Abstract
Insufficient reaction between dust and sulfuric acid during leaching of zinc oxide dust containing germanium is a major reason for the low leaching efficiency of germanium. This paper makes use of the unique physical effect of ultrasonic wave to play an important role in strengthening the leaching process. Research found that with ultrasonic enhanced leaching, on the one hand, the surface tension and viscosity of the leaching solution decreased by 5.94 and 32.73 %, respectively; on the other hand, for the leached mineral, the contact angle decreases, the surface free energy increases by 9.43 %, the particle size decreases 40.92 %, and the specific surface area and pore volume respectively increase 94.10 and 54.05 %, which reduces the contact resistance between sulfuric acid and dust, making the reaction between them more completely and in-depth. Therefore, the leaching rate is accelerated and the germanium leaching efficiency is increased. Under ultrasonic condition, the leaching efficiency of germanium is enhanced by 3.94 % and the time to reach equilibrium is shortened by about 40.00 %. The above findings can provide theoretical guidance for the extended application of ultrasound in hydrometallurgy and the efficient leaching of germanium-containing zinc oxide dust.
Funding source: National Key Research and Development Program of China
Award Identifier / Grant number: 2021YFC2902803
Funding source: National Natural Science Foundation of China
Award Identifier / Grant number: 51974141
Funding source: Major Science and Technology Project of Yunnan Province
Award Identifier / Grant number: 202202AB080005
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Research ethics: This research project has been approved by the relevant ethics committee or institution and operated strictly in accordance with ethical standards. In this study, we respected and protected the rights and privacy of participants, and ensured the confidentiality of their personal information.
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Author contributions: Ming Liang: conceptualization, methodology, validation, formal analysis, investigation, writing - original draft, visualization. Haokai Di: methodology, formal analysis, investigation, writing - original draft, visualization. Yan Hong: conceptualization, writing - original draft, visualization. Yiner Zeng: conceptualization, methodology, validation, resources, writing - original draft, visualization, supervision. Leiting Song: conceptualization, methodology, resources, supervision, project administration, funding acquisition. Junchang Liu: conceptualization, methodology, resources, supervision, project administration. Kun Yang: conceptualization, methodology, resources, supervision, project administration, funding acquisition. Libo Zhang: conceptualization, methodology, resources, supervision, project administration, funding acquisition.
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Competing interests: The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.
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Research funding: This work was supported by the National Natural Science Foundation of China [grant number 51974141], Major Science and Technology Project of Yunnan Province (202202AB080005) and the National Key Research and Development Program of China [grant number 2021YFC2902803].
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Data availability: The authors confirm that the data supporting the findings of this study are available within the article.
References
Almessiere, M. A., Y. Slimani, A. D. Korkmaz, S. Guner, M. Sertkol, S. E. Shirsath, and A. Baykal. 2019. “Structural, Optical and Magnetic Properties of Tm(3+) Substituted Cobalt Spinel Ferrites Synthesized via Sonochemical Approach.” Ultrasonics Sonochemistry 54: 1–10, https://doi.org/10.1016/j.ultsonch.2019.02.022.Search in Google Scholar PubMed
Bardestani, R., G. S. Patience, and S. Kaliaguine. 2019. “Experimental Methods in Chemical Engineering: Specific Surface Area and Pore Size Distribution Measurements—BET, BJH, and DFT.” Canadian Journal of Chemical Engineering 97: 2781–91. https://doi.org/10.1002/cjce.23632.Search in Google Scholar
