.
机译:声流是非线性物理效应,可以帮助纳米材料在经过超声处理的液体介质中有效分布。在这项研究中,建立了一个与时间有关的非线性计算模型,以研究超声处理单元的各种几何构造对声流流动演变的影响。本研究分析了平底圆柱处理单元的三种不同几何构型。对于提供最大声空化区尺寸的几何构造,获得了最完善的流型。计算模型的验证是通过两个单独的实验进行的,即沉降研究和处理由铝合金与碳纳米纤维(CNFs)和碳化硅(SiC)微粒混合而成的金属基质纳米复合材料(MMNC)。使用最佳参数在水中超声处理的CNF在观察43小时后显示出最稳定的分散。与机械搅拌的样品相比,采用最佳参数进行超声处理的铸态MMNC的微观结构分析表明,声流的作用是使凝固相以及纳米材料在基体内更均匀地分布在固相中。计算分析表明,处理单元的不规则底部形状会显着影响声空化和流态流型。这些研究为将来的研究奠定了基础,以优化处理单元的形状以扩大超声处理的能力,以处理更大体积的液体介质。 (C)2017年制造工程师学会。由Elsevier Ltd.出版。保留所有权利。

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