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首页> 外文期刊>The Canadian Journal of Chemical Engineering >AN ULTRASOUND-CONDUCTIVITY METHOD FOR MEASURING GAS HOLDUP IN A MICROBUBBLE-BASED GAS-LIQUID SYSTEM
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AN ULTRASOUND-CONDUCTIVITY METHOD FOR MEASURING GAS HOLDUP IN A MICROBUBBLE-BASED GAS-LIQUID SYSTEM

机译:一种用于测量微泡基气液系统气体堆积的超声导电方法

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摘要

Due to the high specific surface area of microbubble-based systems, the concept of gas-liquid separation has successful applications in many fields, such as oil-water separation, algal harvesting, micro-extraction, membrane pretreatment, and water treatment. Gas holdup is an important parameter in such systems. However, the conventional measurement methods for the macrobubble system may not be directly applicable to the microbubble system due to small bubble size and low gas holdup. In this study, an ultrasound-conductivity method under non-isokinetic sampling conditions was developed to measure gas holdup in the microbubble-based gas-liquid system. The measurement setup consists of a sampling probe, a bubble coalescence unit, and a conductivity measurement unit. A key feature of the setup is a bubble coalescence unit to convert microbubbles to macrobubbles for conductivity measurement. The results showed that the bubble coalescence unit, made of an ultrasonic bath and a bubble-coalescence cell, was successful in forming macrobubbles so that accurate conductivity measurements could be made. Under non-isokinetic sampling conditions, the relationship between the extraction parameter (the gas volume fraction in the sampling probe) and the true gas holdup was established in flotation columns. The results indicate that the relationship does not depend on other factors, such as sampling probe orientation and flotation column diameter. Therefore, the developed ultrasound-conductivity method has great potential in microbubble-based gas-liquid system.
机译:由于基于微气泡的系统具有高比表面积,气液分离的概念在许多领域都有成功的应用,例如油水分离、藻类采集、微萃取、膜预处理和水处理。气含率是这类体系中的一个重要参数。然而,由于气泡尺寸小、气含率低,传统的大气泡系统测量方法可能不直接适用于微气泡系统。本研究开发了一种非等速采样条件下的超声电导法,用于测量微气泡气液体系中的气含率。测量装置由取样探头、气泡聚结装置和电导率测量装置组成。该装置的一个关键功能是一个气泡聚结装置,用于将微气泡转化为大气泡,以测量电导率。结果表明,由超声波浴和气泡聚结池组成的气泡聚结单元成功地形成了大气泡,从而可以进行准确的电导率测量。在非等速采样条件下,在浮选柱中建立了萃取参数(采样探头中的气体体积分数)与真实气含率之间的关系。结果表明,这种关系不依赖于其他因素,如取样探头方向和浮选柱直径。因此,所开发的超声电导法在基于微气泡的气液体系中具有很大的潜力。

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