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The Dynamic Impact of Ocean on Continent

DOI: 10.4236/ijg.2024.159039, PP. 698-719

Keywords: Ocean, Water Pressure Force, Continent, Ocean-Continent Interaction, Stress, Earthquake, Plate Motion

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Abstract:

Around 71% of the Earth’s surface is covered by oceans with depths that exceed several kilometers, while continents are geographically enclosed by these vast bodies of water. The principle of fluid mechanics stipulates that water yields pressure everywhere in the container that holds it, and the water pressure against the wall of container generates force. Ocean basins are naturally gigantic containers of water, in which continents form the walls of the containers. In this study, we present that the ocean water pressure against the walls of continents generates enormous force, and determine the distribution of this force around continents and estimate its amplitude to be of the order of 1017 N per kilometer of continent width. Our modelling suggests that the stresses yielded by this force are mostly concentrated on the upper part of the continental crust, and their magnitudes reach up to 2.0 - 6.0 MPa. Our results suggest that the force may have significantly impacted the dynamics of continent (lithospheric plate) and its evolution.

References

[1]  Cawood, P.A., Hawkesworth, C.J. and Dhuime, B. (2012) The Continental Record and the Generation of Continental Crust. Geological Society of America Bulletin, 125, 14-32.
https://doi.org/10.1130/b30722.1
[2]  Wang, Y., Jian, Z., Zhao, P., Xiao, D. and Chen, J. (2016) Relative Roles of Land-and Ocean-Atmosphere Interactions in Asian-Pacific Thermal Contrast Variability at the Precessional Band. Scientific Reports, 6, Article No. 28349.
https://doi.org/10.1038/srep28349
[3]  Cameselle, A.L., Ranero, C.R., Franke, D. and Barckhausen, U. (2015) The Continent‐ocean Transition on the Northwestern South China Sea. Basin Research, 29, 73-95.
https://doi.org/10.1111/bre.12137
[4]  Bercovici, D., Tackley, P.J. and Ricard, Y. (2015) The Generation of Plate Tectonics from Mantle Dynamics. In: Schubert, G., Ed., Treatise on Geophysics, Elsevier, 271-318.
https://doi.org/10.1016/b978-0-444-53802-4.00135-4
[5]  Mojzsis, S.J., Harrison, T.M. and Pidgeon, R.T. (2001) Oxygen-Isotope Evidence from Ancient Zircons for Liquid Water at the Earth’s Surface 4,300 Myr Ago. Nature, 409, 178-181.
https://doi.org/10.1038/35051557
[6]  Valley, J.W., Peck, W.H., King, E.M. and Wilde, S.A. (2002) A Cool Early Earth. Geology, 30, 351-354.
https://doi.org/10.1130/0091-7613(2002)030<0351:acee>2.0.co;2
[7]  Cengel, Y.A. and Cimbala, J.M. (2017) Fluid Mechanics: Fundamentals and Applica-tions. 4th Edition, McGraw-Hill Education.
[8]  Amante, C. and Eakins, B.W. (2009) ETOPO1 1 Arc-Minute Global Relief Model: Procedures, Data Sources and Analysis. NOAA Technical Memorandum NESDIS NGDC-24, National Geophysical Data Center, NOAA.
https://doi.org/10.7289/V5C8276M
[9]  Turcotte, D. and Schubert, G. (2014). Geodynamics. 3rd Edition, Cambridge University Press.
https://doi.org/10.1017/cbo9780511843877
[10]  Zoback, M.L. (1992) First‐ and Second‐Order Patterns of Stress in the Lithosphere: The World Stress Map Project. Journal of Geophysical Research: Solid Earth, 97, 11703-11728.
https://doi.org/10.1029/92jb00132
[11]  Müller, B., Zoback, M.L., Fuchs, K., Mastin, L., Gregersen, S., Pavoni, N., et al. (1992) Regional Patterns of Tectonic Stress in Europe. Journal of Geophysical Research: Solid Earth, 97, 11783-11803.
https://doi.org/10.1029/91jb01096
[12]  Richardson, R.M. (1992) Ridge Forces, Absolute Plate Motions, and the Intraplate Stress Field. Journal of Geophysical Research: Solid Earth, 97, 11739-11748.
https://doi.org/10.1029/91jb00475
[13]  Kusznir, N.J. and Bott, M.H.P. (1977) Stress Concentration in the Upper Lithosphere Caused by Underlying Visco-Elastic Creep. Tectonophysics, 43, 247-256.
