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用于水处理中最佳钙去除的机理模型进展:整体操作改进与反应器设计策略

Mechanistic model advancements for optimal calcium removal in water treatment: Integral operation improvements and reactor design strategies.

作者信息

Seepma Sergěj Y M H, Koskamp Janou A, Colin Michel G, Chiou Eleftheria, Sobhan Rubayat, Bögels Tim F J, Bastiaan Tom, Zamanian Hadi, Baars Eric T, de Moel Peter J, Wolthers Mariëtte, Kramer Onno J I

机构信息

Utrecht University, Department of Earth Sciences, Princetonlaan 8A, 3584, CB Utrecht, the Netherlands; Waternet, PO Box 94370, 1090, GJ, the Netherlands.

Utrecht University, Department of Earth Sciences, Princetonlaan 8A, 3584, CB Utrecht, the Netherlands.

出版信息

Water Res. 2025 Jan 1;268(Pt B):122781. doi: 10.1016/j.watres.2024.122781. Epub 2024 Nov 10.

Abstract

Drinking water softening has primarily prioritized public health, environmental benefits, social costs and enhanced client comfort. Annually, over 35 billion cubic meters of water is softened worldwide, often utilizing three main techniques: nanofiltration, ion exchange and seeded crystallization by pellet softening. However, recent modifications in pellet softening, including changes in seeding materials and acid conditioning used post-softening, have not fully achieved desired flexibility and optimization. This highlights the need of an integral approach, as drinking water softening is just one step in the drinking water treatment chain, which includes ozonation, softening, biological active carbon filtration (BACF) and sand filtration among others. In addition, pellet softening is often practiced based on operator knowledge, lacking practical key reactor performance indicators (KPIs) for efficient control. For that reason, we propose a newly and improved integral mechanistic model designed to accurately predict (1) calcite removal rates in drinking water through seeded crystallization in pellet softening reactors, (2) the saturation of the filter bed in the subsequent treatment step, (3) values for the KPIs steering the softening efficiency. Our new mechanistic model integrates insights from hydrodynamics, thermodynamics, mass transfer kinetics, nucleation and reactor engineering, focussing on critical variables such as temperature, linear velocity, pellet particle size and saturation index with respect to calcite. Our model was validated with data from the Waternet Weesperkarspel drinking water treatment plant in Amsterdam, The Netherlands, but implies universal applicability for addressing industrial challenges beyond drinking water softening. The implementation of our model proposes five effective KPIs to optimize the softening process, chemical usage, and reactor design. The advantage of this model is that it eliminates the application of numerical methods and fills a significant gap in the field by providing predictions of the carry-over (i.e., the produced CaCO fines leaving the fluidized bed) from water softening practices. With our model, the calcium removal rate is predicted with an average standard deviation (SD) of 40 % and the consequential clogging prediction of the BACF bed with an average SD of 130 %. Ultimately, our model provides crucial insights for operational management and decision-making in drinking water treatment plants, steering towards a more circular and environmentally sustainable process.

摘要

饮用水软化主要优先考虑公共卫生、环境效益、社会成本以及提高客户舒适度。全球每年有超过350亿立方米的水被软化,通常采用三种主要技术:纳滤、离子交换和颗粒软化的晶种结晶法。然而,颗粒软化最近的改进,包括晶种材料的变化以及软化后使用的酸调节,尚未完全实现所需的灵活性和优化。这凸显了采用整体方法的必要性,因为饮用水软化只是饮用水处理链中的一个步骤,该处理链还包括臭氧化、软化、生物活性炭过滤(BACF)和砂滤等。此外,颗粒软化通常基于操作人员的知识进行,缺乏用于有效控制的实用关键反应器性能指标(KPI)。因此,我们提出了一个新的改进型整体机理模型,旨在准确预测:(1)通过颗粒软化反应器中的晶种结晶去除饮用水中方解石的速率;(2)后续处理步骤中滤床的饱和度;(3)指导软化效率的KPI值。我们的新机理性模型整合了流体动力学、热力学、传质动力学、成核和反应器工程等方面的见解,重点关注温度、线速度、颗粒粒径和相对于方解石的饱和度指数等关键变量。我们的模型已通过荷兰阿姆斯特丹Waternet Weesperkarspel饮用水处理厂的数据进行了验证,但意味着它在解决饮用水软化以外的工业挑战方面具有普遍适用性。我们模型的实施提出了五个有效的KPI,以优化软化过程、化学药剂使用和反应器设计。该模型的优点是它消除了数值方法的应用,并通过提供水软化实践中带出物(即离开流化床的产生的碳酸钙细粉)的预测填补了该领域的一个重大空白。利用我们的模型,预测钙去除率的平均标准差(SD)为40%,对BACF床的相应堵塞预测的平均SD为130%。最终,我们的模型为饮用水处理厂的运营管理和决策提供了关键见解,引导实现更循环和环境可持续的过程。

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