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Subglacial clast behaviour and its implication for till fabric development:
new results derived from wireless subglacial probe experiments

Hart, J. K., Rose, K. C., Martinez, K. and Ong, R. (2009) Subglacial clast behaviour and its implication for till fabric development:
new results derived from wireless subglacial probe experiments. Quaternary Science Reviews, 28 . pp. 597-607.

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Abstract

This study has investigated the three-dimensional movement of clasts within deformation till, using embedded wireless probes. These probes were part of an environmental sensor network, which measured subglacial properties (temperature, water pressure, resistivity, case strain and tilt) six times a day, and relayed that data via radio to the glacier surface, where they were forwarded and broadcast on-line. The systemwas installed at Briksdalsbreen, Norway and operated from August 2004 until August 2006. Approximately 2000 probe days worth of data were collected, with an increase in performance (41% more readings) during the second year. The probes showed similar patterns of water pressure rises throughout the two years, but with slightly different magnitudes and timings. These changes in water pressure could be related to clast behaviour. The probes decreased their dip over the year, and the rate of change was related to an increase in glacier velocity. After initial changes in dip, the probes experienced changes in orientation, followed by rotation about the a-axis. This continuous rotation was similar to the motion suggested by Jeffery [1922. The motion of ellipsoidal particles immersed in a viscous fluid. Proceedings of the Royal Society of London, Series A 102, 161–179] for the behaviour of clasts within a viscous material. In addition, some probes also showed short, frequent dip oscillations in spring and autumn, which were interpreted to reflect stick-slip events, similar to lodging; and demonstrated how local conditions can interrupt the predicted rotation pattern. Overall, it is demonstrated that when water pressures were high, decoupling occurred associated with basal sliding and dip oscillations; and when water pressures fell, the ice and sediment were coupled and till deformation occurred. These events happened during summer and autumn. It is this combination of ‘‘lodgement’’ and deformation that builds up both a complex (but predictable) fabric and a resultant
composite till sedimentology.

Item Type:Article
Creator/Authors:
J.K. Hart
K.C. Rose
K Martinez
R Ong
Keywords:sensor network, glacial sedimentology
Research Group:Current ECS Groups > Web and Internet Science
Old ECS Groups > Intelligence, Agents, Multimedia
Date:2009
Information about this record:
Performance Indicator:EZ~11~04~01
Citations:ISI: 4, Google Scholar: 5
Downloads (2010):96
ID Code:17306
Last Modified:23 Sep 2011 10:37
Deposited On:30 Apr 2009 13:49 by Martinez, Kirk

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References in Article

Select the SEEK icon to attempt to find the referenced article. If it does not appear to be in this archive you will be forwarded to the paracite service. Poorly formated references will probably not work.

Alley, R.B., 1993. In search of ice-stream sticky spots. Journal of Glaciology 39 (133),

447–454.

Alley, R.B., Blankenship, D.D., Bentley, C.R., Rooney, S.T., 1986. Deformation of till

beneath ice stream B, West Antarctica. Nature 322, 57–59.

Andrews, J.T., 1971. Techniques of till fabric analysis. BGRG Technical Bulletin 6, 43.

Arbaret, L., Fernandez, A., Jezek, J., Ildefonse, B., Launeau, P., Diot, H., 2000. Analogue

and numerical modelling of shape fabrics: application to strain and flow

determination in magmas. Transactions of the Royal Society of Edinburgh. Earth

Sciences 91, 97–109.

Benn, D.I., 1995. Fabric signature of subglacial till deformation, BreiCamerkurjo¨ kull.

Iceland. Sedimentology 42, 735–747.

Benn, D.I., Evans, D.J.A., 1996. The interpretation and classification of subglaciallydeformed

materials. Quaternary Science Reviews 15 (1), 23–52.

Blake, E.W., 1992. The Deforming Bed Beneath a Surge-Type Glacier: Measurement

of Mechanical and Electrical Properties. Unpublished Ph.D. dissertation.

University of British Columbia, Vancouver.

Boulton, G.S., 1979. Processes of glacier erosion on different substrata. Journal of

Glaciology 23, 15–38.

Boulton, G.S., Hindmarsh, R.C.A., 1987. Sediment deformation beneath glaciers:

rheology and geological consequences. Journal of Geophysical Research 92 (B9),

9059–9082.

