Ice needle nucleation and dendrite growth under an electric field

被引:4
|
作者
Santos, Leandra P. [1 ]
da Silva, Douglas S. [2 ]
Galembeck, Andre [3 ]
Galembeck, Fernando [2 ]
机构
[1] GG & FG Consultores Associados, Av Jose Rocha Bonfim 214, BR-13080650 Campinas, Brazil
[2] Univ Estadual Campinas, R Monteiro Lobato S-N, BR-13084971 Campinas, Brazil
[3] Univ Fed Pernambuco, Av Jornalista Anibal Fernandes S-N, BR-50740560 Recife, PE, Brazil
基金
巴西圣保罗研究基金会;
关键词
Classical nucleation theory; Electrochemical potential; Gibbs energy barrier; Ice formation; Phase change; Surface charge density; Surface tension; CHARGE; CRYSTALS; WATER; MECHANISM; IMPACT;
D O I
10.1109/IAS44978.2020.9334810
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Applying 0.3 to 1.25 kV/cm electric potential gradients to cooled water vapor triggers the copious formation of electrified ice needles, as long as 36 millimeters. This is completely different from the meager ice formation in the same set-up but in the absence of the external field. Needle excess electric charge is evidenced by its attraction towards the electrodes and by its collapse when the field is withdrawn. These observations are explained considering i) the effect of the electric potential on ice surface tension, thus decreasing or eliminating the energy barrier to ice nucleation and ii) the elongated ice habit that allows the accumulation of charge sufficient to create fields higher than those initially applied. The present results show that ice formation under electric potentials that are easily found in natural and anthropic environments enhances charge separation and storage during water vapor condensation and perhaps in other water phase change events.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Ice Needle Nucleation and Dendrite Growth Under an Electric Field
    Santos, Leandra P.
    da Silva, Douglas S.
    Galembeck, Andre
    Galembeck, Fernando
    IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 2022, 58 (02) : 2430 - 2435
  • [2] Role of the electric double layer in the ice nucleation of water droplets under an electric field
    Zhang, Xiang-Xiong
    Li, Xin-Hao
    Chen, Min
    ATMOSPHERIC RESEARCH, 2016, 178 : 150 - 154
  • [3] NUCLEATION AND GROWTH OF CHOLESTERIC FINGERS UNDER ELECTRIC-FIELD
    RIBIERE, P
    OSWALD, P
    JOURNAL DE PHYSIQUE, 1990, 51 (16): : 1703 - 1720
  • [4] Nucleation and growth of lysozyme crystals under external electric field
    Nanev, CN
    Penkova, A
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2002, 209 (2-3) : 139 - 145
  • [5] Molecular dynamics investigation of ice nucleation and growth in supercooled water in the presence of an electric field
    Webb, Autumn
    Leong, Kai
    Wang, Feng
    Williams, Andrew
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2016, 251
  • [6] Phase boundaries, nucleation rates and speed of crystal growth of the water-to-ice transition under an electric field: a simulation study
    Zaragoza, Alberto
    Espinosa, Jorge R.
    Ramos, Regina
    Antonio Cobos, Jose
    Luis Aragones, Juan
    Vega, Carlos
    Sanz, Eduardo
    Ramirez, Jorge
    Valeriani, Chantal
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2018, 30 (17)
  • [7] GROWTH OF ICE CRYSTALS IN AN ELECTRIC FIELD
    BARTLETT, JT
    VANDENHEUVEL, AP
    MASON, BJ
    ZEITSCHRIFT FUR ANGEWANDTE MATHEMATIK UND PHYSIK, 1963, 14 (05): : 599 - &
  • [8] Effect of an electric field on nucleation and growth of crystals
    Yurov, V. M.
    Guchenko, S. A.
    Gyngazova, M. S.
    INTERNATIONAL SCIENTIFIC CONFERENCE ON RADIATION-THERMAL EFFECTS AND PROCESSES IN INORGANIC MATERIALS 2015 (RTEP2015), 2016, 110
  • [9] THE EFFECTS OF ELECTRIC FIELD ON ICE NUCLEATION MAY BE MASKED BY THE INHERENT STOCHASTIC NATURE OF NUCLEATION
    Wilson, P. W.
    Osterday, K.
    Haymet, A. D. J.
    CRYOLETTERS, 2009, 30 (02) : 96 - 99
  • [10] Characterizing Ice Crystal Growth Behavior Under Electric Field Using Phase Field Method
    He, Zhi Zhu
    Liu, Jing
    JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2009, 131 (07):