Geological Survey of Denmark and Greenland Bulletin 1, 865-892 865 The Jurassic of Kuhn Ø, North-East Greenland Per C. Alsgaard,Vince L. Felt, Henrik Vosgerau and Finn Surlyk The Middle–Upper Jurassic succession of Kuhn Ø, North-East Greenland accumulated in a major half-graben and is an excellent analogue for the subsurface of the mid-Norwegian shelf. On Kuhn Ø, peneplaned crystalline basement was incised by a drainage system during a major base-level lowstand, probably in late Early or early Middle Jurassic times. It was filled with fluvial conglomerates of the newly defined Middle Jurassic Bastians Dal Formation during subsequent base-level rise. As sea level continued to rise, precursor-peat of the coals of the Muslingebjerg Formation formed in swamps which covered the conglomerates and filled the remaining space of the incised val- ley system. The valley and interfluve areas were flooded in Late Bathonian – Callovian times and tidally-dominated, shallow marine sandstones of the Pelion Formation were deposited on top of the valley fill and over the adjacent basement peneplain. These sandstones are overlain by the newly defined shallow marine Oxfordian Payer Dal Formation which is subdivided into a lower unit and an upper unit, separated by a major drowning surface. The Payer Dal Formation sands were flooded in the Late Jurassic and organic-rich, offshore mudstones of the Bernbjerg Formation were deposited. The Jurassic succession of Kuhn Ø can thus be subdivided into large-scale sed- imentary units separated by major drowning surfaces. They are of regional extent, and in com- bination with biostratigraphic and 87Sr/86Sr isotope data they allow the correlation of the sedimentary units on Kuhn Ø with more offshore deposits to the south in Wollaston Forland and more land- wards successions to the north in Hochstetter Forland. Petrographically, the trough cross-bedded sandstones of the Pelion Formation and the lower unit of the Payer Dal Formation include both calcite-cemented and poorly cemented quartz sand- stones. The calcite cement was derived from dissolution of abundant calcareous fossils and forms concretionary horizons. The upper unit of the Payer Dal Formation mainly consists of weakly- cemented quartz sandstones with porosities around 30%. The sandstones of the Pelion and Payer Dal Formations on Kuhn Ø are petrographically very similar to Jurassic sandstones from the mid- Norwegian shelf and the Barents Sea with regard to original mineralogical composition, sorting and grain size. The Bernbjerg Formation mudstones are comparable to the Upper Jurassic source rock of the mid-Norwegian shelf and the Barents Sea, but have lower hydrogen index (HI) val- ues due to terrigenous input in a relatively proximal setting. Coals of the Muslingebjerg Formation have significant source rock potential with measured HI values up to 700, kerogen types II–III and total organic carbon (TOC) values above 50%. Keywords: Kuhn Ø, North-East Greenland, Middle–Upper Jurassic, lithostratigraphy, sedimentology, petrography, source rocks P.C.A.* & V.L.F.‡, Amoco Norway Oil Company. Present addresses: *Norsk Hydro, N-0246 Oslo, Norway. ‡ BP Amoco – Egypt, 14, Road 252, Digla, Maadi Cairo, Egypt; P.O. Box 2409. E-mail: per.chr.alsgaard@hydro.com H.V., Geological Survey of Denmark and Greenland, Geocenter Copenhagen, Øster Voldgade 10, DK-1350 Copenhagen K, Denmark. F.S., Geological Institute, University of Copenhagen, Geocenter Copenhagen, Øster Voldgade 10, DK-1350 Copen- hagen K, Denmark. Geological Survey of Denmark and Greenland Bulletin 1, 865–892 (2003) © GEUS, 2003 The proximity of North-East Greenland to the mid- Norwegian shelf during Mesozoic times makes it an obvious candidate in the search for exposed analogues of reservoir facies, source rocks and structural frame- work of the potential hydrocarbon systems. Kuhn Ø, in particular, may be analogous to areas on the mid- Norwegian shelf that are characterised by a relatively thin Jurassic succession between basement and the ‘base-Cretaceous unconformity’ that accumulated adja- cent to a subaerially exposed landmass. The ‘Wollgan project’ was a co-operative research pro- ject involving Statoil, Saga, Amoco, the Norwegian Petroleum Directorate (NPD) and the Geological Institute of the University of Copenhagen. The three weeks of field work in 1994 focused on the Jurassic early rift and rift-climax successions of Kuhn Ø and Wollaston For- land, and the Cretaceous post-rift deposits of Wollaston Forland (Figs 1, 2). Within this framework, geologists from Amoco and the University of Copenhagen stud- ied the Jurassic of Kuhn Ø, forming the basis for this paper. The field work took place in central and south Kuhn Ø (Figs 3–5). The geology was mapped onto non-orthographic vertical aerial photographs enlarged to a scale of 1:25 000. The Middle–Late Jurassic structural development of tilted fault blocks in the Kuhn Ø – Wollaston Forland region was first unravelled by Vischer (1943). Maync (1947) documented the Jurassic and Lower Cretaceous sections of Kuhn Ø and identified many good outcrops. The geological map by Koch & Haller (1971) gives a general structural and stratigraphic overview, and a lithostratigraphic scheme was erected by Surlyk (1977). 866 Milne Land Traill Ø Geographical Society Ø Clavering Ø Kuhn Ø Store Koldewey 100 km 22°W 18°W 26°W 22°W 72°N 74°N 76°N Normal fault Reverse fault Fault, indeterminate type Hochstetter Forland Wollaston Forland Hold with Hope Jameson Land K TT C Greenland Fig. 1. Map of the East Greenland basin complex showing fault zones active during Mesozoic times. C, Cardiocerasdal; K, Kulhus, Søndre Muslingebjerg; TT, Th. Thomsen Land. GroupSeries Formation Member Bernbjerg Niesen Rigi Laugeites Ravine Payer Dal Pelion Muslingebjerg Super- group Ja m es on L an d Wollaston Forland Hall Bredning Vardekløft Middle Jurassic Upper Jurassic Lower Cretaceous Jakobsstigen Bastians Dal Lindemans Bugt Palnatokes Bjerg Rødryggen Albrechts Bugt Falske Bugt Young Sund Ugpik Ravine Spath Plateau Fig. 2. Stratigraphic scheme for the Jurassic–Cretaceous of Hold with Hope, Wollaston Forland, Kuhn Ø and Hochstetter Forland; slightly modified from Surlyk (2003, this volume, fig. 5). Note that the Jakobsstigen Formation is restricted to Wollaston Forland and Th. Thomsen Land and is not recognised on Kuhn Ø. It is later- ally equivalent to the lower Payer Dal Formation on Kuhn Ø (see Fig. 23). 867 Fligely Fjord Bastians D al ? ? ? Kap Hamburg Kap Maurer Ba sti an B ug t Kingofjeld Schwarze Wand Bernbjerg Pa ye r D al Cross-se ction 5 km N 043 C-58 C-57 157 C-87, C-88 Baselbjerg Quaternary alluvium Basaltic lavas/intrusions Wollaston Forland Group and younger strata Bernbjerg Formation Palaeogene Upper Jurassic – Lower Cretaceous Upper Jurassic Payer Dal Fm (upper unit) Pelion Fm and Payer Dal Fm (lower unit) (boundary indicated where differentiation possible) Bastians Dal and Muslingebjerg Fms Caledonian crystalline basement Sample locality Measured section Stratigraphic boundaries observed Stratigraphic boundaries inferred Normal fault, tick on downthrow side Inferred fault line Peaks Strike and dip Middle–Upper Jurassic Basement Fig. 3. Geological map of Kuhn Ø, East Greenland. The cross-section indicated is shown in Fig. 7. The two areas outlined show the location of the detailed maps in Figs 4, 5. Based on Koch & Haller (1971) and own data. Surlyk & Clemmensen (1983) interpreted the sedimen- tary succession in terms of a series of backstepping units reflecting the combined effects of progressive rift- ing and eustatic sea-level rise. Surlyk (1991) interpreted the Middle–Upper Jurassic succession within a low order sequence stratigraphic framework. This paper presents a revised lithostratigraphic scheme for the Jurassic of Kuhn Ø and two new formations are defined, the fluvial Bastians Dal Formation at the base of the succession and the shallow marine Payer Dal Formation (Fig. 2). The Jurassic sediments are described according to their facies, diagenesis and geochemistry, and an interpretation of the depositional environments is presented. Thickness and facies changes from the crest of a tilted fault block in the east (Schwarze Wand) to a relatively deeper structural setting on the hangingwall in the west (west Payer Dal) is illustrated by an east–west stratigraphic profile through southern Kuhn Ø, paral- lel to structural dip. Finally, the Jurassic succession of Kuhn Ø is compared to more offshore contemporane- ous deposits to the south in Wollaston Forland and a more landwards succession to the north in Hochstetter Forland described by Clemmensen & Surlyk (1976), Surlyk (1977, 1978a), Surlyk & Clemmensen (1983), Bojesen-Koefoed et al. (1996), Petersen et al. (1998) and Vosgerau et al. (2000). 