Investigation of Cooling Process of a High-Temperature Hollow Cylinder in Moving Induction Heat Treatment

被引:0
|
作者
Shokouhmand, H. [1 ]
Ghaffari, S. [1 ]
机构
[1] School of Mechanical Engineering, College of Engineering, University of Tehran, Tehran 14399-56191, Iran
关键词
Air - Natural convection - Cooling - Magnetic permeability - Circular cylinders - Quenching - Cracks - Induction heating - Temperature distribution - Probability distributions;
D O I
10.1115/1.4005602
中图分类号
学科分类号
摘要
The hardness of heat treated steel and probability of occurrence of quenching cracks depend on the cooling time and temperature distribution. Therefore, the investigation of cooling process is a crucial issue in heat treatment to evaluate the obtained structure of the work-piece. In the present work, a vertical hollow circular cylinder is heated up to a specific temperature by a moving coil at a given velocity along it, and the heated parts then quenched by a moving water-air spray. After passing the spray, the cylinder is cooled by natural convection with the surrounding air. An analysis of coupled magnetic problem and transient conjugated thermal problem between the solid and the surrounding air is performed using finite-element method to obtain temperature field in each time step. This procedure includes moving boundary conditions, effect of radiation with ambient, temperature-dependent properties, and change in magnetic permeability of specified alloy at the Curie temperature. The obtained results show how both spray and natural cooling affect the temperature distribution and rate of cooling of the cylinder. Furthermore, the effect of geometry and velocity of coil on the rate of cooling and chance of quenching cracks are investigated. © 2012 American Society of Mechanical Engineers.
引用
收藏
相关论文
共 50 条
  • [21] Numerical Simulation of Conjugate Heat Exchange During Cooling of a High-Temperature Metal Cylinder by a Gas-Liquid Flow
    Makarov, S. S.
    Lipanov, A. M.
    Karpov, A. I.
    Alies, M. Yu.
    JOURNAL OF ENGINEERING PHYSICS AND THERMOPHYSICS, 2025, 98 (01) : 18 - 25
  • [22] Process of cooling of a high-temperature two-phase flow
    Volkov, V.I.
    Utemesov, M.A.
    Inzhenerno-Fizicheskii Zhurnal, 2000, 73 (06): : 1187 - 1190
  • [23] Heat Treatment of High-Temperature Gasothermal Coating
    V. B. Zakharova
    T. V. Solov'eva
    B. M. Zakharov
    Metal Science and Heat Treatment, 2001, 43 : 144 - 147
  • [24] Heat treatment of high-temperature gasothermal coating
    Zakharova, VB
    Solov'eva, TV
    Zakharov, BM
    METAL SCIENCE AND HEAT TREATMENT, 2001, 43 (3-4) : 144 - 147
  • [25] INVESTIGATION ON A MICROWAVE HIGH-TEMPERATURE AIR HEAT EXCHANGER
    Liu, Jianhua
    Li, Yingwei
    Liu, Lijun
    Peng, Jinhui
    Zhang, Libo
    Guo, Shenghui
    Luo, Huilong
    Wang, Hongpo
    Chen, Guo
    2ND INTERNATIONAL SYMPOSIUM ON HIGH-TEMPERATURE METALLURGICAL PROCESSING, 2011, : 119 - 124
  • [26] Investigation of a High-Temperature Heat Pump for Heating Purposes
    Bellos, Evangelos
    Tsimpoukis, Dimitrios
    Lykas, Panagiotis
    Kitsopoulou, Angeliki
    Korres, Dimitrios N.
    Vrachopoulos, Michail Gr.
    Tzivanidis, Christos
    APPLIED SCIENCES-BASEL, 2023, 13 (04):
  • [27] PROCESS SIMULATING OF HEAT TRANSFER IN HIGH-TEMPERATURE THERMOCOUPLES
    Atroshenko, Yuliana K.
    Bychkova, Alena A.
    HEAT AND MASS TRANSFER IN THE THERMAL CONTROL SYSTEM OF TECHNICAL AND TECHNOLOGICAL ENERGY EQUIPMENT, 2015, 23
  • [28] CONSIDERATIONS ON HIGH-TEMPERATURE REACTORS FOR PROCESS HEAT APPLICATIONS
    KUGELER, K
    KUGELER, M
    NIESSEN, HF
    HOHN, H
    NUCLEAR ENGINEERING AND DESIGN, 1975, 34 (01) : 15 - 32
  • [29] Solar Cogeneration of Electricity with High-Temperature Process Heat
    Codd, Daniel S.
    Escarra, Matthew D.
    Riggs, Brian
    Islam, Kazi
    Ji, Yaping Vera
    Robertson, John
    Spitler, Christopher
    Platz, Jacob
    Gupta, Naman
    Miller, Fletcher
    CELL REPORTS PHYSICAL SCIENCE, 2020, 1 (08):
  • [30] HIGH-TEMPERATURE REACTOR AND APPLICATION TO NUCLEAR PROCESS HEAT
    SCHULTEN, R
    KUGELER, K
    ANNALS OF NUCLEAR ENERGY, 1976, 3 (2-3) : 95 - 111