Boulton, G.S., Jones, A.S., 1979. Stability of temperate ice caps and ice sheets resting

on beds of deformable sediment. Journal of Glaciology 24, 29–44.

Boulton, G.S., Dent, D.L., Morris, E.M., 1974. Subglacial shearing and crushing, and

the role of water pressure in tills from south-east Iceland. Geografiska Annaler

Series A 56, 135–145.

Boulton, G.S., Dobbie, K.E., Zatsepin, S., 2001. Sediment deformation beneath

glaciers and its coupling to the subglacial hydraulic system. Quaternary International

86, 3–28.

Brown, N.E., Hallet, B., Booth, D.B., 1987. Rapid soft bed sliding of the Puget glacial

lobe. Journal of Geophysical Research 92 (B9), 8985–8997.

Carr, S.J., Goddard, M.A., 2007. Role of particle size in till-fabric characteristics:

systematic variation in till fabric from Vestari-Hagafellsjo¨ kull. Iceland. Boreas

36, 371–385.

Carr, S.J., Rose, J., 2003. Till fabric patterns and significance: particle response to

subglacial stress. Quaternary Science Reviews 22, 1415–1426.

Ceriani, S., Mancktelow, N.S., Pennacchioni, G., 2003. Analogue modelling of the

influence of shape and particle/matrix interface lubrication on the rotational

behaviour of rigid particles in simple shear. Journal of Structural Geology 25,

2005–2021.

Christoffersen, P., Tulaczyk, S., 2003. Response of subglacial sediments to basal

freeze-on, 1, Theory and comparison to observations from beneath the West

Antarctic Ice Sheet. J. Geophys. Res. 108 (B4), 2222, doi:10.1029/

2002JB001935.

Clark, C.D., 1997. Reconstructing the evolutionary dynamics of former ice sheets

using multi-temporal evidence, remote sensing and GIS. Quaternary Science

Reviews 16, 1067–1092.

Clarke, G.K.C., 1987. Subglacial Till: A physical framework for its properties and

processes. Journal of Geophysical Research 92 (B9), 8942–8984.

Dowdeswell, J.A., Sharp, M., 1986. Characterisation of pebble fabrics in modern

terrestrial glacigenic sediments. Sedimentology 33, 699–710.

Engelhardt, H., Kamb, B., 1998. Basal sliding of Ice Stream B,West Antarctica. Journal

of Glaciology 44 (147), 223–230.

Evans, D.J.A., Phillips, E.R., Hiemstra, J.F., Auton, C.A., 2006. Subglacial till: Formation,

sedimentary characteristics and classification. Earth-Science Reviews 78

(1-2), 115–176.

Fischer, U.H., Clarke, G.K.C., 1994. Ploughing of subglacial sediment. Journal of

Glaciology 40 (134), 97–106.

Fischer, U.H., Clarke, G.K.C., 1997. Clast collision frequency as an indicator of glacier

sliding rate. Journal of Glaciology 43, 460–466.

Fischer, U.H., Clarke, G.K.C., 2001. Review of subglacial hydro-mechanical

coupling: Trapridge Glacier, Yukon Territory, Canada. Quaternary International

86, 29–44.

Gay, N.C., 1968. The motion of rigid particles embedded in a viscous fluid during

pure shear deformation of the fluid. Tectonophysics 5, 81–88.

Ghosh, S.K., Ramberg, H., 1976. Reorientation of inclusions by combination of pure

shear and simple shear. Tectonophysics 34, 1–70.

Glen, J.W., Donner, J.J., West, R.G., 1957. On the mechanism by which stones in till

become oriented. American Journal of Science 255, 194–205.

Hart, J.K., 1994. Till fabric associated with deformable beds. Earth Surface Processes

and Landforms 19, 15–32.

Hart, J.K., 2006. An investigation of subglacial processes at the microscale from

Briksdalsbreen, Norway. Sedimentology 53, 125–146.

Hart, J.K., 2007. An investigation of subglacial shear zone processes from Weybourne,

Norfolk. UK Quaternary Science Reviews 26, 2354–2374.

Hart, J.K., Boulton, G.S., 1991. The interrelationship between glaciotectonic deformation

and glaciodeposition. Quaternary Science Reviews 10, 335–350.

Hart, J.K., Martinez, K., 2006. Environmental Sensor Networks: A revolution in the

Earth System Science? Earth Science Reviews 78, 177–191.

Hart, J.K., Rose, J., 2001. Approaches to the study of glacier bed deformation.

