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Seismically induced soft-sediment deformation in crevasse-splay microdelta deposits (Middle Miocene, central Poland) - comment

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The Miocene succession of crevasse-splay microdelta deposits in the Jóźwin IIB lignite opencast mine contains some aspects that are more interesting than Chomiak et al. (2019) seem to realize in their analysis of the sediments and the soft-sediment deformation structures that they contain. Moreover, the authors use a terminology that is not completely adequate, leaving some questions about the precise seismic process that induced the deformation structures. Both aspects are detailed in this comment. The interpretation of the deformation structures presented here may change the insight into the tectonic history of the graben, in which the study area is located.
Rocznik
Strony
424--428
Opis fizyczny
Bibliogr. 24 poz., fot.
Twórcy
  • Shandong University of Science and Technology, College of Earth Science and Engineering, 579 Qianwangjang Road, Huangdao district, Qingdao 266690, China
Bibliografia
  • 1. Alfaro, P., Moretti, M., Soria, J.M., 1997. Soft-sediment deformation structures induced by earthquakes (seismites) in Pliocene lacustrine deposits (Guadix-Baza Basin, central Betic Cordilleras). Eclogae Geologicae Helvetiae, 190: 531-540.
  • 2. Alsop, G.I., Marco, S., 2011. Soft-sediment deformation within seismogenic slumps of the Dead Sea Basin. Journal of Structural Geology, 33: 433-457.
  • 3. Anand, A., Jain, A.K., 1987. Earthquakes and deformational structures (seismites) in Holocene sediments from the Himalayan-Andaman Arc, India. Tectonophysics, 133: 105-120.
  • 4. Brodzikowski, K., Gotowała, R., Kasza, L., van Loon, A.J., 1987. The Kleszczów Graben (central Poland): reconstruction of the deformational history and inventory of the resulting soft-sediment deformational structures. Geological Society Special Publications, 29: 241-254.
  • 5. Chomiak, L., Maciaszek, P., Wachocki, R., Widera, M., Zieliński, T., 2019. Seismically-induced soft-sediment deformation in crevasse-splay microdelta deposits (Middle Miocene, central Poland). Geological Quarterly, 63 (1): 162-177.
  • 6. Cox, R.T., Hill, A.A., Larsen, D., Holzer, T., Forman, S.L., Noce, T., Gardner, C., Morat, J., 2007. Seismotectonic implications of sand blows in the southern Mississippi Embayment. Engineering Geology, 89: 278-299.
  • 7. Dąbrowski, M., Grasemann, B., 2014. Domino boudinage under layer-parallel simple shear. Journal of Structual Geology, 68A: 58-65.
  • 8. Emergeo Working Group, 2012. A photographic dataset of the coseismic geological effects induced on the environment by the 2012 Emilia (northern Italy) earthquake sequence. Miscellanea INGV, 16: 74.
  • 9. Gladkov, A.S., Lobova, E.U., Deev, E.V., Korzhenkov, A.M., Mazeika, J.V., Abdieva, S.V., Rogozhin, E.A., Rodkin, M.V., Fortuna, A.B., Charimov, T.A., Yudakhin, A.S., 2016. Earthquake-induced soft-sediment deformation structures in Late Pleistocene lacustrine deposits of Issyk-Kul lake (Kyrgyzstan). Sedimentary Geology, 344: 112-122.
  • 10. Goscombe, B.D., Passchier, C.W., Hand, M., 2004. Boudinage classification: endmember boudin types and modified boudin structures. Journal of Structural Geology, 26: 739-763.
  • 11. Grube, A., 2019. Palaeoseismic structures in Quaternary sediments, related to an assumed fault zone north of the Permian Peissen-Gnutz salt structure (NW Germany) - Neotectonic activity and earthquakes from the Saalian to the Holocene. Geomorphology, 328: 15-27.
  • 12. Gruszka, B., van Loon, A.J., 2007. Pleistocene glaciolacustrine breccias of seismic origin in an active graben (central Poland). Sedimentary Geology, 193: 93-104.
  • 13. Ko, K., Kim, S.W., Lee, H.-J., Hwang, I.G., Kim, B.C., Kee, W.-S., Kim, Y.-S., Gihm, Y.S., 2017. Soft sediment deformation structures in a lacustrine sedimentary succession induced by volcano-tectonic activities: an example from the Cretaceous Beolgeumri Formation, Wido Volcanics, Korea. Sedimentary Geology, 358: 197-209.
  • 14. Marques, F.O., Fonseca, P.D., Lechmann, S., Burg, J.-P., Marques, A.S., Andrade, A.J.M., Alves, C., 2012. Boudinage in nature and experiment. Tectonophysics, 526: 88-96.
  • 15. Obermeier, S.F., Pond, E.C., 1998. Issues in Using Liquefaction Features for Paleoseismic Analysis. United States Geological Survey Open-File Report: 98-28.
  • 16. Rodríguez-Pascua, M.A., Calvo, J.P., de Vicente, G., Gómez- Gras, D., 2000. Soft-sediment deformation structures interpreted as seismites in lacustrine sediments of the Prebetic Zone, SE Spain, and their potential use as indicators of earthquake magnitudes during the Late Miocene. Sedimentary Geology, 135: 117-135.
  • 17. Seilacher, A., 1969. Fault-graded beds interpreted as seismites. Sedimentology, 13: 155-159.
  • 18. Su, D., Sun, A., 2011. Soft sediment deformation and occurrence frequency of palaeo-earthquake in the Mesoproterozoic Wumishan Formation, Yongding River Valley, Beijing (in Chinese with English abstract). Journal of Palaeogeography, 13: 591-614.
  • 19. Van Loon, A.J., 2002. Soft-sediment deformations in the Kleszczów Graben (central Poland). Sedimentary Geology, 147: 57-70.
  • 20. Van Loon, A.J., 2009. Soft-sediment deformation structures in siliciclastic sediments: an overview. Geologos, 15: 3-55.
  • 21. Van Loon, A.J., Brodzikowski, K., 1987. Problems and progress in the research on soft-sediment deformations. Sedimentary Geology, 50: 167-193.
  • 22. Van Loon, A. J., Wiggers, A. J., 1976. Metasedimentary “graben” and associated structures in the lagoonal Almere Member (Groningen Formation, The Netherlands). Sedimentary Geology, 16: 237-254.
  • 23. Yang, R., van Loon, A. J., 2016. Early Cretaceous slumps and turbidites with peculiar soft-sediment deformation structures on Lingshan Island (Qingdao, China) indicating a tensional tectonic regime. Journal of Asian Earth Sciences, 129: 206-219.
  • 24. Zulauf, J., Zulauf, G., Hammer, J., Zanella, F., 2011. Tablet boudinage of an anhydrite layer in rock-salt matrix: results from thermomechanical experiments. Journal of Structural Geology, 33: 1801-1815.
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-bacfd06e-245e-48a9-93a0-4e6aa52b9cc0
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