868 N 2 km C-10 C-8 C-6 C-13 C-20 C-21C-22 C-23, C-24 C-2 C-59 C-3 C-43 C-51 C-54 C-49 037 C-47 C-46C-11 C-38 C-42 C-41 C-39 C-40 C-15 C-16 C-17 C-17A C-60, C-62 ? ? ? A B4 B3 C D3 E D4 D2 D1 B2 B1 C-19 11 11 12 Kap Hamburg Ugpik Ravine Kingofjeld Schwarze Wand Bernbjerg Pa ye r D al Fig. 4. Geological map of the Payer Dal area, south Kuhn Ø (see Fig. 3). Based on Koch & Haller (1971) and own data. For legend, see Fig. 3. Geological setting The Jurassic succession of Kuhn Ø was deposited in the northern part of the Wollaston Forland basin of North-East Greenland, which was situated on the west- ern margin of the Jurassic rift complex between Green- land and Norway. Deposition took place in a rift-con- trolled embayment which was open to marine circulation towards the south (Fig. 6). Regional sediment transport was axial from north to south, down a low-gradient basin floor sloping to the south (Surlyk 1977, 1990, 1991; Surlyk & Clemmensen 1983). The island of Kuhn Ø is positioned on the hang- ingwall slope of a tilted fault block, within which Middle Jurassic strata rest unconformably on crystalline base- ment (Fig. 7). The Jurassic succession thickens west- wards into the half-graben and onlaps eastwards onto Caledonian basement. The Middle–Upper Jurassic suc- cession of Kuhn Ø comprises, in ascending order, the Bastians Dal, Muslingebjerg, Pelion, Payer Dal and 869 2 km C-74 C-79, C-80A C-66 C-85 C-67, C-68, C-69 C-77, C-78 Fligely Fjord Bastians Dal 6 5–17 14–30 N Baselbjerg Fig. 5. Geological map of the Bastians Dal area, central Kuhn Ø (see Fig. 3). Based on Koch & Haller (1971) and own data. For leg- end, see Fig. 3. Bernbjerg Formations which form a series of backstep- ping early rift units separated by major drowning sur- faces (Figs 2, 8; Surlyk 1977, 1991; Surlyk & Clemmensen 1983). It is overlain by conglomerate-dominated rift-cli- max deposits of the Wollaston Forland Group of latest Jurassic – earliest Cretaceous age (Surlyk 1978b). Methods The Jurassic sediments were studied in southern Kuhn Ø around the valley of Payer Dal and in central Kuhn Ø around the valley of Bastians Dal (Figs 3–5). The ex- posed section extends from the basal unconformity overlying crystalline basement, through the Bastians Dal, Muslingebjerg, Pelion, Payer Dal and Bernbjerg Formations (Figs 8–11). The outcrops are partially cov- ered by scree slopes, such that the sections are com- posite and combined from smaller segments. A total of 93 samples were collected on Kuhn Ø for petrographic, geochemical and biostratigraphic analy- sis. To avoid the effects of surface weathering, geo- chemical samples were normally collected at depths of 30 cm into the permafrost, or almost one metre from the surface. A total of 33 samples were evaluated bio- stratigraphically, ten for calcareous nannoplankton, nine- teen for foraminifers and four for ammonites (Table 1). Dinocysts are absent in the non-marine Bastians Dal Formation; the marine Pelion Formation and the lower Payer Dal Formation show higher dinocyst diversities than the upper Payer Dal Formation. The samples analysed for micropalaeontology were barren of nanno- plankton and there were only a few poorly preserved foraminifers with long stratigraphic age ranges. Am- monites were only found in the Bernbjerg Formation. Previous biostratigraphic data (Sykes & Surlyk 1976; Surlyk 1977) were utilised in dating and correlating the Jurassic succession on Kuhn Ø with adjacent areas within the Wollaston Forland basin. In addition, stron- tium isotope analysis has been performed on a few belemnites from the Jurassic succession in Payer Dal and from a more offshore succession in the Cardiocerasdal 870 22°W 18°W 76°N 75°N 25 km Hochstetter Forland Kuhn Ø Wollaston Forland Paralic Estuary with tidal shoals Offshore, marine Th. Thomsen Land Fligely Fjord Bernbjerg Payer Dal A B C D EKingofjeld Schwarze Wand D ep th /A lti tu de ( km ) SW (250°) NE Bernbjerg Fm, Wollaston Forland Group and Lower Cretaceous Payer Dal Fm (upper unit) Pelion Fm and Payer Dal Fm (lower unit) Caledonian crystalline basement 1 0 -1 0 5 10 15 20 km Fig. 6. Late Bathonian – Callovian palaeogeography of the Wollaston Forland basin (modified from Surlyk & Clemmensen 1983). Fig. 7. Cross-section of south Kuhn Ø (for location, see Fig. 3). The profile intersects measured sections A and E, while the other sections are projected onto the line of section. 871 Bernbjerg Fm (?Upper Oxfordian – Kimmeridgian) Hall Bredning Gp Vardekløft Gp Upper Jurassic Middle Jurassic Series Caledonian crystalline basement Group Upper unit (Upper Oxfordian) Pa ye r D al F or m at io n Lower unit (Lower–Middle Oxfordian) Pelion Fm (Upper Bathonian – Upper Callovian) Muslingebjerg Fm Bastians Dal Fm Formation C la y Si lt Sa nd G ra ve l Coal Mudstone Mudstone/sandstone heterolith Sandstone ( calcareous cement) Conglomerate/pebbly sandstone Planar cross-bedding Composite planar cross-bedding Trough cross-bedding Hummocky cross-stratification Parallel lamination/stratification Wavy bedding Sand lenses (cross-laminated) Shell-rich Wave ripples (cross-lamination) Current ripples (cross-lamination) Siltstone clast Fossil wood Belemnite Bivalve Oysters Horizontal burrow Vertical burrow Calcite concretion Oyster bed 50 m Fig. 8. Generalised stratigraphic column of the Jurassic early syn-rift succession of Kuhn Ø. The accompanying legend also applies to Figs 11, 17. 872 SS AA PP aayy er D al er D al D yk D yk ee B er n b je rg B er n b je rg B 3, B 3, B 4 B 4 B 1, B 1, B 2 B 2 B er n b je rg F m B er n b je rg F m TTo p P o p P aayy er D al F m er D al F m TTo p lo o p lo ww er u n it er u n it PP aayy er D al F m er D al F m NN SA A P ay er D al D yk e B er n b je rg B 3, B 4 B 1, B 2 B er n b je rg F m To p P ay er D al F m To p lo w er u n it P ay er D al F m N Li th os tr at ig ra ph ic b ou nd ar y N or m al fa ul t M ea su re d se ct io n SSBB S ch w ar z S ch w ar ze e WW an d an d TTo p lo o p lo ww er u n it er u n it PP aayy er D al F m ? er D al F m ? B as em en t B as em en t PP aayy er D al er D al TTo p lo op lo ww er u ni t er u ni t PP aayy er D al F m er D al F m TTo p P op P el io n F m el io n F m CC TTo p P o p P aayy er D al F m er D al F m B er n b je rg F m B er n b je rg F m PP al ae o al ae o gge n e b as al ts en e b as al ts TTo p ba se m en t op b as em en t TTo p P op P el io n Fm ? el io n Fm ? K in g K in go fje ld o fje ld NN SB S ch w ar ze W an d To p lo w er u n it P ay er D al F m ? B as em en t P ay er D al To p lo w er u ni t P ay er D al F m To p Pe lio n F m C To p P ay er D al F m B er n b je rg F m P al ae og en e b as al ts To p ba se m en t To p Pe lio n Fm ? K in go fje ld N ? Fi g. 9 . A : W es t si d e o f P ay er D al , so u th K u h n Ø , sh o w in g th e p o si tio n s o f se ct io n s A an d B 1 –4 . T h e re fe re n ce s ec tio n o f th e P ay er D al F o rm at io n i llu st ra te d b y Su rl yk ( 19 77 , fig . 4) w as m ea su re d i n t h e so u th er n m o st g u lly ( U gp ik R av in e, a rr o w ). T h e u p p er u n it o f th e P ay er D al F o rm at io n i s c. 6 0 m t h ic k. B : E as t si d e o f P ay er D al . T h e ri gh t- h an d p ar t o f th e p an o ra m a ill u st ra te s th e b es t ex p o su re s o f th e P el io n a n d P ay er D al F o rm at io n s o n s o u th K u h n Ø a n d i n cl u d es t h e ty p e se ct io n o f th e P ay er D al F o rm at io n ( se ct io n C , se e al so F ig s 16 , 17 ). T h e lo w er u n it o f th e P ay er D al F o rm at io n i s c. 9 0 m t h ic k. 873 Fi g. 1 0. A : Sc h w ar ze W an d o n s o u th K u h n Ø s h o w in g, t o t h e ri gh t (N E ), t h e cr es t o f a Ju ra ss ic r o ta te d f au lt b lo ck . N o te t h e n o rt h -e as tw ar d s o n la p a n d t h in n in g o f th e se d im en ta ry p ac ke t b et w ee n b as em en t an d t h e to p o f th e lo w er P ay er D al F o rm at io n ; th is i n te rv al i s c. 4 0 m t h ic k at t h e n o rt h -e as t en d o f th e ill u st ra te d s ec tio n ( se e Fi g. 1 0B ). T h e h ill i s ca p p ed b y P al ae o ge n e b as al ts . Fo r le ge n d , se e Fi g. 9 A . B : C lo se -u p o f th e n o rt h -e as te rn p o rt io n o f th e se ct io n i n F ig . 10 A ; a co m p o si te s ec tio n ( se ct io n E ) w as m ea su re d a lo n g th e d o tt ed lin es . C : P an o ra m a o f th e p en ep la n ed t o p o f th e cr ys ta lli n e b as em en t o ve rl ai n b y th e B as tia n s D al ( ?) , P el io n a n d P ay er D al F o rm at io n s o n t h e ea st s id e o f K in go fje ld ; th e Ju ra ss ic se ct io n i s ca p p ed b y P al ae o ge n e b as al ts . Fo r le ge n d , se e Fi g. 9 A . S W S W A B TTo p ba se m en t o p ba se m en t TTo p lo o p lo ww er u ni t er u ni t PP aayy er D al F m er D al F m To p lo w er u ni t P ay er D al F m TTo p lo o p lo ww er u n it , er u n it , P P aayy er D al F m er D al F m To p lo w er u n it , P ay er D al F m To p b as em en t P al ae og en e b as al ts N E N E To p ba se m en t S EC To p b as em en t P al ae o ge n e b as al ts TTo p lo o p lo ww er u n it er u n it PP aayy er D al F m er D al F m To p lo w er u n it P ay er D al F m N W area, south-western Wollaston Forland (Table 2; M. Engkilde, personal communication 1997). The 87Sr/86Sr isotope values were used for correlating the Jurassic suc- cession between the two areas and with the strontium isotope curves constructed for the Jurassic Period for the United Kingdom (Jones et al. 1994) and East Green- land (M. Engkilde, personal communication 1997). 