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Research Article

Beneficiation of low-grade collophane by a novel combined enhanced gravity separation-flotation process

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Pages 7620-7635 | Received 14 Apr 2022, Accepted 13 Aug 2022, Published online: 25 Aug 2022

References

  • Andavarapu, M., A. Vidyadhar, and R. Prasad. 2022. Recovery of clean coking coal from difficult-to-wash low volatile coking coal fines of Jharia coalfield by multi gravity separator. International Journal of Coal Preparation and Utilization (online), 1–21. doi:10.1080/19392699.2022.2096015.
  • Aydogan, N. A., and M. Kademli. 2019. Effect of operational conditions on Falcon concentrator performance with different particle size fractions. Particulate Science and Technology 38 (5):635–40. doi:10.1080/02726351.2019.1573867.
  • Chen, Y., J. Wu, R. Liu, C. Liu, L. Liu, R. Li, H. Zhang, J. Pang, and D. Liu. 2020b. Application of waste acid from phosphogysum dam as an eco-friendly depressant in collophane flotation. Journal of Cleaner Production 267:122184. doi:10.1016/j.jclepro.2020.122184.
  • Chen, Q., H. Yang, L. Tong, H. Niu, F. Zhang, and G. Chen. 2020a. Research and application of a Knelson concentrator: A review. Minerals Engineering 152:106339. doi:10.1016/j.mineng.2020.106339.
  • Das, A., and B. Sarkar. 2018. Advanced gravity concentration of fine particles: A review. Mineral Processing and Extractive Metallurgy Review 39 (6):359–94. doi:10.1080/08827508.2018.1433176.
  • Dehaine, Q., Y. Foucaud, J. Kroll-Rabotin, and L. Filippov. 2019.Experimental investigation into the kinetics of Falcon UF concentration: Implications for fluid dynamic-based modelling. Separation and Purification Technology 215: 590–601.doi: 10.1016/j.seppur.2019.01.048
  • Fang, J., Y. Ge, and J. Yu. 2019. Adsorption behavior and mechanism of an ether amine collector on collophane and quartz. Physicochemical Problems of Mineral Processing 55 (1):301–10. doi:10.5277/ppmp18132.
  • Fang, J., Y. Ge, and J. Yu. 2021. Effects of particle size and wettability on froth stability in a collophane flotation system. Powder Technology 379:576–84. doi:10.1016/j.powtec.2020.11.028.
  • Farajzadeh, S., and S. Chelgani. 2022. Gravity separation by falcon concentrator - An over review. Separation Science and Technology 57 (13):2145–64. doi:10.1080/01496395.2022.2028836.
  • Foucaud, Y., Q. Dehaine, L. O. Filippov, and I. V. Filippova. 2019. Application of Falcon centrifuge as a cleaner alternative for complex tungsten ore processing. Minerals 9 (7):448. doi:10.3390/min9070448.
  • Hoang, D. H., N. Kupka, U. A. Peuker, and M. Rudolph. 2018. Flotation study of fine grained carbonaceous sedimentary apatite ore-challenges in process mineralogy and impact of hydrodynamics. Minerals Engineering 121:196–204. doi:10.1016/j.mineng.2018.03.021.
  • Huang, C., H. Luo, L. Liu, Z. Cai, X. Liu, and C. Zhang. 2020. Research on the direct-reverse flotation based on process mineralogy of low-grade phosphate rock stockpiled in jinning phosphate mine. Industrial Minerals & Processing 7:38–45. (Chinese). doi:10.16283/j.cnki.hgkwyjg.2020.07.010.
  • Jafari, M., S. Chehreh Chelgani, P. Pourghahramani, and H. Ebadi. 2018. Measurement of collector concentrations to make an efficient mixture for flotation of a low grade apatite. Measurement 121:19–25. doi:10.1016/j.measurement.2018.02.037.
  • Kademli, M., and N. Aydogan. 2020. An extraction of copper from recycling plant slag by using falcon concentrator. Gospodarka Surowcami Mineralnymi–Mineral Resources Management 35 (1):117–28. doi:10.24425/gsm.2019.128202.
  • Katwika, C., M. Kime, P. Kalenga, B. Mbuya, and T. Mwilen. 2019. Application of Knelson concentrator for beneficiation of copper–cobalt ore tailings. Mineral Processing and Extractive Metallurgy Review 40 (1):35–45. doi:10.1080/08827508.2018.1481057.
  • Li, W., H. Gao, Y. Luo, and J. Gao. 2015. Status, trends and suggestions of phosphorus ore resources at home and abroad. China Mining Magazine 6:6–10. Chinese Accessed January 2022;https://www.doc88.com/p-0651512712578.html
  • Li, J., G. Nie, J. Li, Z. Zhu, and Z. Wang. 2022. Flotation separation of quartz and dolomite from collophane using sodium N-dodecyl-beta-amino propionate and its adsorption mechanism. Colloids and Surfaces A-Physicochemical and Engineering Aspects 641. doi:10.1016/j.colsurfa.2022.128586.
  • Li, X., Q. Zhang, B. Hou, J. Ye, S. Mao, and X. Li. 2017. Flotation separation of quartz from collophane using an amine collector and its adsorption mechanisms. Powder Technology 318:224–29. doi:10.1016/j.powtec.2017.06.003.
