Matches in SemOpenAlex for { <https://semopenalex.org/work/W2020370906> ?p ?o ?g. }
- W2020370906 endingPage "53" @default.
- W2020370906 startingPage "39" @default.
- W2020370906 abstract "We investigate the mantle dynamics beneath the North China Craton (NCC) and surrounding regions based on a synthesis of recent P-wave mantle tomographic data down to depths of 600–800 km and their correlation with the surface geological features, with particular reference to the Paleoproterozoic tectonic events associated with the incorporation of the NCC within the Columbia supercontinent amalgam. From the tomographic images, we identify a hot corridor in the mantle transition zone beneath the central region of the Western Block of the NCC sandwiched between two cold corridors. This scenario is similar to the donut-shaped high-velocity anomaly surrounding a region of low-velocity anomaly in the lowermost mantle under the Pacific and suggests that the cold regions might represent slab graveyards which provide the fuel for the plumes rising from the center. A tomographic transect along the collisional suture of the NCC with the Columbia supercontinent, covering the Yinshan-Ordos Blocks in the Western Block through the Central Orogenic Belt and into the Eastern Block of the NCC reveals a ca. 250 km thick lithospheric keel below the Ordos Block defined by a prominent high-velocity anomaly. We identify slab break-off and asthenospheric upwelling in this region and suggest that this process probably initiated the thermal and material erosion of the tectosphere beneath the Eastern Block from the Paleoproterozoic, which was further intensified during the Mesozoic when a substantial part of the sub-continental mantle lithosphere was lost. We visualize heat input from asthenosphere and interaction between asthenosphere and overlying carbonated tectosphere releasing CO2-rich fluids for the preservation of ultra-high temperature (ca. 1000 °C) metamorphic rocks enriched in CO2 as well as high-pressure mafic granulites as a paired suite in this region. We also identify a hot swell of the asthenosphere rooted to more than 200 km depth and reaching up to the shallow mantle in the tomographic section along 35°N latitude at a depth of 800 km. This zone represents a cross-section through the southern part of the NCC. The surface distribution of Paleoproterozoic Xiong’er lavas and mafic dykes in this region would indicate that this region might have evidenced similar upwellings in the past. Our study has important implications in understanding the evolution of the NCC and suggests that the extensive modification of the mantle architecture and lithospheric structure beneath one of the fundamental Precambrian nuclei of Asia had a prolonged history probably dating from the Paleoproterozoic suturing of the NCC within the Columbia supercontinent amalgam." @default.
- W2020370906 created "2016-06-24" @default.
- W2020370906 creator A5013582768 @default.
- W2020370906 creator A5060053337 @default.
- W2020370906 creator A5077567100 @default.
- W2020370906 date "2010-01-01" @default.
- W2020370906 modified "2023-10-18" @default.
- W2020370906 title "Mantle dynamics of the Paleoproterozoic North China Craton: A perspective based on seismic tomography" @default.
- W2020370906 cites W1963766798 @default.
- W2020370906 cites W1965625536 @default.
- W2020370906 cites W1970458022 @default.
- W2020370906 cites W1977431633 @default.
- W2020370906 cites W1986546254 @default.
- W2020370906 cites W1987423017 @default.
- W2020370906 cites W1987737497 @default.
- W2020370906 cites W1987936521 @default.
- W2020370906 cites W1988814630 @default.
- W2020370906 cites W1991259689 @default.
- W2020370906 cites W1993133693 @default.
- W2020370906 cites W1997859575 @default.
- W2020370906 cites W2002471053 @default.
- W2020370906 cites W2005520120 @default.
- W2020370906 cites W2012201259 @default.
- W2020370906 cites W2012359517 @default.
- W2020370906 cites W2025050632 @default.
- W2020370906 cites W2033117518 @default.
- W2020370906 cites W2035798118 @default.
- W2020370906 cites W2036409086 @default.
- W2020370906 cites W2042345416 @default.
- W2020370906 cites W2043003723 @default.
- W2020370906 cites W2043021600 @default.
- W2020370906 cites W2046653975 @default.
- W2020370906 cites W2047770336 @default.
- W2020370906 cites W2050596379 @default.
- W2020370906 cites W2054247338 @default.
- W2020370906 cites W2055343428 @default.
- W2020370906 cites W2055715194 @default.
- W2020370906 cites W2059902025 @default.
- W2020370906 cites W2059968799 @default.
- W2020370906 cites W2064252656 @default.
- W2020370906 cites W2065463075 @default.
- W2020370906 cites W2066381964 @default.
- W2020370906 cites W2074186503 @default.
- W2020370906 cites W2077474983 @default.
- W2020370906 cites W2083795015 @default.
- W2020370906 cites W2083819260 @default.
- W2020370906 cites W2088105278 @default.
- W2020370906 cites W2088724130 @default.
- W2020370906 cites W2092498648 @default.
- W2020370906 cites W2093263440 @default.
- W2020370906 cites W2094472503 @default.
- W2020370906 cites W2097292339 @default.
- W2020370906 cites W2113390498 @default.
- W2020370906 cites W2114178700 @default.
- W2020370906 cites W2114561992 @default.
- W2020370906 cites W2116673257 @default.
- W2020370906 cites W2118710907 @default.
- W2020370906 cites W2120387369 @default.
- W2020370906 cites W2121655921 @default.
- W2020370906 cites W2123985829 @default.
- W2020370906 cites W2123995732 @default.
- W2020370906 cites W2128522407 @default.
- W2020370906 cites W2130869872 @default.
- W2020370906 cites W2141443242 @default.
- W2020370906 cites W2151039219 @default.
- W2020370906 cites W2161238196 @default.
- W2020370906 cites W2164636100 @default.
- W2020370906 cites W2165712457 @default.
- W2020370906 cites W2167380722 @default.
- W2020370906 cites W2167856052 @default.
- W2020370906 cites W2169278971 @default.
- W2020370906 cites W2170339782 @default.
- W2020370906 cites W2260902065 @default.
- W2020370906 doi "https://doi.org/10.1016/j.jog.2009.09.043" @default.
- W2020370906 hasPublicationYear "2010" @default.
- W2020370906 type Work @default.
- W2020370906 sameAs 2020370906 @default.
- W2020370906 citedByCount "155" @default.
- W2020370906 countsByYear W20203709062012 @default.
- W2020370906 countsByYear W20203709062013 @default.
- W2020370906 countsByYear W20203709062014 @default.
- W2020370906 countsByYear W20203709062015 @default.
- W2020370906 countsByYear W20203709062016 @default.
- W2020370906 countsByYear W20203709062017 @default.
- W2020370906 countsByYear W20203709062018 @default.
- W2020370906 countsByYear W20203709062019 @default.
- W2020370906 countsByYear W20203709062020 @default.
- W2020370906 countsByYear W20203709062021 @default.
- W2020370906 countsByYear W20203709062022 @default.
- W2020370906 crossrefType "journal-article" @default.
- W2020370906 hasAuthorship W2020370906A5013582768 @default.
- W2020370906 hasAuthorship W2020370906A5060053337 @default.
- W2020370906 hasAuthorship W2020370906A5077567100 @default.
- W2020370906 hasConcept C113740112 @default.
- W2020370906 hasConcept C122959257 @default.
- W2020370906 hasConcept C127313418 @default.
- W2020370906 hasConcept C13495919 @default.
- W2020370906 hasConcept C146481406 @default.