Hostname: page-component-76fb5796d-2lccl Total loading time: 0 Render date: 2024-04-26T08:41:48.029Z Has data issue: false hasContentIssue false

Mapping Canada’s Glaciers Since 1965

Published online by Cambridge University Press:  20 January 2017

C.S.L. Ommanney*
Affiliation:
National Hydrology Research Institute, Environment Canada, Ottawa. Ontario K1A OE7, Canada
Rights & Permissions [Opens in a new window]

Abstract

The extent and nature of Canadian glacier mapping since 1965 is traced, from snout surveys to high-order, large-scale maps, Swiss-style publications and stereo-orthophoto maps. Many maps were produced during the IHD for specific tasks, such as the determination of mass balance, plotting of isolines, etc; most were multi-coloured, with scales ranging from 1:5000 to 1:25 000. Subsequent developments have been with cartographic techniques (e.g. orthophoto maps) and in support of individual projects.

Type
Research Article
Copyright
Copyright © International Glaciological Society 1986

Introduction

The first Symposium on Glacier Mapping, held in Ottawa in 1965 at the instigation of the Photogrammetric Research Section of the National Research Council of Canada (PRC-NRCC) and organized by the NRCC Subcommittee on Glaciers under the chairmanship of G. Hattersley-Smith, demonstrated the remarkable progress made in Canadian glacier mapping during the previous ten years. Papers by Blachut and Müller, Konecny, Arnold, and Paterson in 1966, highlighted these developments. The most influential agency was the PRC-NRCC, whose first contributions were maps of the Salmon Glacier (1:25 000, with contour interval of 20 m) and its snout (1:12 500/20 m), in British Columbia (Reference HaumannHaumann 1960). In the High Arctic, collaborating with the Jacobsen-McGill University Arctic Research Expedition to Axel Heiberg Island, N.W.T., they had produced maps of the Thompson Glacier Region (1:25 000/25 m), White Glacier (1:10 000/10 m), and the snouts of Crusoe, Baby, Thompson, and White glaciers (1:5000/5 m). Copies of these maps were included with the report by Reference MüllerMüller (1963). The Department of Surveying Engineering at the University of New Brunswick was another major contributor, assisting in the work of the Water Survey of Canada in the Rockies (Reference KonecnyKonecny 1966) and the Defence Research Board, on Ellesmere Island (Reference FaigFaig 1966).

This paper discusses some of the mapping activity which has taken place in Canada following that first Symposium.

International Hydrological Decade Maps

The International Hydrological Decade (IHID) was the major stimulus for glacier mapping in Canada during the 1960’s. This activity included both small- and large-scale maps.

1:1 000 000 Glacier Maps of Canada:

Canada had already initiated a programme of small-scale glacier mapping prior to the 1965 Symposium. The decision to map glaciers at 1:1 000 000 arose from the Geographical. Branch’s need for small-scale maps, accurately depicting the distribution of glaciers and suitable for planning glaciological research. Glaciers were delineated with heavy, ink lines on the best-available maps in 1965 and reduced to the common scale (Reference Falconer, Henoch and ØstremFalconer and others 1966, Henoch and Stanley 1969). The three maps of the Cordillera show glaciers in purple on a white background, whereas, on the four Arctic maps, glaciers are white on a brown background. They have been used for plotting glaciation levels, equilibrium lines, ice-cored moraines, transient snow-lines, glacier mass balance, etc. (Reference ØstremØstrem 1966, Reference Østrem and Arnold1973; Reference Østrem and ArnoldØstrem and Arnold 1970; Reference Miller, Bradley and AndrewsMiller and others 1975), as base maps for the 4th National Atlas of Canada (in particular the map of Lakes, Rivers, and Glaciers (Reference Fremlin and MindakFremlin and Mindak 1968), and in schools.

