Multi-Objective Constrained Optimization Model and Molten Iron Allocation Application Based on Hybrid Archimedes Optimization Algorithm

The challenge of distributing molten iron involves the optimal allocation of blast furnace output to various steelmaking furnaces, considering the blast furnace’s production capacity and the steelmaking converter’s consumption capacity. The primary objective is to prioritize the distribution from th...

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Vydané v:Mathematics (Basel) Ročník 12; číslo 16; s. 2437
Hlavní autori: Hu, Huijuan, Shi, Shichao, Xu, He
Médium: Journal Article
Jazyk:English
Vydavateľské údaje: Basel MDPI AG 01.08.2024
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Abstract The challenge of distributing molten iron involves the optimal allocation of blast furnace output to various steelmaking furnaces, considering the blast furnace’s production capacity and the steelmaking converter’s consumption capacity. The primary objective is to prioritize the distribution from the blast furnace to achieve a balance between iron and steel production while ensuring that the volume of hot metal within the system remains within a safe range. To address this, a constrained multi-objective nonlinear programming model is abstracted. A linear weighting method combines multiple objectives into a single objective function, while the Lagrange multiplier method addresses constraints. The proposed hybrid Archimedes optimization algorithm effectively solves this problem, demonstrating significant improvements in time efficiency and precision compared to existing methods.
AbstractList The challenge of distributing molten iron involves the optimal allocation of blast furnace output to various steelmaking furnaces, considering the blast furnace’s production capacity and the steelmaking converter’s consumption capacity. The primary objective is to prioritize the distribution from the blast furnace to achieve a balance between iron and steel production while ensuring that the volume of hot metal within the system remains within a safe range. To address this, a constrained multi-objective nonlinear programming model is abstracted. A linear weighting method combines multiple objectives into a single objective function, while the Lagrange multiplier method addresses constraints. The proposed hybrid Archimedes optimization algorithm effectively solves this problem, demonstrating significant improvements in time efficiency and precision compared to existing methods.
Author Xu, He
Shi, Shichao
Hu, Huijuan
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10.1016/j.cor.2005.11.010
10.3390/math12040610
10.1016/j.cie.2015.06.002
10.3934/jimo.2024058
10.1080/00207543.2019.1693659
10.1016/j.eswa.2022.119077
10.1016/j.amc.2018.11.058
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10.1016/j.asoc.2020.106271
10.1109/TASE.2023.3346446
10.1007/s10489-020-01893-z
10.1007/BF01589116
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SubjectTerms Algorithms
Constraints
Continuous casting
Decomposition
Dynamic programming
Efficiency
Furnaces
Genetic algorithms
Hot blast
Integer programming
iron and steel balance
Iron and steel making
Lagrange multiplier
Linear programming
Logistics
molten iron allocation
Multiple objective analysis
Nonlinear programming
optimization algorithm
Optimization algorithms
Optimization models
Planning
Production capacity
quadratic programming
Scheduling
Steel converters
Steel industry
Steel production
Weighting methods
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Title Multi-Objective Constrained Optimization Model and Molten Iron Allocation Application Based on Hybrid Archimedes Optimization Algorithm
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