https://doi.org/10.1016/0040-1951(77)90119-6
[14]  Zoback, M.L., Zoback, M.D., Adams, J., Assumpção, M., Bell, S., Bergman, E.A., et al. (1989) Global Patterns of Tectonic Stress. Nature, 341, 291-298.
https://doi.org/10.1038/341291a0
[15]  Zoback, M.L. and Magee, M. (1991) Stress Magnitudes in the Crust: Constraints from Stress Orientation and Relative Magnitude Data. Philosophical Transactions of the Royal Society, A337, 181-194.
[16]  Kanamori, H. (1994) Mechanics of Earthquakes. Annual Review of Earth and Planetary Sciences, 22, 207-237.
https://doi.org/10.1146/annurev.ea.22.050194.001231
[17]  Reid, H.F. (1910) The Mechanism of the Earthquake. In: The California Earthquake of April 19, 1906. Report of the State Earthquake Investigation Commission, Carnegie Institution, 192.
[18]  Morawietz, S., Heidbach, O., Reiter, K., Ziegler, M., Rajabi, M., Zimmermann, G., et al. (2020) An Open-Access Stress Magnitude Database for Germany and Adjacent Regions. Geothermal Energy, 8, Article No. 25.
https://doi.org/10.1186/s40517-020-00178-5
[19]  Heidbach, O., Rajabi, M., Reiter, K., Ziegler, M. (2016) World Stress Map 2016. GFZ Data Services.
http://doi.org/10.5880/WSM.2016.002
[20]  Gupta, H.K. (2002) A Review of Recent Studies of Triggered Earthquakes by Artificial Water Reservoirs with Special Emphasis on Earthquakes in Koyna, India. Earth-Science Reviews, 58, 279-310.
https://doi.org/10.1016/s0012-8252(02)00063-6
[21]  Wang, C.Y. and Manga, M. (2021) Water and Earthquakes. Springer.
https://doi.org/10.1007/978-3-030-64308-9
[22]  Zhao, R., Xue, J. and Deng, K. (2022) Modelling Seismicity Pattern of Reservoir-Induced Earthquakes Including Poroelastic Stressing and Nucleation Effects. Geophysical Journal International, 232, 739-749.
https://doi.org/10.1093/gji/ggac361
[23]  Smith, P.J. (1982) Reservoirs and the Triggering of Earthquakes. Nature, 295, 9.
https://doi.org/10.1038/295009a0
[24]  Gupta, H.K. (2018) Review: Reservoir Triggered Seismicity (RTS) at Koyna, India, over the Past 50 Yrs. Bulletin of the Seismological Society of America, 108, 2907-2918.
https://doi.org/10.1785/0120180019
[25]  Zhang, L., Liao, W., Chen, Z., Li, J., Yao, Y., Tong, G., et al. (2022) Variations in Seismic Parameters for the Earthquakes during Loading and Unloading Periods in the Three Gorges Reservoir Area. Scientific Reports, 12, Article No. 11211.
https://doi.org/10.1038/s41598-022-15362-9
[26]  McGarr, A., Simpson, D. and Seeber, L. (2002) Case Histories of Induced and Triggered Seismicity. International Geophysics, 81, 647-661.
https://doi.org/10.1016/s0074-6142(02)80243-1
[27]  Foulger, G.R., Wilson, M.P., Gluyas, J.G., Julian, B.R. and Davies, R.J. (2018) Global Review of Human-Induced Earthquakes. Earth-Science Reviews, 178, 438-514.
https://doi.org/10.1016/j.earscirev.2017.07.008
[28]  Huang, R., Zhu, L., Encarnacion, J., Xu, Y., Tang, C., Luo, S., et al. (2018) Seismic and Geologic Evidence of Water‐Induced Earthquakes in the Three Gorges Reservoir Region of China. Geophysical Research Letters, 45, 5929-5936.
https://doi.org/10.1029/2018gl077639
[29]  Guillas, S., Day, S.J. and McGuire, B. (2010) Statistical Analysis of the El Niño-Southern Oscillation and Sea-Floor Seismicity in the Eastern Tropical Pacific. Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, 368, 2481-2500.
https://doi.org/10.1098/rsta.2010.0044
[30]  Martínez‐Garzón, P., Beroza, G.C., Bocchini, G.M. and Bohnhoff, M. (2023) Sea Level Changes Affect Seismicity Rates in a Hydrothermal System Near Istanbul. Geophysical Research Letters, 50, e2022GL101258.
https://doi.org/10.1029/2022gl101258
[31]  Tanaka, S., Ohtake, M. and Sato, H. (2002) Evidence for Tidal Triggering of Earthquakes as Revealed from Statistical Analysis of Global Data. Journal of Geophysical Research: Solid Earth, 107, ESE1-1-ESE1-11.
https://doi.org/10.1029/2001jb001577

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