Glacier Atlas of Canada. 1:500 000

Detailed information on all Canadian glaciers is being compiled through a glacier inventory. The region, basin, and individual glacier codes are provided to users through a Glacier Atlas of Canada. Modified 1:250 000 National Topographic Series (NTS) maps form the basis for the four-colour plates. Glaciers appear in a blue vignette within their hydrological basins and the maps are bordered in brown (Reference OmmanneyOmmanney 1980). The series was used in compiling the base map (1:2 000 000) for the new 5th edition of the National Atlas of Canada (now being published in individual sheets at 1:7 500 000 or smaller), on which glaciers are shown with a light, purple vignette. The glacier numbers are used by glaciologists, geologists, and mountaineers, etc., for referencing unnamed glaciers and have been incorporated into the national, toponymic data base.

Large-scale IHD Glacier Maps:

Canadian participation in the IHD included mass-balance investigations on several glaciers in Western Canada and the North, for which metric maps at a scale of 1:10 000, with 10 m contours, were required for plotting the data. Those of the Berendon, Place, and Sentinel glaciers were printed in four colours; the maps of Ram River and Wolsey glaciers were embellished with shaded relief. The Peyto Glacier map is discussed below. Two maps were made of Per Ardua Glacier, Ellesmere Island, by Reference KonecnyKonecny (1966): the whole glacier (1:2 000/10 m) and its tongue (1:5000/5 m). Maps of the Barnes Ice Cap were prepared by the Surveys and Mapping Branch, either as Arctic Provisional Maps (1:50 000/25 ft), or as standard NTS maps (1:50 000/50 ft).

The original intent was to re-map all IHD glaciers after ten years, to compare the accumulated mass balance with photogrammetrically-determined volumetric change. Unfortunately, this has not been done.

Water Survey of Canada

From 1945 onwards, the Water Survey of Canada (WSC) had been carrying out surveys of glacier snouts and movement. Reference KonecnyKonecny (1966) reported on a test of aerial and terrestrial photogrammetric surveys of the Athabasca Glacier, which led to the adoption of terrestrial photogrammetry for future biennial glacier surveys of the Athabasca and Saskatchewan glaciers in Alberta (1963 to 1979) and the Bugaboo, Kokanee. Sentinel, Sphinx and Nadahini glaciers in British Columbia (1964 to 1978), Reid (1972) has discussed the procedures used. Maps were plotted at scales of 1:10 000 to 1:2500, with contours at 5 to 10 m on the ice, depending on glacier size, The biennial volumetric changes were calculated and the maps and results published (Reference Kite and ReidKite and Reid 1977, Reference Reid and CharbonneauReid and Charbonneau 1980, Reference Reid and Charbonneau1981). The map styles vary, but generally solid blue is used for ice and blue stipple for snow, with blue line contours on the glaciers; brown or grey is used off the glacier. Unfortunately, only the exposed ice of the ablation area was mapped. All surveys had been terminated by 1980.

Miscellaneous Glacier Maps

Many individual glaciological projects require accurate maps for plotting results and determining changes in the glaciers. A variety of line maps of different glaciers has been produced in support of such projects.

On Axel Heiberg Island, N.W.T., an experiment in the use of terrestrial photogrammetry for the determination of mass balance by Reference ArnoldArnold (1981), led to a map of the lowest 2 km of White Glacier (1:2500/5 m). On Ellesmere Island, the snout of d’Iberville Glacier was mapped (1:50 000), to measure displacement values of a tidal glacier (G. Holdsworth unpublished report).

Steele Glacier, which surged during the Yukon Centennial Expedition of 1967, was mapped from 1951 and 1967 aerial photography (1:50 000/25 m; 1:25 000/20 m).

Other surging glaciers in the Yukon and Northern British Columbia have attracted attention. The Army Survey Establishment compiled a map of Rusty Glacier (1:10 000/10 m). In 1983, Nadir Mapping Corporation prepared a map of Trapridge Glacier (1:10 000/10 m) for G.K.C. Clarke. Two maps of Tweedsmuir Glacier (1:50 000/20 m), pre- and post-surge, were made from ¡951 aerial and 1974 terrestrial photography, the former being published in three colours. Finally, a three-colour map of Lowell Glacier (1:50 000/20 m) with moraine shading was prepared from the 1974 photography in anticipation of a surge, which took place in the spring of 1983.

