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Healed cracks in iceberg ice

Published online by Cambridge University Press:  08 September 2017

Paul D. Barrette
Affiliation:
Ocean Engineering Research Centre, Faculty of Engineering and Applied Science, Memorial University of Newfoundland, St John’s, Newfoundland A1B 3X5, Canada E-mail: paulb@engr.mun.ca
Ian J. Jordaan
Affiliation:
Ocean Engineering Research Centre, Faculty of Engineering and Applied Science, Memorial University of Newfoundland, St John’s, Newfoundland A1B 3X5, Canada E-mail: paulb@engr.mun.ca
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Abstract

A noticeable trait of iceberg ice is the presence of several sets of planar features cross-cutting each other at various angles. Close-up views of these features show that they consist of an array of individual air inclusions that differ in size, shape and spatial distribution. In none of the cases resolvable at the scale of our observations were these inclusions physically linked to form a continuous fracture plane, although they may have originated as such. All postdate the formation of ice veins.

Information

Type
Research Article
Copyright
Copyright © International Glaciological Society 2002
Figure 0

Fig. 1 (a) Thin section of iceberg ice viewed under cross-polarized light. (b) The same section, with the addition of side-reflected light. (c) Schematic diagram outlining the features in (b). These are divided into: (1) air inclusions, mm to sub-mm in size; (2) planar features (linear in the section) of various orientations and thicknesses; and (3) ice veins, here seen in the centre of the section and enclosing crystals that are larger in size than those in the surrounding ice. The small arrow near the centre of the photograph points to a particularly thick planar feature defined by the alignment of relatively large air bubbles.

Figure 1

Fig. 2. Photograph of a thin section under plain transmitted light. Scale in mm. There is a criss-crossing of thin planar features.

Figure 2

Fig. 3. Photograph of a thin section under plain transmitted light. Scale in mm. An alignment of millimetre-sized bubbles is indicated by the linear marker on the photograph. A recent crack (produced in the laboratory) is shown by an arrow.

Figure 3

Fig. 4. Photograph of a thin section with side-reflected light only. A planar feature, with a moderate incline towards the upper left, is a two-dimensional array of spherical air bubbles.

Figure 4

Fig. 5. Photograph of a thin section with side-reflected light only. Dipping more steeply toward the upper right is a planar feature along which very small air inclusions can be seen only locally along its length. The remaining part of the feature cannot be resolved at the magnification used in this study and resembles the recent fracture plane in Figure 3. The white arrow points to the intersection between this planar feature and an elongated air bubble.

Figure 5

Fig. 6. Photograph of a thin section with side-reflected light only. There is a cross-cutting relationship between the planar feature with a moderate dip toward the right, and another varying from a shallow dip towards the upper left to a moderate dip towards the lower right.

Figure 6

Fig. 7. Photograph of a thin section with side-reflected light only. This is another example of cross-cutting between two planar features, both defined by networks of air bubbles of different sizes.

Figure 7

Fig. 8. Morphology of the planar features observed during this study. The thinnest plane resolvable is defined by an array of spherical air inclusions (A). In other cases, the inclusions are larger and have a more irregular shape (B).The most conspicuous planar features seen in hand specimens consist of much larger, irregularly shaped, air inclusions, sparsely distributed across the plane (C).