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Particle characterisation in highly concentrated dispersions using ultrasonic backscattering method

机译:超声反向散射法表征高浓度分散体中的颗粒

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摘要

Determining particle size and concentration in highly concentrated suspensions and emulsions is challenging, especially under process conditions. In general, ultrasound therefore can be used for particle characterisation due to the ability of sound waves to pass opaque dispersions, whereas optical detection principles mostly are limited to low particulate contents. An established acoustic method, the ultrasonic attenuation spectroscopy, uses a transmission setup for measuring the attenuation of a dispersion. A major drawback of this measurement method is caused by the fact, that the measuring gap tends to plug, which again limits the inline capability. To overcome this limitation, an ultrasonic reflection setup is used for gathering the sound waves, which are reflected, respectively backscattered by the dispersion. Statistically analysing the corresponding backscattering signal yields the sound attenuation as well as a scattering intensity equivalent. Both measurement parameters can be shown to be sensitive against particle size and concentration. Based on a single scattering theory, a semi-empirical approach is presented for interpretation of measurement results with respect to particle size and concentration. Measurements, performed on a glass beads in water dispersion, show good agreement with theory for dimensionless wave number 0.1 < ka ≤ 1, even for concentrations up to 30 vol.%.
机译:确定高度浓缩的悬浮液和乳液中的粒径和浓度具有挑战性,尤其是在工艺条件下。通常,由于声波通过不透明色散的能力,因此超声波通常可用于颗粒表征,而光学检测原理主要限于低颗粒物含量。已建立的声学方法,即超声衰减光谱法,使用传输设置来测量色散的衰减。该测量方法的主要缺点是由于测量间隙趋于堵塞而又限制了在线能力。为了克服该限制,使用超声波反射装置来收集声波,该声波被色散分别反射或反向散射。统计分析相应的反向散射信号会产生声音衰减以及等效的散射强度。可以显示这两个测量参数对粒度和浓度敏感。基于单一散射理论,提出了一种半经验方法来解释有关粒度和浓度的测量结果。在水分散液中对玻璃珠进行的测量表明,即使浓度高达30 vol。%,无因次波数0.1

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