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Hättestrand, Clas
Publications (10 of 51) Show all publications
Hall, A. M., Krabbendam, M., van Boeckel, M., Goodfellow, B. W., Hättestrand, C., Heyman, J., . . . Näslund, J.-O. (2020). Glacial ripping: geomorphological evidence from Sweden for a new process of glacial erosion. Geografiska Annaler. Series A, Physical Geography, 102(4), 333-353
Open this publication in new window or tab >>Glacial ripping: geomorphological evidence from Sweden for a new process of glacial erosion
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2020 (English)In: Geografiska Annaler. Series A, Physical Geography, ISSN 0435-3676, E-ISSN 1468-0459, Vol. 102, no 4, p. 333-353Article in journal (Refereed) Published
Abstract [en]

In low relief Precambrian gneiss terrain in eastern Sweden, abraded bedrock surfaces were ripped apart by the Fennoscandian Ice Sheet. The resultantboulder spreadsare covers of large, angular boulders, many with glacial transport distances of 1-100 m. Boulder spreads occur alongside partly disintegrated roches moutonnees and associated fracture caves, and are associated withdisrupted bedrock, which shows extensive fracture dilation in the near surface. These features are distributed in ice-flow parallel belts up to 10 km wide and extend over distances of >500 km. Our hypothesis is that the assemblage results from (1) hydraulic jacking and bedrock disruption, (2) subglacial ripping and (3) displacement, transport and final deposition of boulders. Soft sediment fills indicate jacking and dilation of pre-existing bedrock fractures by groundwater overpressure below the ice sheet. Overpressure reduces frictional resistance along fractures. Where ice traction overcomes this resistance, the rock mass strength is exceeded, resulting in disintegration of rock surfaces and ripping apart into separate blocks. Further movement and deposition create boulder spreads and moraines. Short boulder transport distances and high angularity indicate that glacial ripping operated late in the last deglaciation. The depths of rock mobilized in boulder spreads are estimated as 1-4 m. This compares with 0.6-1.6 m depths of erosion during the last glaciation derived from cosmogenic nuclide inventories of samples from bedrock surfaces without evidence of disruption. Glacially disrupted and ripped bedrock is also made ready for removal by future ice sheets. Henceglacial rippingis a highly effective process of glacial erosion.

Keywords
Glacial ripping, groundwater overpressure, Fennoscandian ice sheet
National Category
Earth and Related Environmental Sciences
Identifiers
urn:nbn:se:su:diva-183665 (URN)10.1080/04353676.2020.1774244 (DOI)000545025400001 ()
Available from: 2020-07-24 Created: 2020-07-24 Last updated: 2025-02-07Bibliographically approved
Fu, P., Stroeven, A. P., Harbor, J. M., Heyman, J., Hättestrand, C. & Caffee, M. W. (2019). Ice cap erosion patterns from bedrock Be-10 and Al-26, southeastern Tibetan Plateau. Earth Surface Processes and Landforms, 44(4), 918-932
Open this publication in new window or tab >>Ice cap erosion patterns from bedrock Be-10 and Al-26, southeastern Tibetan Plateau
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2019 (English)In: Earth Surface Processes and Landforms, ISSN 0197-9337, E-ISSN 1096-9837, Vol. 44, no 4, p. 918-932Article in journal (Refereed) Published
Abstract [en]

Quantifying glacial erosion contributes to our understanding of landscape evolution and topographic relief production in high altitude and high latitude areas. Combining in situ Be-10 and Al-26 analysis of bedrock, boulder, and river sand samples, geomorphological mapping, and field investigations, we examine glacial erosion patterns of former ice caps in the Shaluli Shan of the southeastern Tibetan Plateau. The general landform pattern shows a zonal pattern of landscape modification produced by ice caps of up to 4000 km(2) during pre-LGM (Last Glacial Maximum) glaciations, while the dating results and landforms on the plateau surface imply that the LGM ice cap further modified the scoured terrain into different zones. Modeled glacial erosion depth of 0-0.38 m per 100 ka bedrock sample located close to the western margin of the LGM ice cap, indicates limited erosion prior to LGM and Late Glacial moraine deposition. A strong erosion zone exists proximal to the LGM ice cap marginal zone, indicated by modeled glacial erosion depth >2.23 m per 100 ka from bedrock samples. Modeled glacial erosion depths of 0-1.77 m per 100 ka from samples collected along the edge of a central upland, confirm the presence of a zone of intermediate erosion in-between the central upland and the strong erosion zone. Significant nuclide inheritance in river sand samples from basins on the scoured plateau surface also indicate restricted glacial erosion during the last glaciation. Our study, for the first time, shows clear evidence for preservation of glacial landforms formed during previous glaciations under non-erosive ice on the Tibetan Plateau. As patterns of glacial erosion intensity are largely driven by the basal thermal regime, our results confirm earlier inferences from geomorphology for a concentric basal thermal pattern for the Haizishan ice cap during the LGM.

