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Shuram-Wonoka anomaly

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Journal Article
Published: 01 October 2020
Russ. Geol. Geophys. (2020) 61 (10): 1121–1135.
... and amplitude to similar isotope excursion in the Vendian strata of the southern Siberian Platform and to the global middle Ediacaran ShuramWonoka anomaly. According to the data on clastic zircons, the age of the Chistyakovka Formation is no older than 580 Ma, which agrees with the earlier estimated age...
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Journal Article
Journal: GSA Bulletin
Published: 08 March 2019
GSA Bulletin (2019) 131 (9-10): 1673–1701.
..., while the overlying Gametrail Formation features a large negative carbon isotope anomaly with δ 13 C carb values as low as –13‰ that correlates with the globally developed Shuram-Wonoka anomaly. We also define the Rackla Group, which includes the youngest (Ediacaran) portions of the Windermere...
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Journal Article
Published: 09 December 2021
Geological Magazine (2022) 159 (7): 999–1013.
.... This glacial period seems not to be related to the negative δ 13 C ShuramWonoka anomaly. Sedimentary deposits formed during the Upper Ediacaran Glacial Period show a scattered distribution along the marginal orogens of the Gondwana supercontinent independent of palaeolatitude and are coupled most likely...
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Series: Geological Society, London, Memoirs
Published: 01 January 2011
DOI: 10.1144/M36.4
EISBN: 9781862394117
... much of the subsequent Cryogenian and Ediacaran periods. The earliest known large negative δ 13 C excursion appears to post-date 811 Ma and fluctuations became progressively more extreme, culminating in the late-Ediacaran ‘ShuramWonokaanomaly. The negative excursions are commonly associated with pre...
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Fig. 5.
Published: 18 September 2018
Fig. 5. Global context and alternative temporal scenarios for the Vestertana Group. The carbon isotope stratigraphy with two alternative placements of negative excursion EN3, which is believed to correspond to the ShuramWonoka anomaly, is based on Narbonne et al. (2012) . The Lillevannet
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Composite C-isotopic profile of the Dalradian (open large diamonds) compared with the proposed global Neoproterozoic curve (grey background symbols; this version of the global curve was provided by G. Halverson, pers. comm.). Placement of the Dalradian data on the global curve is based on the stratigraphic position of carbonate rock units and their associated C-isotopic trends relative to the correlation of the Dalradian glacial rocks with those of the global curve. (Note that this version of the global curve places the Shuram–Wonoka anomaly antecedent to the Gaskiers glaciation.)
Published: 01 September 2009
on the stratigraphic position of carbonate rock units and their associated C-isotopic trends relative to the correlation of the Dalradian glacial rocks with those of the global curve. (Note that this version of the global curve places the ShuramWonoka anomaly antecedent to the Gaskiers glaciation.)
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 Compilation from Halverson et al. (2007) of Sr isotope data from least-altered samples from several Neoproterozoic sections. Carbon isotope data are shown with faint symbols (geographical area not distinguished). No data are shown within the Sturtian and Marinoan deposits, which are given an arbitrary duration. The whole interval from the ‘Bitter Springs Stage’, constrained within a few tens of millions of years to 800 Ma (Halverson 2006), to the Ediacaran displays a long-term rise, with evidence of a weak pre-Sturtian decline in 87Sr/86Sr in Svalbard and Greenland (Fairchild et al. 2000). The registration of the Gaskiers glaciation with respect to the strong negative carbon isotope anomaly (Shuram–Wonoka anomaly) is not constrained radiometrically and other workers have placed it up to 30 Ma younger (Condon et al. 2005; Fike et al. 2006).
Published: 01 September 2007
( Fairchild et al . 2000 ). The registration of the Gaskiers glaciation with respect to the strong negative carbon isotope anomaly (ShuramWonoka anomaly) is not constrained radiometrically and other workers have placed it up to 30 Ma younger ( Condon et al . 2005 ; Fike et al . 2006 ).
