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Identification of Collision Mechanism at Seismogenic Fault Interface Using Finite Element Analysis Involving Plate Bending Applications Using Ant Colony Optimization Cover

Identification of Collision Mechanism at Seismogenic Fault Interface Using Finite Element Analysis Involving Plate Bending Applications Using Ant Colony Optimization

By: P.K. Dutta and  O.P. Mishra  
Open Access
|Jul 2017

References

  1. Abe, S., Sarlis, N.V., Skordas, E. S., Tanaka, H. K., and Varotsos., P. A. (2005), Origin of the usefulness of the natural-time representation of complex time series. Physical review letters 94, 17: 170601.10.1103/PhysRevLett.94.17060115904274
  2. Bak, P. and Tang, C. (1989), Earthquakes as a self-organized critical phenomena, Journal of Geophysics Research, 94, 15635-15637.10.1029/JB094iB11p15635
  3. Bankwitz, P. (1980). Zum Bewegungsablauf an Bruchst6rungen mit seismotektonischer Aktivit~it. Z. Geology Wissez. (Berlin), 8: 353-362.
  4. Burridge, R., and Knopoff, L. (1967), Model and theoretical seismicity. Bulletin of Seismological Society of America.57, 341-371.10.1785/BSSA0570030341
  5. Caracausi, A., Italiano, F., Martinelli, G., Paonita, A. and Rizzo, A. (2009), Long-term geochemical monitoring and extensive/compressive phenomena: case study of the Umbria Region (Central Apennines, Italy). Annals of Geophysics, 48(1): doi: 10.4401/ag-3178.10.4401/ag-3178
  6. Crucitti, P., Latora, V., Marchiori, M. (2004), Model for cascading failures in complex networks. Physics Reviews E 69: 045104.10.1103/PhysRevE.69.04510415169056
  7. Cornford, D., Opper, M., Shawe-Taylor, J., Roulstone, I., and Clark, P., (2004), Variational Inference in Stochastic Dynamic Environmental Models, Avalaible online: personal.maths.surrey.ac.uk/st/I.Roulstone/VISDEM_outline.pdf.
  8. Dutta, P.K., Mishra, O. P., Naskar, M.K. (2012), A Poisson Process Hidden Markov Cellular Automata Model in Earthquake Genesis and Conflict Analysis: A Physical Approach. Journal of Seismology & Earthquake Engineering, 14(2).
  9. Dominguez, R., Tiampo, K., Serino, C.A., Klein, W. (2012), Characterizing Large Events and Scaling in Earthquake Models with Inhomogeneous Damage. Geophysical Monograph Series 196:41-54.10.1029/2011GM001082
  10. Dorigo, M., Maniezzo, V., and Colorni, A. (1996), Ant System: Optimization by a Colony of Cooperating Agents. In: IEEE Transactions on Systems, Man, and Cybernetics-Part B: Cybernetics, 26(1).10.1109/3477.48443618263004
  11. Dorigo, M., and Stützle, T. (2004), Ant colony optimization. Cambridge, Mass: MIT Press. Godzikovskaya, A. and Strom, A.L. (2007), Specific features of seismological investigations in regions of hydraulic structures. Power Technology and Engineering 30(12), 705-711, doi: 10.1007/BF02447461.10.1007/BF02447461
  12. Gomberg, J., Blanpied, M.L., Beeler, N.M. (1997), Transient Triggering of Near and Distant Earthquakes. Bulletin of the Seismological Society of America, Vol. 87, No. 2, pp. 294-309.10.1785/BSSA0870020294
  13. Hainzl, S., Zöller, G., Kurths, J., and Zschau, J. (2000), Seismic quiescence as an indicator for large earthquakes in a system of self-organized criticality. Geophysical Research Letters, 27(5), pp. 597-600.10.1029/1999GL011000