Keywords
glacial erosion pattern, Tibetan Plateau, basal thermal regime, Last Glacial Maximum, Be-10
National Category
Earth and Related Environmental Sciences
Identifiers
urn:nbn:se:su:diva-168601 (URN)10.1002/esp.4544 (DOI)000461867900006 ()
Available from: 2019-05-14 Created: 2019-05-14 Last updated: 2025-02-07Bibliographically approved
Blomdin, R., Stroeven, A. P., Harbor, J. M., Gribenski, N., Caffee, M. W., Heyman, J., . . . Jansson, K. N. (2018). Timing and dynamics of glaciation in the Ikh Turgen Mountains, Altai region, High Asia. Quaternary Geochronology, 47, 54-71
Open this publication in new window or tab >>Timing and dynamics of glaciation in the Ikh Turgen Mountains, Altai region, High Asia
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2018 (English)In: Quaternary Geochronology, ISSN 1871-1014, E-ISSN 1878-0350, Vol. 47, p. 54-71Article in journal (Refereed) Published
Abstract [en]

Spanning the northern sector of High Asia, the Altai region contains a rich landform record of glaciation. We report the extent, chronologies, and dynamics of two paleoglaciers on opposite flanks of the Ikh Turgen mountains (In Russian: Chikhacheva Range), straddling the border between Russia and Mongolia, using a combination of remote sensing-based glacial geomorphological mapping, Be-10 surface exposure dating, and geomorphometric analysis. On the eastern side (Mongolia), the Turgen-Asgat paleoglacier, with its potential for developing a large accumulation area (similar to 257 km(2)), expanded 40 km down valley, and mean ages from a latero-frontal moraine indicate deglaciation during marine oxygen isotope stage (MIS) 3 (45.1 +/- 1.8 ka, n = 4) and MIS 2 (22.8 +/- 3.3 ka, n = 5). These minimum age constraints are consistent with other Be-10 glacial chronologies and paleoclimate records from the region, which indicates glacier culmination during cold and wet conditions coinciding with MIS 3 (piedmont-style glaciation; inferred for a few sites across the region) and glacier culmination during cold and dry conditions coinciding with MIS 2 (mainly valley-style glaciation; inferred from several sites across the region). On the western side (Russia), the Boguty paleoglacier had a smaller accumulation area (similar to 222 km(2)), and advanced 30 km down valley across a low gradient forefield. Surface exposure ages from two moraine complexes on this side of the mountains exhibit wide scatter (similar to 14-53 ka, n = 8), making paleoclimate inferences and comparison to other proxies difficult. Ice surface profile reconstructions imply that the two paleoglaciers likely shared an ice divide.

Keywords
Altai, Ikh Turgen mountains, Chikhacheva range, Paleoglaciology, Glacial geomorphology, Be-10 surface exposure dating, Geomorphometric analysis
National Category
Earth and Related Environmental Sciences
Identifiers
urn:nbn:se:su:diva-160161 (URN)10.1016/j.quageo.2018.05.008 (DOI)000441488900004 ()
Available from: 2018-09-17 Created: 2018-09-17 Last updated: 2025-02-07Bibliographically approved
Stroeven, A. P., Hättestrand, C., Kleman, J., Heyman, J., Fabel, D., Fredin, O., . . . Jansson, K. N. (2016). Deglaciation of Fennoscandia. Paper presented at 2nd International Conference of the Palaeo-Arctic-Spatial-and-Temporal-Gateways-Network (PAST Gateways), Trieste, Italy, 2014. Quaternary Science Reviews, 147(SI), 91-121
Open this publication in new window or tab >>Deglaciation of Fennoscandia
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2016 (English)In: Quaternary Science Reviews, ISSN 0277-3791, E-ISSN 1873-457X, Vol. 147, no SI, p. 91-121Article in journal (Refereed) Published
Abstract [en]

