Turbulent heat exchange between water and ice at an evolving ice-water interface

被引:12
|
作者
Ramudu, Eshwan [1 ]
Hirsh, Benjamin Henry [1 ]
Olson, Peter [1 ]
Gnanadesikan, Anand [1 ]
机构
[1] Johns Hopkins Univ, Dept Earth & Planetary Sci, Baltimore, MD 21218 USA
关键词
ocean processes; solidification/melting; turbulent boundary layers; PINE ISLAND GLACIER; VERTICAL SOLID-SURFACE; NATURAL-CONVECTION; MASS-TRANSFER; SHELF; BENEATH; MODEL; CIRCULATION; SOLIDIFICATION; DRIVEN;
D O I
10.1017/jfm.2016.321
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
We conduct laboratory experiments on the time evolution of an ice layer cooled from below and subjected to a turbulent shear flow of warm water from above. Our study is motivated by observations of warm water intrusion into the ocean cavity under Antarctic ice shelves, accelerating the melting of their basal surfaces. The strength of the applied turbulent shear flow in our experiments is represented in terms of its Reynolds number Re, which is varied over the range 2.0 x 10(3) <= Re <= 1.0 x 10(4). Depending on the water temperature, partial transient melting of the ice occurs at the lower end of this range of Re and complete transient melting of the ice occurs at the higher end. Following these episodes of transient melting, the ice reforms at a rate that is independent of Re. We tit our experimental measurements of ice thickness and temperature to a one-dimensional model for the evolution of the ice thickness in which the turbulent heat transfer is parameterized in terms of the friction velocity of the shear flow. Applying our model to field measurements at a site under the Antarctic Pinc Island Glacier ice shelf yields a predicted melt rate that exceeds present-day observations.
引用
收藏
页码:572 / 597
页数:26
相关论文
共 50 条
  • [31] Estimate of heat flux at the ice-water interface in Lake Baikal from experimental data
    I. A. Aslamov
    V. V. Kozlov
    I. B. Misandrontsev
    K. M. Kucher
    N. G. Granin
    Doklady Earth Sciences, 2014, 457 : 982 - 985
  • [32] Capture or repulsion of treated nylon particles by an ice-water interface
    Azouni, MA
    Casses, P
    Sergiani, B
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 1997, 122 (1-3) : 199 - 205
  • [33] Growth of spherical and cylindrical oxygen bubbles at an ice-water interface
    Yoshimura, Kenji
    Inada, Takaaki
    Koyama, Shigeru
    CRYSTAL GROWTH & DESIGN, 2008, 8 (07) : 2108 - 2115
  • [34] Heightened Cold-Denaturation of Proteins at the Ice-Water Interface
    Arsiccio, Andrea
    McCarty, James
    Pisano, Roberto
    Shea, Joan-Emma
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2020, 142 (12) : 5722 - 5730
  • [35] Ice-water two-phase flow behavior in ice heat storage systems
    Tanino, M
    Kozawa, Y
    INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2001, 24 (07): : 639 - 651
  • [36] SIMULATION OF HYDROMETEOR SIZE SPECTRA EVOLUTION BY WATER-WATER, ICE-WATER AND ICE-ICE INTERACTIONS
    KHAIN, AP
    SEDNEV, IL
    ATMOSPHERIC RESEARCH, 1995, 36 (1-2) : 107 - 138
  • [37] ICE-WATER TEST IN URODYNAMIC ASSESSMENT
    NITTI, VW
    LANCET, 1993, 342 (8879): : 1066 - 1067
  • [38] POSITRONIUM DECAY IN ICE-WATER SYSTEM
    FABRI, G
    GERMAGNOLI, E
    QUERCIA, IF
    TURRISI, E
    NUOVO CIMENTO, 1963, 30 (01): : 21 - +
  • [39] Ice-Water Phase Transition on a Substrate
    V. G. Danilov
    R. K. Gaydukov
    Russian Journal of Mathematical Physics, 2023, 30 : 165 - 175
  • [40] Wavy Ice Patterns as a Result of Morphological Instability of an Ice-Water Interface with Allowance for the Convective-Conductive Heat Transfer Mechanism
    Alexandrov, Dmitri V.
    Makoveeva, Eugenya V.
    Pashko, Alina D.
    CRYSTALS, 2024, 14 (02)