The Foundation for Glacier and Environmental Research, in collaboration with the Technical University of Hannover, has included mapping with its other studies of Cathedral Glacier near Atlin (1:5000/5 m). A map of the summit of Mount Logan, with hachured bedrock and relief shading (1:10 000/20 m), was constructed to determine flow fields for a deep drilling by the Glaciology Division.

A joint project between the B.C. Institute of Technology and K. Ricker, resulted in a map of Wedgemoum Glacier (1:5000/10 m) to be used for determinations of mass balance and glacier variation.

One of the finest North American examples of the cartographer’s art is. the commemorative Mount Kennedy map (1:31680/100 ft) produced by the National Geographic Society, wish field surveys by the University of New Brunswick (Reference WashburnWashburn 1971). Originally constructed in metric units, it was later reduced into English units! The two-colour map, with hachured bedrock and plastic shading, is a visual delight.

Peyto Glacier and Columbia Icefield

In 1970, a map of Peyto Glacier, Alberta (1:10 000/10 m), was published in nine colours, using the French technique of bedrock portrayal (Reference Sedgwick and HenochSedgwick and Henoch 1970). Subsequently, it was decided to experiment with the enhancement of this map, to create a three-dimensional visual effect using the Swiss technique of hachured bedrock portrayal and shaded relief (Reference Henoch and CroizetHenoch and Croizet 1976). The resulting map, published in 1975 at the same scale as the original edition, was printed in eight colours and accompanied by an explanatory booklet with the ensemble designed to cater to the scientist, teacher, and general public.

Following the success of the Peyto Glacier map, it was decided to experiment with a larger glaciological unit and a smaller scale, though continuing to apply the same cartographic techniques. The Columbia Icefield was selected for a joint project with Parks Canada in 1976. In 1981, a ten-colour map with hachured bedrock portrayal, shaded relief, and interpretive information on the reverse, was published (1:50 000/20 m). A part (about ⅛) of this map is enclosed, as a sample, to show the cartographic technique used in the printing of this kind of glacier map.

Orthophoto Maps

Reference Blachut and MüllerBlachut and Müller (1966) concluded in 1965 that the orthophoto map would probably find extensive use in glaciological work. Canadian experience has shown a trend towards this, although few of the resultant maps have been published or widely distributed. The focus has been mainly on testing the mapping techniques in glacierized and mountainous areas. Once again PRS-NRCC has been a pioneer (Reference Blachut and WijkBlachut and van Wijk 1976), producing stereo-orthophoto maps of Axel Heiberg Island glaciers, in collaboration with Environment Canada and the Technical Universities of Vienna and Zürich: White Glacier (1:10 000/20 m), Thompson Glacier and White Glacier Snouts, Crusoe Glacier Snout and Baby Glacier (1:5000/10 m). To the east, a map of Oobloyah Bay (1:25 000/25 m) was prepared as a base map for the 1978 Heidelberg-Ellesmere Island Expedition (Reference HellHell 1981).

In Western Canada, the B.C. Institute of Technology compiled a map of Wedgemount Glacier (1:10 000/20 m) and Mount Waddington (1:50 000/50 m). A stereo-orthophoto map of Peyto Glacier (1:10 000) was prepared, as part of a pilot study for the Forest Management Institute. Environment Canada, by Gestalt International Ltd. Contours were not plotted on the map, but elevation data were analyzed from the digital, terrain model which was a by-product of the stereo construction process (Reference Young and ArnoldYoung and Arnold 1977). The Gestalt system was further tested in the construction of three maps of the Columbia Icefield (1:25 000) by the Surveys and Mapping Branch for the Glaciology Division, using 1977 photography (Athabasca Glacier, Saskatchewan Glacier, Athabasca and Saskatchewan Glaciers). A larger-scale map of Athabasca Glacier (1:5000), based on 1980 photography, was produced for the latter agency by Orthoshop of Calgary as part of a study of photogrammetric applications to mass-balance measurements, which was never completed.

