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Particle concentration measurement and flow regime identification in multiphase pipe flow using a generalised dual-frequency inversion method

机译:用广义双频反演方法识别多相管流中的颗粒浓度测量和流态

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摘要

An acoustic particle concentration measurement method, originally developed for marine sediment, in which the backscattered energy received by emitter-receiver transducers in the megahertz range is used to construct concentration profiles in suspensions of solid particles in a carrier fluid is applied to suspensions of general engineering interest. Four particle species with range of densities and sizes are used. Concentration profiles in horizontal, turbulent pipe flow at a Reynolds number of 50,000 and three nominal volume fractions are presented for each particle species, using experimentally determined acoustic coefficients, in order to isolate the influence of particle size and density on transport and settling in solid-liquid multiphase flows. It is clear from the results that the method allows the degree of segregation in real suspensions and slurries to be measured, and has a range of potential applications in the nuclear and minerals processing industries, for example. Lastly, the limiting conditions of the method are explored through the concept of an acoustic penetration depth.
机译:一种最初用于海洋沉积物的声粒子浓度测量方法,该方法使用兆赫兹范围内的发射器-接收器换能器接收的反向散射能量来构建载流体中固体颗粒悬浮液的浓度分布,并将其应用于一般工程的悬浮液利益。使用了四种具有不同密度和尺寸范围的颗粒。使用实验确定的声学系数,针对每种粒子,给出了雷诺数为50,000的水平湍流管道中的浓度分布图和三个标称体积分数,以分离出粒径和密度对运输和固体沉降的影响。液体多相流。从结果显而易见,该方法可以测量实际悬浮液和浆液中的偏析程度,例如在核和矿物加工行业中具有一系列潜在应用。最后,通过声波穿透深度的概念探索了该方法的极限条件。

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