Glacial hydro-isostatic adjustment at mid-ocean ridges

被引:0
|
作者
Reilly, Jackson [1 ]
Latychev, Konstantin [2 ]
Coulson, Sophie [3 ]
Mitrovica, Jerry X. [4 ]
机构
[1] Tufts Univ, Sch Arts & Sci, Medford, MA 02155 USA
[2] SEAKON, Toronto M9A 0C4, ON, Canada
[3] Univ New Hampshire, Dept Earth Sci, Durham, NH 03824 USA
[4] Harvard Univ, Dept Earth & Planetary Sci, Cambridge, MA 02138 USA
关键词
Mid-ocean ridge processes; Sea-level; Stress distribution; Melt generation; Topography; EAST PACIFIC RISE; SEA-LEVEL CHANGE; LATE-PLEISTOCENE; ICE-SHEET; VOLCANISM; DEGLACIATION; SENSITIVITY; CLIMATE;
D O I
10.1093/gji/ggae390
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Recent studies have suggested a link between ice age sea level fluctuations and variations in magma production and crustal faulting along mid-ocean ridges based on the detection of Milankovitch cycle frequencies in topography off several ridges. These fluctuations have also been connected to variability in hydrothermal metal fluxes near ridges. Ice age sea level calculations have shown that the sea level change across glacial cycles will be characterized by significant geographic variability, that is, departures from eustasy, due to the gravitational, deformation and rotational effects of the glacial isostatic adjustment (GIA) process. Using a state-of-the-art GIA simulation that incorporates 3-D variations in Earth viscoelastic structure, including plate boundaries and updated constraints on the magnitude and geometry of ice mass fluctuations, we predict global sea level changes from last glacial maximum (LGM, 26 ka) to present and from the penultimate glacial maximum (143 ka) to the last interglacial (128 ka). We focus on the results along three ridges: the Mid-Atlantic Ridge, Juan de Fuca Ridge and East Pacific Rise, which are examples of slow, intermediate and fast spreading ridges, respectively. Sea level change across the Mid-Atlantic Ridge shows the greatest variability, ranging from a sea level fall greater than 200 m in Iceland to a maximum rise of similar to 150 m in the South Atlantic, with significant non-monotonicity north of the Equator as the ridge weaves across the field of sea level changes. We also calculate changes in crustal normal stress from LGM to present-day across the Mid-Atlantic and Juan de Fuca Ridges and the East Pacific Rise. These results indicate that the contribution from ice mass changes to the crustal stress field can be significant well away from the location of ancient ice complexes. We conclude that any exploration of the hypothesized links to magma production and crustal faulting must consider both ocean and ice loading effects and, more generally, the profound geographic variability of the GIA process.
引用
收藏
页码:550 / 558
页数:9
相关论文
共 50 条
  • [41] Glacial isostatic adjustment on a rotating earth
    Mitrovica, JX
    Milne, GA
    Davis, JL
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2001, 147 (03) : 562 - 578
  • [42] An improved Glacial Isostatic Adjustment model for the British Isles
    Bradley, Sarah L.
    Milne, Glenn A.
    Shennan, Ian
    Edwards, Robin
    JOURNAL OF QUATERNARY SCIENCE, 2011, 26 (05) : 541 - 552
  • [43] Heinrich events triggered by ocean forcing and modulated by isostatic adjustment
    Bassis, Jeremy N.
    Petersen, Sierra V.
    Mac Cathles, L.
    NATURE, 2017, 542 (7641) : 332 - 334
  • [44] Numerical model of crustal accretion and cooling rates of fast-spreading mid-ocean ridges
    Machetel, P.
    Garrido, C. J.
    GEOSCIENTIFIC MODEL DEVELOPMENT, 2013, 6 (05) : 1659 - 1672
  • [45] What processes at mid-ocean ridges tell us about volcanogenic massive sulfide deposits
    Cathles, Lawrence M.
    MINERALIUM DEPOSITA, 2011, 46 (5-6) : 639 - 657
  • [46] Origin and development of the morphological structure of the rift zone of slow-spreading mid-ocean ridges
    Ilyin, A. V.
    OCEANOLOGY, 2010, 50 (02) : 240 - 253
  • [47] A Review of the Geological Constraints on the Conductive Boundary Layer at the Base of the Hydrothermal System at Mid-Ocean Ridges
    Gillis, K. M.
    Coogan, L. A.
    GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS, 2019, 20 (01): : 67 - 83
  • [48] Rheological control on the segmentation of the mid-ocean ridges: Laboratory experiments with extension initially perpendicular to the axis
    Sibrant, A. L. R.
    Davaille, A.
    Mittelstaedt, E.
    EARTH AND PLANETARY SCIENCE LETTERS, 2021, 557 (557)
  • [49] Magmatic channelization by reactive and shear-driven instabilities at mid-ocean ridges: a combined analysis
    Jones, D. W. Rees
    Zhang, H.
    Katz, R. F.
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2021, 226 (01) : 582 - 609
  • [50] Three-dimensional passive mantle flow beneath mid-ocean ridges: an analytical approach
    Ligi, Marco
    Cuffaro, Marco
    Chierici, Francesco
    Calafato, Antonino
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2008, 175 (02) : 783 - 805