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Analogues of the Ediacaran Shuram-Wonoka C-isotope anomaly (‰) in the Vendian sections of the south of the Siberian Platform. Used chemostratigraphic data sources: South of Yenisei Ridge, this study and (Khomentovskii et al., 1998); Patom Upland (Pelechaty, 1998; Pokrovskii et al., 2006; Rud’ko et al., 2017); inner areas (Kochnev et al., 2018); Yudoma-Maya trough (Semikhatov et al., 2004). 1, limestones; 2, clayey limestones; 3, limestone breccias; 4, dolostones; 5, clayey dolostones; 6, dolomite marls; 7, conglomerates; 8, gravelstones; 9, sandstones; 10, siltstones; 11, mudstones; 12, diamictites; 13–15, small shelly fossils (Khomentovsky and Karlova, 2002; Kochnev and Karlova, 2010; Kochnev et al., 2018): 13, N. sunnaginicus Zone of the Tommotian Stage; 14, P. antiqua Zone of the Nemakit-Daldynian Regional Stage; 15, A. trisulcatus Zone of the Nemakit-Daldynian Regional Stage; 16, ichnofossils Treptichnus pedum (Kochnev and Karlova, 2010; Sovetov, 2018); 17, skeletal fossils Namacalathus sp. (Shemin et al., 2011); 18, macroalgae Vendotaenia (Kochnev and Karlova, 2010); 19, Ediacaran acantomorphous microfosils (Golubkova et al., 2010 and references therein); 20, minimal ages by detrital zircons: this study and (Chumakov et al., 2011; Kochnev et al., 2015; Priyatkina et al., 2018). Abbreviated formation names: ir, Irkineeva; ost, Ostrovnoy, rd, Redkolesny; ms, Moshakova; cs, Chistyakova; al, Aleshina; nh, Nokhtuisk; tn, Tinnaya; gr, Zherba; ch, Chencha; nk, Nikolskoye; kl, Kalancha; ur, Ura; br, Barakun; bp, Bol’shoy Patom, mr, Mariinka; jur, Juryakh; kd, Kudulakh; us, Uspun; bk, Byuk; hrs, Kharystan; pr, Parshino; in, Inakh; bs, Besyuryakh; tl, Talakh; hr, Khoronokh; bt, Betinche; kt, Conglomerate Member; ps, Pestrotsvet; st, Sytyga; tk, Tokur; ml, Mal; yl, Yalan; nc, Nachar; kn, Kandyk. ICC, International Chronostratigraphic chart; CSS, Common Stratigraphic Scale.
Published: 01 October 2020
Fig. 5. Analogues of the Ediacaran Shuram-Wonoka C-isotope anomaly (‰) in the Vendian sections of the south of the Siberian Platform. Used chemostratigraphic data sources: South of Yenisei Ridge, this study and ( Khomentovskii et al., 1998 ); Patom Upland ( Pelechaty, 1998 ; Pokrovskii et al
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Timing of the Upper Ediacaran Glacial Period in the Cadomian orogenic belt and related areas and its calibration to the δ13C curve: in black after Halverson et al. (2005); in orange modification based on new age constraints for the Shuram–Wonoka anomaly by Rooney et al. (2020). Geochronological constraints of the glacial deposits are shown in the upper right of the figure. Bracketed numbers correspond to references. Same numbers mark the palaeogeographical position in the palinspastic map represented in the lower right. Latin numbers: 1 – this study; 2 and 3 – Linnemann et al. (2018); 4 – Errami et al. (2021); 5 – Vickers-Rich et al. (2013); 5 – Etemad–Saeed et al. (2016). Roman numbers: I – orogenic belts marginal to Gondwana (peri–Gondwanan Neoproterozoic rocks of the Avalonian and Cadomian orogens and related areas in Turkey, the Aegean, the Dobrogea and Iran); II – Neoproterozoic rocks of the Pan–African orogens in the interior of Gondwana; III – Mesoproterozoic orogenic belts; IV – cratonic areas (Palaeoproterozoic to Archaean) (modified from Linnemann et al. 2000).
Published: 09 December 2021
Fig. 11. Timing of the Upper Ediacaran Glacial Period in the Cadomian orogenic belt and related areas and its calibration to the δ 1 3 C curve: in black after Halverson et al . ( 2005 ); in orange modification based on new age constraints for the ShuramWonoka anomaly by Rooney et al . ( 2020
Journal Article
Published: 18 September 2018
Canadian Journal of Earth Sciences (2018) 55 (11): 1253–1261.
...Fig. 5. Global context and alternative temporal scenarios for the Vestertana Group. The carbon isotope stratigraphy with two alternative placements of negative excursion EN3, which is believed to correspond to the ShuramWonoka anomaly, is based on Narbonne et al. (2012) . The Lillevannet...
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Journal Article
Published: 01 September 2009
Journal of the Geological Society (2009) 166 (5): 845–857.
