Optimal operation guidelines for direct recovery of high-purity precursor from spent lithium-ion batteries: hybrid operation model of population balance equation and data-driven classifier

被引:1
作者
Kim, Jeongdong [1 ]
Ga, Seongbin [2 ]
Suh, Sungho [3 ]
Kwon, Joseph Sang-Il [4 ,5 ]
Park, Kiho [6 ]
Kim, Junghwan [1 ]
机构
[1] Yonsei Univ, Dept Chem & Biomol Engn, Seoul 03722, South Korea
[2] Univ Ulsan, Sch Chem Engn, 93 Daehak Ro, Ulsan 44610, South Korea
[3] German Res Ctr Artificial Intelligence, Kaiserslautern, Germany
[4] Texas A&M Univ, Artie McFerrin Dept Chem Engn, College Stn, TX 77845 USA
[5] Texas A&M Univ, Texas A&M Energy Inst, College Stn, TX 77845 USA
[6] Hanyang Univ, Dept Chem Engn, 222 Wangsimni Ro, Seoul 04763, South Korea
来源
JOURNAL OF APPLIED CRYSTALLOGRAPHY | 2024年 / 57卷
基金
新加坡国家研究基金会;
关键词
spent lithium-ion batteries; precursor resynthesis; batch crystallization; population balance equation; operating trajectory optimization; CATHODE MATERIALS; OPTIMIZATION; MANGANESE; NICKEL; COBALT; LI; EXTRACTION; SIMULATION; EFFICIENT; GROWTH;
D O I
10.1107/S1600576724010239
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The direct resynthesis of precursor from spent lithium-ion batteries (LIBs) via co-precipitation is a crucial step in closed-loop cathode recycling systems. However, design and operation strategies for producing high-purity precursors have not been comprehensively explored or optimized. Herein, we propose the optimization of co-precipitation during the recovery of spent LIBs to achieve impurity-free precursor resynthesis. By incorporating the thermodynamic equilibrium model of the leaching solution of spent LIBs into a population balance equation (PBE) model, we identified the operating ranges that prevented the formation of impurities. Bayesian optimization was employed within the screened operating ranges to determine the optimal operating conditions for minimizing both operation time and maximum particle size. This optimization was performed for both unseeded batch and semi-batch systems. The results demonstrate that the selection of an optimal semi-batch operation can reduce the operation time by 23.33% and increase the particle size by 54.75%, owing to the high nucleation and particle growth rate during the initial time step. By employing an optimization approach based on the PBE model, this study provides detailed operational guidelines for batch and semi-batch co-precipitation, enabling the production of high-purity precursor materials from spent LIBs, while minimizing both operating time and maximum particle size.
引用
收藏
页码:1924 / 1939
页数:16
相关论文
共 55 条
  • [1] Al-Malah K. I. M., Aspen Plus: Chemical Engineering Applications, (2022)
  • [2] Asif A. A., Singh R., Batteries, 3, (2017)
  • [3] Barai P., Feng Z., Kondo H., Srinivasan V., J. Phys. Chem. B, 123, pp. 3291-3303, (2019)
  • [4] Baum Z. J., Bird R. E., Yu X., Ma J., ACS Energy Lett, 7, pp. 712-719, (2022)
  • [5] Bommel A., Dahn J. R., Chem. Mater, 21, pp. 1500-1503, (2009)
  • [6] Brock J., Oates J., J. Aerosol Sci, 18, pp. 59-64, (1987)
  • [7] Chang C.-K., Lin S.-T., J. Chem. Eng. Data, 65, pp. 1019-1027, (2019)
  • [8] Choi Y., Bhadriaju B., Cho H., Lim J., Han I.-S., Moon I., Kwon J. S.-I., Kim J., Chem. Eng. J, 457, (2023)
  • [9] Choong K., Smith R., Chem. Eng. Sci, 59, pp. 313-327, (2004)
  • [10] Curry C., Lithium Ion Battery Costs and Market, (2017)