874 Formation Age Sample* Diagnostic flora/fauna – mainly dinocysts, together with pollen (P), ammonites (A), foraminifers (F) Early–Middle Barremian C-57 Pseudoceratium anaphrissum, Muderongia australis, Pseudoceratium pelliferum, Muderongia staurota, Muderongia testudinaria Early–Middle Barremian C-58 P. anaphrissum, Batioladinium longicornutum Bernbjerg Late Callovian – Oxfordian C-22 Scriniodinium crystallinum Bernbjerg Middle–Late Jurassic C-23 Cerebropollenites mesozoicus (P), Haplophragmoides sp. (F) Bernbjerg Kimmeridgian C-24 Aulacostephanus eudoxus (A) Bernbjerg Bathonian–Kimmeridgian C-41, C-42, C-79 Gonyaulacysta jurassica Bernbjerg Kimmeridgian–Volgian C-74 Rhynchodiniopsis cladophora, G. jurassica, Oligosphaeridium pulcherrimum, Ammobaculites sp. (F), Haplophragmoides sp. (F) Bernbjerg Oxfordian–Kimmeridgian C-77, C-78 R. cf. R. cladophora Bernbjerg Kimmeridgian C-80A Aulacostephanus mutabilis (A) Bernbjerg Kimmeridgian–Volgian C-87 Tubotuberella apatela, ?Atopodinium sp., Sirmiodinium grossii, Hystrichodinium cf. amphiacanthum. Bernbjerg Volgian C-88 Oligosphaeridium patulum, Scriniodinium sp. A, Cribroperidinium sp. of the perforans/cauda group Bernbjerg Late Callovian – Oxfordian, 037, sect. D4 Escarisphaeridum sp. hyalina, Sentusidinium pelionense, probably Late Oxfordian Sirmiodinium grossii, G. jurassica Bernbjerg Kimmeridgian 157 Oligosphaeridium patulum, Ellipsoidictyum cinctum, Mendicodinium groenlandicum, C. mesozoicus (P) Bernbjerg Kimmeridgian A4 sect. D4 Amoeboceras sp. baylei (A) Bernbjerg Kimmeridgian 65 m below C-87 Amoeboceras subkitchini Spath (A) Payer Dal (upper unit) Middle–Late Jurassic C-15, C-49 C. mesozoicus (P) Pelion/Payer Dal (lower unit) Oxfordian C-3P G. jurassica, M. groenlandicum, Rigaudella aemula Pelion/Payer Dal (lower unit) Middle–Late Jurassic C-10, C-11, C-21 C. mesozoicus (P) Pelion/Payer Dal (lower unit) Callovian–Oxfordian C-13 Sentusidinium rioultii, Rhynchodiniopsis cf. cladophora Payer Dal (lower unit) Late Callovian – C-38 Liesbergia scarburghensis, G. jurassica, ?Surculosphaeridium Middle Oxfordian vestitum, R. cladophora Pelion/Payer Dal (lower unit) Late Callovian – C-46 L. scarburghensis Middle Oxfordian Pelion/Payer Dal (lower unit) Callovian C-47 Pareodinia prolongata Pelion/Payer Dal (lower unit) Late Bathonian – C-54 Batiacasphaera dictydia, Sirmiodinium grossii, G. jurassica, Late Callovian G. pectinigera, Escharisphaeridia sp., molluscs, brachiopods Pelion/Payer Dal (lower unit) ?Callovian C-59 Chytroeisphaeridia chytroeides Pelion/Payer Dal (lower unit) Middle–Late Jurassic 043 C. mesozoicus (P), ?Rhynchodiniopsis cladophora Payer Dal ?Callovian C-66 C. chytroeides Pelion Middle–Late Jurassic C-85 C. mesozoicus (P) Bastians Dal Middle–Late Jurassic C-19, C-68, C-69 C. mesozoicus (P) * Location of samples shown on Figures 3–5, 11, 17. Table 1. Biostratigraphic data, Jurassic – Lower Cretaceous of Kuhn Ø Stratigraphy and sedimentology The Jurassic succession on Kuhn Ø is subdivided into five formations, the Bastians Dal (new), Muslingebjerg, Pelion (redefined), Payer Dal (new) and Bernbjerg Formations (Fig. 2). The first four formations occur within the Vardekløft Group whereas the Bernbjerg Formation is referred to the Hall Bredning Group (Fig. 2). The new and redefined formations are described for- mally below, together with a brief account of the char- acteristic features of the Muslingebjerg and Bernbjerg Formations on Kuhn Ø. It should be noted that the revised lithostratigraphic scheme presented in Figure 2 and in Surlyk (2003, this volume, fig. 5) must be con- sidered as provisional, pending publication. In this paper, this relates especially to the Muslingebjerg and Pelion Formations which are described here from Kuhn Ø, as these units are elevated in status from member to formation in the revised scheme. Bastians Dal Formation new formation History. A unit of cobble conglomerates, 5 m thick, at the base of the Pelion Formation and directly overly- ing crystalline basement was described from one local- ity on the mountain of Kingofjeld, eastern Payer Dal by Maync (1947, p. 15). This unit is included in the new Bastians Dal Formation which is erected here for a suc- cession of mainly conglomerates and pebbly sandstones forming the basal unit of the Jurassic succession on Kuhn Ø. The type area of the formation was mapped by Vischer (1943, p. 42–43) but rocks belonging to the new Bastians Dal Formation were not recognised, prob- ably due to deep snow cover (A. Vischer in: Koch 1955, p. 562–564). Name. After the NW–SE-trending valley of Bastians Dal, in western central Kuhn Ø (Figs 3, 5; Vischer 1943, plate 1). 875 C-85 Locally up to c. 150 m thick conglomerate C-68 C-69 C-67 30 m Pelion Formation Muslingebjerg Formation Bastians Dal Formation Basement 20 0 C la y Si lt V F F M C V C P C Gravel B Sand Fig. 11. Stratigraphic log of the Bastians Dal succession, includ- ing the type section of the Bastians Dal Formation. The upper- most part of the Pelion Formation is not shown. For legend, see Fig. 8; C-67, sample number. 876 Type locality and type section. The east side of Bastians Dal, where the type section is located (Figs 5, 11). Thickness. Maximum thickness of 100–150 m in Bastians Dal, estimated from photographs and measured sections; the formation thins rapidly towards the south within the Bastians Dal area and is only 1–5 m thick on southern Kuhn Ø (Maync 1947). Lithology. The Bastians Dal Formation consists of quartz pebble conglomerates and pebbly sandstones. The for- mation has a distinctive grey weathering colour, due to a high content of carbonaceous material and coal lenses, and contrasts with the light brown weathering colour of the Pelion Formation above (Fig.12). Boundaries. The formation rests directly on crystalline basement rocks on Kuhn Ø. The upper boundary is placed where the conglomerates and pebbly sandstones of the Bastians Dal Formation are overlain by coals of the Muslingebjerg Formation or, where the Muslingebjerg Formation is not developed, by fine- to medium-grained sandstones of the Pelion Formation. Distribution. The formation overlies crystalline basement in central and southern Kuhn Ø. In Bastians Dal, the Fig. 12. Grey fluvial conglomerates of the Bastians Dal Formation overlain by light brown shallow marine sandstones of the Pelion Formation (c. 20 m thick Pelion Formation section crops out along the ridge, centre foreground). Bastians Dal, central Kuhn Ø, viewed towards the north with Th. Thomsen Land in the background. Arrow indicates location of exposed conglomerates illustrated in Fig. 13. Fig. 13. Stacked fining-upwards conglom- eratic units with cut and fill structures, typical of the Bastians Dal Formation. Hammer, 30 cm long, for scale. For location, see Fig. 12. 877 formation seems to fill a valley incised into the crys- talline basement whereas in the Payer Dal area, it is thin and locally absent. Geological age. The Bastians Dal Formation is of gen- eral Middle Jurassic age based on the presence of Cerebropollenites mesozoicus pollen within the forma- tion and the occurrence of dinocysts within the over- lying Pelion Formation which indicate a Late Bathonian – Late Callovian age (Table 1). Facies. In Bastians Dal, the formation is characterised by stacked fining-upwards units, 0.1–2 m thick, consisting of coarse-grained pebble and cobble conglomerates with quartzite clasts overlying a basal erosional surface followed by trough cross-bedded or parallel-laminated quartz sandstones, commonly rich in mica (Fig. 13). Cobbles are rounded whereas sand grains are angular to subrounded (Fig. 14A). The poor sorting and angu- larity of the quartz grains suggest that the sediments are immature and close to their source of origin, probably the crystalline basement rocks to the east and north. Microfractures are present in all quartz grains, support- ing a metamorphic basement origin. Palaeocurrent direc- tions measured from the trough cross-bedded sandstones are towards the south-west (average 240°). Palaeoenvironment. The carbonaceous, immature con- glomerates and pebbly sandstones of the Bastians Dal Formation are interpreted to have been deposited by Fig. 14. Thin-section photographs in plane-polarised light. A: Sandstone from the uppermost Bastians Dal Formation illustrating the poor sorting, angularity and poorly cemented character of the deposits. Sample C-67, Bastians Dal. B: Weakly cemented sandstone from the Payer Dal Formation (lower unit) with 19% helium porosity; sample C-60, west Kingofjeld (Fig. 17). C: Cemented sandstone (cf. Fig. 14B) from the Payer Dal Formation (lower unit); sample C-62, west Kingofjeld (Fig. 17). A C B 1mm 1mm 1mm 878 south-westwards flowing braided rivers. The fining- upwards units reflect decreasing energy conditions dur- ing deposition and were probably formed by fluvial channel erosion followed by the migration of channel bars towards the south-west within the channels (Cant & Walker 1976; Miall 1977). The formation appears to be mainly restricted to the Bastians Dal area (Fig. 3). The overall marked pene- planed nature of the basement surface and the pro- nounced lateral thinning of the formation suggest that it is restricted to a valley system incised into the base- ment surface. It is not possible to define the orienta- tion of the axis of the valley or the northwards extent of the formation due to Quaternary cover. Incision is interpreted to have resulted from relative base-level lowering, probably in association with late Early or early Middle Jurassic regional uplift enhanced by the onset of half-graben block rotation in Middle Jurassic time. Incised drainage systems possibly followed zones of weakness in the crystalline basement such as fault zones or less resistant metamorphic facies. During a subsequent rise in base level, a south-west flowing flu- vial system filled the valley with sandstones and conglo- merates. On southern Kuhn Ø, the Bastians Dal Formation was apparently deposited on the peneplain marginal to the incised valley system inferred for cen- tral Kuhn Ø. Muslingebjerg Formation Facies. Coal beds overlying the Bastians Dal Formation are referred to the coal-bearing Muslingebjerg Formation. This lithostratigraphic unit was given member status by 5 m 20 m Coal Coal Pelion Fm (fine-grained sandstone) Very coarse- grained sandstone River level Fig. 15. Exposure of the coal-dominated Muslingebjerg Formation, overlain by fine-grained, well-sorted marine sand- stones of the Pelion Formation; Bastians Dal, central Kuhn Ø. As illustrated in the sketch (no vertical exaggeration), the coals interdigitate laterally with very coarse-grained fluvial sandstones (arrow in photograph), comparable to those of the underlying Bastians Dal Formation. The sandstone is partially covered by coal dust and is thus difficult to see on the photograph. Surlyk (1977) but