  • Liu, X., C. Li, H. Luo, R. Cheng, and F. Liu. 2017. Selective reverse flotation of apatite from dolomite in collophanite ore using saponified gutter oil fatty acid as a collector. International Journal of Mineral Processing 165:20–27. doi:10.1016/j.minpro.2017.06.004.
  • Liu, X., Y. Zhang, T. Liu, Z. Cai, T. Chen, and K. Sun. 2016. Beneficiation of a sedimentary phosphate ore by a combination of spiral gravity and direct-reverse flotation. Minerals 6 (2):38. doi:10.3390/min6020038.
  • Ma, F., Y. Tao, and Y. Xian. 2020. Study of enhanced gravity separation based on liberation characteristics of a heat-treated circuit board. Mining, Metallurgy & Exploration 38 (1):117–27. doi:10.1007/s42461-020-00234-5.
  • Nayak, A., M. Jena, and N. Mandre. 2021 2. Application of enhanced gravity separators for fine particle processing: An overview. Journal of Journal of Sustainable Metallurgyurgy 7 (2):315–39. doi:10.1007/s40831-021-00343-5.
  • Shekhar, S., R. Singh, and G. Chalavadi. 2018. Study of process efficiency for high-ash fine coal cleaning in a Kelsey centrifugal jig. International Journal of Coal Preparation and Utilization 38 (5):250–59. doi:10.1080/19392699.2016.1238360.
  • Sun, K., T. Liu, Y. Zhang, X. Liu, B. Wang, and C. Xu. 2017. Application and mechanism of anionic collector sodiumdodecyl sulfate (SDS) in phosphate beneficiation. Minerals 7 (2):29. doi:10.3390/min7020029.
  • Tan, M., and M. Wei. 2010. Progress in beneficiation of phosphorite ores. Mining Metallurgy 4:1–6. (Chinese) Accessed January 2022;https://www.docin.com/p-1311167756.html
  • Wang, L., M. Tian, S. A. Khoso, Y. Hu, W. Sun, and Z. Gao. 2019. Improved flotation separation of apatite from calcite with benzohydroxamic acid collector. Mineral Processing and Extractive Metallurgy Review 40 (6):427–36. doi:10.1080/08827508.2019.1666126.
  • Wu, Z., D. Tao, P. Zhang, X. Jiang, and M. Jiang. 2021. Synergistic effect of DBP with CTAB on flotation separation of quartz from collophane. Minerals 11 (11):1196. doi:10.3390/min11111196.
  • Xian, Y., Y. Tao, F. Ma, and M. Li. 2020. Study on flow field in Falcon separator by high-speed dynamic photography and CFD simulation. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 1–16. doi:10.1080/15567036.2020.1829205.
  • Xian, Y., Y. Tao, F. Ma, and Y. Zhou. 2021. The study of enhanced gravity concentrator for maceral enrichment of low-rank coal with heavy medium. International Journal of Coal Preparation and Utilization 1–17. doi:10.1080/19392699.2021.2000403.
  • Yang, M. 2004. Test on gravity-flotation complex process of mid-low grade phosphate rock in Dianchi region. Chemical Minerals and Processing 5:3–5. Chinese Accessed January 2022;https://www.docin.com/p-792076847.html
  • Yang, Z., Y. Xing, D. Wang, and Y. Xia. and X. Gui. 2017. A new process based on a combination of gravity and flotation for the recovery of clean coal from flotation tailings. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 40 (4):420–26. doi:10.1080/15567036.2017.1405122.
  • Yang, X., Y. Zhang, S. Wang, and W. Wu. 2019. Parametric evaluation and performance optimization of fine coal separation in a vibrated gas-fluidized bed using response surface methodology. Particulate Science and Technology 38 (6):652–58. doi:10.1080/02726351.2019.1603174.
  • Zhang, X., Y. Tao, and F. Ma. 2022. Study on deashing and desulphurization of coal with heavy medium in enhanced gravity field. International Journal of Coal Preparation and Utilization. (online). doi:10.1080/19392699.2022.2059660.
  • Zhang, L., Y. Tao, L. Yang, and Z. Man. 2017. Spatial distribution of fine high-sulfur lean coal in enhanced gravity field. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 39 (22):2098–104. doi:10.1080/15567036.2017.1403513.
  • Zhang, J., Y. Tao, W. Zhang, Z. Shi, Y. Wang, and Y. Zhao. 2019. Experimental study on the macerals enrichment of Shenhua low-rank coal by Falcon centrifugal concentrator. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 41 (21):2588–600. doi:10.1080/15567036.2018.1563248.
  • Zhang, H., F. Zhou, M. Liu, Y. Jin, L. Xiao, and H. Yu. 2020. Employing sulfur–phosphorus mixed acid as a depressant: A novel investigation in flotation of collophanite. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 1–14. doi:10.1080/15567036.2020.1849458.
  • Zhu, X., Y. Tao, and L. Zhang. 2018. Numerical simulation of flow field in enhanced gravity concentrator. Physicochemical Problems of Mineral Processing 54 (3):975–80. doi:10.5277/ppmp1899.
  • Zhu, X., Q. Wang, X. Lyu, J. Qiu, Y. Zhang, and L. Li. 2019. Influence of pore structure on the gravity separation performance of fine lignite. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 41 (12):1527–33. doi:10.1080/15567036.2018.1549130.

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