Subglacial clast/bed contact forces

被引:12
|
作者
Byers, John [1 ]
Cohen, Denis [1 ]
Iverson, Neal R. [1 ]
机构
[1] Iowa State Univ, Dept Geol & Atmospher Sci, Ames, IA 50011 USA
基金
美国国家科学基金会;
关键词
DYNAMIC RECRYSTALLIZATION; BASAL DEBRIS; ICE; FLOW; BED; PRESSURE; FRICTION; SPHERE;
D O I
10.3189/2012JoG11J126
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
A laboratory device was built to measure the forces that ice exerts on a 0.05 m diameter rigid plastic sphere in two different configurations: in contact with a flat bed or isolated from the bed. Measurements indicated that bed-normal contact forces were 1.8 times larger than drag forces due to creeping flow past a slippery sphere isolated from the bed. Measurements of forces as a function of the bed-normal ice velocity, estimations of the ice viscosity parameter and observations of markers in the ice indicate ice is Newtonian with a viscosity of similar to 1.3 x 10(11) Pa s. Newtonian behavior is expected due to small and transient stresses. A model of regelation indicates that it had a negligible (<5%) influence on forces. Water pressure in the cavity beneath the sphere in contact with the bed had a likewise negligible influence on contact forces. When no cavity is present, drag forces can be correctly estimated using Stokes's law (Newtonian viscosity) for a slippery sphere. The same law with a bed-enhancement factor of 1.8 is appropriate for estimating bed-normal contact forces. These results reinforce previous laboratory measurements and theories but provide no support for explanations of high debris/bed friction or rates of abrasion that depend on high contact forces.
引用
收藏
页码:89 / 98
页数:10
相关论文
共 50 条
  • [1] Occurrence of bed load transport in the presence of stable clast
    Sulaiman, Mohd Sofiyan
    Sinnakaudan, Shanker Kumar
    Ng, Set Foong
    Strom, Kyle
    INTERNATIONAL JOURNAL OF SEDIMENT RESEARCH, 2017, 32 (02) : 195 - 209
  • [2] Bathymetry and bed conditions of Lago Subglacial CECs, West Antarctica
    Brisbourne, A. M.
    Smith, A. M.
    Rivera, A.
    Zamora, R.
    Napoleoni, F.
    Uribe, J. A.
    Ortega, M.
    JOURNAL OF GLACIOLOGY, 2023, 69 (278) : 1546 - 1555
  • [3] Contact forces between viscoelastic ellipsoidal particles
    Zheng, Q. J.
    Zhou, Z. Y.
    Yu, A. B.
    POWDER TECHNOLOGY, 2013, 248 : 25 - 33
  • [4] Subglacial bed form morphology controlled by ice speed and sediment thickness
    Barchyn, Thomas E.
    Dowling, Thomas P. F.
    Stokes, Chris R.
    Hugenholtz, Chris H.
    GEOPHYSICAL RESEARCH LETTERS, 2016, 43 (14) : 7572 - 7580
  • [5] Streamlined subglacial bedform sensitivity to bed characteristics across the deglaciated Northern Hemisphere
    McKenzie, Marion A.
    Simkins, Lauren M.
    Principato, Sarah M.
    Garcia, Santiago Munevar
    EARTH SURFACE PROCESSES AND LANDFORMS, 2022, 47 (09) : 2341 - 2356
  • [6] Polarization of contact forces in multi-contact systems
    Dumont, Serge
    Fortin, Jerome
    Ouafik, Youssef
    EUROPEAN JOURNAL OF COMPUTATIONAL MECHANICS, 2010, 19 (1-3): : 77 - 88
  • [7] Bed topography and subglacial landforms in the onset region of the Northeast Greenland Ice Stream
    Franke, Steven
    Jansen, Daniela
    Binder, Tobias
    Doerr, Nils
    Helm, Veit
    Paden, John
    Steinhage, Daniel
    Eisen, Olaf
    ANNALS OF GLACIOLOGY, 2020, 61 (81) : 143 - 153
  • [8] Quantifying subglacial bed roughness in Antarctica: implications for ice-sheet dynamics and history
    Bingham, Robert G.
    Siegert, Martin J.
    QUATERNARY SCIENCE REVIEWS, 2009, 28 (3-4) : 223 - 236
  • [9] Effect of interfacial contact forces in radial contact wire strand
    B. K. Gnanavel
    N. S. Parthasarathy
    Archive of Applied Mechanics, 2011, 81 : 303 - 317
  • [10] Effect of interfacial contact forces in radial contact wire strand
    Gnanavel, B. K.
    Parthasarathy, N. S.
    ARCHIVE OF APPLIED MECHANICS, 2011, 81 (03) : 303 - 317