is upgraded to formation in the revised scheme of Surlyk (2003, this volume, fig. 5). At the type locality at Kulhus in southern Hochstetter Forland, the formation is at least 20 m thick and consists of coals interbedded with lagoonal siltstones and sandstones and subordinate shoreface sandstones (Clemmensen & Surlyk 1976; Petersen et al. 1998). In Bastians Dal, the Muslingebjerg Formation is up to 11 m thick and con- sists of coals interbedded locally with fluvial deposits comparable to those of the underlying Bastians Dal Formation (Figs 11, 15). In Payer Dal, a coal bed up to 0.15 m thick overlies weathered crystalline basement or thin fluvial deposits of the Bastians Dal Formation. The coal beds are overlain by fine- to medium-grained sandstones of the Pelion Formation on Kuhn Ø and the Payer Dal Formation on Hochstetter Forland. The Muslingebjerg Formation on Kuhn Ø is of early Middle Jurassic age based on the occurrence of Middle–Upper Jurassic pollen in the underlying fluvial sediments of the Bastians Dal Formation and Upper Bathonian – Upper Callovian dinocysts in the overlying Pelion Formation (Table 1). Dinocysts immediately above the coals in the type section at Kulhus, Hochstetter Forland, are indicative of the Upper Callovian P. athleta Chrono- zone (Piasecki & Stemmerik in press). Palaeoenvironment. The coal beds of the Muslingebjerg Formation represent lagoonal swamps that formed on a coastal plain during base-level rise. The alternation of coal beds and shoreface deposits at Kulhus demon- strates that the peat-forming mires were repeatedly ter- minated by marine transgressions (Clemmensen & Surlyk 1976; Petersen et al. 1998). Interfingering of coals with fluvial deposits in Bastians Dal on Kuhn Ø suggests that the coal beds were also confined within the incised valley system within which the fluvial Bastians Dal Formation was deposited. The thin coal beds that directly overlie or occur close to basement in Payer Dal were possibly deposited immediately adjacent to the eastern low-angle margin of the incised valley. As flooding con- tinued, the incised valley and interfluves were drowned and the coal-bearing sediments were abruptly overlain 879 SE NW TTop loop lowwer uniter unit PPaayyer Dal Fmer Dal FmTTop loop lowwerer unitunit PPaayyer Daler Dal FmFm TTop Pop Pelion Fmelion Fm FFaultault Top lower unit Payer Dal FmTop lower unit Payer Dal Fm Top Pelion Fm Top Payer Dal Fm (projected) Fault Fig. 16. Type section (section C) of the Payer Dal Formation, west Kingofjeld (see Figs 4, 9B, 17); the line of section is indicated by the dotted lines. The boundary between the Payer Dal Formation and the overlying Bernbjerg Formation is exposed about one kilo- metre east (left) of this locality (see Fig. 9B). The lower unit of the Payer Dal Formation is c. 90 m thick. For legend, see Fig. 9A. by shallow marine sands of the Pelion or Payer Dal Formations. The Muslingebjerg Formation thus marks the transition from fluvial sedimentation of the Bastians Dal Formation to fully marine sedimentation of the Pelion and Payer Dal Formations. Geochemistry. Coal samples from Payer Dal have high hydrogen indices (HI) in the range 430–695 mg HC/g TOC (mg hydrocarbons/g total organic carbon content) (Fig. 4; samples C-6, -8, -19, -20). Values of Tmax are in the range 429–432°C, and TOC values are 51–59%. A coal sample from central Kuhn Ø (Fig. 5, C-68) gave a HI value of only 170 mg HC/g TOC. The coals are rel- atively ‘liptinitic’, corresponding to kerogen types II–III. The organic matter is dominantly derived from land plants, and has a good potential for generation of prob- ably waxy oil. The coals of Hochstetter Forland are also potential oil-prone source rocks (Bojesen-Koefoed et al. 1996; Petersen et al. 1998). Pelion Formation redefined History. The shallow marine sandstones on Kuhn Ø that overlie crystalline basement or in some areas succeed the Bastians Dal or Muslingebjerg Formations were pre- viously all included in the Pelion Member (Surlyk 1977); this lithostratigraphic unit is promoted to the rank of for- mation in the revised lithostratigraphic scheme (Surlyk 2003, this volume, fig. 5). The sandstones are here sub- divided into the Pelion Formation (below) and the new Payer Dal Formation (above) which are separated by a major drowning surface expressed as a sharp boundary between mainly medium-grained sandstones and the overlying siltstones, heteroliths and fine-grained sand- stones. The description presented here only covers the occurrence on Kuhn Ø. Thickness. About 120 m in Payer Dal. Lithology. The Pelion Formation consists of yellowish, moderately to well-sorted, fine- to coarse-grained quartz sandstone. 880 C-60 C-62 C-38 160 150 Scree slope Scree slope Scree slope Scree slope Scree slope 130 120 110 100 80 70 60 20 m Pelion Fm Payer Dal Fm (lower unit) PD(u) C la y Si lt F M C G r Sand Fig. 17. Section C through the Pelion – lower Payer Dal Formations, west Kingofjeld, including the type section of the Payer Dal Formation (Figs 9B, 16). For legend, see Fig. 8. PD (u), Payer Dal Formation, upper unit; C-38, sample number. 881 N A B C D E 1. 7k m 2.8km 2.7km 5. 4k m Kuhn Ø Datum Top basement Top basement ? E D C B A 100 m N A B C D E 1. 7 km 2.8 km 2.7 km 5. 4 km Kuhn Ø Bernbjerg Formation Payer Dal Formation (upper unit) Payer Dal Formation (lower unit) Pelion Formation ?Bastians Dal Formation ? ? ? M ud F M C V C M ud F M C V C M ud F M C V C M ud F M C V C M ud F M C V C Sand Sand Sand Sand Sand Mudstone Sandstone Fig. 18. West–east stratigraphic profile of the Jurassic in southern Kuhn Ø. The datum is defined by the boundary between the lower and upper units of the Payer Dal Formation. According to this correlation, the succession beneath the datum (Pelion Formation and lower Payer Dal Formation) thins markedly eastwards. Section C (type section of the Payer Dal Formation) is shown in detail in Fig. 17. Section D is composite, constructed from segments D1–4 (see Fig. 4). Boundaries. Overlies crystalline basement or pebbly fluvial sandstones of the Bastians Dal Formation, and the coal-bearing Muslingebjerg Formation in southern and central Kuhn Ø. The upper boundary is sharp and separates Pelion Formation sandstones from siltstones and heteroliths of the overlying Payer Dal Formation. It can be correlated with a similar surface at the top of the Pelion Formation in Cardiocerasdal, Wollaston Forland, and can possibly be traced as far south as Jameson Land. The Pelion Formation and the lower unit of the Payer Dal Formation cannot be clearly sep- arated in Bastians Dal, central Kuhn Ø. Distribution. The Pelion Formation is persistent through- out the Jurassic outcrop on Kuhn Ø and regionally is recognised from Store Koldewey in the north (Piasecki et al. in press) to Jameson Land in the south (Fig. 1). Geological age. The formation is poorly dated on Kuhn Ø due to a lack of ammonites. However, a Late Bathonian ammonite fauna in the basal part of the for- mation was reported from nearby Wollaston Forland by Maync (1947). Dinocyst assemblages suggest a Late Bathonian – Late Callovian age on Kuhn Ø (Table 1). Strontium isotope analysis (87Sr/86Sr) of a belemnite from the uppermost part of the formation suggests a Late or possibly Middle Callovian age, by comparison with the strontium isotope curve of Jones et al. (1994; M. Engkilde, personal communication 1997). Facies. The formation consists mainly of moderately well-sorted quartz sandstones with subangular to sub- rounded grains. Ammonites are very rare, whereas belemnites and bivalves are abundant at certain levels. Faunal assemblages are generally of low diversity and high density probably indicating a high-stress marine environment with fluctuating salinities (Surlyk 1977). In the Payer Dal area, the Pelion Formation is best exposed in section C, west Kingofjeld, where it is about 120 m thick (Figs 4, 9B, 16–18). The formation is dominated by evenly laminated, swaley cross-stratified, and intensely bioturbated, fine- to medium-grained sandstones alter- nating with wave rippled or trough cross-bedded, medium- to coarse-grained sandstones. Structureless pebbly sandstone lags with erosional lower boundaries, sometimes rich in bivalve shells, are present locally. A calcite-cemented, bench-forming sandstone (c. 15 m thick), which seems to be of regional extent on Kuhn Ø, forms the top of the formation and is capped by the marked flooding surface (see above). In the more proximal setting in Bastians Dal, the Pelion and Payer Dal Formations are partially covered by scree and it has not been possible to recognise the surface separating the two formations. Shallow marine sandstones probably occur both below and above the drowning surface and good outcrops are required in order to differentiate the two formations. The lower 45 m of the Pelion Formation in Bastians Dal consist of well-sorted, very fine- to fine-grained sandstones with numerous thin carbonaceous laminae. Layers of pebbles and poorly sorted beds ranging in grain size from fine sand to cobbles occur locally. Only few sedimentary structures and bedding planes can be observed due to weathering and scree cover, with the exception of small-scale trough cross-beds and, towards the top, localised herringbone cross-bedding. This basal unit is probably overlain by a sandstone succession, estimated to be c. 35 m thick, which is exposed further to the west. Correlation is uncertain, how- ever, due to the intervention of an inferred NNW–SSE- trending fault. The succession consists of four prominent 882 Fig. 19. Calcite concretions in the Pelion Formation or the lower Payer Dal Formation. Bastians Dal, central Kuhn Ø. exposed sections, each c. 3–8 m thick, that