Flotation separation of scheelite and calcite using the biopolymer konjac glucomannan: A novel and eco-friendly depressant
Zhenhao Guan , Ying Zhang , Shuming Wen , Qi Zuo , Yu Wu , Xiaokang Li
International Journal of Minerals, Metallurgy, and Materials ›› 2025, Vol. 32 ›› Issue (5) : 1056 -1067.
Flotation separation of scheelite and calcite using the biopolymer konjac glucomannan: A novel and eco-friendly depressant
This study investigated the effect of konjac glucomannan (KGM) on the flotation separation of calcite and scheelite. Microflotation tests showed that under the action of 50 mg/L KGM, the floatability of calcite notably decreased, while the impact on scheelite was negligible, resulting in a recovery difference of 82.53%. Fourier transform infrared (FTIR) spectroscopy and atomic force microscopy (AFM) analyses indicated the selective adsorption of KGM on the calcite surface. Test results of the zeta potential and UV-visible absorption spectroscopy revealed that KGM prevented the adsorption of sodium oleate on the calcite surface. X-ray photoelectron spectroscopy (XPS) analysis further confirmed the chemical adsorption of KGM on the calcite surface and the formation of Ca(OH)2. The density functional theory (DFT) simulation results were consistent with the flotation tests, demonstrating the strong adsorption performance of KGM on the calcite surface. This study offers a pathway for highly sustainable and cost-effective mineral processing by utilizing the unique properties of biopolymers such as KGM to separate valuable minerals from gangue minerals.
scheelite / calcite / selective depressant / konjac glucomannan / surface adsorption / flotation
| [1] |
J.J. Wang, Z.Y. Gao, H.S. Han, W. Sun, Y.S. Gao, and S. Ren, Impact of NaOL as an accelerator on the selective separation of scheelite from fluorite using a novel self-assembled Pb-BHA–NaOL collector system, Appl. Surf. Sci., 537(2021), art. No. 147778. |
| [2] |
|
| [3] |
|
| [4] |
|
| [5] |
|
| [6] |
|
| [7] |
Y.F. Chen, X.Y. Guo, and Y.L. Chen, Adsorption study of sesbania gum onto calcite surface: Implications for smithsonite-calcite flotation separation, Colloids Surf. A, 676(2023), art. No. 132174. |
| [8] |
|
| [9] |
J.Y. He, W. Sun, H.B. Zeng, R.H. Fan, W. Hu, and Z.Y. Gao, Unraveling roles of lead ions in selective flotation of scheelite and fluorite from atomic force microscopy and first-principles calculations, Miner. Eng., 179(2022), art. No. 107424. |
| [10] |
|
| [11] |
Z.H. Guan, K.W. Lu, Y. Zhang, H. Yang, and X.K. Li, Mechanism of manganese ion interaction with the surface of scheelite and calcite and its effect on flotation separation, Colloids Surf. A, 648(2022), art. No. 129397. |
| [12] |
W. Yao, M.L. Li, M. Zhang, R. Cui, J. Shi, and J.F. Ning, Effects of Pb2+ ions on the flotation behavior of scheelite, calcite, and fluorite in the presence of water glass, Colloids Surf. A, 632(2022), art. No. 127826. |
| [13] |
|
| [14] |
Y.K. Xu, Z.T. Yuan, Q.Y. Meng, X. Zhao, and Y.S. Du, Study on the flotation behavior and interaction mechanism of ilmenite with mixed BHA/NaOL collector, Miner. Eng., 170(2021), art. No. 107034. |
| [15] |
|
| [16] |
X. Wang, F. Jiao, W.Q. Qin, et al., Sulfonated brown coal: A novel depressant for the selective flotation of scheelite from calcite, Colloids Surf. A, 602(2020), art. No. 125006. |
| [17] |
|
| [18] |
Y.S. Zhang, H.R. Jiang, H. Wang, and C.Q. Wang, Separation of hazardous polyvinyl chloride from waste plastics by flotation assisted with surface modification of ammonium persulfate: Process and mechanism, J. Hazard. Mater., 389(2020), art. No. 121918. |
| [19] |
|
| [20] |
S. Ning, G.L. Li, P.L. Shen, et al., Selective separation of chalcopyrite and talc using pullulan as a new depressant, Colloids Surf. A, 623(2021), art. No. 126764. |
| [21] |
L.Y. Dong, F. Jiao, W.Q. Qin, and Q. Wei, New insights into the depressive mechanism of citric acid in the selective flotation of scheelite from fluorite, Miner. Eng., 171(2021), art. No. 107117. |
| [22] |
J. Liu, X. Wang, Y.M. Zhu, and Y.X. Han, Flotation separation of scheelite from fluorite by using DTPA as a depressant, Miner. Eng., 175(2022), art. No. 107311. |
| [23] |
|
| [24] |
C.H. Zhong, B. Feng, L.Z. Zhang, W.P. Zhang, H.H. Wang, and Z.Y. Gao, Flotation separation of apatite and calcite using gum Arabic as a depressant, Colloids Surf. A, 632(2022), art. No. 127723. |
| [25] |
|
| [26] |
G.J. Pan, Q. Shi, G.F. Zhang, and G.H. Huang, Selective depression of talc in chalcopyrite flotation by xanthan gum: Flotation response and adsorption mechanism, Colloids Surf. A, 600(2020), art. No. 124902. |
| [27] |
H. Zhou, Z.J. Zhang, L.M. Ou, and Q.Y. Mai, Flotation separation of chalcopyrite from talc using a new depressant carrageenan, Colloids Surf. A, 603(2020), art. No. 125274. |
| [28] |
|
| [29] |
|
| [30] |
J.J. Wang and L. Sun, Interaction mechanism of a novel reagent scheme in the selective separation of scheelite from calcite, Appl. Surf. Sci., 605(2022), art. No. 154840. |
| [31] |
Y. Foucaud, R.L.S. Canevesi, A. Celzard, V. Fierro, and M. Badawi, Hydration mechanisms of scheelite from adsorption isotherms and ab initio molecular dynamics simulations, Appl. Surf. Sci., 562(2021), art. No. 150137. |
| [32] |
J.H. Mokkath, Water-calcite (104) surface interactions using first-principles simulations, J. Phys. Chem. Solids, 161(2022), art. No. 110394. |
University of Science and Technology Beijing
/
| 〈 |
|
〉 |