Dissipative particle dynamics simulation of flow generated by two rotating concentric cylinders: II. Lateral dissipative and random forces

被引:9
|
作者
Filipovic, N. [1 ,2 ]
Haber, S. [3 ]
Kojic, M. [1 ,2 ]
Tsuda, A. [2 ]
机构
[1] Univ Kragujevac, Fac Mech Engn, Kragujevac, Serbia
[2] Harvard Univ, Harvard Sch Publ Hlth, Boston, MA USA
[3] Technion Israel Inst Technol, Haifa, Israel
关键词
D O I
10.1088/0022-3727/41/3/035504
中图分类号
O59 [应用物理学];
学科分类号
摘要
Traditional DPD methods address dissipative and random forces exerted along the line connecting neighbouring particles. Espanol (1998 Phys. Rev. E 57 2930-48) suggested adding dissipative and random force components in a direction perpendicular to this line. This paper focuses on the advantages and disadvantages of such an addition as compared with the traditional DPD method. Our benchmark system comprises fluid initially at rest occupying the space between two concentric cylinders rotating with various angular velocities. The effect of the lateral force components on the time evolution of the simulated velocity profile was also compared with that of the known analytical solution. The results show that (i) the solution accuracy at steady state has improved and the error has been reduced by at least 30% (in one case by 75%), (ii) the DPD time to reach steady state has been halved, (iii) the CPU time has increased by only 30%, and (iv) no significant differences exist in density and temperature distributions.
引用
收藏
页数:6
相关论文
共 50 条
  • [1] Dissipative particle dynamics simulation of flow generated by two rotating concentric cylinders: Boundary conditions
    Haber, S.
    Filipovic, N.
    Kojic, M.
    Tsuda, A.
    [J]. PHYSICAL REVIEW E, 2006, 74 (04)
  • [2] Dissipative particle dynamics: dissipative forces from atomistic simulation
    Sokhan, Vlad P.
    Todorov, Ilian T.
    [J]. MOLECULAR SIMULATION, 2021, 47 (2-3) : 248 - 256
  • [3] The role of the dissipative and random forces in the calculation of the pressure of simple fluids with dissipative particle dynamics
    Gama Goicochea, A.
    Balderas Altamirano, M. A.
    Hernandez, J. D.
    Perez, E.
    [J]. COMPUTER PHYSICS COMMUNICATIONS, 2015, 188 : 76 - 81
  • [4] Dissipative particle dynamics simulation of flow around spheres and cylinders at finite Reynolds numbers
    Kim, JM
    Phillips, RJ
    [J]. CHEMICAL ENGINEERING SCIENCE, 2004, 59 (20) : 4155 - 4168
  • [5] SIMULATION OF DRIPPING FLOW USING DISSIPATIVE PARTICLE DYNAMICS
    Khajepor, Sorush
    Joulaian, Meysam
    Pishevar, Ahmadreza
    Afshar, Yaser
    [J]. PROCEEDINGS OF THE 8TH INTERNATIONAL CONFERENCE ON NANOCHANNELS, MICROCHANNELS AND MINICHANNELS, 2010, PTS A AND B, 2011, : 1755 - 1762
  • [6] Dissipative particle dynamics simulation of magnetorheological fluids in shear flow
    Gharibvand, Arash Jafari
    Norouzi, Mahmood
    Shahmardan, Mohammad Mohsen
    [J]. JOURNAL OF THE BRAZILIAN SOCIETY OF MECHANICAL SCIENCES AND ENGINEERING, 2019, 41 (02)
  • [7] Dissipative particle dynamics simulation of magnetorheological fluids in shear flow
    Arash Jafari Gharibvand
    Mahmood Norouzi
    Mohammad Mohsen Shahmardan
    [J]. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 2019, 41
  • [8] Dissipative particle dynamics simulation of shear flow in a microchannel with a deformable membrane
    Anand, D. Vijay
    Vedantam, Srikanth
    Patnaik, B. S. V.
    [J]. MICROFLUIDICS AND NANOFLUIDICS, 2016, 20 (12)
  • [9] Dissipative particle dynamics simulation of multiphase flow through a mesoscopic channel
    Liu Han-Tao
    Liu Mou-Bin
    Chang Jian-Zhong
    Su Tie-Xiong
    [J]. ACTA PHYSICA SINICA, 2013, 62 (06)
  • [10] Fully explicit dissipative particle dynamics simulation of electroosmotic flow in nanochannels
    Abouzar Moshfegh
    Ahmad Jabbarzadeh
    [J]. Microfluidics and Nanofluidics, 2016, 20