Entropy generation analysis of non-newtonian fluid in rotational flow

被引:0
|
作者
Kosarineia A. [1 ]
机构
[1] Department of Mechanical Engineering, Ahvaz Branch, Islamic Azad University, Ahvaz
关键词
Deborah number; Entropy generation; Nonlinear equations; Perturbation method; Rotational flow;
D O I
10.22061/jcarme.2018.2877.1299
中图分类号
学科分类号
摘要
The entropy generation analysis of non-Newtonian fluid in rotational flow between two concentric cylinders is examined when the outer cylinder is fixed and the inner cylinder is revolved with a constant angular speed. The viscosity of non-Newtonian fluid is considered at the same time interdependent on temperature and shear rate. The Nahme law and Carreau equation are used to modeling dependence of viscosity on temperature and shear rate, respectively. The viscous dissipation term is adding elaboration to the formerly highly associate set of governing motion and energy equations. The perturbation method has been applied for the highly nonlinear governing equations of base flow and found an approximate solution for narrowed gap limit. The effect of characteristic parameter such as Brinkman number and Deborah number on the entropy generation analysis is investigated. The overall entropy generation number decays in the radial direction from rotating inner cylinder to stationary outer cylinder. The results show that overall rate of entropy generation enhances within flow domain as increasing in Brinkman number. It, however, declines with enhancing Deborah number. The reason for this is very clear, the pseudo plastic fluid between concentric cylinders is heated as Brinkman number increases due to frictional dissipation and it is cooled as Deborah number increases which is due to the elasticity behavior of the fluid. Therefore, to minimize entropy need to be controlled Brinkman number and Deborah number. © 2019, Shahid Rajaee Teacher Tarining University (SRTTU). All rights reserved.
引用
收藏
页码:129 / 140
页数:11
相关论文
共 50 条
  • [1] Entropy generation in non-Newtonian fluid flow in a slider bearing
    M. Pakdemirli
    B. S. Yilbas
    M. Yurusoy
    Sadhana, 2004, 29 : 629 - 640
  • [2] Entropy generation in non-Newtonian fluid flow in a slider bearing
    Pakdemirli, M
    Yilbas, BS
    Yurusy, M
    SADHANA-ACADEMY PROCEEDINGS IN ENGINEERING SCIENCES, 2004, 29 (6): : 629 - 640
  • [3] Asymptotic Nusselt and entropy generation numbers for non-Newtonian fluid flow
    Mahmud, S
    Fraser, RA
    HEAT AND MASS TRANSFER, 2005, 41 (11) : 999 - 1003
  • [4] Asymptotic Nusselt and entropy generation numbers for non-Newtonian fluid flow
    Shohel Mahmud
    Roydon Andrew Fraser
    Heat and Mass Transfer, 2007, 44 : 137 - 137
  • [5] Asymptotic Nusselt and entropy generation numbers for non-Newtonian fluid flow
    Shohel Mahmud
    Roydon Andrew Fraser
    Heat and Mass Transfer, 2005, 41 : 999 - 1003
  • [6] Heat Transfer and Entropy Generation in Vibrational Flow: Newtonian vs. Inelastic Non-Newtonian Fluid
    Mishra, S. K.
    Mishra, A.
    Singh, P.
    Dubey, M.
    JOURNAL OF APPLIED FLUID MECHANICS, 2024, 17 (11) : 2349 - 2360
  • [7] Entropy generation due to the flow of a non-Newtonian fluid with variable viscosity in a circular pipe
    Yilbas, BS
    Pakdemirli, M
    HEAT TRANSFER ENGINEERING, 2005, 26 (10) : 80 - 86
  • [8] Entropy generation in a pipe due to non-Newtonian fluid flow: Constant viscosity case
    Pakdemirli, M
    Yilbas, BS
    SADHANA-ACADEMY PROCEEDINGS IN ENGINEERING SCIENCES, 2006, 31 (1): : 21 - 29
  • [9] Thermal and entropy generation of non-Newtonian magneto-Carreau fluid flow in microchannel
    Shehzad, S. A.
    Madhu, Macha
    Shashikumar, N. S.
    Gireesha, B. J.
    Mahanthesh, B.
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2021, 143 (03) : 2717 - 2727
  • [10] Thermal and entropy generation of non-Newtonian magneto-Carreau fluid flow in microchannel
    S. A. Shehzad
    Macha Madhu
    N. S. Shashikumar
    B. J. Gireesha
    B. Mahanthesh
    Journal of Thermal Analysis and Calorimetry, 2021, 143 : 2717 - 2727