探索在降尺度拜耳过程槽中提高降水范围的创新战略

IF 1.6 4区 工程技术 Q3 ENGINEERING, CHEMICAL
Abbas Bakhtom, Saeed Ghasemzade Bariki, Salman Movahedirad
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引用次数: 0

摘要

拜耳法是氧化铝生产的基石,其沉淀阶段是效率和产品质量的关键。在本研究中,我们开始全面探索提高氢氧化铝沉淀程度的策略,这是拜耳法工艺的关键步骤。我们利用新建的反应器以及串联反应器进行实验,对各种因素进行了严格的试验,包括添加过氧化氢 (H2O2) 作为增强剂、种子活化方法、在处理装置中整合水力旋流器、应用磁场以及在工艺中途注入过饱和液体。我们对这些不同的策略进行了系统评估,以解读它们对沉淀程度的单独和协同作用。我们的研究旨在找出最佳条件,以最大限度地提高氧化铝沉淀,同时保持产品质量和种子颗粒的稳定性。这项研究提供了新的见解和实用的解决方案,有助于拜耳工艺中氧化铝生产的不断进步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring innovative strategies for precipitation extent enhancement in a downscaled Bayer process tank

The Bayer process is a cornerstone of alumina production, and its precipitation stage holds the key to both efficiency and product quality. In this study, we embarked on a comprehensive exploration of strategies to enhance the precipitation extent of aluminium hydroxide, a pivotal step in the Bayer process. Utilizing a newly constructed reactor, along with experiments using reactors in series, we rigorously experimented with various factors, including the addition of hydrogen peroxide (H2O2) as an enhancer, seed activation methods, the integration of a hydrocyclone within the processing unit, the application of a magnetic field, and the injection of supersaturated liquor midway through the process. These diverse strategies were systematically assessed to decipher their individual and synergistic effects on precipitation extent. Our research aims to uncover the optimal conditions for maximizing alumina precipitation while maintaining product quality and seed particle stability. By offering new insights and practical solutions, this study contributes to the ongoing advancement of alumina production within the Bayer process.

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来源期刊
Canadian Journal of Chemical Engineering
Canadian Journal of Chemical Engineering 工程技术-工程:化工
CiteScore
3.60
自引率
14.30%
发文量
448
审稿时长
3.2 months
期刊介绍: The Canadian Journal of Chemical Engineering (CJChE) publishes original research articles, new theoretical interpretation or experimental findings and critical reviews in the science or industrial practice of chemical and biochemical processes. Preference is given to papers having a clearly indicated scope and applicability in any of the following areas: Fluid mechanics, heat and mass transfer, multiphase flows, separations processes, thermodynamics, process systems engineering, reactors and reaction kinetics, catalysis, interfacial phenomena, electrochemical phenomena, bioengineering, minerals processing and natural products and environmental and energy engineering. Papers that merely describe or present a conventional or routine analysis of existing processes will not be considered.
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