comprise light brown, concretionary sandstones overlain by light grey, calcite-cemented sandstones; these benches are sepa- rated by poorly exposed, scree-covered intervals of sim- ilar thickness. The concretionary sandstones display characteristic ‘cannon ball’ concretions which litter the slopes below (Fig. 19). The concretions, which range from a few centimetres to 30 cm in diameter (average 10 cm), commonly obscure sedimentary structures. The calcite-cemented sandstone intervals show trough cross- bedding and are typically capped by structureless or parallel-laminated beds. The upper part of the forma- tion is poorly exposed in this area. Palaeoenvironment. Onset of deposition of the Pelion Formation records regional marine flooding of the crys- talline basement peneplain or the sediments of the Bastians Dal and Muslingebjerg Formations. Deposition took place in the lower to upper shoreface based on the dominance of evenly laminated, swaley cross-strat- ified, and intensely bioturbated fine- to medium-grained sandstones alternating with wave rippled or trough cross-bedded, medium- to coarse-grained sandstones. The pebbly sandstone lags with erosional lower bound- aries which occur locally in the formation are inter- preted as transgressive lags, formed by wave winnowing of underlying upper shoreface and foreshore deposits. A detailed account of the sedimentology and sequence stratigraphy of the Pelion Formation further south in Jameson Land is given by Engkilde & Surlyk (2003, this volume). Payer Dal Formation new formation History. The rocks of this new formation were first recognised by Maync (1947) who included them in the upper part of his Yellow Series. They form the upper part of the Pelion Member of Surlyk (1977). Name. After the valley of Payer Dal in southern Kuhn Ø (Figs 4, 9). Type locality and type section. The eastern side of Payer Dal; the type section (section C) is located on the west flank of Kingofjeld (Figs 4, 9B, 16, 17). Reference section. Ugpik Ravine, west Payer Dal (Fig. 9A; Surlyk 1977, fig. 4). Thickness. In Payer Dal, the formation is about 150 m thick. The thickness of the formation in Bastians Dal is unknown due to difficulties in defining the base of the formation in poor exposure. Lithology. Fine- to coarse-grained cross-bedded or struc- tureless, light coloured, mainly yellowish quartz sand- stone. Pebbly sandstone lags commonly rich in marine bivalves and belemnites occur locally. Siltstones and het- eroliths form the basal part of the formation in Payer Dal. Boundaries. In Payer Dal, the lower boundary is a dis- tinct surface separating the carbonate-cemented sand- stone unit of the uppermost Pelion Formation from the siltstones and heteroliths of the basal Payer Dal Formation. The upper boundary is placed where sand- stones of the Payer Dal Formation are sharply overlain by offshore siltstones and heteroliths of the Bernbjerg Formation. Distribution. The formation occurs on Kuhn Ø, Store Koldewey, Hochstetter Forland and Hold with Hope (Piasecki et al. in press; Vosgerau et al. in press). Geological age. The age of the formation is not well- constrained due to a lack of ammonites. Dinocyst assem- blages suggest a mainly Early – early Late Oxfordian age (Table 1). Subdivision. The formation is subdivided into a lower coarsening-upwards siltstone–sandstone unit and an upper sandstone-dominated unit. These two units are separated by a succession of pebbly sandstones, up to 3 m thick, and are considered informal members. Facies. In Payer Dal, the basal part of the lower Payer Dal Formation consists of a succession of siltstones and heteroliths which has a minimum lateral extent of a few hundred metres but cannot be traced further due to extensive scree cover (Figs 16, 17). These basal sed- iments coarsen upwards into cross-bedded, medium- to coarse-grained sandstones which alternate with evenly laminated, fine- to medium-grained sandstones or wave rippled, medium-grained sandstones (Fig. 17). The sets of the cross-bedded sandstones are up to 2 m thick. The sandy foresets are commonly separated by single and double mud drapes. Foreset dip azimuths are mainly towards the south-west, but bi-directionally orientated foresets also occur. A pebbly sandstone interval, up to 3 m thick, containing abundant thick-shelled bivalves and belemnites locally forms the top of the unit. 883 884 The upper unit of the Payer Dal Formation consists mainly of fine- to medium-grained sandstone and is generally less cemented than the underlying shallow marine quartz sandstones of the lower unit and the Pelion Formation. The best section through the upper unit is section A (Figs 9A, 18; see also Surlyk 1977, fig. 4) where it consists of stacked successions of trough cross-bedded, fine- to medium-grained sandstones, commonly capped by oyster-rich, calcite-cemented, coarse-grained sandstones. Cross-bedded sandstones with sets up to 3 m thick and foresets commonly sep- arated by single and double mud drapes occur in the upper part of the unit in section D, south Kingofjeld (Fig. 18). Palaeocurrent directions of the cross-beds of sections A and D are towards the S–SW. In Bastians Dal, the lower Payer Dal Formation (pos- sibly including the uppermost Pelion Formation) con- sists of a sandstone succession, c. 50 m thick, which forms a series of prominent benches separated by reces- sive slopes. The benches are composed of trough cross- bedded, structureless and parallel laminated, calcite- cemented sandstones, whereas the poorly exposed slopes appear to correspond to weakly cemented sand- stones. The last sandstone bench that forms the top of the lower unit is capped by a thin persistent oyster bed overlain in many places by a thin pebble lag. The upper unit is composed of buff to yellow-red quartz sand- stone; the exposed section is about 20 m thick. It shows large trough cross-sets at the base, up to 4 m thick, which grade up to small trough cross-sets in the upper- most metre (Fig. 20). The sandstones are well-sorted and composed of subangular to subrounded grains at the base of the coset, with more poorly sorted and angular grains towards the top. The cross-bedded sand- stone unit is fine- to very coarse-grained and shows an overall coarsening-upwards trend. Palaeocurrents of the cross-beds are towards the south-west. The unit is not exposed above the coset of trough cross-beds, but is probably present west of the area beneath Quater- nary alluvium deposits. Palaeoenvironment. The Payer Dal Formation was deposited in a tidally-influenced environment as indi- cated by the abundance of cross-bedded sandstones with foresets separated by single and double mud drapes and the local occurrence of herringbone cross-bedding. The cross-bedded sandstones are interpreted to represent south-westwards migrating tidal bars or sandwaves in a shallow marine embayment (Surlyk 1977; Surlyk & Clemmensen 1983). Deposition of the siltstones and heteroliths that form the base of the lower unit in the Payer Dal area, took place in an offshore transition to offshore environment after drowning of the shallow marine sandstones of the Pelion Formation. Drowning was followed by shoreface progradation as reflected by the coarsening-upwards trend within the succession of siltstones, heteroliths and cross-bedded sandstones. The pebbly sandstones with bivalves and belemnites at the top of the lower unit represent a composite lag Fig. 20. Sandstone showing large-scale trough cross-bedding in the upper Payer Dal Formation. Bastians Dal, central Kuhn Ø. View towards the west. deposit that is interpreted to have formed by trans- gressive wave ravinement of the underlying shallow marine sands. Drowning resulted in a deeper water regime as reflected by the generally finer grain size of the upper unit compared to the lower unit. The coset of cross-bedded sandstones which occurs at the base of the upper unit in the Bastians Dal area may repre- sent a large, composite tidal sand bar which migrated towards the south-west. Bernbjerg Formation Facies. The Bernbjerg Formation covers much of the west side of Kuhn Ø and has been estimated to have a stratigraphic thickness of c. 450 m on Kuhn Ø (Figs 3, 7; Maync 1947; Surlyk 1977; Surlyk & Clemmensen 1983). It is dominated by dark grey to black mudstones that are generally thin-bedded to laminated and weather to form a yellow-tan fissile mudstone. The sediments are generally rich in plant debris, ammonites, belem- nites and locally the bivalve Buchia (Surlyk 1977). The formation overlies the Payer Dal Formation with a sharp boundary (see definition above). It is separated from overlying rift-climax sediments of the Wollaston Forland Group by an erosional, and locally angular, unconfor- mity in the eastern part of the Wollaston Forland basin where elevated fault block crests were eroded, and by a conformity in the western down-tilted part of the block (Surlyk 1977, 1978b, 1991). On Kuhn Ø, the age of the Bernbjerg Formation ranges from Late Oxfordian – Kimmeridgian on the basis of ammonites and dinocysts. The Bernbjerg Formation is readily subdivided into a lower heterolithic unit, the Ugpik Ravine Member of Surlyk (2003, this volume, fig. 5), and an upper unit dom- inated by uniform dark mudstones. In the Payer Dal area, the Ugpik Ravine Member is approximately 75 m thick (Surlyk 1977, figs 4, 24). It is of (?)Late Oxfordian – Early Kimmeridgian age based on ammonites (Sykes & Surlyk 1976; Surlyk 1977) and dinocysts. 