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Advances in Nanoalumina Ceramic Particle Fabrication Using Sonofragmentation

机译:声碎法制备纳米氧化铝陶瓷颗粒的研究进展

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The present study is focused on fabrication of high-purity submicrometer alumina ceramic particles (predominantly in sub-100 nm range) from micrometer-sized feed (e.g., 70-80 mum) using sonofragmentation. The effects of various parameters such as ultrasonic frequency, feed concentration, sonication time, surfactant, and applied ultrasonic power on sonofragmentation were investigated. Sub-100 nm particle production by sonofragmentation was validated via three metrics, i.e., laser particle size analysis, high-resolution transmission electron microscopy, and turbidimetry. There is a significant change in color and shape of alumina ceramic particles as a result of sonofragmentation. Higher size reduction ratios are obtained at lower frequencies and at higher input power. Submicrometer particle generation increases as concentration of the feed particles increases, indicating that attrition by interparticle collision is a significant mechanism. The shape of the particles changes from angular to spherical as sonofragmentation time increases. Probe-type sonication produces fragmentation effects that are less uniform than those induced by tank-type ultrasonics. Surfactant plays a significant role in preventing agglomeration, especially as finer fragments are produced with prolonged sonication.
机译:本研究的重点是利用超音波破碎技术,从微米级进料(例如70-80微米)制备高纯度亚微米级氧化铝陶瓷颗粒(主要在100 nm以下)。研究了超声波频率,进料浓度,超声处理时间,表面活性剂和施加的超声波功率等各种参数对超声波破碎的影响。通过超声波破碎产生的低于100 nm的颗粒通过三个指标进行验证,即激光粒度分析,高分辨率透射电子显微镜和比浊法。超声波破碎的结果是氧化铝陶瓷颗粒的颜色和形状发生了显着变化。在较低的频率和较高的输入功率下可获得较高的尺寸减小率。随着进料颗粒浓度的增加,亚微米级颗粒的产生也增加,这表明颗粒间碰撞引起的磨损是重要的机理。随着声碎时间的增加,颗粒的形状从角形变为球形。探头式超声产生的碎裂效果不如罐式超声波引起的碎裂效果均匀。表面活性剂在防止结块方面起着重要作用,尤其是随着长时间的超声处理会产生更细的碎片。

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