To provide a new reconstruction of the deglaciation of the Fennoscandian Ice Sheet, in the form of calendar-year time-slices, which are particularly useful for ice sheet modelling, we have compiled and synthesized published geomorphological data for eskers, ice-marginal formations, lineations, marginal meltwater channels, striae, ice-dammed lakes, and geochronological data from radiocarbon, varve, optically-stimulated luminescence, and cosmogenic nuclide dating. This is summarized as a deglaciation map of the Fennoscandian Ice Sheet with isochrons marking every 1000 years between 22 and 13 cal kyr BP and every hundred years between 11.6 and final ice decay after 9.7 cal kyr BP. Deglaciation patterns vary across the Fennoscandian Ice Sheet domain, reflecting differences in climatic and geomorphic settings as well as ice sheet basal thermal conditions and terrestrial versus marine margins. For example, the ice sheet margin in the high-precipitation coastal setting of the western sector responded sensitively to climatic variations leaving a detailed record of prominent moraines and other ice-marginal deposits in many fjords and coastal valleys. Retreat rates across the southern sector differed between slow retreat of the terrestrial margin in western and southern Sweden and rapid retreat of the calving ice margin in the Baltic Basin. Our reconstruction is consistent with much of the published research. However, the synthesis of a large amount of existing and new data support refined reconstructions in some areas. For example, the LGM extent of the ice sheet in northwestern Russia was located far east and it occurred at a later time than the rest of the ice sheet, at around 17-15 cal kyr BP. We also propose a slightly different chronology of moraine formation over southern Sweden based on improved correlations of moraine segments using new LiDAR data and tying the timing of moraine formation to Greenland ice core cold stages. Retreat rates vary by as much as an order of magnitude in different sectors of the ice sheet, with the lowest rates on the high-elevation and maritime Norwegian margin. Retreat rates compared to the climatic information provided by the Greenland ice core record show a general correspondence between retreat rate and climatic forcing, although a close match between retreat rate and climate is unlikely because of other controls, such as topography and marine versus terrestrial margins. Overall, the time slice reconstructions of Fennoscandian Ice Sheet deglaciation from 22 to 9.7 cal kyr BP provide an important dataset for understanding the contexts that underpin spatial and temporal patterns in retreat of the Fennoscandian Ice Sheet, and are an important resource for testing and refining ice sheet models.

Keywords
Fennoscandian Ice Sheet, Deglaciation, Glacial geomorphology, Geochronology, Ice sheet dynamics
National Category
Earth and Related Environmental Sciences
Identifiers
urn:nbn:se:su:diva-134394 (URN)10.1016/j.quascirev.2015.09.016 (DOI)000382409500007 ()
Conference
2nd International Conference of the Palaeo-Arctic-Spatial-and-Temporal-Gateways-Network (PAST Gateways), Trieste, Italy, 2014
Available from: 2016-10-26 Created: 2016-10-06 Last updated: 2025-02-07Bibliographically approved
Blomdin, R., Stroeven, A. P., Harbor, J. M., Lifton, N. A., Heyman, J., Gribenski, N., . . . Usubaliev, R. (2016). Evaluating the timing of former glacier expansions in the Tian Shan: A key step towards robust spatial correlations. Quaternary Science Reviews, 153, 78-96
Open this publication in new window or tab >>Evaluating the timing of former glacier expansions in the Tian Shan: A key step towards robust spatial correlations
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2016 (English)In: Quaternary Science Reviews, ISSN 0277-3791, E-ISSN 1873-457X, Vol. 153, p. 78-96Article in journal (Refereed) Published
Abstract [en]

The timing of past glaciation across the Tian Shan provides a proxy for past climate change in this critical area. Correlating glacial stages across the region is difficult but cosmogenic exposure ages have considerable potential. A drawback is the large observed scatter in Be-10 surface exposure data. To quantify the robustness of the dating, we compile, recalculate, and perform statistical analyses on sets of 10Be surface exposure ages from 25 moraines, consisting of 114 new and previously published ages. We assess boulder age scatter by dividing boulder groups into quality classes and rejecting boulder groups of poor quality. This allows us to distinguish and correlate robustly dated glacier limits, resulting in a more conservative chronology than advanced in previous publications. Our analysis shows that only one regional glacial stage can be reliably correlated across the Tian Shan, with glacier expansions occurring between 15 and 281 a during marine oxygen isotope stage (MIS) 2. However, there are examples of older more extensive indicators of glacial stages between MIS 3 and MIS 6. Paleoglacier extent during MIS 2 was mainly restricted to valley glaciation. Local deviations occur: in the central Kyrgyz Tian Shan paleoglaciers were more extensive and we propose that the topographic context explains this pattern. Correlation between glacial stages prior to late MIS 2 is less reliable, because of the low number of samples and/or the poor resolution of the dating. With the current resolution and spatial coverage of robustly-dated glacier limits we advise that paleoclimatic implications for the Tian Shan glacial chronology beyond MIS 2 are speculative and that continued work toward robust glacial chronologies is needed to resolve questions regarding drivers of past glaciation in the Tian Shan and Central Asia.

