Development of Algorithm for Forming Optimal Mode of Heating Billets in Through-Type Furnace | IEEE Conference Publication | IEEE Xplore

Development of Algorithm for Forming Optimal Mode of Heating Billets in Through-Type Furnace


Abstract:

This study proposes a calculation algorithm to calculate the optimal furnace thresholds for operation with minimum fuel consumption, and to transfer this information to a...Show More

Abstract:

This study proposes a calculation algorithm to calculate the optimal furnace thresholds for operation with minimum fuel consumption, and to transfer this information to a furnace operator under non-stationary furnace performance conditions. The algorithm provides calculation regarding optimal thresholds per two modes. The first mode searches for the optimal fuel loads under current billet travel rate. The second provides a search for an optimal billet motion rate while maintaining current fuel thresholds. To perform the calculation under optimal parameters in the real time mode, the mathematical tool is based on the model of external heat transfer upon considering mutual influence of heating zones, and the model of internal heat transfer using a grid model of a massive body heating. The procedure for coordinating the mathematical models with each other, taking into account the movement of billets within the furnace zone, is described. Calculating optimal parameters: fuel loads and billet movement rate was performed using the Nelder-Mead simplex method. The total fuel consumption used to heat billets at the furnace outlet is taken as the target function. The coefficients of units statistical significance to be used in a search algorithm. The internal heat transfer model takes into account thermophysical characteristics dependence on a billet temperature, and is described by a one-dimensional differential heat conduction equation. The algorithm proposed will allow a furnace operator to heat a billet in the optimal mode, and to prevent possible delivery of underheated billets.
Date of Conference: 20-24 May 2024
Date Added to IEEE Xplore: 18 June 2024
ISBN Information:
Conference Location: Sochi, Russian Federation
References is not available for this document.

I. Introduction

Through-type furnaces are both high-performance and energy-consuming equipment. The costs of reheating furnaces account for up to 67% of the total energy used upon finished products making [1]. Considering the volume of consumption, the challenge of fuel saving, even in small amounts, is significant across the entire steel industry. The main measure to reduce fuel costs not requiring structural modernization of a furnace unit is the improvement of control systems allowing for the reduction of fuel consumption up to 15% [2].

Select All
1.
D. Rosado, J. Carvalho and J. Gutierrez, "Reheating furnaces in the steel industry: Utilization of combustion gases for load preheating and combustion air preheating using cog ldg and bfg as process gases", Procceedings of the 18th Brazilian Congress of Thermal Sciences and Engineering, pp. 2-11, 2020.
2.
A. Shipko, I. Trusova, I. Plushensky, S. Korneev and A. Tolstoy, "Fuel-saving when heating metal in furnaces of machine-building enterprises", Cast. Metall., vol. 1, no. 54, pp. 53-59, 2010.
3.
B. Parsunkin, S. Andreev, A. Bondareva and V. Chernov, "On determining the economic efficiency of optimizing control of technological production processes", Theory Process Eng. Metall. Prod., vol. 40, no. 1, pp. 30-36, 2022.
4.
A. Butkovsky, S. Maly and Y. Andreev, Metal Heating Control, Moscow:Metallurgy, 1981.
5.
V. Panferov, "About economic management of heating metal in industrial furnaces", Bull. South Ural State Univ. Ser. Comput. Technol. Autom. Control. Radio Electron., vol. 18, no. 2, pp. 71-80, 2018.
6.
B. Parsunkin, A. Bondareva and E. Poluhina, "The choice of temperature parameter for operation control of metal heating in reheating furnaces", Autom. Technol. Prod., vol. 1, pp. 9-12, 2015.
7.
B. Mayr, R. Prieler, M. Demuth, L. Moderer and C. Hochenauer, "CFD analysis of a pusher type reheating furnace and the billet heating characteristic", Appl. Therm. Eng., vol. 115, pp. 986-994, 2017.
8.
S. H. Han, S. W. Baek and M. Y. Kim, "Transient radiative heating characteristics of slabs in a walking beam type reheating furnace", Int. J. Heat Mass Transf., vol. 52, pp. 3-4, 2009.
9.
B. Mayr, R. Prieler, M. Demuth, L. Moderer and C. Hochenauer, "CFD modeling and performance increase of a pusher type reheating furnace using oxy-fuel burners", Energy Procedia, vol. 120, pp. 462-468, 2017.
10.
N. B. Arkhazloo, F. Bazdidi-Tehrani, M. Jean-Benoit and M. Jahazi, "A numerical thermal analysis of the heating process of large size forged ingots", Mater. Sci. Forum, vol. 941, pp. 2278-2283, 2018.
11.
J. H. Chang, J. Oh and H. Lee, "Development of a roller hearth furnace simulation model and performance investigation", Int. J. Heat Mass Transf., vol. 160, pp. 120222, 2020.
12.
V. Buhmirov, S. Krupennikov and U. Solnyshkova, "Modifications of the zonal method for solving problems of radiation heat transfer: Basic provisions", Bull. IGEU, vol. 2, pp. 1-3, 2009.
13.
A. Fomin, "A mathematical model of the dependence of gas consumption in the furnace zones on the productivity of the rolling mill", Metallurgist, vol. 2, pp. 111-116, 2023.
14.
M. Bogatova and S. Chibizova, "Statistical modeling of temperature operating modes of heating furnaces for hot strip mills", Izv. Ferr. Metall., vol. 64, no. 5, pp. 374-381, 2021.
15.
B. Parsunkin and I. Samarina, "Automatic energy-saving control system based on a mathematical model of the gas- dynamic mode of a continuous furnace", Electrotechnical Systems and Complexes, vol. 2, no. 35, pp. 55-60, 2017.
16.
Y. Linnik, "The Least Squares Method and the Foundations of the Mathematical and Statistical Theory of Observation Processing", Moscow: State Publishing House of Physical and Mathematical Literature, 1958.
17.
R. Fisher, Statistical Methods for Research Workers, Moscow:Gosstatisdat, 1958.
18.
S. Korolyuk, N. Portenko, A. Skorokhod and A. Trubin, Handbook of Probability Theory and Mathematical Statistics, Moscow:Nauka. The Main Editorial Office of the Physics and Mathematics Literature, 1985.
19.
D. Nuzhin and S. Andreev, "Research of the influence of neighboring zones on the heating medium temperatures of the fifth zone of the methodical furnace of the rolling mill", Autom. Technol. Prod., vol. 1, no. 27, pp. 3-10, 2023.
20.
V. Arutyunov, V. Bukhmirov and S. Krupennikov, Mathematical Modeling of Thermal Operation of Industrial Furnaces, Moscow:Metallurgy, 1990.
21.
S. Andreev and M. Galdin, "Determination of coefficients of analytical dependences of thermophysical properties of steel on temperature", Autom. Technol. Process. Prod. Metall., vol. 4, pp. 118-126, 2012.
22.
J. Stephen, "Coordinate descent algorithms", Math. Program., vol. 151, pp. 3-34, 2015.
23.
B. D. Bunday, Basic Optimization Method, London:Edward Arnold, 1984.
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References

References is not available for this document.