• Title/Summary/Keyword: Furnace Analysis

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Problem Solving about Practical Engineering Education based on Analysis on Optimized Internal Flow of LTP Furnace and Uniformity of Temperature (LTP 퍼니스의 내부 유동 및 온도 균일도 최적화를 위한 실천공학교육적 문제해결)

  • Kim, Jin-woo;Youn, Gi-man;Jo, Eunjeong
    • Journal of Practical Engineering Education
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    • v.10 no.2
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    • pp.125-129
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    • 2018
  • This paper is about the numerical analysis on optimized internal flow of LTP furnace and uniformity of temperature. The LTP Furnace is the device that generates heat by electricity. And performs an annealing function for annealing the silicon wafer in the pre-semiconductor manufacturing process. Especially, the maximum temperature inside the chamber is maintained at a high temperature of about $400^{\circ}C$ to strengthen the wafer. When the process is completed at high temperature, the operation is repeated to reduce the temperature through the heat exchanger and carry it out. From this analysis, the ultimate goal is to derive the optimum design of the insulation volume supply/exhaust structure of the chamber through the flow analysis of the LTPS furnace. And to find cases for curriculum development.

Thermal Insulation Improvement by Laminated Adiabatic Structure Change in Holding Furnace with Molten Aluminum Alloy (알루미늄 용탕 보온용기의 단열재 적층구조 변경을 통한 보온성 향상)

  • Hwang, June-Sun;Kang, Chung-Gil
    • Journal of Korea Foundry Society
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    • v.31 no.6
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    • pp.336-341
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    • 2011
  • Recently, aluminium usage in the automobile industry has been increased cause of its lightweight. The aluminium has a melting-solidification process in producing line and another melting process was needed in manufacturing process. Two times of melting process for making ingot and casting not only makes the loss of time and money but contaminates the air with Sox, Nox. For this reason, the holding furnace with laminated adiabatic material was developed. This holding furnace can deliver the molten aluminium directly to the industry needing molten aluminium. Recent holding furnace has above $15^{\circ}C/h$ of cooling rate and that causes solidification of molten aluminium. The ANSYS software was used to analysis the heat transfer. The adiabatic materials were laminated with optimized arrangement and holding furnace shape was changed with optimized modelling by ANSYS analysis for reducing the cooling rate of molten aluminium in holding furnace.

HEAT TRANSFER ANALYSIS ON THE PREFORM HEATING AND THE GLASS FIBER DRAWING IN A GRAPHITE FURNACE FOR OPTICAL FIBER MANUFACTURING PROCESS (광섬유 생산공정용 퍼니스 내의 모재 가열 및 유리섬유 인출에 대한 열전달 해석)

  • Kim, K.;Kim, D.;Kwak, H.S.
    • 한국전산유체공학회:학술대회논문집
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    • 2011.05a
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    • pp.88-91
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    • 2011
  • Glass fiber drawing from a silica preform is one of the most important processes in optical fiber manufacturing. High purify silica preform of cylindrical shape is fed into the graphite furnace, and then a very thin glass fiber of 125 micron diameter is drawn from the softened and heated preform. A computational analysis is performed to investigate the heat transfer characteristics of preform heating and the glass fiber drawing in the furnace. In addition to the dominant radiative heating of preform by the heating element in the furnace, present analysis also includes the convective heat transport by the gas flowing around the preform that experiences neck-dawn profile and the freshly drawn glass fiber at high fiber drawing speed. The computational results present the effects of gas flow on the temperature of preform and glass fiber as well as the neck-down profile of preform.

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Magnetic Field Analysis of Arc Furnace Using FEM (유한요소법을 이용한 Arc로의 자기장분포 해석연구)

  • Kim, Chan-Uk;Im, Jong-In
    • Korean Journal of Materials Research
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    • v.11 no.12
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    • pp.1091-1095
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    • 2001
  • Finite element analysis showed that strong magnetic fields were distributed around the arc furnace where the strongest magnetic field was generated around the three phase cables, and followed by the electrodes and the mast arm in decreasing order. Magnetic field decay patterns around the arc furnace could be fitted by introducing exponential formula,$Y=Y_0+Ae^{\frac-{x}{t}}$. These results showed that magnetic field intensities around the arc furnace could be estimated at any 3-dimensional positions using the finite element method (FEM).

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Conjugate Heat Transfer Analysis of an Ethylene Furnace (에틸렌 반응로에 대한 복합 열전달 해석)

  • Ahn, Joon;Park, Jin Woo
    • Korean Journal of Air-Conditioning and Refrigeration Engineering
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    • v.27 no.10
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    • pp.515-519
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    • 2015
  • Conjugate heat transfer analysis for an ethylene furnace was carried out based on numerical simulation. Detailed distributions of velocity vectors, chemical species, and temperature inside the furnace are presented and discussed. Von Mises stress and heat flux at the tube surface were also evaluated to elucidate mechanisms regarding failure of the tube. Maximum stress was found at the upstream elbow of the tube, which did not coincide with the location of maximum heat flux. This implies that thermal stress at a steady state would not be a dominant component of the stress. Degradation of the material, as well as the system arrangement, should be considered in order to accurately predict the lifetime of the tube material in the furnace.