Satellite Mapping

While the future technology for glacier mapping in 1965 appeared to be the orthophoto map, derived from aerial photographs, that for the coming decade is now likely to be based on satellite images, as Reference RobinRobin (1966) had foreseen. Significant improvements in resolution, combined with a stereo and all-weather capability, make this technology increasingly viable. The Surveys and Mapping Branch is using LANDSAT images to revise their 1:250 000 NTS maps (Gregory and Moore to be published). Experiments have been carried out on the viability of using existing images to update glaciological information (Reference Howarth, Ommanney and WeilarHowarth and Ommanney 1983) and the full range of applications will be documented in the forthcoming Satellite Image Atlas of Glaciers.

Conclusion

One of the most fruitful collaborations has been that between Professor F. Müller of the McGill University Axel Heiberg Island expedition and the PRC-NRCC. This resulted in large-scale, topographic maps and stereo-orthophoto maps of several of the island’s glaciers. Another productive relationship has been that of Professor G. Konecny of the University of New Brunswick, with the Defence Research Board, the Water Survey of Canada, and the National Geographic Society. The role of the Glaciology Division in the production of large-scale glacier maps of the five western IHD representative-glacier basins, of specialty maps of Peyto Glacier and the Columbia icefield, and more recently of orthophoto maps, has also been significant.

Unfortunately, none of the above institutions are still involved in any glacier mapping activity and the Glaciology Division has been disbanded. Glacier mapping activity in Canada is limited to a few small projects, where the product is unlikely to be published or widely distributed and this trend is likely to continue. Students and teachers alike may well regret the loss of this valuable teaching aid. However, financial resources for producing high-quality, multi-coloured, large-scale maps are no longer readily available. The only possible exception may be Parks Canada, with a large tourist clientele from whom costs might be recovered.

With the proliferation of personal computers and growth in their memory capability, the future may see much greater use of digital, terrain models by individual glaciologists. Optical disks will permit the storing, exchange and analysis of photographic and cartographic information, so that the printed thematic map may become a collector’s item.

We know that the next generation of satellites will be capable of providing greatly improved and more current information on glaciers. The technology for analysis of this information, using PC’s, is also developing rapidly.

Although the heyday of the printed glacier map may be passed in Canada, there are exciting prospects and challenges ahead in computerized mapping, analysis, and remote sensing.

