Suppr超能文献

铁涂覆砂对磷酸盐保留的传输限制动力学及实际意义

Transport-limited kinetics of phosphate retention on iron-coated sand and practical implications.

作者信息

Barcala Victoria, Zech Alraune, Osté Leonard, Behrends Thilo

机构信息

Inland Water Systems, Deltares, 600 Daltonlaan, 3584 BK Utrecht, the Netherlands; Department of Earth Sciences, Faculty of Geosciences, Utrecht University, 8 Princetonlaan, 3584 CB Utrecht, the Netherlands.

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

出版信息

J Contam Hydrol. 2023 Apr;255:104160. doi: 10.1016/j.jconhyd.2023.104160. Epub 2023 Feb 13.

Abstract

Iron-coated sand (ICS) is a by-product from drinking water treatment made of sand coated with ferric iron (hydr)oxides. It is considered a suitable material for large-scale measures for phosphate removal from natural and agricultural waters to prevent eutrophication. Previous studies demonstrated that the residence time of water must be very long to reach equilibrium partitioning between phosphate and ICS but specifics for application are missing. First, SEM-EDX images were used to support the conceptual assumption that P adsorption inside the coating is a transport-limited process. Second, a conceptual model of phosphate adsorption was proposed considering two types of sites: one type with fast adsorption kinetics and reaching equilibrium with the percolating solution, and another type for which adsorption is also reversible but described by pseudo-first-order kinetics. The latter is conceived to account for transport-limited adsorption in the interior of the coating while the former fraction of sites is assumed to be easily accessible and located close to the grain surface. Third, the kinetics of phosphate adsorption on ICS were quantitatively determined to describe and predict phosphate retention in filters under various flow conditions. The model was calibrated and validated with long-term column experiments, which lasted for 3500 h to approach equilibrium on the slowly reacting sites. The model reproduced the outflowing phosphate concentrations: the pronounced increase after a few pore volumes and the slow increase over the remaining part of the experiment. The parameterized model was also able to predict the time evolution of phosphate concentrations in the outflow of column experiments with different flow velocities, flow interruption, and in desorption experiments. The equilibrium partition coefficient for the experimental conditions was identified as 28.1 L/g-Fe at pH 6.8 and a phosphate concentration of 1.7 mg-P / L. The optimized first-order mass transfer coefficient for the slow adsorption process was 1.56 10 h, implying that the slow adsorption process has a time scale of several months. However, based on the parameterized model, the slow adsorption process accounted for 95.5% of the equilibrium adsorption capacity, emphasizing the potential relevance of this process for practical applications. The implications for the design, operation, and lifespan of ICS filters are exemplarily illustrated for different scenarios.

摘要

铁涂覆砂(ICS)是饮用水处理过程中的一种副产品,由涂覆有铁(氢)氧化物的砂制成。它被认为是一种适用于从天然水和农业用水中大规模去除磷酸盐以防止富营养化的材料。先前的研究表明,水的停留时间必须非常长才能达到磷酸盐与ICS之间的平衡分配,但缺少具体的应用细节。首先,使用扫描电子显微镜-能谱仪(SEM-EDX)图像来支持涂层内部磷吸附是一个受传输限制的过程这一概念假设。其次,提出了一个磷酸盐吸附的概念模型,该模型考虑了两种类型的位点:一种具有快速吸附动力学且能与渗流溶液达到平衡,另一种吸附也是可逆的,但由准一级动力学描述。后者被认为是为了解释涂层内部受传输限制的吸附,而前一部分位点被假定易于接近且位于颗粒表面附近。第三,定量测定了磷酸盐在ICS上的吸附动力学,以描述和预测在各种流动条件下过滤器中磷酸盐的保留情况。该模型通过长期柱实验进行了校准和验证,这些实验持续了3500小时,以使反应缓慢的位点接近平衡。该模型再现了流出的磷酸盐浓度:在几个孔隙体积后明显增加,以及在实验剩余部分缓慢增加。参数化模型还能够预测不同流速、流动中断的柱实验流出物中磷酸盐浓度的时间演变以及解吸实验中的情况。在pH值为6.8且磷酸盐浓度为1.7mg-P/L的实验条件下确定的平衡分配系数为28.1L/g-Fe。慢吸附过程的优化一级传质系数为1.56×10⁻³h⁻¹,这意味着慢吸附过程的时间尺度为几个月。然而,基于参数化模型,慢吸附过程占平衡吸附容量的95.5%,强调了该过程在实际应用中的潜在相关性。针对不同场景示例性地说明了对ICS过滤器设计、运行和寿命的影响。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验