... on the stratigraphic position of carbonate rock units and their associated C-isotopic trends relative to the correlation of the Dalradian glacial rocks with those of the global curve. (Note that this version of the global curve places the ShuramWonoka anomaly antecedent to the Gaskiers glaciation.) ...
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Journal Article
Published: 07 July 2014
Journal of the Geological Society (2014) 171 (5): 709–722.
...Gregory J. Retallack; André Marconato; Jeffery T. Osterhout; Kathryn E. Watts; Ilya N. Bindeman Abstract The global Late Ediacaran ShuramWonoka carbon isotope anomaly has been regarded as the largest and longest known isotopic anomaly in the ocean, assuming that all Ediacaran carbonate is marine...
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Journal Article
Published: 01 January 2009
Journal of the Geological Society (2009) 166 (1): 129–135.
... al . 1998 ; Halverson et al . 2002 ; Hoffman & Schrag 2002 ) but the genesis of the most dramatic excursion, the ShuramWonoka anomaly in latest Neoproterozoic time ( Burns & Matter 1993 ; Calver 2000 ; McKirdy et al . 2001 ; Fike et al . 2006 ; Le Guerroué et al . 2006 ; Melezhik...
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Journal Article
Journal: Geology
Published: 12 October 2020
Geology (2021) 49 (3): 248–252.
..., known as the “Wonoka anomaly,” which correlates with the Shuram excursion ( Calver, 2000 ; Husson et al., 2015 ). Figure 1. Paleolocations of our two studied formations during the beginning of the Shuram excursion (ca. 580 Ma), following the paleogeographic reconstruction of Yao et al. (2014...
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Journal Article
Journal: Geology
Published: 01 June 2017
Geology (2017) 45 (6): 567–570.
.... , Bowring , S.A. , Wang , W. , Yang , A. , and Jin , Y. , 2005 , Ages from the Neoproterozoic Doushantuo Formation, China : Science , v. 308 , p. 95 – 98 , doi:10.1126/science.1107765. Derry , L.A. , 2010 , A burial diagenesis origin for the Ediacaran Shuram-Wonoka carbon...
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Journal Article
Published: 12 November 2021
Geological Magazine (2022) 159 (7): 1071–1092.
... to be of Ediacaran age (Halverson et al . 2005 ). A dolomite bed 20 m below the Mortensnes diamictite on the neighbouring Varanger Peninsula contains depleted δ 13 C values (< −8‰) considered ‘a likely correlative of the ShuramWonoka anomaly’ (Rice et al . 2011 , p. 598), and it is thought to correlate...
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Journal Article
Published: 01 March 2008
Geological Magazine (2008) 145 (2): 161–172.
... primary nature (−7.9 ± 1.2 ‰ on average, n = 93) makes the Leivset marble unique. This, together with a high Sr content (up to 8740 ppm) that buffered 87 Sr/ 86 Sr ratios between 0.70802 and 0.70872, suggests correlation with the worldwide ShuramWonoka isotopic event occurring within the 600–550 Ma time...
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Journal Article
Published: 28 October 2021
Journal of the Geological Society (2022) 179 (2): jgs2021-081.
.... 2018 . Ediacaran extinction and Cambrian Explosion . Trends in Ecology & Evolution , 33 , 653 – 663 , https://doi.org/10.1016/j.tree.2018.06.003 Derry , L.A. 2010 . A burial diagenesis origin for the Ediacaran ShuramWonoka carbon isotope anomaly . Earth and Planetary Science...
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Journal Article
Journal: GSA Bulletin
Published: 01 July 2011
GSA Bulletin (2011) 123 (7-8): 1539–1559.
...‰, variably named the “Shuram excursion” from chemostratigraphic profiles from Oman or the “Wonoka anomaly” after profiles from South Australia (e.g., Halverson et al., 2005 ; Fike et al., 2006 ; Bowring et al., 2007 ). However, the same observations have also led to alternative viewpoints holding...
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Journal Article
Journal: Geology
Published: 27 April 2020
Geology (2020) 48 (7): 708–712.
....2016.12.010 . Derry , L.A. , 2010 , A burial diagenesis origin for the Ediacaran Shuram-Wonoka carbon isotope anomaly : Earth and Planetary Science Letters , v. 294 , p. 152 – 162 , https://doi.org/10.1016/j.epsl.2010.03.022 . Fike , D.A. , Grotzinger , J.P. , Pratt , L.M...
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