Removal of Mn2+ in geothermal water by manganese sand: process and mechanisms

IF 1 4区 地球科学 Q3 GEOCHEMISTRY & GEOPHYSICS Geochemistry-Exploration Environment Analysis Pub Date : 2022-01-20 DOI:10.1144/geochem2021-071
Wen Feng, Jun Wu, Jian Lu
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引用次数: 1

Abstract

Geothermal water resources are being exploited widely in many areas to relieve pressure on water resources generally. Excessive Mn2+ concentration in geothermal water will seriously reduce its utilization rate. Therefore, this study investigated the removal of Mn2+ from simulated geothermal water by manganese sand. The Mn2+ removal rate from simulated water with a concentration of 10 mg l−1 by 2 g manganese sand at 298, 323, 343 and 363 K was more than 90%. The removal efficiency of Mn2+ is influenced by adsorbent dosage, adsorbent particle size, initial Mn2+ concentration and competing ions, and less so by a pH of 5–9. A pseudo-first-order kinetic model fits the adsorption data better than a pseudo-second-order model. The pseudo-first-order adsorption rate constants (K1) ranged from 0.14 to 0.5 h−1 as the temperature increased from 298 to 363 K. The Langmuir isotherm model fits the adsorption data better than the Freundlich and Temkin isotherm models. The maximum monolayer adsorption capacities (qm) obtained by the Langmuir isotherm model fitting were 0.91/1.02/1.22/1.23 mg g–1 at 298/323/343/363 K. Thermodynamic studies revealed that the adsorption was endothermic and physical in nature. These findings suggest that the potential of manganese sand for removing Mn2+ in geothermal water is considerable. Thematic collection: This article is part of the Hydrochemistry related to exploration and environmental issues collection available at: https://www.lyellcollection.org/cc/hydrochemistry-related-to-exploration-and-environmental-issues
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锰砂去除地热水中Mn2+的过程与机理
为了缓解水资源压力,许多地区正在广泛开发地热水资源。地热水中Mn2+浓度过高会严重降低地热水的利用率。因此,本研究对锰砂对模拟地热水中Mn2+的去除进行了研究。浓度为10的模拟水中Mn2+的去除率 毫克 l−1乘2 g锰砂,298、323、343和363 K值大于90%。Mn2+的去除效率受吸附剂用量、吸附剂粒度、初始Mn2+浓度和竞争离子的影响,而pH为5–9时影响较小。伪一阶动力学模型比伪二阶模型更适合吸附数据。拟一阶吸附速率常数(K1)在0.14-0.5之间 h−1,温度从298升高到363 K.Langmuir等温线模型比Freundlich和Temkin等温线模型更适合吸附数据。通过Langmuir等温线模型拟合获得的最大单层吸附容量(qm)为0.91/1.02/1.22/1.23 298/323/343/363时的mg g–1 K.热力学研究表明,吸附本质上是吸热的和物理的。这些发现表明,锰砂在去除地热水中的Mn2+方面具有相当大的潜力。主题集:本文是与勘探和环境问题相关的水化学集的一部分,可在以下网站获取:https://www.lyellcollection.org/cc/hydrochemistry-related-to-exploration-and-environmental-issues
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来源期刊
Geochemistry-Exploration Environment Analysis
Geochemistry-Exploration Environment Analysis 地学-地球化学与地球物理
CiteScore
3.60
自引率
16.70%
发文量
30
审稿时长
1 months
期刊介绍: Geochemistry: Exploration, Environment, Analysis (GEEA) is a co-owned journal of the Geological Society of London and the Association of Applied Geochemists (AAG). GEEA focuses on mineral exploration using geochemistry; related fields also covered include geoanalysis, the development of methods and techniques used to analyse geochemical materials such as rocks, soils, sediments, waters and vegetation, and environmental issues associated with mining and source apportionment. GEEA is well-known for its thematic sets on hot topics and regularly publishes papers from the biennial International Applied Geochemistry Symposium (IAGS). Papers that seek to integrate geological, geochemical and geophysical methods of exploration are particularly welcome, as are those that concern geochemical mapping and those that comprise case histories. Given the many links between exploration and environmental geochemistry, the journal encourages the exchange of concepts and data; in particular, to differentiate various sources of elements. GEEA publishes research articles; discussion papers; book reviews; editorial content and thematic sets.
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