Cintas, P., G. Palmisano, and G. Cravotto. 2011. “Power Ultrasound in Metal-Assisted Synthesis: From Classical Barbier-like Reactions to Click Chemistry.” Ultrasonics Sonochemistry 18: 836–41. https://doi.org/10.1016/j.ultsonch.2010.11.020.Search in Google Scholar PubMed
Cobley, A. 2013. “Ultrasound Sonochemistry – A More Sustainable Approach to Surface Modification?” Surface Engineering 25: 559–64. https://doi.org/10.1179/026708410x12459349720259.Search in Google Scholar
Etschmann, B., W. Liu, K. Li, S. Dai, F. Reith, D. Falconer, G. Kerr, D. Paterson, D. Howard, and P. Kappen. 2017. “Enrichment of Germanium and Associated Arsenic and Tungsten in Coal and Roll-Front Uranium Deposits.” Chemical Geology 463: 29–49, https://doi.org/10.1016/j.chemgeo.2017.05.006.Search in Google Scholar
Ettler, V., M. Mihaljevič, L. Strnad, B. Kříbek, T. Hrstka, F. Kamona, and B. Mapani. 2022. “Gallium and Germanium Extraction and Potential Recovery from Metallurgical Slags.” Journal of Cleaner Production 379: 134677, https://doi.org/10.1016/j.jclepro.2022.134677.Search in Google Scholar
Geng, X., Y. Liu, W. Zhang, L. Wang, J. Wen, and J. Sun. 2022. “Recent Advances in the Recovery of Germanium during the Zinc Refining Process.” Chemical Engineering Journal 446: 137445, https://doi.org/10.1016/j.cej.2022.137445.Search in Google Scholar
Gungoren, C., O. Ozdemir, X. Wang, S. G. Ozkan, and J. D. Miller. 2019. “Effect of Ultrasound on Bubble-Particle Interaction in Quartz-Amine Flotation System.” Ultrasonics Sonochemistry 52: 446–54, https://doi.org/10.1016/j.ultsonch.2018.12.023.Search in Google Scholar PubMed
Gurpinar, G., E. Sonmez, and V. Bozkurt. 2013. “Effect of Ultrasonic Treatment on Flotation of Calcite, Barite and Quartz.” Mineral Processing and Extractive Metallurgy 113: 91–5. https://doi.org/10.1179/037195504225005796.Search in Google Scholar
Hamidi, H., E. Mohammadian, R. Junin, R. Rafati, M. Manan, A. Azdarpour, and M. Junid. 2014. “A Technique for Evaluating the Oil/heavy-Oil Viscosity Changes under Ultrasound in a Simulated Porous Medium.” Ultrasonics 54: 655–62, https://doi.org/10.1016/j.ultras.2013.09.006.Search in Google Scholar PubMed
Jiang, T., P. Wang, T. Zhang, D. Zhu, and Z. Liu. 2023. “A Novel Solvent Extraction System to Recover Germanium from H2SO4 Leaching Liquor of Secondary Zinc Oxide: Extraction Behavior and Mechanism.” Journal of Cleaner Production 383: 135399, https://doi.org/10.1016/j.jclepro.2022.135399.Search in Google Scholar
Jiang, T., T. Zhang, and Z. Liu. 2020. “Recovery of Germanium via H2SO4/MnO2 Leaching–NaAc leaching/Na2CO3 Precipitation–Tri (Octyl-decyl) Amine Stepwise Solvent Extraction.” ACS Sustainable Chemistry & Engineering 8: 18545–57. https://doi.org/10.1021/acssuschemeng.0c06526.Search in Google Scholar
Kamran Haghighi, H., and M. Irannajad. 2022. “Roadmap for Recycling of Germanium from Various Resources: Reviews on Recent Developments and Feasibility Views.” Environmental Science and Pollution Research 29 (32): 1–26, https://doi.org/10.1007/s11356-022-20649-5.Search in Google Scholar PubMed
Khorasanizadeh, M. H., M. Ghiyasiyan-Arani, R. Monsef, M. Salavati-Niasari, and H. Moayedi. 2019. “Ultrasound-accelerated Synthesis of Uniform DyVO4 Nanoparticles as High Activity Visible-Light-Driven Photocatalyst.” Ultrasonics Sonochemistry 59: 104719, https://doi.org/10.1016/j.ultsonch.2019.104719.Search in Google Scholar PubMed
Kwok, D. Y., and A. W. Neumann. 1999. “Contact Angle Measurement and Contact Angle Interpretation.” Advances in Colloid and Interface Science 81: 167–249. https://doi.org/10.1016/s0001-8686(98)00087-6.Search in Google Scholar
Li, Y., X. He, Y. Yang, J. Chen, and Z. Zhang. 2023. “High Pressure Acid Leaching of Low Germanium Bearing Silica Residue (GRS): Characterization of Leach Residue and Mechanistic Details of Germanium Leaching.” Hydrometallurgy 216: 106015, https://doi.org/10.1016/j.hydromet.2022.106015.Search in Google Scholar
Li, H., S. Li, C. Srinivasakannan, L. Zhang, S. Yin, K. Yang, and H. Xie. 2018. “Efficient Cleaning Extraction of Silver from Spent Symbiosis Lead-Zinc Mine Assisted by Ultrasound in Sodium Thiosulfate System.” Ultrasonics Sonochemistry 49: 118–27, https://doi.org/10.1016/j.ultsonch.2018.07.034.Search in Google Scholar PubMed
