'Smart' transonic atomization and heating of a pulsating non-Newtonian liquid sheet

被引:3
|
作者
Wilson, D. M. [2 ]
Strasser, W. [1 ]
Prichard, R. [1 ]
机构
[1] Liberty Univ, Sch Engn, Lynchburg, VA 24515 USA
[2] Clemson Univ, Clemson, SC USA
关键词
CFD; Multiphase; Atomization; PID; Viscosity; AI; FEEDBACK-CONTROL; COMBUSTION INSTABILITIES; SLURRY ATOMIZATION; ACTIVE CONTROL; FLOW;
D O I
10.1016/j.ces.2023.119094
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
We introduce proportional integral derivative (PID) controls into transonic pulsatile steam-assisted non-Newtonian slurry heating and disintegration. The purpose is to ensure consistent, reliable atomization during generic process upset scenarios, while this implementation involves a sudden pronounced slurry property shift. The uniquely interrelated physical responses of phase interfacial atomizer instabilities require continuously coupled PID controllers, the first of which automates slurry flow based on slurry pressure drop. The second compensates for the variable phase momentum ratio and sets a new heating steam flow based on the targeted droplet size. Three tests with increasing rigor were conducted to demonstrate successful coupled controller adaptability. During controller compensations, slurry and steam flows were significantly altered and drastically changed atomization characteristics. For a 100-fold increase in slurry viscosity, however, the controllers successfully maintained consistent droplet size and slurry flow resistance. The control methodology was shown to be mesh-independent and to operate across multiple atomization regimes.
引用
收藏
页数:12
相关论文
共 50 条
  • [31] The effect of shear and extensional viscosities on atomization of Newtonian and non-Newtonian fluids in ultrasonic inhaler
    Broniarz-Press, L.
    Sosnowski, T. R.
    Matuszak, M.
    Ochowiak, M.
    Jablczynska, K.
    INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2015, 485 (1-2) : 41 - 49
  • [32] Dissipative heating of Newtonian and non-Newtonian viscous fluids in mixing vessels
    Mewes, D.
    Friederich, M.
    Institution of Chemical Engineers Symposium Series, 1990, (121): : 435 - 458
  • [33] Newtonian and non-Newtonian viscosity of supercooled liquid in metallic glasses
    Kawamura, Y
    Nakamura, T
    Kato, H
    Mano, H
    Inoue, A
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2001, 304 (1-2): : 674 - 678
  • [34] Experimental Investigations of Non-Newtonian/Newtonian Liquid-Liquid Flows in Microchannels
    Roumpea, Evangelia
    Chinaud, Maxime
    Angeli, Panagiota
    AICHE JOURNAL, 2017, 63 (08) : 3599 - 3609
  • [35] Tuning Alginate Microparticle Size via Atomization of Non-Newtonian Fluids
    Arauzo, Beatriz
    Gonzalez-Garcinuno, Alvaro
    Tabernero, Antonio
    Lobera, Maria Pilar
    Santamaria, Jesus
    Martin del Valle, Eva Maria
    MATERIALS, 2021, 14 (24)
  • [36] Pulsating flow of a non-Newtonian nanofluid in a porous channel with magnetic field
    Kumar, P. Bharath
    Srinivas, S.
    MATERIALS TODAY-PROCEEDINGS, 2019, 9 : 320 - 332
  • [37] Non-Newtonian laminar pulsating heat and fluid flow in plane duct
    Altunkaya, Ayse Nur
    Aydin, Orhan
    Avci, Mete
    HEAT TRANSFER, 2024, 53 (02) : 805 - 825
  • [38] STUDY OF THE ENTRANCE EFFECTS FOR PULSATING FLOW OF INELASTIC NON-NEWTONIAN FLUIDS
    GILLARD, B
    LY, DP
    BELLET, D
    RHEOLOGICA ACTA, 1980, 19 (04) : 437 - 451
  • [39] Study pulsating electrospray of non-Newtonian and thixotropic sodium alginate solution
    Tabeei, A.
    Samimi, A.
    Khorram, M.
    Moghadam, H.
    JOURNAL OF ELECTROSTATICS, 2012, 70 (01) : 77 - 82
  • [40] REGIMES FOR FLOW-BLURRING AND FLOW-FOCUSING ATOMIZATION OF NEWTONIAN AND NON-NEWTONIAN FLUIDS
    Jaber, Othman J.
    Dai, Shaocong
    Kourmatzis, Agisilaos
    Masri, Assaad R.
    ATOMIZATION AND SPRAYS, 2023, 33 (05) : 1 - 19