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The Stefan-Reynolds Model and the Modified Stefan-Reynolds Model for Studying Bubble-Particle Attachment Interactions in the Context of Flotation

机译:用于研究浮选背景下的泡沫颗粒附着相互作用的斯特凡雷诺模型和改进的Stefan-Reynolds模型

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摘要

Bubble-particle attachment is the key step for successful flotation. Modeling of attachment interactions between air bubbles and particles after their collision can be analyzed using the Stefan-Reynolds model (immobile bubble surfaces) and the modified Stefan-Reynolds model (mobile bubble surfaces). However, these models have been rarely used, and the limitations of these models have not yet been reported. The objective of this paper is to address this matter under a wide range of experimental flotation conditions. It was found that the Stefan-Reynolds model can be used to determine the real bubble-particle hydrophobic constants at low surfactant concentrations. However, at high surfactant concentrations, the real bubble-particle hydrophobic constants cannot be determined, but the fictive bubble-particle hydrophobic constants can be obtained by using the linear extrapolation method. The same analysis was also performed using the modified Stefan-Reynolds model. The results showed that the attachment of quartz particles to air bubbles in the presence of dodecyl amine hydrochloride is accelerated due to the mobility of the air-water interface. This paper demonstrated that the limitations of the Stefan Reynolds model and the modified Stefan-Reynolds model to analyze the bubble-particle attachment interactions can be addressed by introducing the fictive bubble particle hydrophobic constants.
机译:泡沫粒子附着是成功浮选的关键步骤。可以使用斯特凡雷诺德模型(Immobile气泡表面)和改进的斯特凡雷诺模型(移动气泡表面)来分析气泡与颗粒之间的附着相互作用的建模。然而,这些模型已经很少使用,尚未报告这些模型的局限性。本文的目的是根据各种实验浮选条件解决此事。发现Stefan-Reynolds模型可用于确定低表面活性剂浓度的真实气泡粒子疏水常数。然而,在高表面活性剂浓度下,不能确定真实气泡颗粒疏水常数,但是通过使用线性外推方法可以获得虚构气泡粒子疏水常数。还使用修改的斯特凡雷诺德模型进行相同的分析。结果表明,由于空水界面的迁移率,将石英颗粒与在盐酸十二烷基胺存在下的气泡中加速。本文证明,通过引入虚构气泡颗粒疏水常数,可以解决斯特凡河雷诺模型和修饰的斯特凡雷诺模型的局限性来分析气泡颗粒附着相互作用。

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  • 作者单位

    China Univ Min &

    Technol Sch Chem Engn &

    Technol Minist Educ Key Lab Coal Proc &

    Efficient Utilizat 1 Univ Rd Xuzhou 221116 Jiangsu Peoples R China;

    Curtin Univ Western Australian Sch Mines Minerals Energy &

    Ch 95 Egan St Kalgoorlie WA 6430 Australia;

    Curtin Univ Western Australian Sch Mines Minerals Energy &

    Ch 95 Egan St Kalgoorlie WA 6430 Australia;

    China Univ Min &

    Technol Sch Chem Engn &

    Technol Minist Educ Key Lab Coal Proc &

    Efficient Utilizat 1 Univ Rd Xuzhou 221116 Jiangsu Peoples R China;

    China Univ Min &

    Technol Sch Chem Engn &

    Technol Minist Educ Key Lab Coal Proc &

    Efficient Utilizat 1 Univ Rd Xuzhou 221116 Jiangsu Peoples R China;

    Shandong Univ Sci &

    Technol Coll Chem &

    Environm Engn 579 Qianwangang Rd Qingdao 266590 Shandong Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;化学;
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