87Sr/86Sr iso- tope values from a belemnite (Table 2) found a few metres above the base of the Bernbjerg Formation, indi- cate a latest Oxfordian – Early Kimmeridgian age (M. Engkilde, personal communication 1997). In section D, south Kingofjeld (Fig. 4), the Ugpik Ravine Member comprises seven coarsening-upwards heterolithic cycles, 5–14 m thick (Fig. 18). The lower part of each cycle typically consists of parallel to slightly undulating heterolithic laminae and thin beds. In the upper, more coarse-grained part, wave ripple and current ripple cross-lamination may occur. The cycles are separated by sharp erosional boundaries and, in some cases, by a lag rich in belemnites, wood fragments and well- rounded quartzite pebbles up to 4 cm in diameter. The Ugpik Ravine Member is capped by a sharp sur- face where heterolithic sediments are succeeded by a succession of dark grey to black mudstones. This upper unit of the Bernbjerg Formation is estimated to be sev- eral hundred metres thick on Kuhn Ø but was not mea- sured or described in detail. Palaeoenvironment. The sharp boundary at the base of the Bernbjerg Formation is interpreted as a major drowning surface formed during transgressive ravine- ment of the shallow marine sandstones of the under- lying Payer Dal Formation. The coarsening-upwards heterolithic cycles in the Ugpik Ravine Member repre- sent progradational events that resulted in progressive shallowing from the offshore to the lower or middle shoreface zone. The erosional boundaries and the localised lag deposits on top of the coarsening-upwards cycles are interpreted to have formed by transgressive reworking and winnowing. The sharp upper surface of the lower unit of the Bernbjerg Formation is interpreted as a major drowning surface marking the transition to offshore mudstones. Geochemistry. Hydrogen index (HI) values of six mud- stone samples from the Bernbjerg Formation fall in the range 32–143 mg HC/g TOC; TOC values range between 2.8% and 5.4%. The low HI values are thought to be a consequence of the proximal setting, close to the cra- tonic mainland towards the west and north. Most of the Bernbjerg Formation samples contain plant debris or coal fragments. Thickness variations and sediment geometry In the Payer Dal region, the total thickness of the shal- low marine sandstones of the Pelion and Payer Dal Formations varies from a minimum of 40 m at the crest of the fault-block to the east, to more than 350 m in Payer Dal itself and probably more than 500 m further west (Figs 7, 18). It is unclear if the thinning towards the east is due to onlap, depositional thinning, trunca- tion or some combination of these. However, subtle bed- ding plane features seen on the aerial photographs and panoramas suggest that some of the thinning is due to eastwards onlap of the formations onto the peneplaned basement or the Bastians Dal Formation (Fig. 10A). The 885 depositional onlap probably reflects differential subsi- dence due to the onset of fault block tilting, possibly combined with eustatic sea-level rise. In this context, it is noteworthy that some very coarse-grained, poorly sorted sandstones occur in the Pelion Formation or the lower unit of the Payer Dal Formation in the east of the Payer Dal area, suggesting a proximal setting close to the sediment source (Figs 4, 18; section E, Schwarze Wand). On south Kuhn Ø, the peneplaned surface of the basement has a regional strike of 160° and a dip of 9° to the WSW, mainly reflecting Jurassic and later fault block rotation. The top of the lower unit of the Payer Dal Formation has an average calculated regional strike of 160° and a dip of 6–7° to the WSW and represents a major drowning surface which was most likely close to horizontal at the time of deposition. Bedding planes within the Pelion Formation and the lower unit of the Payer Dal Formation dip 5–13° towards the WSW with an average strike of 165°. The dip variations observed in the Pelion Formation and the lower Payer Dal Formation may be explained by a sigmoidal clinoform model (Fig. 21). The clino- form surfaces are represented by individual dips mea- sured on bedding planes at discrete localities. The larger of these dips (10–13°) may represent foresets of sand bars or, on a larger scale, the slopes of prograding cli- noforms. The smaller values (5–7°) probably represent beds originally closer to horizontal with superimposed post-depositional structural rotation. Clinoforms are dif- ficult to define in the field, with the exception of a locality near the crest of Schwarze Wand, where clino- forms dip up to 15°. A sigmoidal model explains the variability of dips and fits the interpreted depositional setting with numerous progradational events separated by drowning. Diagenesis The heterogeneous distribution of calcite cement and the abundance of concretions, especially in the Pelion Formation and the lower unit of the Payer Dal Formation, is a striking and characteristic feature of the shallow marine sandstones. Concretions range in size from a few centimetres to over 30 cm in diameter. Concretionary calcite-cemented zones typically follow bedding planes, but in some places cut vertically up section. The source of the calcite cement is probably biogenic carbonate derived from the abundant calcareous shelly fauna that is associated with the cemented sandstones. The high vol- umes of calcite cement (34–42%) in several samples from the Pelion Formation and the lower Payer Dal Formation suggest that calcite precipitation took place at shallow to moderate burial depths. Concretionary zones along bedding planes are a common feature of similar age sandstones on the Norwegian continental shelf, and in onshore exposures in north-west Scotland and elsewhere in East Greenland (Fürsich 1982; Walderhaug et al. 1989; Bjørkum & Walderhaug 1990). Bjørkum & Walderhaug 886 A E SW (250°) NE Top lower unit Payer Dal Fm Top basement 6–7° 5–7° 5–7° 10–13° 10–13° 9° Fig. 21. Simplistic sigmoidal clinoform model constructed to explain structural data from south Kuhn Ø. The dips of the top of the lower Payer Dal Formation and the top basement surface are regional estimates based on calculations, whereas the slope angles of the dashed surfaces are based on measured dips from bedding planes at discrete localities. The higher dip values (10–13°) probably represent foresets of sand bars or, on a larger scale, the slopes of prograding clinoforms. The lower values (5–7°) probably represent beds deposited in a sub-horizontal attitude with superimposed post-depositional structural rotation. Sections A and E are c. 7 km apart; the lower Payer Dal Formation is c. 40 m thick in section E (Fig. 18). (1990) offered a detailed discussion of the nucleation and growth processes that create this fabric. Porosity and permeability measurements from core plugs taken from the sandstones of the Pelion and Payer Dal Formations reflect a strongly bimodal distribution of porosity and per- meability between the cemented and weakly cemented sandstones (Figs 14B, C, 22). Petrographic studies of sandstone samples from the upper Payer Dal Formation (Fig. 4, samples C-2, -16, -17, -39, -40, -43, -51) show that the sandstones have undergone mechanical compaction, but have not been buried deeply enough to induce silica cementation. Measurements undertaken on some of the sandstones give helium porosity values of 28–32% and permeabil- ity values of 438–4900 mD. The Jurassic sandstones from the Pelion and Payer Dal Formations of Kuhn Ø are very similar to Jurassic sandstones found on the mid-Norwegian shelf and in the Barents Sea with regard to original mineralogical composition, sorting and grain size. A minor difference is that parts of the correlative Fangst Group of the mid- Norwegian shelf are coarser grained and contain less biogenic carbonate. Calcite cement is not as volumet- rically important in the Jurassic sandstones of the mid- Norwegian shelf as it appears to be in samples from Kuhn Ø. This is probably a function of the higher con- tent of biogenic carbonate in the Kuhn Ø samples. Quartz cement is typically extensive in the deeply buried sandstones of the Norwegian shelf, but is lacking in the samples from Kuhn Ø, suggesting that the Jurassic deposits of Kuhn Ø have not been buried to depths where temperatures exceed 60–100°C (McBride 1989). Regional correlation Recognition of correlative regional surfaces in the Jurassic succession of the Wollaston Forland basin is difficult due to the abundance of local erosion surfaces in the tidal deposits and the restricted lateral extent of many of the outcrops. The most distinctive regional surfaces are the major drowning surfaces which separate the Jurassic suc- cession into a series of backstepping sedimentary units reflecting the overall Middle–Late Jurassic transgression (Surlyk & Clemmensen 1983; Surlyk 1991). Identification and tracing of the major drowning surfaces allow cor- 887 100 000 10 000 1000 100 10 1.0 0.1 0.01 0 10 20 Porosity (%) Pe rm ea bi lit y (m D ) 30 40 Fig. 22. Porosity and permeabil- ity of sandstones from the Pelion Formation and the lower Payer Dal Formation, Kuhn Ø. The bimodal distribution reflects the occurrence of cemented and poorly cemented sandstones (see Fig. 14B, C). 