Liang, D. 2008. Study on the Behavior of Germanium in the Process of Oxygen Pressure Acid Leaching of Germanium Rich Sphalerite. Doctor, Kunming University of Science and Technology.Search in Google Scholar
Liang, M., H. Di, L. Song, K. Yang, and L. Zhang. 2022. “Study on Leaching Behaviour of Germanium and Iron in Zinc Oxide Dust from Lead Zinc Smelting.” Canadian Metallurgical Quarterly 62 (3): 1–8, https://doi.org/10.1080/00084433.2022.2114126.Search in Google Scholar
Meshram, P., and Abhilash. 2022. “Strategies for Recycling of Primary and Secondary Resources for Germanium Extraction.” Mining, Metallurgy & Exploration 39: 1–19.10.1007/s42461-022-00549-5Search in Google Scholar
Mohan, V. B., K. Jayaraman, and D. Bhattacharyya. 2020. “Brunauer–Emmett–Teller (BET) Specific Surface Area Analysis of Different Graphene Materials: A Comparison to Their Structural Regularity and Electrical Properties.” Solid State Communications 320: 114004. https://doi.org/10.1016/j.ssc.2020.114004.Search in Google Scholar
Nguyen, T. H., and M. S. Lee. 2021. “A Review on Germanium Resources and its Extraction by Hydrometallurgical Method.” Mineral Processing and Extractive Metallurgy Review 42: 406–26. https://doi.org/10.1080/08827508.2020.1756795.Search in Google Scholar
Rao, S., D. Wang, Z. Liu, K. Zhang, H. Cao, and J. Tao. 2019. “Selective Extraction of Zinc, Gallium, and Germanium from Zinc Refinery Residue Using Two Stage Acid and Alkaline Leaching.” Hydrometallurgy 183: 38–44, https://doi.org/10.1016/j.hydromet.2018.11.007.Search in Google Scholar
Ruan, Z., M. Li, K. Gao, D. Zhang, L. Huang, W. Xu, and X. Liu. 2019. “Effect of Particle Size Refinement on the Leaching Behavior of Mixed Rare-Earth Concentrate Using Hydrochloric Acid.” ACS Omega 4: 9813–22, https://doi.org/10.1021/acsomega.9b01141.Search in Google Scholar PubMed PubMed Central
Sheng, L., Y. Wang, J. Chen, J. Zou, Q. Wang, and M. Ma. 2018. “Influence of High-Intensity Ultrasound on Foaming and Structural Properties of Egg White.” Food Research International 108: 604–10, https://doi.org/10.1016/j.foodres.2018.04.007.Search in Google Scholar PubMed
Tao, J., Z. Tao, and L. Zhihong. 2021. “Review on Resources and Recycling of Germanium, with Special Focus on Characteristics, Mechanism and Challenges of Solvent Extraction.” Journal of Cleaner Production 294: 126217. https://doi.org/10.1016/j.jclepro.2021.126217.Search in Google Scholar
Tao Jiang, T. Z., F. Ye, and Z. Liu. 2019. “Occurrence State and Sulfuric-Acid Leaching Behavior of Germanium in Secondary Zinc Oxide.” Minerals Engineering 137: 334–43. https://doi.org/10.1016/j.mineng.2019.04.020.Search in Google Scholar
Tian, Y., and J. Wu. 2018. “A Comprehensive Analysis of the BET Area for Nanoporous Materials.” AIChE Journal 64: 286–93. https://doi.org/10.1002/aic.15880.Search in Google Scholar
Wang, W. 2013. Study on Recovery of Germanium from Germanium Containing Zinc Oxide Dust by Microwave Roasting. Ph.D., Kunming University of Technology.Search in Google Scholar
Wang, Y., H. Wang, X. Li, and C. Zheng. 2020. “Study on the Improvement of the Zinc Pressure Leaching Process.” Hydrometallurgy 195: 105400, https://doi.org/10.1016/j.hydromet.2020.105400.Search in Google Scholar
Wang, S., Y. Zhang, N. Abidi, and L. Cabrales. 2009. “Wettability and Surface Free Energy of Graphene Films.” Langmuir 25: 11078–81, https://doi.org/10.1021/la901402f.Search in Google Scholar PubMed
Wilson, A., I. Jones, F. Salamat-Zadeh, and J. F. Watts. 2015. “Laser Surface Modification of Poly (Etheretherketone) to Enhance Surface Free Energy, Wettability and Adhesion.” International Journal of Adhesion and Adhesives 62: 69–77, https://doi.org/10.1016/j.ijadhadh.2015.06.005.Search in Google Scholar
Xin, C., H. Xia, Q. Zhang, L. Zhang, and W. Zhang. 2021. “Leaching of Zinc and Germanium from Zinc Oxide Dust in Sulfuric Acid-Ozone Media.” Arabian Journal of Chemistry 14: 103450, https://doi.org/10.1016/j.arabjc.2021.103450.Search in Google Scholar
Xiong, Y., Q. Li, S. Miao, Y. Zhang, B. Zheng, and L. Zhang. 2019. “Effect of Ultrasound on Physicochemical Properties of Emulsion Stabilized by Fish Myofibrillar Protein and Xanthan Gum.” Innovative Food Science & Emerging Technologies 54: 225–34, https://doi.org/10.1016/j.ifset.2019.04.013.Search in Google Scholar