References

Arnold, K C 1966 The glaciological maps of Meighen Island, N.W.T. Canadian Journal of Earth Sciences 3(6): 903908 CrossRefGoogle Scholar
Arnold, K C 1981 Ice ablation measured by stakes and terrestrial photogrammetry – a comparison on the lower part of the White Glacier, Axel Heiberg Island, Canadian Arctic Archipelago. McGill University. Axel Heiberg Island Research Reports. Glaciology 2 Google Scholar
Blachut, T J, Müller, F 1966 Some fundamental considerations on glacier mapping. Canadian Journal of Earth Sciences 3(6): 747759 Google Scholar
Blachut, T J, Wijk, M C van 1976 Results of the International Orthophoto Experiment 1972–1976. Photogrammetric Engineering and Remote Sensing 12(12): 14821498 Google Scholar
Faig, W 1966 Photogrammetry applied to Arctic glacier surveys. Ottawa, Defence Research Board (Operation Hazen 27) Google Scholar
Falconer, G, Henoch, WES, Østrem, G M 1966 A glacier map of southern British Columbia and Alberta. Geographical Bulletin 8(1): 108112 Google Scholar
Fremlin, G, Mindak, H E 1968 Lakes, rivers and glaciers/a map commentary. Canadian Cartographer 5(2): 133137 Google Scholar
Gregory, A F, Moore, H D In press Economical maintenance of a national topographic data base using Landsat images. Third United Nations Regional Cartographic Conference for the Americas Google Scholar
Haumann, D 1960 Photogrammetric and glaciological studies of Salmon Glacier. Arctic 13(2): 74110 Google Scholar
Hell, G 1981 Geodätische und photogrammetrische Arbeiten an der Oobloyah Bay, N-Ellesmere Island, N.W.T., Kanada, im Rahmen der “Heidelberg-Ellesmere Island-Expedition 1978”. Heidelberger Geographische Arbeiten 69: 3546 Google Scholar
Henoch, W E S, Croizet, J L 1976 The Peyto Glacier map/a three-dimensional depiction of mountain relief. Canadian Cartographer 13(1): 6986 CrossRefGoogle Scholar
Henoch, W E S, Stanley, A 1970 Glacier maps of Canada. Journal of Glaciology 9(55): 149 CrossRefGoogle Scholar
Holdsworth, G Unpublished Ice floe and related measurements of d’lberville Glacier, Ellesmere Island, NWT, Canada. Ottawa, Environment Canada, inland Waters Directorate. Glaciology Division (Internal Report)Google Scholar
Howarth, P J, Ommanney, C S L 1983 LANDSAT digital data for updating glaciological information on topographic and glacier inventory maps. In Weilar, B S (ed) Auto-Carto Six; proceedings of the Sixth International Symposium on Automated Cartography, October 16 – 21. National Capital Region of Canada. Vol 2. Automated cartography: international perspectives on achievements and challenges: 504513 Google Scholar
Kite, G W, Reid, I A 1977 Volumetric change of the Athabasca Glacier over the last 100 years. Journal of Hydrology 32(3–4): 279294 CrossRefGoogle Scholar
Konecny, G 1966 Applications of photogrammetry to surveys of glaciers in Canada and Alaska. Canadian Journal of Earth Sciences 3(6): 783798 Google Scholar
Miller, G H, Bradley, R S, Andrews, J T 1975 The glaciation level and lowest equilibrium line altitude in the high Canadian Arctic: maps and climatic interpretation. Arctic and Alpine Research 7(2): 155168 Google Scholar
Müller, F 1963 Jacobsen-McGill Arctic Research Expedition 1959–1962. Preliminary report 1961–1962. McGill University. Axel Heiberg Island Research Reports Google Scholar
Ommanney, C S L 1980 The inventory of Canadian glaciers: procedures, techniques, progress and applications. International Association of Hydrological Sciences Publication 126 (Workshop at Riederalp 1978 – World Glacier Inventory): 3544 Google Scholar
Østrem, G 1966 The height of the glaciation limit in southern British Columbia and Alberta. Geograf İska Annaler 48A(3): 126138 Google Scholar
Østrem, G 1973 The transient snowline and glacier mass balance in southern British Columbia and Alberta, Canada. Geografiska Annaler 55A(2): 93106 Google Scholar
Østrem, G, Arnold, K C 1970 Ice-cored moraines in southern British Columbia and Alberta, Canada. Geografiska Annaler 52A(2): 120128 Google Scholar
Paterson, W S B 1966 Test of contour accuracy on a photogrammetric map of Athabasca Glacier. Canadian Journal of Earth Sciences 3(6): 909915 Google Scholar
Reid, I A 1973 Glacier surveys by the Water Survey of Canada. International Association of Hydrological Sciences Publication 107 (Symposium of Banff 1972 – Role of Snow and Ice in Hydrology). Vol 2: 11331143 Google Scholar
Reid, I A, Charbonneau, J O G 1980 Glacier surveys in British Columbia – 1978. Ottawa, Environment Canada. Inland Waters Directorate (Report Series 66)Google Scholar
Reid, I A, Charbonneau, J O G 1981 Glacier surveys in Alberta – 1979. Ottawa, Environment Canada. Inland Waters Directorate (Report Series 69)Google Scholar
Robin, G de Q 1966 Mapping the Antarctic ice sheet by satellite altimetry. Canadian Journal of Earth Sciences 3(6): 893901 Google Scholar
Sedgwick, J K, Henoch, W E S 1970 Peyto Glacier: general information. Ottawa, Department of Energy, Mines and Resources, Inland Waters Branch Google Scholar
Washburn, B 1971 The mapping of Mount Hubbard and Mount Kennedy, 1965. National Geographic Society. Research Reports 1965: 249277 Google Scholar
Young, G J, Arnold, K C 1978 Orthophoto maps of glaciers; an evaluation of an automated method applied to Peyto Glacier, Alberta. Zeitschrift für Gletscherkunde und Glazialgeologie 13(1–2), 1977: 99110 Google Scholar