Keywords
Paleoglaciation, Tian Shan, Glacial geomorphology, Be-10 surface exposure dating
National Category
Earth and Related Environmental Sciences
Research subject
Physical Geography
Identifiers
urn:nbn:se:su:diva-137608 (URN)10.1016/j.quascirev.2016.07.029 (DOI)000389116000007 ()
Available from: 2017-01-10 Created: 2017-01-09 Last updated: 2025-02-07Bibliographically approved
Blomdin, R., Heyman, J., Stroeven, A. P., Hättestrand, C., Harbor, J. M., Gribenski, N., . . . Walther, M. (2016). Glacial geomorphology of the Altai and Western Sayan Mountains, Central Asia. Journal of Maps, 12(1), 123-136
Open this publication in new window or tab >>Glacial geomorphology of the Altai and Western Sayan Mountains, Central Asia
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2016 (English)In: Journal of Maps, E-ISSN 1744-5647, Vol. 12, no 1, p. 123-136Article in journal (Refereed) Published
Abstract [en]

In this article, we present a map of the glacial geomorphology of the Altai andWestern Sayan Mountains, covering an area of almost 600,000 km2. Although numerous studies provide evidence for restricted Pleistocene glaciations in this area, others have hypothesized the past existence of an extensive ice sheet. To provide a framework for accurate glacial reconstructions of the Altai and Western Sayan Mountains, we present a map at a scale of 1:1,000,000 based on a mapping from 30 m resolution ASTER DEM and 15 m/30 mresolution Landsat ETM+ satellite imagery. Four landform classes have been mapped: marginal moraines, glacial lineations, hummocky terrain, and glacial valleys. Our mapping reveals an abundance of glacial erosional and depositional landforms. The distribution of these glacial landforms indicates that the Altai and Western Sayan Mountains have experienced predominantly alpine-style glaciations, with some small ice caps centred on the higher mountain peaks. Large marginal moraine complexes mark glacial advances in intermontane basins. By tracing the outer limits of present-day glaciers, glacial valleys, and moraines, we estimate that the past glacier coverage have totalled to 65,000 km2 (10.9% of the mapped area), whereas present-day glacier coverage totals only 1300 km2 (0.2% of the mapped area). This demonstrates the usefulness of remote sensing techniques for mapping the glacial geomorphology in remote mountain areas and for quantifying the past glacier dimensions. The glacial geomorphological map presented here will be used for further detailed reconstructions of the paleoglaciology and paleoclimate of the region.

Keywords
glacial geomorphology, paleoglaciology, Altai Mountains, Western Sayan Mountains, remote sensing
National Category
Physical Geography
Research subject
Physical Geography
Identifiers
urn:nbn:se:su:diva-122453 (URN)10.1080/17445647.2014.992177 (DOI)000365605200012 ()
Projects
Central Asia Paleoglaciology Project (CAPP)
Funder
Swedish Research Council, No. 2011-4892
Available from: 2015-11-02 Created: 2015-11-02 Last updated: 2023-10-03Bibliographically approved
Hillier, J. K., Smith, M. J., Armugam, R., Barr, I., Boston, C. M., Clark, C. D., . . . Wooldridge, K. (2015). Manual mapping of drumlins in synthetic landscapes to assess operator effectiveness. Journal of Maps, 11(5), 719-729
Open this publication in new window or tab >>Manual mapping of drumlins in synthetic landscapes to assess operator effectiveness
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2015 (English)In: Journal of Maps, E-ISSN 1744-5647, Vol. 11, no 5, p. 719-729Article in journal (Refereed) Published
Abstract [en]

Mapped topographic features are important for understanding processes that sculpt the Earth's surface. This paper presents maps that are the primary product of an exercise that brought together 27 researchers with an interest in landform mapping wherein the efficacy and causes of variation in mapping were tested using novel synthetic DEMs containing drumlins. The variation between interpreters (e.g. mapping philosophy, experience) and across the study region (e.g. woodland prevalence) opens these factors up to assessment. A priori known answers in the synthetics increase the number and strength of conclusions that may be drawn with respect to a traditional comparative study. Initial results suggest that overall detection rates are relatively low (34-40%), but reliability of mapping is higher (72-86%). The maps form a reference dataset.

