The Validity of Using the Microscopic Parabolic Heat Conduction Model in Place of the Macroscopic Parabolic Model Under the Effect of a Moving Heating Source

被引:0
|
作者
A. F. Khadrawi
M. A. Al-Nimr
机构
[1] Applied University,Mechanical Engineering Department, Al
来源
关键词
heat conduction; microscopic parabolic model; moving source; two-step model; validation criterion;
D O I
暂无
中图分类号
学科分类号
摘要
The validity of the use of the microscopic parabolic heat conduction model under the effect of a moving heating source is investigated. Two configurations are considered which are the finite and the semi-infinite domains. For each configuration, two types of thermal boundary conditions are considered which are the isothermal and the insulated types. Four dimensionless parameters are found to control the thermal behavior of the considered problem which are the dimensionless heating source speed U, heat capacity ratio CR, dimensionless amplitude of the heating source S0, and dimensionless plate thickness ξ0 for the finite domain configuration. It is found that the use of the microscopic parabolic heat conduction model instead of the parabolic macroscopic model is essential when the dimensionless speed of the source U > 0.1 The heat capacity ratio CR is found to have insignificant effect on the domain thermal behavior. However, the deviation between the microscopic and macroscopic models increases as ξ0 decreases. The deviation between the two models is significant within the very early stages of time.
引用
收藏
页码:931 / 947
页数:16
相关论文
共 50 条
  • [31] Transient Thermal Response of a Homogeneous Composite Thin Layer Exposed to a Fluctuating Heating Source under the Effect of the Dual-Phase-Lag Heat-Conduction Model
    M. A. Hader
    M. A. Al-Nimr
    V. A. Hammoudeh
    International Journal of Thermophysics, 2006, 27 : 665 - 680
  • [32] Transient thermal response of a homogeneous composite thin layer exposed to a fluctuating heating source under the effect of the dual-phase-lag heat-conduction model
    Hader, M. A.
    Al-Nimr, M. A.
    Hammoudeh, V. A.
    INTERNATIONAL JOURNAL OF THERMOPHYSICS, 2006, 27 (02) : 665 - 680
  • [33] Some studies on temperature field during plasma arc welding of thin titanium alloy sheets using parabolic Gaussian heat source model
    Dhinakaran, V.
    Shanmugam, N. Siva
    Sankaranarayanasamy, K.
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART C-JOURNAL OF MECHANICAL ENGINEERING SCIENCE, 2017, 231 (04) : 695 - 711
  • [34] Simplified heat transfer model for parabolic trough solar collectors using supercritical CO2
    Aguilar, Rafael
    Valenzuela, Loreto
    Avila-Marin, Antonio L.
    Garcia-Ybarra, Pedro L.
    ENERGY CONVERSION AND MANAGEMENT, 2019, 196 : 807 - 820
  • [35] A Kinetic Model of Nonequilibrium Melting of Metal under Critical Heating by a Nanosecond Volumetric Heat Source
    E. E. Slyadnikov
    I. Yu. Turchanovsky
    P. P. Kaminsky
    Russian Physics Journal, 2020, 63 : 699 - 707
  • [36] Estimation of the moving heat source intensity using the multiple model adaptive inverse method
    Lv, Cai
    Wang, Guangjun
    Chen, Hong
    Wan, Shibin
    INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2019, 138 : 576 - 585
  • [37] A Kinetic Model of Nonequilibrium Melting of Metal under Critical Heating by a Nanosecond Volumetric Heat Source
    Slyadnikov, E. E.
    Turchanovsky, I. Yu
    Kaminsky, P. P.
    RUSSIAN PHYSICS JOURNAL, 2020, 63 (04) : 699 - 707
  • [38] Modeling of the pyrolysis of biomass under parabolic and exponential temperature increases using the Distributed Activation Energy Model
    Soria-Verdugo, Antonio
    Goos, Elke
    Arrieta-Sanagustin, Jorge
    Garcia-Hernando, Nestor
    ENERGY CONVERSION AND MANAGEMENT, 2016, 118 : 223 - 230
  • [39] 3-Dimensional laser heating model including a moving heat source consideration and phase change process
    Yilbas, B.S.
    Warme- und Stoffubertragung Zeitschrift, 1998, 33 (5-6): : 495 - 504
  • [40] 3-dimensional laser heating model including a moving heat source consideration and phase change process
    B. S. Yilbas
    Heat and Mass Transfer, 1998, 33 : 495 - 505