888 Sa nd Sa nd Sa nd Sa nd Sa nd Sa nd ? Se ct io n 1 Se ct io n 2 Se ct io n 3 Se ct io n 4 Se ct io n 5 C en tr al K uh n Ø Ba st ia ns D al SW W ol la st on F or la nd C ar di oc er as da l So ut he rn K uh n Ø Pa ye r D al So ut h N or th Se ct io n 6 So ut he rn H oc hs te tt er F or la nd K ul hu s / S øn dr e M us lin ge bj er g ? ? ? ? ? Ba st ia ns D al F m Sh el ls C al ci te c on cr et io ns Lo ca tio n of b el em ni te s co lle ct ed fo r Sr is ot op ic a na ly si s (T ab le 2 ) 10 0 m Be rn bj er g Fm Ja ko bs st ig en Fm Pe lio n Fm Pe rm ia n ca rb on at es a nd ev ap or ite s 32 k m 19 k m 31 k m M us lin ge bj er g Fm D s D s D s D s D s D s C ro ss -b ed di ng Tr ou gh c ro ss -b ed di ng W av e ri pp le c ro ss -la m in at io n Pl an ar la m in at io n an d be dd in g St ru ct ur el es s C oa l o r ca rb on ac eo us b ed s C al ed on ia n cr ys ta lli ne b as em en t Pe bb le s M aj or d ro w ni ng s ur fa ce Pe lio n Fm Pa ye r D al F m lo w er u ni t Pa ye r D al Fm up pe r un it Be rn bj er g Fm Be rn bj er g Fm Fi g. 2 3. C o rr el at io n o f th e Ju ra ss ic s u cc es si o n o n K u h n Ø w ith m o re o ff sh o re d ep o si ts t o t h e so u th i n W o lla st o n F o rl an d a n d m o re p ro xi m al , co as t- n ea r d ep o si ts t o t h e n o rt h i n H o ch st et te r Fo rl an d , b as ed o n b io st ra tig ra p h ic a n d 87 Sr /86 Sr i so to p e d at a. S ec tio n 1 is b as ed o n S u rl yk ( 19 77 ), V o sg er au ( 19 97 ) an d V o sg er au e t a l. (2 00 0) . Se ct io n s 2 –5 ar e b as ed o n S u rl yk ( 19 77 ) an d t h is s tu d y; s ec tio n 2 co rr es p o n d s to s ec tio n s C an d D , s ec tio n 3 to s ec tio n A (F ig s 4, 1 8) . S ec tio n 6 is b as ed o n C le m m en se n & S u rl yk ( 19 76 ) an d S u rl yk ( 19 77 ). relation of the sedimentary units, in combination with biostratigraphic and 87Sr/86Sr isotope data. The major drowning surfaces are, however, difficult to recognise in both the most proximal landwards areas where nearshore sandstones occur both below and above the surfaces and in the most distal areas where the sur- faces separate offshore mudstones. Biostratigraphic con- trol is limited at some levels due to the scarcity of ammonites in the sandstones and the low diversity and generally low biostratigraphic resolution of the dinocyst assemblages. Kuhn Ø occupies an intermediate position between the generally more offshore deposits to the south in Wollaston Forland and the more proximal succession to the north in Hochstetter Forland (Fig. 6). The suc- cessions in Wollaston Forland and Hochstetter Forland are briefly described below and a correlation with the sections on Kuhn Ø is suggested. In the Cardiocerasdal area, in south-west Wollaston Forland, crystalline basement is overlain by a thin Permian succession of carbonates and evaporites but the contact with overlying Jurassic sediments is not well-exposed. Maync (1947) reported a coarse-grained lag, 3–4 m thick, rich in shells and logs occurring near the basement in Cardiocerasdal. It is interpreted as a composite transgressive lag formed by shallow marine winnowing during transgression of basal fluvial deposits equivalent to the Bastians Dal Formation. The occur- rence of the ammonite Kepplerites tychonis Ravn at this level indicates a Late Bathonian age for the lag deposit (Maync 1947; Callomon 1993). In northern Wollaston Forland, the Pelion Formation rests directly on crys- talline basement. The basal part of the Pelion Formation is not well exposed in the Cardiocerasdal area and faulting makes thickness estimates uncertain. The uppermost 50 m of the formation are well-exposed, however, and consist of cross-bedded, tidally influenced sandstones show- ing S–SW palaeocurrent directions (Fig. 23). Calcite concretions are locally abundant, as observed in the sandstones of Kuhn Ø. The cross-bedded sandstones are interpreted to reflect shallow marine south-west migrating tidal bars or sandwaves (Surlyk 1977; Surlyk & Clemmensen 1983). The Pelion Formation is sepa- rated from the overlying Jakobsstigen Formation by a major drowning surface which can be correlated with that at the top of the Pelion Formation on Kuhn Ø (Fig. 23). On Kuhn Ø, this surface caps a regional, bench- forming, carbonate-cemented sandstone and in the west Kingofjeld section it is overlain by siltstones and het- eroliths of the lower Payer Dal Formation (Fig. 17). The age of this major drowning surface is not well-con- strained but it probably developed in Late Callovian time as indicated by dinoflagellate cysts from sediments below and above the surface and by a few finds of ammonites in the middle part of the Jakobsstigen Formation in Cardiocerasdal (Fig. 23). The strontium iso- topic ratios from belemnites from the uppermost Pelion Formation in the two areas are similar (Table 2) and indicate a Late or possibly a Middle Callovian age (M. Engkilde, personal communication 1997). The Jakobsstigen Formation is c. 130 m thick in Cardiocerasdal. It is of Early–Middle Oxfordian age, but the dating is not well-constrained. The formation con- sists of rhythmically interbedded coastal plain and shal- low marine deposits (Bojesen-Koefoed et al. 1997; Vosgerau et al. 2000). The Jakobsstigen Formation is capped by the next major drowning surface which is thought to correlate with the surface separating the lower and upper units of the Payer Dal Formation on Kuhn Ø (Fig. 23). The presence of coastal plain deposits within the Jakobsstigen Formation is indicative of depo- sition in a more up-dip position on the hangingwall than that represented by the cross-bedded tidal sandstones of the Payer Dal Formation. In Cardiocerasdal, the Jakobsstigen Formation is over- lain by a strongly bioturbated, faintly wave and current rippled heterolithic unit, c. 55 m thick, deposited in the shallow offshore zone, and forming the basal part of the Bernbjerg Formation. Ammonites indicate the Upper Oxfordian Amoeboceras glosense Chronozone (Fig. 23), and 87Sr/86Sr isotope values from three belemnites (Table 2) indicate a Late Oxfordian age (M. Engkilde, personal communication 1997). It is capped by a major drown- ing surface of late Amoeboceras glosense Chron age; this zone extends a few metres above the drowning sur- face. The drowning surface is correlated with the major drowning surface separating the upper unit of the Payer Dal Formation and the Bernbjerg Formation on Kuhn Ø (Fig. 23). In Cardiocerasdal, the succession above this drowning surface consists of more than 200 m of off- shore mudstones of the Bernbjerg Formation. The Jurassic succession on Hochstetter Forland was deposited at the head of the embayment in a more proximal setting than the succession on Kuhn Ø (Fig. 6). It overlies Upper Proterozoic dolomites on the south- west side of Søndre Muslingebjerg, a few kilometres south-east of Kulhus. Coal-bearing sediments of the Muslingebjerg Formation occur in an isolated down- faulted block at Kulhus in southern Hochstetter Forland (Clemmensen & Surlyk 1976; Petersen et al. 1998). The lower boundary is not exposed but the formation is con- 889 sidered to be c. 20 m thick. It consists of four coal beds, up to 3.5 m thick, interbedded with lagoonal and sub- ordinate shoreface sediments. Only one coal bed occurs at Søndre Muslingebjerg. It is c. 0.15 m thick and is sit- uated c. 3 m above basement. The coal beds at Kulhus thus wedge out towards the south-east within a distance of a few kilometres. Dinoflagellate cysts from marine sediments immediately above the uppermost coal bed at Kulhus indicate the top Upper Callovian P. athleta Chronozone (Fig. 23). The coal-bearing deposits of the Muslingebjerg Formation are overlain by a poorly exposed succession of shallow marine sandstones, c. 100 m thick, referred to the Payer Dal Formation. The top of the sandstone succession is dated by ammonites to the Upper Oxfordian, Amoeboceras glosense or Amoeboceras serratum Chronozone (Fig. 23; Sykes & Surlyk 1976). Further north in Hochstetter Forland, small outcrops of Lower Kimmeridgian offshore mudstones have been reported (Surlyk 1978a). Summary and conclusions Kuhn Ø offers an excellent study locality of Middle– Upper Jurassic early syn-rift stratigraphy in a half-graben setting. The Jurassic succession rests directly on the peneplaned surface of the crystalline basement. The main geometrical features are a marked thickening of the Jurassic from the eastern crestal area into the graben to the west and eastwards onlap onto the crystalline base- ment peneplain. The main conclusions are as follows. 1. Five Jurassic early rift formations are recognised below the rift-climax Wollaston Forland Group on Kuhn Ø. They include the Bastians Dal (new) and Muslingebjerg Formations of Middle Jurassic age, the Pelion Formation (revised) of Late Bathonian – Late Callovian age, the Payer Dal Formation (new) of Early – early Late Oxfordian age, and the Bernbjerg Formation of (?)Late Oxfordian – Kimmeridgian age. 2. The Bastians Dal Formation consists of a succes- sion of fluvial conglomerates and pebbly sandstones up to 150 m thick. On central Kuhn Ø, the coarse- grained deposits are interpreted to fill an incised valley system, probably of Early and early Middle Jurassic age. On southern Kuhn Ø, the unit is thin- ner, possibly because the exposures are located at the margin of the valley system. The position of the incised valley system was probably controlled by zones of structural weakness. The fluvial conglom- erates and sandstones were deposited during early base-level rise. During continuing and possibly accel- erating base-level rise, the fluvial environments became covered with peat swamps shortly before the valley was completely filled. Eventually the val- ley and the adjacent interfluves were flooded, prob- ably in Late Bathonian – Early Callovian times. 3. Coals of the Muslingebjerg Formation on south Kuhn Ø comprise kerogen types II–III, contain over 50% TOC and give high hydrogen index values (up to 700 mg HC/g TOC), thus indicating that they rep- resent a good oil-prone source rock. 4. The Pelion Formation on Kuhn Ø is interpreted to reflect deposition in the lower to upper shoreface based on the dominance of evenly laminated, swa- ley cross-stratified, or strongly bioturbated fine- to medium-grained sandstones alternating with wave rippled or trough cross-bedded, medium- to coarse- grained sandstones. 