Numerical simulation of thermo-fluid flow in the blast furnace (고로내 열유동 현상의 수치해석 사례(I))

  • Jin, Hong-jong;Choi, Sang-Min
    • Proceedings of the KSME Conference
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    • 2007.05b
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    • pp.2038-2043
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    • 2007
  • Analysis of the internal state of the blast furnace is needed to predict and control the operating condition. Especially, it is important to develop modeling of blast furnace for predicting cohesive zone because shape of cohesive zone influences on overall operating condition of blast furnace such as gas flow, temperature distribution and chemical reactions. Because many previous blast furnace models assumed cohesive zone to be fixed, they can't evaluate change of cohesive zone shape by operation condition such as PCR, blast condition and production rate. In this study, an axi-symmetric 2-dimensional steady state model is proposed to simulate blast furnace process using the general purpose-simulation code. And Porous media is assumed for the gas flow and the potential flow for the solid flow. Velocity, pressure and temperature distribution for gas and solid are displayed as the simulation results. The cohesive zones are figured in 3 different operating conditions.

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Heat Transfer Analysis in the Vacuum Carburizing Furnace (진공 침탄로 내의 전열 해석)

  • Lee, In-Sub;Ryou, Hong-Sun;Kim, Won-Bae;Yang, Je-Bok
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.27 no.7
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    • pp.877-882
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    • 2003
  • The main objective of the present study is to analyze the heat transfer characteristics in the vacuum carburizing furnace. Local temperatures are measured at different locations in the self-fabricated furnace for various operating conditions using K-type thermocouples. In addition, the present study simulates the fluid flows and heat transfer in the vacuum carburizing furnace using a commercial package (Fluent V. 6.0), and compares the predictions of local temperatures with experimental data. The temperature and flow fields are predicted. It is found that the time taken for reaching the steady-state temperature under the vacuum pressure is shorter than that under the normal pressure condition. It means that the carburizing furnace under vacuum pressure condition is capable of saving the required energy more efficiently than the furnace under the normal pressure condition. Furthermore, the temperature variations predicted by the numerical simulations are in good agreement with experimental data.

Design of Level 2 Control System for Continuous Reheat Furnaces (연속식 가열로의 Level 2 제어 시스템 설계)

  • Ryu, BoHyun;Lee, JaeYong;Rhim, DongRyul;Cha, JaeMin;Yeom, ChoongSub
    • Journal of the Korean Society of Systems Engineering
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    • v.12 no.1
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    • pp.113-120
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    • 2016
  • Steel in a continuous reheat furnace is heated to higher temperature to be treated in the rolling steel process. Due to this reason the continuous reheat furnace system requires an optimal control system to adjust the temperature inside the furnace. Level 2 control systems for continuous reheat furnaces generate automatic heating set points for the level 1 system of the furnace based on the mathematical thermal model which can give a good estimation of steel heating inside the furnace and is used to adjust heating requirements to optimize furnace combustion. For the current study the analytic methodology based on the design procedure from the systems engineering to develop new level 2 control system of a continuous reheat furnace was proposed. The system analysis and the requirements of the level 2 control system were derived using the unified modeling language (UML) 2.0, and the design of database and the graphic user interface (GUI) for the level 2 control system were conducted.

The research on CFD turbulance models for comparison according to my secondary air injection into the combustion (연소로 내 2차 공기 분사에 따른 CFD 난류 모델 비교에 관한 연구)

  • Choi, Junhyuk;Choi, Chong-gun;Hwang, Seung-Sik;Shin, Donghoon;Chung, Tae-Yong
    • 한국연소학회:학술대회논문집
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    • 2012.11a
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    • pp.345-347
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    • 2012
  • The secondary air injection influences the flow of the combustion gas in the furnace. Therefore, the analysis of the furnace should be careful in the selection of the turbulent model with CFD. In this study, CFD results of several turbulent models were compared with experimental results. Analysis results suggest to select turbulent models in the furnace secondary air nozzle.

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A Numerical Analysis of Heat Transfer in Bright Annealing Furnace of Stainless Steel Strip (Strainless steel strip 광휘어닐링로 내의 열전달 해석)

  • Ryou, H.S.;Jeong, Y.T.;Jang, B.L.
    • Journal of the Korean Society for Heat Treatment
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    • v.22 no.4
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    • pp.228-233
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    • 2009
  • In order to predict the temperature distribution of stainless steel strip in Bright Annealing (BA) furnace, we performed the analysis of heat transfer and fluid flow using STAR-CCM+. The analysis model included unsteady fluid flow, heat transfer with radiation and moving grid. Two kinds of radiative properties, emissivity and reflectivity, were applied to the stainless steel strip, one is constant and the other is variable with time. As we call, the BA furnaces of stainless steel strip have two different types, muffle and no-muffle. The using of muffle type has been faced with some problems such as rising in material price and shortening of life cycle, etc. So the development of no-muffle type BA furnace is very important in order to save energy cost, lower environmental load and increase the productivity. The designed (or expected) temperature of stainless steel strip coming out of BA furnace was about $1065^{\circ}C$ while the environment temperature maintains around $1100^{\circ}C$. The result of our calculation was very close (or similar) to design temperature, and the application of radiative properties variable with time produced more accurate result than applying constant ones.