Keywords
glacial landform, synthetic, drumlin, mapping, DEM, objective
National Category
Physical Geography
Identifiers
urn:nbn:se:su:diva-113026 (URN)10.1080/17445647.2014.957251 (DOI)000359772800004 ()
Available from: 2015-01-21 Created: 2015-01-21 Last updated: 2023-10-03Bibliographically approved
Stokes, C. R., Tarasov, L., Blomdin, R., Cronin, T. M., Fisher, T. G., Gyllencreutz, R., . . . Teller, J. T. (2015). On the reconstruction of palaeo-ice sheets: Recent advances and future challenges. Quaternary Science Reviews, 125, 15-49
Open this publication in new window or tab >>On the reconstruction of palaeo-ice sheets: Recent advances and future challenges
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2015 (English)In: Quaternary Science Reviews, ISSN 0277-3791, E-ISSN 1873-457X, Vol. 125, p. 15-49Article, review/survey (Refereed) Published
Abstract [en]

Reconstructing the growth and decay of palaeo-ice sheets is critical to understanding mechanisms of global climate change and associated sea-level fluctuations in the past, present and future. The significance of palaeo-ice sheets is further underlined by the broad range of disciplines concerned with reconstructing their behaviour, many of which have undergone a rapid expansion since the 1980s. In particular, there has been a major increase in the size and qualitative diversity of empirical data used to reconstruct and date ice sheets, and major improvements in our ability to simulate their dynamics in numerical ice sheet models. These developments have made it increasingly necessary to forge interdisciplinary links between sub-disciplines and to link numerical modelling with observations and dating of proxy records. The aim of this paper is to evaluate recent developments in the methods used to reconstruct ice sheets and outline some key challenges that remain, with an emphasis on how future work might integrate terrestrial and marine evidence together with numerical modelling. Our focus is on pan-ice sheet reconstructions of the last deglaciation, but regional case studies are used to illustrate methodological achievements, challenges and opportunities. Whilst various disciplines have made important progress in our understanding of ice-sheet dynamics, it is clear that data-model integration remains under-used, and that uncertainties remain poorly quantified in both empirically-based and numerical ice-Sheet reconstructions. The representation of past climate will continue to be the largest source of uncertainty for numerical modelling. As such, palaeo-observations are critical to constrain and validate modelling. State-of-the-art numerical models will continue to improve both in model resolution and in the breadth of inclusion of relevant processes, thereby enabling more accurate and more direct comparison with the increasing range of palaeo-observations. Thus, the capability is developing to use all relevant palaeo-records to more strongly constrain deglacial (and to a lesser extent pre-LGM) ice sheet evolution. In working towards that goal, the accurate representation of uncertainties is required for both constraint data and model outputs. Close cooperation between modelling and data-gathering communities is essential to ensure this capability is realised and continues to progress.

Keywords
Ice sheet reconstruction, Numerical modelling, Palaeoglaciology, Glaciology
National Category
Earth and Related Environmental Sciences
Identifiers
urn:nbn:se:su:diva-122261 (URN)10.1016/j.quascirev.2015.07.016 (DOI)000362049400002 ()
Available from: 2015-10-30 Created: 2015-10-28 Last updated: 2025-02-07Bibliographically approved
Lifton, N., Beel, C., Hättestrand, C., Kassab, C., Rogozhina, I., Heermance, R., . . . Stroeven, A. P. (2014). Constraints on the late Quaternary glacial history of the Inylchek and Sary-Dzaz valleys from in situ cosmogenic Be-10 and Al-26, eastern Kyrgyz Tian Shan. Quaternary Science Reviews, 101, 77-90
Open this publication in new window or tab >>Constraints on the late Quaternary glacial history of the Inylchek and Sary-Dzaz valleys from in situ cosmogenic Be-10 and Al-26, eastern Kyrgyz Tian Shan
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2014 (English)In: Quaternary Science Reviews, ISSN 0277-3791, E-ISSN 1873-457X, Vol. 101, p. 77-90Article in journal (Refereed) Published
Abstract [en]

