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"Minwon Park"

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"Minwon Park"

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Dynamic Analysis and Mathematical Modeling of a Gas Cutting Process
Jae-In Lee, Byeong-Soo Go, Jun-Yeop Lee, In-Keun Yu, Il-Woo Moon, Do-Young Moon, Minwon Park
J. Korean Soc. Precis. Eng. 2023;40(1):79-86.
Published online January 1, 2023
DOI: https://doi.org/10.7736/JKSPE.022.090
In this paper, the relationship between various physical and chemical dynamics included in a gas cutting process was analyzed and a mathematical model was presented. To express the gas cutting process in a formula that could reflect the physics and chemical reaction dynamics, the entire process was classified into three stages: flame spurt, metal oxidation, and metal oxide melting. Flame spurt is caused by combustion of fuel gas and oxygen. It was modeled through fluid dynamics, chemical species transport, and reaction kinetics. Metal oxidation was modeled as a chemical reaction of surface oxidation and oxide growth based on temperature and concentration of species of the metal surface obtained through flame and cutting oxygen spurt results. Finally, the melting of metal oxide was expressed as a rate equation based on melting conditions, heat flux obtained in the previous two stages, and changed properties of the metal. The presented mathematical model could analyze dynamic relationships for each stage of a gas cutting process and connect them into one process. Results of this study can be used as basic data for future finite element analysis and simulations.

Citations

Citations to this article as recorded by  Crossref logo
  • A Comprehensive Review on Flame Scarfing of Steel Slabs: Fundamentals, Challenges, Evolution, and Future
    Jin Gao, Fengsheng Qi, Zhongqiu Liu, Sherman C. P. Cheung, Baokuan Li, Deqiang Li
    steel research international.2025;[Epub]     CrossRef
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PHLIS-Based Characteristics Analysis of a 2 MW Class Tidal Current Power Generation System
Byeong Soo Go, Hae Jin Sung, Minwon Park, In Keun Yu
J. Korean Soc. Precis. Eng. 2014;31(8):665-670.
Published online August 1, 2014
In this paper, characteristics of a tidal current power generation system are analysis using power hardware-in-the-loop simulation (PHILS). A 10 kW motor generator set is connected to the real grid through a fabricated 10 kW back to back converter. A power control scheme is applied to the back to back converter. A 2 MW class tidal current turbine is modeled in real time digital simulator (RTDS). Generating voltage and current from the 10 kW PMSG is applied to a 2 MW class tidal current turbine in the RTDS using PHILS. The PHILS results depict the rotation speed, power coefficient, pitch angle, tip-speed ratio, and output power of tidal current turbine. The PHILS results in this paper can contribute to the increasing reliability and stability of the tidal current turbines connected to the grid using PHILS.
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