锌电解过程运行状态迁移期间关键参数的协同优化控制方法

IF 3.7 3区 计算机科学 Q2 AUTOMATION & CONTROL SYSTEMS
Bei Sun, Zhixuan Peng, Mingjie Lv, Maopeng Li, Ran Hong, Yonggang Li, Dehao Wu
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引用次数: 0

摘要

电解是锌湿法冶金的主要耗能工艺。按使用时间计价的政策导致电解槽的最佳运行条件发生变化,因此必须调整电流密度和酸锌比等关键参数,使其达到理想的运行状态。然而,虽然电流密度可以瞬间切换,但酸锌比的调整却很缓慢,导致这些关键参数之间长期不匹配,增加了能耗。针对这一问题,本文提出了一种锌电解过程运行状态迁移过程中关键参数的协同优化控制方法。首先,建立了以电流密度和酸锌比为决策变量的共同优化模型。接着,设计了一个级联控制框架,其中电流密度控制器从属于酸锌比控制器,从而将共同优化模型的求解问题转化为酸锌比控制器的参数优化问题。最后,设计了代表锌电解过程运行状态迁移过程中能效、控制性能和锌产量的适应度函数,并采用启发式算法找到了酸锌比控制器的最优参数。从而实现了锌电解过程中运行状态的最优轨迹迁移。仿真实验证明,所提出的方法可以在不影响生产效率的情况下降低运行状态迁移过程中的能耗,为电解锌行业的节能提供了一种新方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A co-optimized control method of key parameters during operating state migration in zinc electrolysis process
Electrolysis is the primary energy-consuming process in zinc hydrometallurgy. Time-of-use pricing policy has caused changes in the optimal operating conditions of the electrolysis cell, necessitating adjustments to key parameters such as current density and the acid-to-zinc ratio to migrate it to the desired operational state. However, while the current density can be switched instantaneously, adjustments to the acid-to-zinc ratio occur slowly, leading to a prolonged mismatch between these key parameters, increasing energy consumption. To address this problem, this paper proposes a co-optimized control method of key parameters during the operating state migration in zinc electrolysis process. First, a co-optimization model is established with current density and acid-to-zinc ratio as decision variables. Next, a cascade control framework is designed in which the current density controller is subordinate to the acid-to-zinc ratio controller, transforming the problem of solving the co-optimization model into a parameter optimization problem for the acid-to-zinc ratio controller. Finally, a fitness function representing energy efficiency, control performance, and zinc yield during the operating state migration in zinc electrolysis process is designed, and a heuristic algorithm is employed to find the optimal parameters for the acid-to-zinc ratio controller. This achieves the optimal trajectory migration of the operating state in the zinc electrolysis process. Simulation experiments demonstrate that the proposed method can reduce energy consumption during the operating state migration without compromising production efficiency, offering a new approach to energy-saving in the zinc electrolysis industry.
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来源期刊
CiteScore
7.30
自引率
14.60%
发文量
586
审稿时长
6.9 months
期刊介绍: The Journal of The Franklin Institute has an established reputation for publishing high-quality papers in the field of engineering and applied mathematics. Its current focus is on control systems, complex networks and dynamic systems, signal processing and communications and their applications. All submitted papers are peer-reviewed. The Journal will publish original research papers and research review papers of substance. Papers and special focus issues are judged upon possible lasting value, which has been and continues to be the strength of the Journal of The Franklin Institute.
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