Xiong, T., W. Xiong, M. Ge, J. Xia, B. Li, and Y. Chen. 2018. “Effect of High Intensity Ultrasound on Structure and Foaming Properties of Pea Protein Isolate.” Food Research International 109: 260–7, https://doi.org/10.1016/j.foodres.2018.04.044.Search in Google Scholar PubMed
Yang, Z., Y. Li, Y. Ning, S. Yang, Y. Tang, Y. Zhang, and X. Wang. 2018. “Effects of Oxidant and Particle Size on Uranium Leaching from Coal Ash.” Journal of Radioanalytical and Nuclear Chemistry 317: 801–10, https://doi.org/10.1007/s10967-018-5963-5.Search in Google Scholar
Yuan, Y., and T. R. Lee. 2013. Contact angle and Wetting Properties. Surface Science Techniques, 3–34. Berlin, Heidelberg: Springer.10.1007/978-3-642-34243-1_1Search in Google Scholar
Yuan, J., J. Xiao, F. Li, B. Wang, Z. Yao, B. Yu, and L. Zhang. 2018. “Co-treatment of Spent Cathode Carbon in Caustic and Acid Leaching Process under Ultrasonic Assisted for Preparation of SiC.” Ultrasonics Sonochemistry 41: 608–18, https://doi.org/10.1016/j.ultsonch.2017.10.027.Search in Google Scholar PubMed
Żenkiewicz, M. 2007. “Methods for the Calculation of Surface Free Energy of Solids.” Journal of Achievements in Materials and Manufacturing Engineering 24: 137–45.Search in Google Scholar
Zhu, Y., Z. Deng, C. Wei, Y. Yang, P. Sun, X. Li, M. Li, and G. Fan. 2021. “Adaptive Process for Improving Leaching Efficiency of Germanium from Secondary Zinc Oxide.” International Journal of Chemical Reactor Engineering 19: 615–23, https://doi.org/10.1515/ijcre-2021-0012.Search in Google Scholar
Zou, J., Y. Luo, X. Yu, J. Li, Y. Xi, L. Zhang, W. Guo, and G. Lin. 2020. “Extraction of Indium from By-Products of Zinc Metallurgy by Ultrasonic Waves.” Arabian Journal for Science and Engineering 45: 7321–8, https://doi.org/10.1007/s13369-020-04471-0.Search in Google Scholar
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Articles in the same Issue
- Frontmatter
- Articles
- Single and multi-objective dynamic optimization study of an industrial scale fed batch reactor
- Temperature sensor location for the implementation of cascade control schemes in distillation columns: an approach based on multiscale time series analysis
- Simulation investigation of the effect of heating temperature and porosity of porous media on the water evaporation process
- The research of a novel flocculant mainly prepared by Moringa seed meal
- Numerical simulation of solid–liquid mixing characteristics in a tank stirred by an improved double-layer 4-pitched blades impeller
- Hybrid-modeling for PTFE polymerization reaction with deep learning-based reaction rate model
- IMC-based fractional order TID controller design for different time-delayed chemical processes: case studies on a reactor model
- Conversion of polyethylene terephthalate (PET) plastic particles in a microwave-assisted heating reactor
- Physical effect of ultrasonic on leaching system of zinc oxide dust containing germanium
- Numerical simulation of fluid flow in microchannels with induced irregularities
Articles in the same Issue
- Frontmatter
- Articles
- Single and multi-objective dynamic optimization study of an industrial scale fed batch reactor
- Temperature sensor location for the implementation of cascade control schemes in distillation columns: an approach based on multiscale time series analysis
- Simulation investigation of the effect of heating temperature and porosity of porous media on the water evaporation process
- The research of a novel flocculant mainly prepared by Moringa seed meal
- Numerical simulation of solid–liquid mixing characteristics in a tank stirred by an improved double-layer 4-pitched blades impeller
- Hybrid-modeling for PTFE polymerization reaction with deep learning-based reaction rate model
- IMC-based fractional order TID controller design for different time-delayed chemical processes: case studies on a reactor model
- Conversion of polyethylene terephthalate (PET) plastic particles in a microwave-assisted heating reactor
- Physical effect of ultrasonic on leaching system of zinc oxide dust containing germanium
- Numerical simulation of fluid flow in microchannels with induced irregularities