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Comprehensive experimental design for preparation of zirconium-modified coal gangue–based molecular sieves and investigation of their sulfate ion adsorption performance
Experimental Technology and Management 2026, 43(4): 107-114
Published: 20 April 2026
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Objective

As a major producer and consumer of coal, China faces significant environmental pressures owing to the accumulation of coal gangue and contamination from high-sulfate mine water. Coal gangue, rich in silicon and aluminum, is an ideal raw material for synthesizing molecular sieves. Among these, NaA molecular sieves exhibit structural stability, high specific surface area, and strong ion exchange capacity; however, their negatively charged lattice limits their anion adsorption capacity. Zirconium hydroxide (Zr(OH)4) has a strong affinity for SO42− but tends to agglomerate during practical applications, diminishing effective adsorption sites. To address these limitations, this study employs a zirconium modification strategy to construct Zr(OH)4/ZrA composite adsorbents, aiming to simultaneously valorize coal gangue and efficiently remove SO42− from mine water.

Methods

Coal gangue was ground and calcined at 800 ℃ for 2 h to produce metakaolin, which was then used to synthesize NaA molecular sieve via hydrothermal reaction. Subsequently, the Zr(OH)4/ZrA adsorbent was synthesized through a multistep modification process: first, NH4A molecular sieve was obtained; subsequently, a secondary ion exchange with ZrOCl2 solution at 70 ℃ for 4 h formed the ZrA molecular sieve carrier; finally, zirconium hydroxide was loaded using the impregnation–precipitation method. Specifically, ZrA molecular sieves were impregnated with 0.1 mol/L ZrOCl2 solution at 60 ℃ for 12 h, followed by a second impregnation with ammonia solution (1∶1 volume ratio) for an additional 12 h. The resulting material was vacuum filtered, washed, and dried to yield the Zr(OH)4/ZrA adsorbent. Characterization techniques, including X-ray diffraction, Fourier transform infrared spectroscopy, scanning electron microscopy, and Brunauer–Emmett–Teller specific surface area analysis, were employed to systematically investigate the crystal structure, surface functional groups, microstructure, and pore characteristics of the sample. Static adsorption experiments investigated the influence of initial SO42− concentration, adsorption time, reaction temperature, and solution pH on adsorption performance. Adsorption processes were analyzed using pseudo-first-order and pseudo-second-order kinetic models alongside Langmuir and the Freundlich isotherm models.

Results

Findings indicate that Zr(OH)4 was successfully loaded onto the surface of NaA molecular sieves without compromising their crystalline structure. The modified Zr(OH)4/ZrA adsorbent exhibits a rough surface with a well-developed mesoporous structure, achieving a specific surface area of 441.36 m2/g, thereby providing ample active sites for SO42− adsorption. Adsorption performance increased with initial SO42− concentration, reaching a maximum adsorption capacity of 205 mg/g at an initial concentration of 10 g/L. Adsorption was rapid during the first 120 min and gradually approached equilibrium thereafter. Elevated temperature and high pH were found to inhibit adsorption efficiency. Kinetics analysis indicates that adsorption follows pseudo-second-order kinetics, while isotherm fitting predominantly aligns with the Langmuir model, confirming monolayer chemisorption.

Conclusions

The Zr(OH)4/ZrA adsorbent exhibits excellent structural stability and high SO42− affinity, achieving outstanding SO42− removal and demonstrating regeneration potential. This study presents a viable approach for valorizing coal gangue and offers an effective, economical method for treating high-sulfate mine water. The findings hold significance for advancing the green transformation of the coal industry and supporting China’s “dual carbon” goals.

Open Access Issue
Composition and origin of high-alumina coal in Jungar coalfield
Journal of Mining Science and Technology 2022, 7(1): 101-112
Published: 01 February 2022
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Based on the analysis of tectonic background and coal-accumulating environment of Jungar coalfield, the coal petrological characteristics, inorganic mineral composition, distribution and occurrence regularity of coal and gangue in No.6 coal of the Junger coalfield are studied, and the genesis is determined byutilizing the research methods of coal petrology, mineralogy and geochemistry.The study shows that the average contents of the inertinite, vitrinite and exinite in the maceral of No.6 coal in the study area are 59 %, 28 % and 13 %, respectively.Compared with the Late Paleozoic coals in other areas of North China, the content of the inertinite is high, which reflects an adequate supply of surface water during the formation of No.6 coal seam.The main inorganic minerals in coal and gangue are kaolinite and boehmite, associated with quartz, calcite, siderite, pyrite, anhydrite, anatase and svanbergite.The vertical changes of the mineral composition and main chemical elements of No.6 coal indicate that the middle of the coal seam is rich in boehmite, while the upper and lower parts are rich in kaolinite.There are three origins of kaolinite: colloidal precipitation crystallization, terrestrial transport sedimentation and volcanic ash alteration.And there are two origins of boehmite: alumina colloidal precipitation crystallization and desilication alteration of kaolinite.

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