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Fuel Costs Minimization on a Steel Billet Reheating Furnace Using Genetic Algorithms

机译:使用遗传算法将钢坯加热炉的燃料成本降至最低

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摘要

Metallurgy industries often use steel billets, at a proper temperature, to achieve the desired metallurgical, mechanical, and dimensional properties of manufactured products. Optimal operation of steel billet reheating furnaces requires the minimization of fuel consumption while maintaining a homogeneous material thermal soak. In this study, the operation of a reheating furnace is modeled as a nonlinear optimization problem with the goal of minimizing fuel cost while satisfying a desired discharge temperature. For this purpose, a genetic algorithms approach is developed. Computational simulation results show that it is possible to minimize costs for different charge temperatures and production rates using the implemented method. Additionally, practical results are validated with actual data, in a specific scenario, showing a reduction of 3.36% of fuel consumption.
机译:冶金行业通常在合适的温度下使用钢坯,以实现所需的制成品的冶金,机械和尺寸性能。钢坯加热炉的最佳运行需要在保持均质材料均热的同时将燃料消耗降至最低。在本研究中,将再热炉的运行建模为非线性优化问题,其目的是在满足所需排放温度的同时将燃料成本降至最低。为此目的,开发了遗传算法方法。计算仿真结果表明,使用实施的方法可以将不同装料温度和生产率的成本降至最低。此外,在特定情况下,实际结果将通过实际数据进行验证,表明可减少3.36%的油耗。

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  • 来源
    《Modelling and simulation in engineering 》 |2017年第2017期| 2731902.1-2731902.11| 共11页
  • 作者单位

    Postgraduate Programme on Mathematical and Computational Modeling Federal Center for Technological Education of Minas Gerais, Av. Amazonas 5253, 30510-000 Belo Horizonte, MG, Brazil;

    Computer Engineering Department, Federal Center for Technological Education of Minas Gerais, Av. Amazonas 5253, 30510-000 Belo Horizonte, MG, Brazil;

    Physics and Mathematics Department, Federal Center for Technological Education of Minas Gerais, Av. Amazonas 5253, 30510-000 Belo Horizonte, MG, Brazil;

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