A numerical method for investigating crystal settling in convecting magma chambers

被引:21
|
作者
Verhoeven, J. [1 ]
Schmalzl, J. [1 ]
机构
[1] WWU Munster, Inst Geophys, D-48149 Munster, Germany
关键词
magma chamber; convection; particle; crystal settling; particle-fluid interaction; modeling; FLUID; FLOW; CRYSTALLIZATION; SEDIMENTATION; SIMULATIONS; VISCOSITY;
D O I
10.1029/2009GC002509
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Magma chambers can be considered as thermochemically driven convection systems. We present a new numerical method that describes the movement of crystallized minerals in terms of active spherical particles in a convecting magma that is represented by an infinite Prandtl number fluid. The main part focuses on the results we obtained. A finite volume thermochemical convection model for two and three dimensions and a discrete element method, which is used to model granular material, are combined. The new model is validated with floating experiments using particles of different densities and an investigation of single and multiparticle settling velocities. The resulting velocities are compared with theoretical predictions by Stokes's law and a hindered settling function for the multiparticle system. Two fundamental convection regimes are identified in the parameter space that is spanned by the Rayleigh number and the chemical Rayleigh number, which is a measure for the density of the particles. We define the T regime that is dominated by thermal convection. Here the thermal driving force is strong enough to keep all particles in suspension. As the particles get denser, they start settling to the ground, which results in a C regime. The C regime is characterized by the existence of a sediment layer with particle-rich material and a suspension layer with few particles. It is shown that the presence of particles can reduce the vigor of thermal convection. In the frame of a parameter study we discuss the change between the regimes that is systematically investigated. We show that the so-called TC transition fits a power law. Furthermore, we investigate the settling behavior of the particles in vigorous thermal convection, which can be linked to crystal settling in magma chambers. We develop an analytical settling law that describes the number of settled particles against time and show that the results fit the observations from numerical and laboratory experiments.
引用
收藏
页数:21
相关论文
共 50 条
  • [31] A consistent modelling methodology for secondary settling tanks: a reliable numerical method
    Buerger, Raimund
    Diehl, Stefan
    Faras, Sebastian
    Nopens, Ingmar
    Torfs, Elena
    [J]. WATER SCIENCE AND TECHNOLOGY, 2013, 68 (01) : 192 - 208
  • [32] NUMERICAL-METHOD OF INVESTIGATING QUEUING SYSTEMS
    GULYAYEV, VI
    [J]. ENGINEERING CYBERNETICS, 1976, 14 (06): : 117 - 125
  • [33] Investigating the use of the Supervised Descent Method for Electromagnetic Imaging in PEC Enclosed Chambers
    Cathers, Seth
    Jeffrey, Ian
    Gilmore, Colin
    [J]. 2023 17TH EUROPEAN CONFERENCE ON ANTENNAS AND PROPAGATION, EUCAP, 2023,
  • [34] Geochemistry of mafic phenocrysts from alkaline lamprophyres of the Spanish Central System: implications on crystal fractionation, magma mixing and xenoliths entrapment within deep magma chambers
    Orejana, David
    Villaseca, Carlos
    Paterson, Bruce A.
    [J]. EUROPEAN JOURNAL OF MINERALOGY, 2007, 19 (06) : 817 - 832
  • [35] Numerical Analysis of Settling of Foundations of Heightened Buildings by the Modulus-Free Method
    E. S Utenov
    A. Zh. Zhusupbekov
    K. A. Abdrakhmanova
    G. K. Tanyrbergenova
    A. T. Mukhamedzhanova
    [J]. Soil Mechanics and Foundation Engineering, 2019, 56 : 239 - 245
  • [36] Numerical Analysis of Settling of Foundations of Heightened Buildings by the Modulus-Free Method
    Utenov, E. S.
    Zhusupbekov, A. Zh
    Abdrakhmanova, K. A.
    Tanyrbergenova, G. K.
    Mukhamedzhanova, A. T.
    [J]. SOIL MECHANICS AND FOUNDATION ENGINEERING, 2019, 56 (04) : 239 - 245
  • [37] A numerical-analytical method for investigating parametric oscillations
    Akulenko, L. D.
    Kumakshev, S. A.
    Nesterov, S. V.
    [J]. PMM JOURNAL OF APPLIED MATHEMATICS AND MECHANICS, 2015, 79 (02): : 111 - 121
  • [38] A numerical solver for investigating the space charge effect on the electric field in liquid argon time projection chambers
    Tu, Shuang Z.
    Jiang, Chao
    Junk, Thomas R.
    Yang, Tingjun
    [J]. JOURNAL OF INSTRUMENTATION, 2023, 18 (06)
  • [39] USE OF DIFFRACTION CONTRAST METHOD FOR INVESTIGATING CRYSTAL DEFECTS
    IZOTOV, VI
    UTEVSKII, LM
    [J]. INDUSTRIAL LABORATORY, 1966, 32 (02): : 218 - &
  • [40] From magma ascent to ash generation: investigating volcanic conduit processes by integrating experiments, numerical modeling, and observations
    Polacci, Margherita
    Vitturi, Mattia de' Michieli
    Arzilli, Fabio
    Burton, Michael Richard
    Caricchi, Luca
    Carr, Brett
    Cerminara, Matteo
    Cimarelli, Corrado
    Clarke, Amanda B.
    Colucci, Simone
    Costa, Antonio
    Degruyter, Wim
    Druitt, Tim
    Engwell, Samantha
    Ongaro, Tomaso Esposti
    Giordano, Daniele
    Gurioli, Lucia
    Haddadi, Baptiste
    Kendrick, Jackie Evan
    Kueppers, Ulrich
    Lamur, Anthony
    Lavallee, Yan
    Llewellin, Edward
    Mader, Heidy Marita
    Metrich, Nicole
    Montagna, Chiara
    Neri, Augusto
    Rivalta, Eleonora
    Saccorotti, Gilberto
    Sigmundsson, Freysteinn
    Spina, Laura
    Taddeucci, Jacopo
    [J]. ANNALS OF GEOPHYSICS, 2017, 60 (06)