Thermo-tectonic development of the Wandel Sea Basin, North Greenland

IF 2 4区 地球科学 Q1 GEOLOGY
P. Japsen, P. Green, J. Chalmers
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引用次数: 4

Abstract

The Carboniferous–Palaeogene Wandel Sea Basin of eastern North Greenland (north of 80°N, east of 40°W) is an important piece in the puzzle of Arctic geology. It is particularly important for understanding how the Paleocene–Eocene convergence between Greenland, the Canadian Arctic and Svalbard relates to the compressional tectonics in the High Arctic, collectively known as the Eurekan Orogeny. In this study, we present apatite fission-track analysis (AFTA) data and review published vitrinite reflectance data combined with observations from the stratigraphic record to place firmer constraints on the timing of key tectonic events. This research study reveals a long history of episodic burial and exhumation since the collapse of the Palaeozoic fold belts in Greenland. Our results define pre-Cenozoic exhumation episodes in early Permian, Late Triassic, Late Jurassic and mid-Cretaceous times, each involving the removal of kilometre-scale sedimentary covers. Mid-Paleocene exhumation defines the timing of compression along the major fault zones during the first stage of the Eurekan Orogeny, after the onset of sea-floor spreading west of Greenland. Regional exhumation that began at the end of the Eocene led to the removal of most of a kilometre-thick cover that had accumulated during Eocene subsidence and involved a major reverse movement along the Harder Fjord Fault Zone, northern Peary Land. These events took place after the end of sea-floor spreading west of Greenland, and thus, represent post-Eurekan tectonics. Mid–late Miocene exhumation is most likely a consequence of uplift and incision across most of the Wandel Sea Basin study area. The preserved sedimentary sequences of the Wandel Sea Basin represent remnants of thicker strata that likely extended substantially beyond the present-day outline of the basin. We find that the present-day outline of the basin with scattered sedimentary outliers is primarily the result of fault inversion during Eurekan compression followed by deposition and removal of a kilometre-thick overburden.
北格陵兰万德尔海盆地热构造发育
北格陵兰东部石炭-古近系万德尔海盆地(北80°N,东40°W)是北极地质难题中的一个重要组成部分。这对于理解格陵兰岛、加拿大北极和斯瓦尔巴群岛之间的古新世-始新世交汇与高北极的挤压构造(统称为尤里坎造山运动)之间的关系尤为重要。在这项研究中,我们提供了磷灰石裂变轨道分析(AFTA)数据,并结合地层记录的观测结果审查了已发表的镜质组反射率数据,以对关键构造事件的时间设置更严格的限制。这项研究揭示了自格陵兰古生代褶皱带坍塌以来,幕式埋葬和挖掘的悠久历史。我们的研究结果确定了二叠纪早期、三叠纪晚期、侏罗纪晚期和白垩纪中期的新生代前剥露事件,每一次都涉及千米级沉积盖层的移除。古新世中期的剥露确定了尤里坎造山运动第一阶段,即格陵兰岛以西海底扩张开始后,沿主要断裂带挤压的时间。始新世末开始的区域挖掘导致了始新世沉降期间积累的大部分一公里厚的覆盖层被清除,并涉及沿皮尔里地北部的哈德峡湾断裂带的重大反向运动。这些事件发生在格陵兰岛以西海底扩张结束之后,因此代表了后尤里卡构造。中新世中晚期的剥露很可能是Wandel海盆地研究区大部分地区隆起和切割的结果。Wandel海盆地保存的沉积序列代表了较厚地层的残余,这些地层可能远远超出了现今盆地的轮廓。我们发现,具有分散沉积异常值的盆地现今轮廓主要是尤里坎压缩期间断层反转的结果,随后沉积并去除了一公里厚的覆盖层。
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来源期刊
Geus Bulletin
Geus Bulletin GEOLOGY-
CiteScore
2.80
自引率
17.60%
发文量
8
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