Paleoclimatic constraints from regions at the confluence of major climate systems are particularly important in understanding past climate change. Using geomorphic mapping based on remote sensing and field investigations, combined with in situ cosmogenic Be-10 and Al-26 dating of boulders associated with glacial landforms, we investigate the chronology of past glaciation in the Inylchek and Sary-Dzaz valleys in the eastern Kyrgyz Tian Shan, a tectonically active area with some of the highest peaks in the world outside of the Himalayas. Cosmogenic Be-10 and (26) Al exposure ages of boulders on moraines record up to five glacial advances including: Lateglacial age lateral moraine remnants and meltwater channels in the upper Inylchek Valley; Last Glacial Maximum (LGM, Marine Oxygen Isotope Stage [MIS] 2) moraines in the Sary-Dzaz Valley and in a terminal moraine complex at the west end of the Inylchek Valley, overriding older moraines; an MIS 4 or 5 moraine remnant above the Inylchek terminal moraine complex; and an older high moraine remnant down-valley from the confluence of the Inylchek and Sary-Dzaz valleys. The evidence for glacial extent in this study is consistent with a limited ice expansion hypothesis for Tian Shan glaciation. Published results from the western and central Kyrgyz Tian Shan do not show evidence for significant LGM glacier expansion, which in combination with the results presented here, indicate a spatial variation in glacier records along the Tian Shan. This may reflect either paleoclimatic gradients or the impact of local physiographic conditions on responses to regional climate change, or both.

Keywords
Glacial history, Tian Shan, Paleoglaciation, Cosmogenic nuclides
National Category
Physical Geography Climate Science
Research subject
Physical Geography
Identifiers
urn:nbn:se:su:diva-109029 (URN)10.1016/j.quascirev.2014.06.032 (DOI)000342714400006 ()
Note

AuthorCount:22;

Available from: 2014-11-10 Created: 2014-11-10 Last updated: 2025-10-21Bibliographically approved
Goodfellow, B. W., Skelton, A., Martel, S. J., Stroeven, A. P., Jansson, K. N. & Hättestrand, C. (2014). Controls of tor formation, Cairngorm Mountains, Scotland. Journal Of Geophysical Research: Earth Surface, 119(2), 225-246
Open this publication in new window or tab >>Controls of tor formation, Cairngorm Mountains, Scotland
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2014 (English)In: Journal Of Geophysical Research: Earth Surface, ISSN 2169-9003, Vol. 119, no 2, p. 225-246Article in journal (Refereed) Published
Abstract [en]

Tors occur in many granitic landscapes and provide opportunities to better understand differential weathering. We assess tor formation in the Cairngorm Mountains, Scotland, by examining correlation of tor location and size with grain size and the spacing of steeply dipping joints. We infer a control on these relationships and explore its potential broader significance for differential weathering and tor formation. We also assess the relationship between the formation of subhorizontal joints in many tors and local topographic shape by evaluating principle surface curvatures from a digital elevation model of the Cairngorms. We then explore the implications of these joints for tor formation. We conclude that the Cairngorm tors have formed in kernels of relatively coarse grained granite. Tor volumes increase with grain size and the spacing of steeply dipping joints. We infer that the steeply dipping joints largely formed during pluton cooling and are more widely spaced in tor kernels because of slower cooling rates. Preferential tor formation in coarser granite with a wider joint spacing that is more easily grusified indicates that joint spacing is a dominant control on differential weathering. Sheet jointing is well developed in tors located on relatively high convex surfaces. This jointing formed after the gross topography of the Cairngorms was established and before tor emergence. The presence of closely spaced (tens of centimeters), subhorizontal sheeting joints in tors indicates that these tors, and similarly sheeted tors elsewhere, formed either after subaerial exposure of bedrock or have progressively emerged from a regolith only a few meters thick. Key Points <list list-type=bulleted id=jgrf20195-list-0001> <list-item id=jgrf20195-li-0001>Tors form in kernels of coarse-grained granite among finer-grained granite <list-item id=jgrf20195-li-0002>Wide joint spacing in tors attributable to a slow cooling rate of the granite <list-item id=jgrf20195-li-0003>Sheet jointing discounts tor formation within a thick regolith

Keywords
Cairngorm Mountains, granite, joint, cooling rate, tor, weathering
National Category
Physical Geography
Identifiers
urn:nbn:se:su:diva-104577 (URN)10.1002/2013JF002862 (DOI)000333032300009 ()
Note

AuthorCount:6;

Available from: 2014-06-11 Created: 2014-06-11 Last updated: 2025-10-21Bibliographically approved
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