5. The Payer Dal Formation is subdivided into two units separated by a major drowning surface. The formation is dominated by trough cross-bedded sandstones formed by migration of shallow marine tidal sandwaves and sand bars towards the S–SW. The generally finer grain size of the upper unit of the formation suggests a deeper water setting than that represented by the Pelion Formation and the lower unit of the Payer Dal Formation. 6. The Pelion and Payer Dal Formations are petro- graphically very similar to Jurassic sandstones from the mid-Norwegian shelf and the Barents Sea with regard to original mineralogical composition, sort- ing and grain size. However, the Pelion and Payer Dal Formations have not been buried to sufficient depths to induce silica cementation. Porosity and permeability data from the Pelion Formation and the lower unit of the Payer Dal Formation show a strongly bimodal distribution between calcite- cemented and weakly-cemented quartz sandstones. The calcite cement was probably derived from car- bonate fossils and developed into concretionary fab- rics. The upper unit of the Payer Dal Formation is generally a weakly-cemented quartz sandstone with helium porosities around 30%. 7. The Bernbjerg Formation mudstones are compara- ble to the Upper Jurassic source rock of the mid- 890 Norwegian shelf, but give low HI values (32–143 mg HC/g TOC) reflecting the proximal setting relative to the cratonic mainland to the west. 8. The most distinct regional key stratigraphic surfaces are the major drowning surfaces which separate the Jurassic package into a succession of backstepping sedimentary units. Identification and tracing of the major drowning surfaces in combination with bio- stratigraphic and 87Sr/86Sr isotope data allow corre- lation of the sedimentary units within the Wollaston Forland basin. In proximal settings, however, shal- low marine sandstones may occur both below and above the major drowning surfaces making it diffi- cult or impossible to distinguish the sedimentary units. Acknowledgements P.C. Alsgaard and V.L. Felt are grateful to their main spon- sor Amoco Norway Oil Company who also gave them permission to publish, and to Statoil and the other Wollgan partners who let Amoco participate in the pro- ject. We thank the following colleagues for biostrati- graphic and isotope stratigraphic information: D.G. Benson and S. Piasecki (palynology), J.A. Bergen and J.R. Groves (nannoplankton and foraminifera), J.H. Callomon (ammonites), and M. Engkilde (Sr isotopes). Statoil and Saga are thanked for providing dinoflagel- late cyst data from the Pelion, Jakobsstigen, and Bernbjerg Formations in the Cardiocerasdal area. Petrography was performed by O. Walderhaug and L. Bonnell of Rogaland Research. Core analysis was done by D. Russel of Schlumberger Geoquest, and source rock analysis by G. von Graas of Statoil and I.L. Ferriday of Geolab Nor. G. Artigas and other Amoco employees gave valuable contributions to the article. We are grateful to A.G. Whitham, T. Olsen and especially J.R. Ineson for constructive and helpful reviews. S. Broen-Jensen was an effective base camp manager; we thank him and the Sirius Sledge Patrol for their help. Support to F. Surlyk from the Danish Natural Science Research Council is gratefully acknowledged. References Bjørkum, P.A. & Walderhaug, O. 1990: Geometrical arrangement of calcite cementation within shallow marine sandstones. Earth-Science Reviews 29, 145–161. Bojesen-Koefoed, J.A., Christiansen, F.G., Petersen, H.I., Piasecki, S., Stemmerik, L. & Nytoft, H.P. 1996: Resinite coals of north- east Greenland – a hitherto unrecognised, highly oil-prone Jurassic source rock. Canadian Petroleum Geology Bulletin 44, 458–473. Bojesen-Koefoed, J.A., Petersen, H.I., Surlyk, F. & Vosgerau, H. 1997: Organic petrography and geochemistry of inertinite-rich mudstones, Jakobsstigen Formation, Upper Jurassic, northeast Greenland: indications of forest fires and variations in relative sea-level. International Journal of Coal Geology 34, 345–370. Callomon, J.H. 1993: The ammonite succession in the Middle Jurassic of East Greenland. Bulletin of the Geological Society of Denmark 40, 83–113. Cant, D.J. & Walker, R.G. 1976: Development of a braided flu- vial facies model for the Devonian Battery Point Sandstone, Quebec. Canadian Journal of Earth Sciences 13, 102–119. Clemmensen, L.B. & Surlyk, F. 1976: Upper Jurassic coal-bearing shoreline deposits, Hochstetter Forland, East Greenland. Sedimentary Geology 15, 193–211. Engkilde, M. & Surlyk, F. 2003: Shallow marine syn-rift sedi- mentation: Middle Jurassic Pelion Formation, Jameson Land, East Greenland. In: Ineson, J.R. & Surlyk, F. (eds): The Jurassic of Denmark and Greenland. Geological Survey of Denmark and Greenland Bulletin 1, 813–863 (this volume). Fürsich, F.T. 1982: Rhythmic bedding and shell bed formation in the Upper Jurassic of East Greenland. In: Einsele, G. & Seilacher, A. (eds): Cyclic and event stratification, 208–222. Berlin: Springer Verlag. Jones, C.E., Jenkyns, H.C., Coe, A.L. & Hesselbo, S.P. 1994: Stron- tium isotopic variations in Jurassic and Cretaceous seawaters. Geochimica et Cosmochimica Acta 58, 3061–3074. Koch, L. 1955: Report on the expeditions to central East Greenland 1926–1939, conducted by Lauge Koch. Part II. Meddelelser om Grønland 143(2), 642 pp. Koch, L. & Haller, J. 1971: Geological map of East Greenland 72°–76°N. Lat. (1:250 000). Meddelelser om Grønland 183, 26 pp, 13 maps. Maync, W. 1947: Stratigraphie der Jurabildungen Ostgrönlands zwis- chen Hochstetterbugten (75°N) und dem Kejser Franz Joseph Fjord (73°N). Meddelelser om Grønland 132(2), 223 pp. McBride, E.F. 1989: Quartz cement in sandstones: a review. Earth- Science Reviews 26, 69–112. Miall, A.D. 1977: A review of the braided river depositional envi- ronment. Earth-Science Reviews 13, 1–62. Petersen, H.I., Bojesen-Koefoed, J.A., Nytoft, H.P., Surlyk, F., Therkelsen, J. & Vosgerau, H. 1998: Liptinite-enriched coal facies cycles and sequence stratigraphy of a paralic coal-bear- ing succession, Middle Jurassic, Hochstetter Forland, North- East Greenland. International Journal of Coal Geology 36, 1–30. Piasecki, S. & Stemmerik, L. in press: Jurassic dinoflagellate cysts from Hochstetter Forland, North-East Greenland. In: Stemmerik, L. & Stouge, S. (eds): The Jurassic of North-East Greenland. Geological Survey of Denmark and Greenland Bulletin. Piasecki, S., Callomon, J.H. & Stemmerik, L. in press: Jurassic dino- flagellate cyst stratigraphy of Store Koldewey, North-East Green- land. In: Stemmerik, L. & Stouge, S. (eds): The Jurassic of North-East Greenland. Geological Survey of Denmark and 891 892 Greenland Bulletin. Surlyk, F. 1977: Stratigraphy, tectonics and palaeogeography of the Jurassic sediments of the areas north of Kong Oscars Fjord, East Greenland. Bulletin Grønlands Geologiske Undersøgelse 123, 56 pp. Surlyk, F. 1978a: Mesozoic geology and palaeogeography of Hochstetter Forland, East Greenland. Bulletin of the Geological Society of Denmark 27, 73–87. Surlyk, F. 1978b: Submarine fan sedimentation along fault scarps on tilted fault blocks (Jurassic–Cretaceous boundary, East Greenland). Bulletin Grønlands Geologiske Undersøgelse 128, 108 pp. Surlyk, F. 1990: Timing, style and sedimentary evolution of Late Palaeozoic – Mesozoic extensional basins of East Greenland. In: Hardman, R.P.F. & Brooks, J. (eds): Tectonic events respon- sible for Britain’s oil and gas reserves. Geological Society Special Publication (London) 55, 107–125. Surlyk, F. 1991: Sequence stratigraphy of the Jurassic – lowermost Cretaceous of East Greenland. American Association of Petroleum Geologists Bulletin 75, 1468–1488. Surlyk, F. 2003: The Jurassic of East Greenland: a sedimentary record of thermal subsidence, onset and culmination of rift- ing. In: Ineson, J.R. & Surlyk, F. (eds): The Jurassic of Denmark and Greenland. Geological Survey of Denmark and Greenland Bulletin 1, 659–722 (this volume). Surlyk, F. & Clemmensen, L.B. 1983: Rift propagation and eustacy as controlling factors during Jurassic inshore and shelf sedi- mentation in northern East Greenland. Sedimentary Geology 34, 119–143. Sykes, R.M. & Surlyk, F. 1976: A revised ammonite zonation of the Boreal Oxfordian and its application in Northeast Green- land. Lethaia 9, 421–436. Vischer, A. 1943: Die postdevonische Tektonik von Ostgrönland zwischen 74° und 75°N. Br., Kuhn Ø, Wollaston Forland, Clavering Ø und angrenzende Gebiete. Meddelelser om Grønland 133(1), 195 pp. Vosgerau, H. 1997: Depositional environments and sequence stratigraphy of a Middle–Upper Jurassic early syn-rift succes- sion deposited in a low gradient epeiric seaway, the Wollaston Forland Basin, Northeast Greenland 1–3, 110 pp. Unpublished Ph.D. thesis, University of Copenhagen, Denmark. Vosgerau, H., Bojesen-Koefoed, J.A., Petersen, H.I. & Surlyk, F. 2000: Forest fires, climate and sea-level changes in a coastal plain – shallow marine succession (Early–Middle Oxfordian Jakobsstigen Formation, North-East Greenland). Journal of Sedimentary Research 70, 408–418. Vosgerau, H., Larsen, M., Piasecki, S. & Therkelsen, J. in press: A new Middle–Upper Jurassic succession of Hold with Hope, North-East Greenland. In: Stemmerik, L. & Stouge, S. (eds): The Jurassic of North-East Greenland. Geological Survey of Denmark and Greenland Bulletin. Walderhaug, O., Bjørkum, P.A. & Nordgård Bolås, H.M. 1989: Correlation of calcite-cemented layers in shallow-marine sand- stones of the Fensfjord Formation in the Brage Field. In: Collinson, J.D. (ed.): Correlation in hydrocarbon exploration, 367–375. London: Graham & Trotman for the Norwegian Petroleum Society (NPF). Manuscript received 7 November 1996; revision accepted 27 January 1998.