Quaternary International 86, 45–58.

Hart, J.K., Khatwa, A., Sammonds, P., 2004. The effect of grain texture on the

occurrence of microstructural properties in subglacial till. Quaternary Science

Reviews 23, 2501–2512.

Hart, J.K., Martinez, K., Ong, R., Riddoch, A., Rose, K.C., Padhy, P., 2006. An autonomous

multi-sensor subglacial probe: Design and preliminary results from

Briksdalsbreen, Norway. Journal of Glaciology 52 (178), 389–397.

Hicock, S.R., Goff, J.R., Lian, O.B., Little, E.C., 1996. On the interpretation of subglacial

till fabric. Journal of Sedimentary Research 66, 928–934.

Hodge, S.M., 1976. Direct measurement of basal water pressures: A pilot study.

Journal of Glaciology 16, 205–218.

Hooke, R.LeB., Hanson, B., Iverson, N.R., Jansson, P., Fischer, U., 1997. Rheology of

subglacial till, Storglacia¨ren, Sweden. Journal of Glaciology 43, 172–179.

Hooyer, T.S., Iverson, N.R., 2000. Clast-fabric development in a shearing granular

material: implications for subglacial till and fault gouge. Geological Society of

America Bulletin 112, 683–692.

Ildefonse, B., Mancktelow, N.S., 1993. Deformation around rigid particlesdthe

influence of slip at the particle matrix interface. Tectonophysics 221 (3-4),

345–359.

Ildefonse, B., Launeau, P., Bouchez, J.L., Fernandez, A., 1992a. Effect of mechanical

interactions on the development of shape preferred orientations: a twodimensional

experimental approach. Journal of Structural Geology 14, 73–83.

Ildefonse, B., Sokoutis, D., Mancktelow, N.S., 1992b. Mechanical interactions

between rigid particles in a deforming ductile matrix. Analogue experiments in

simple shear flow. Journal of Structural Geology 14, 1253–1266.

Iken, A., Rothlisberger, H., Floton, A., Haeberli, W., 1983. The uplift of Unteraargletscher

at the beginning of the melt-seasondA consequence of water

storage at the bed? Journal of Glaciology 29, 28–248.

Iverson, N.R., Hanson, B., Hooke, R.L., Jansson, P., 1995. Flow mechanisms of glaciers

on soft beds. Science 267, 80–81 (1995).

Iverson, N.R., Hooyer, T.S., Thomason, J.F., Graesch, M., Shumway, J.R., 2008. The

experimental basis for interpreting particle and magnetic fabrics of sheared till.

Earth Surface Processes and Landforms 33, 627–645.

Jeffery, G.B., 1922. The motion of ellipsoidal particles immersed in a viscous fluid.

Proceedings of the Royal Society of London. Series A 102, 161–179.

Jezek, J., Melka, R., Schulmann, K., Venera, Z., 1994. The behaviour of rigid triaxial

ellipsoidal particles in viscous flowsdmodeling of fabric evolution in a multiparticle

system. Tectonophysics 229 (3-4), 165–180.

Jezek, J., Schulmann, K., Segeth, K., 1996. Fabric evolution of rigid inclusions during

mixed coaxial and simple shear flows. Tectonophysics 257, 203–221.

Jiang, D., 2007. Numerical modeling of the motion of rigid ellipsoidal objects

in slow viscous flows: A new approach. Journal of Structural Geology 29,

189–200.

Kavanaugh, J.L., 1994. Hydromechanical Behaviour of a Surge-Type Glacier: Trapridge

Glacier, Yukon Territory, Canada. Unpublished PhD thesis, University of

British Columbia.

Kjaer, K.H., Kruger, J., 1998. Does clast size influence fabric strength? Journal of

Sedimentary Research 68, 746–749.

Larsen, N.K., Piotrowski, J.A., 2003. Fabric pattern in a basal till succession and its

significance for reconstructing subglacial processes. Journal of Sedimentary

Research 73, 725–734.

MacAyeal, D.R., Bindschadler, R.A., Scambos, T.A., 1995. Basal friction of ice-stream-

E, West Antarctica. Journal of Glaciology 41 (138), 247–262.

Mancktelow, N.S., Arbaret, L., Pennacchioni, G., 2002. Experimental observations on

the effect of interface slip on rotation and stabilization of rigid particle in simple

shear and a comparison with natural mylonites. Journal of Structural Geology

24, 567–586.

