Modeling and simulation of heat transfer in loaded heat treatment furnaces

被引:0
作者
Kang, JW [1 ]
Rong, YM [1 ]
机构
[1] Worcester Polytech Inst, Ctr Heat Treating Excellence, Worcester, MA 01609 USA
来源
SURFACE ENGINEERING: COATING AND HEAT TREATMENTS, PROCEEDINGS | 2003年
关键词
heat treatment; furnace; heat transfer; modeling;
D O I
暂无
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
The simulation of heat transfer in heat treatment furnace is of great importance for the prediction and control of the ultimate microstructure and properties of workpieces. In this paper simplified models based on numerical simulation and analytical methods are proposed to calculate the radiation, convection and conduction heat transfer in heat treatment processes. View factors between the furnace and workpieces, especially among workpieces. are calculated by evaluating exposed surface areas. Therefore the radiation between the furnace and load, and that, between adjacent workpieces is presented. Workpieces are classified into lumped capacitance and massive objects. In the latter case, the conduction heat transfer models in different shapes of workpieces are given. Natural and forced convections under common load patterns are solved by analytical algorithms. Other thermal terms such as gross heat input, heat storage in the furnace, heat storage in load, heat loss from the walls and opening, shell cooling, etc. are included in the furnace model. The heat transfer models are integrated with furnace model to simulate the heat treatment processes of workpieces in furnace, and then to improve heat treatment quality and efficiency by the optimization of workpiece loading and the thermal schedule. These models can be applied to different batch furnaces, such as direct gas-fired furnaces, indirect gas-fired furnaces and electric furnaces. Two cases studies are given to validate the models. The relevant program has been put into industrial application.
引用
收藏
页码:337 / 343
页数:7
相关论文
共 50 条
  • [31] Heat Transfer in Furnaces under Oxyfuel Combustion Conditions
    Wilmersdorf, Harald
    Walter, Heimo
    Werner, Andreas
    Haider, Markus
    ENERGY, ENVIRONMENT, ECOSYSTEMS, DEVELOPMENT AND LANDSCAPE ARCHITECTURE, 2009, : 51 - +
  • [32] The new generation of vacuum furnaces for heat treatment
    A. I. Lyapunov
    Metal Science and Heat Treatment, 2000, 42 : 25 - 30
  • [33] The new generation of vacuum furnaces for heat treatment
    Lyapunov, AI
    METAL SCIENCE AND HEAT TREATMENT, 2000, 42 (1-2) : 25 - 30
  • [34] Simulation of heat transfer in wood
    Koman, Szabolcs
    Prajcer, Mate
    Borza, Sandor
    9TH HARDWOOD PROCEEDINGS, VOL 9 - PT I: AN UNDERUTILIZED RESOURCE: HARDWOOD ORIENTED RESEARCH, 2020, : 134 - 137
  • [35] A new approach to heat and mass transfer in a rotary dehumidifier: Modeling and simulation
    Esfandiarinia, Fatemeh
    van Paassen, Dolf
    Proceedings of the ASME Fluids Engineering Division Summer Conference - 2005, Vol 1, Pts A and B, 2005, : 1049 - 1054
  • [36] Mathematical simulation of radial heat transfer in packed beds by pseudohomogeneous modeling
    Bettega, Rodrigo
    Pinto Moreira, Marcos Flavio
    Correa, Ronaldo Guimaraes
    Freire, Jose Teixeira
    PARTICUOLOGY, 2011, 9 (02) : 107 - 113
  • [37] The Trends and Tasks of Modeling and Simulation for Reduction of Heat Treatment Distortion
    Kiyoshi Funatani Nihon Parkerizing Co.
    JournalofShanghaiJiaotongUniversity, 2000, (01) : 35 - 41
  • [38] Applicability of the standard method for calculating heat transfer in furnaces with stokers
    Kamenetskii B.Ya.
    Thermal Engineering, 2006, 53 (2) : 138 - 142
  • [39] Improved knowledge of gas flow and heat transfer in reheating furnaces
    Klima, R
    SCANDINAVIAN JOURNAL OF METALLURGY, 1997, 26 : 25 - 32
  • [40] Numerical Simulation Study on Heat Transfer Characteristics of Particle-Loaded Flow in Microchannels
    Song, Kaixin
    Guo, Yifeng
    Wang, Zhibin
    Jia, A. P. Lisi
    Chen, Gang
    Mo, Songping
    Chen, Ying
    CHEMICAL ENGINEERING & TECHNOLOGY, 2024, 47 (02) : 387 - 395