石油炼制与化工 ›› 2026, Vol. 57 ›› Issue (9): 99-109.

• 控制与优化 • 上一篇    下一篇

基于改进NSGA-III算法的油库工艺系统多目标运行优化

万捷1,李长俊2,林睿1,贾文龙2,晏琴2,葛芸芸1,董涛涛1,杨帆2   

  1. 1. 中国石油新疆油田油气储运分公司
    2. 西南石油大学石油与天然气工程学院
  • 收稿日期:2026-03-12 修回日期:2026-05-19 出版日期:2026-09-12 发布日期:2026-08-21
  • 通讯作者: 杨帆 E-mail:yangfan_2017@hotmail.com
  • 基金资助:
    基于管道仿真与数值反演的天然气管道阻塞检测研究

MULTI-OBJECTIVE OPERATION OPTIMIZATION OF OIL STORAGE FACILITY PROCESS SYSTEM BASED ON IMPROVED NSGA-III ALGORITHM

  • Received:2026-03-12 Revised:2026-05-19 Online:2026-09-12 Published:2026-08-21

摘要: 针对大型原油库系统设备众多、种类繁杂、水力/热力特性耦合关联、运行参数相互制约、运行方案难以全方位优化等问题,构建了以运行总能耗最低、运行总成本最小、碳排放总量最少为目标的混合整数多约束运行优化模型,并结合模型特点提出一种改进NSGA-III算法用于多目标优化模型求解。结果表明:该改进NSGA-III算法引入了启发式初始化与动态惩罚函数,融合了基于序列二次规划的Memetic框架,加快了算法的收敛速率,实现了离散-连续变量的局部精细搜索;采用该改进算法得到解集的超体积和反转世代距离指标均显著优于传统NSGA-II、NSGA-III、MOEA/D、RVEA算法;系统优化方案的运行总能耗、运行总成本、碳排放总量分别降低10.07%、14.51%、7.41%;系统最优原油输送量为10000~16000 t/d,环境温度对加热炉的启停方案和热负荷影响很大,系统应采取“冬启夏停”的分时段加热策略运行,在安全高效运行的同时实现节能、降本、减碳。

关键词: 油库工艺系统, 设备联运, 多目标, 运行优化, 改进NSGA-III算法

Abstract: To address the challenges of numerous and diverse equipment, coupled hydraulic and thermal characteristics, mutually constrained operating parameters, and the difficulty in comprehensively optimizing operation schemes for large-scale crude oil depot systems, this study constructs a mixed-integer nonlinear programming multi-constraint operation optimization model with the objectives of minimizing total energy consumption, total operational cost, and total carbon emissions. Based on the characteristics of the model, an improved NSGA-III algorithm is proposed for solving this multi-objective optimization problem. The improved algorithm introduces heuristic initialization and a dynamic penalty function, and integrates a Memetic framework based on sequential quadratic programming, thereby accelerating convergence speed and enabling fine-grained local search over discrete and continuous variables. The results show that the hypervolume and inverted generational distance metrics of the solution sets obtained by the improved algorithm are significantly superior to those obtained by traditional NSGA-II, NSGA-III, MOEA/D, and RVEA algorithms. The optimized operation scheme reduces total energy consumption, total operational cost, and total carbon emissions by 10.07%, 14.51%, and 7.41%, respectively. The optimal crude oil throughput ranges from 10000 to 16000 t/d. Ambient temperature significantly influences the start–stop schedule and heat load of heaters; therefore, the system should adopt a seasonal heating strategy of “winter operation and summer shutdown,” achieving energy conservation, cost reduction, and carbon emission reduction while maintaining safe and efficient operation.

Key words: oil depot process system, equipment coordinated operation, multi-objective, operation optimization, improved NSGA-III algorithm