Mandal, N., Samanta, S.K., Bhattacharyya, G., Chakraborty, C., 2005a. Rotation

behaviour of rigid inclusions in multiple association: insights from experimental

and theoretical models. Journal of Structural Geology 27, 679–692.

Mandal, N., Misra, S., Samanta, S.K., 2005b. Rotation of single rigid inclusions

embedded in an anisotropic matrix: a theoretical study. Journal of Structural

Geology 27, 731–743.

March, A., 1932. Mathematische theorie der regelung nach der korngestalt bei

affiner deformation. Zeitschrift fu¨ r Kristallographie 81, 285–297.

Mark, D.M., 1973. Analysis of axial orientation data, including till fabrics. Bulletin of

the Geological Society of America 84, 1369–1374.

Marques, F.O., Coelho, S., 2001. Rotation of rigid elliptical cylinders in viscous simple

shear flow: analogue experiments. Journal of Structural Geology 23, 609–617.

Martinez, K., Hart, J.K., Ong, R., 2004. Environmental sensor networks. Computing

37 (8), 50–56.

Murray, T., Porter, P.R., 2001. Basal conditions beneath a soft-bedded polythermal

surge-type glacier: Bakaninbreen, Svalbard. Quaternary International, 86,

103–116. http://www.nve.no/modules/module_109/publisher_view_product.asp?

iEntityId¼1617.

Nesje, A., Dahl, S.O., 2003. The ‘‘Little Ice Age’’donly temperature? Holocene 13,

171–177.

Piotrowski, J.A., Larsen, N.K., Junge, F.W., 2004. Reflections on soft subglacial beds

as a mosaic of deforming and stable spots. Quaternary Science Reviews 23,

993–1000.

Piostrowski, J.A., Larsen, N.K., Menzies, J.,Wysota,W., 2006. Formation of subglacial till

under transient bed conditions: deposition, deformation, and basal decoupling

under aWeichselian ice sheet lobe, central Poland. Sedimentology 53, 83–106.

Ro¨ thlisberger, H., Iken, A., Spring, U., 1979. Piezometric observations of water

pressure at the bed of Swiss glaciers. Journal of Glaciology 23 (89), 429–430.

Rose, K.C., Hart, J.K., 2008. Subglacial comminution in the deforming bed: inferences

from SEM analysis. Sedimentary Geology 203, 87–97.

Schmid, D.W., Podladchikov, Y.Y., 2004. Are isolated stable rigid clasts in shear

zones equivalent to voids? Tectonophysics 384, 233–242.

Stokes, C.R., Clark, C.D., Lian, O.B., Tulaczyk, S., 2007. Ice stream sticky spots: A

review of their identification and influence beneath contemporary and palaeoice

streams. Earth-Science Reviews 81, 217–249.

Thomason, J.F., Iverson, N.R., 2006. Microfabric and microshear evolution in

deformed till. Quaternary Science Reviews 25, 1027–1038.

Truffer, M., Harrison, W.D., Echelmeyer, K.A., 2000. Glacier motion dominated by.

processes deep in underlying till. Journal of Glaciology 46, 213–221.

Tulaczyk, S., Kamb,W.B., Engelhardt, H.F., 2000. Basal mechanics of Ice Stream B,West

Antarctica 1. Till mechanics. Journal of Geophysical Research 105 (B1), 463–482.

van der Meer, J.J.M., 1993. Microscopic evidence of subglacial deformation.

Quaternary Science Reviews 12, 553–587.

van der Meer, J.J.M., Menzies, J., Rose, J., 2003. Subglacial till: the deforming glacier

bed. Quaternary Science Reviews 22, 1659–1685.

Willis, I.C., Sharp, M.J., Richards, K.S., 1991. Studies of the water balance of Midtdalsbreen,

Hardangerjo¨ kulen, Norway, II, Water storage and runoff prediction.

Zeitschrift fur Gletscherkunde und Glazialgeologie 27/28, 117–138.

Winkler, S., 1996. Front variations of outlet glaciers from Jostedalsbreen, western

Norway, during the twentieth century. Norges Geologiske Undersøkelse

Bulletin 431, 33–47.

Winkler, S., Nesje, A., 1999. Moraine formation at an advancing temperate Glacier:

Brigsdalsbreen, Western Norway. Geografiska Annaler 81A, 17–30.

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