» Articles » PMID: 34639864

Fixed-Bed Column Technique for the Removal of Phosphate from Water Using Leftover Coal

Overview
Publisher MDPI
Date 2021 Oct 13
PMID 34639864
Citations 6
Authors
Affiliations
Soon will be listed here.
Abstract

The excessive discharge of phosphate from anthropogenic activities is a primary cause for the eutrophication of aquatic habitats. Several methodologies have been tested for the removal of phosphate from aqueous solutions, and adsorption in a flow-through reactor is an effective mechanism to reduce the nutrient loading of water. This research aimed to investigate the adsorption potential of leftover coal material to remove phosphate from a solution by using continuous flow fixed-bed column, and analyzes the obtained breakthrough curves. A series of column tests were performed to determine the phosphorus breakthrough characteristics by varying operational design parameters such as adsorbent bed height (5 to 8 cm), influent phosphate concentration (10-25 mg/L), and influent flow rate (1-2 mL/min). The amorphous and crystalline property of leftover coal material was studied using XRD technology. The FT-IR spectrum confirmed the interaction of adsorption sites with phosphate ions. Breakthrough time decreased with increasing flow rate and influent phosphate concentration, but increased with increasing adsorbent bed height. Breakthrough-curve analysis showed that phosphate adsorption onto the leftover coal material was most effective at a flow rate of 1 mL/min, influent phosphate concentration of 25 mg/L, and at a bed height of 8 cm. The maximal total phosphate adsorbed onto the coal material's surface was 243 mg/kg adsorbent. The Adams-Bohart model depicted the experimental breakthrough curve well, and overall performed better than the Thomas and Yoon-Nelson models did, with correlation values (R) ranging from 0.92 to 0.98. Lastly, leftover coal could be used in the purification of phosphorus-laden water, and the Adams-Bohart model can be employed to design filter units at a technical scale.

Citing Articles

Effective phosphorus removal using transformed water hyacinth: Performance evaluation in fixed-bed columns and practical applications.

Ramirez-Munoz A, Florez E, Ocampo-Perez R, Acelas N PLoS One. 2024; 19(11):e0312432.

PMID: 39570839 PMC: 11581350. DOI: 10.1371/journal.pone.0312432.


Alginate-Moroccan Clay, New Bio-Nanocomposite for Removal of HPO, HPO, and NO Ions from Aqueous Solutions.

Aziam R, Stefan D, Aboussabek A, Chiban M, Croitoru A Polymers (Basel). 2023; 15(24).

PMID: 38139918 PMC: 10747846. DOI: 10.3390/polym15244666.


Coconut power: a sustainable approach for the removal of Cr ions using a new coconut-based polyurethane foam/activated carbon composite in a fixed-bed column.

Tomon T, Estrada R, Fernandez R, Capangpangan R, Lubguban A, Dumancas G RSC Adv. 2023; 13(30):20941-20950.

PMID: 37448637 PMC: 10336476. DOI: 10.1039/d3ra02266h.


Continuous Phosphate Removal and Recovery Using a Calcium Silicate Hydrate Composite Monolithic Cryogel Column.

Phawachalotorn C, Wongniramaikul W, Taweekarn T, Kleangklao B, Pisitaro W, Limsakul W Polymers (Basel). 2023; 15(3).

PMID: 36771839 PMC: 9921571. DOI: 10.3390/polym15030539.


Fixed-Bed Column Adsorption Studies: Comparison of Alginate-Based Adsorbents for La(III) Ions Recovery.

Fila D, Kolodynska D Materials (Basel). 2023; 16(3).

PMID: 36770065 PMC: 9920093. DOI: 10.3390/ma16031058.


References
1.
Foo K, Lee L, Hameed B . Preparation of tamarind fruit seed activated carbon by microwave heating for the adsorptive treatment of landfill leachate: A laboratory column evaluation. Bioresour Technol. 2013; 133:599-605. DOI: 10.1016/j.biortech.2013.01.097. View

2.
Zhang W, Bu A, Ji Q, Min L, Zhao S, Wang Y . p-Directed Incorporation of Phosphonates into MOF-808 via Ligand Exchange: Stability and Adsorption Properties for Uranium. ACS Appl Mater Interfaces. 2019; 11(37):33931-33940. DOI: 10.1021/acsami.9b10920. View

3.
Yang Q, Wang X, Luo W, Sun J, Xu Q, Chen F . Effectiveness and mechanisms of phosphate adsorption on iron-modified biochars derived from waste activated sludge. Bioresour Technol. 2017; 247:537-544. DOI: 10.1016/j.biortech.2017.09.136. View

4.
Barca C, Gerente C, Meyer D, Chazarenc F, Andres Y . Phosphate removal from synthetic and real wastewater using steel slags produced in Europe. Water Res. 2012; 46(7):2376-84. DOI: 10.1016/j.watres.2012.02.012. View

5.
Negrea A, Mihailescu M, Mosoarca G, Ciopec M, Duteanu N, Negrea P . Estimation on Fixed-Bed Column Parameters of Breakthrough Behaviors for Gold Recovery by Adsorption onto Modified/Functionalized Amberlite XAD7. Int J Environ Res Public Health. 2020; 17(18). PMC: 7558511. DOI: 10.3390/ijerph17186868. View