  14. Helbing, D., Farkas, I. and Vicsek, T. (2000), Simulating dynamical features of escape panic. Nature 407:487–490.10.1038/3503502311028994
  15. Kagan, Y.Y. (1994), Observational evidence for earthquakes as a nonlinear dynamic process, Physica, D77, p 160–192.10.1016/0167-2789(94)90132-5
  16. Keilis-Borok, V.I., 1994, Symptoms of instability in a system of earthquake-prone faults, Physica, D77. pp. 193–199.10.1016/0167-2789(94)90133-3
  17. Korvin, G. (1992), Fractal Models in the Earth Sciences, Elsevier, 396 pp. 1-17.
  18. Laughlin, R.B., and Joannopoulos, J.D. (1978), Effect of second-nearest-neighbor forces on the vibrations of amorphous SiO2. Physics Reviews B 17, pp. 2790–2792.10.1103/PhysRevB.17.2790
  19. Matcharashvili, T. and Ghlonti, E. (2002), Detecting differences in dynamics of small earthquakes temporal distribution before and after large events, Computers & Geosciences 28, 693-700.10.1016/S0098-3004(01)00047-4
  20. Mishra, O. P., Zhao, D., Kayal, J. R., Reena, D. E., & Singh, O. P. (2002), Tomography of the Source Area of the 2001 Bhuj Earthquake: Evidence for fluids at the hypocenter. Geophysics. Research. Letters, 24, 501-504.
  21. Mishra, O.P. and Zhao, D. (2003), Crack density, saturation rate and porosity at the 2001, Bhuj, India earthquake hypocenter: a fluid driven earthquake? Earth Planet Science Letters, 212, pp.393-405.
  22. Mishra, O. P., Zhao, D., Umino, N., Hasegawa, A. (2003), Tomography of northeast Japan forearc and its implications for interpolate coupling. Geophysics Research Letters, 30, DOI: 10.1029/2003GLO17736.
  23. Mishra, O. P. and Zhao, D., (2004), Seismic evidence for dehydration embrittlement of the subducting Pacific slab. Geophysical research letters, 31(9), L09610.10.1029/2004GL019489
  24. Mishra O.P. (2004), Lithospheric heterogeneity and seismotectonics of NE Japan Forearc and Indian regions, unpublished D.Sc. thesis, Ehime University, Japan, pp.223.
  25. Mishra, O. P., Kayal, J. R., Chakrabortty, G.K., Singh, O. P., and Ghosh, D. (2007a), Aftershock investigation in Andaman – Nicobar of the 26 December 2004 earthquake (Mw 9.3) and its seismotectonic implications. Bulletin Seismological Society America, 97 (1A), S71–S85.10.1785/0120050629
  26. Mishra, O. P., Chakrabortty, G.K., Singh, O. P., Kayal, J. R., and Ghosh, D. (2007b), Aftershock investigation in Andaman–Nicobar Islands: An antidote to Public Panic. Seismological Research Letters, 78 (6), pp.591–600.10.1785/gssrl.78.6.591
  27. Mishra, O. P., Zhao, D., and Wang, Z. (2008), The genesis of the 2001 Bhuj, India, earthquake (Mw 7.6): A puzzle for peninsular India. Journal Indian Minerals Special Issue, 61 (3-4) & 62 (1-4), 149–170.
  28. Mishra, O. P., Zhao, D., Ghosh, C., Wang, Z., Singh, O. P., Ghosh, B., and Gaonkar, S. G. (2011), Role of crustal heterogeneity beneath Andaman–Nicobar Islands and its implications for coastal hazard. Natural hazards, 57(1), pp. 51-64.10.1007/s11069-010-9678-3
  29. Mishra, O. P. (2012), Seismological Research in India. Proceedings of Indian National Science. Academy Publication (PINSA), 76 (3), 361–375.
  30. Oglesby, D. (2008), Rupture Termination and Jump on Parallel Offset Faults, Bulletin of the Seismological Society of America; 98(1)-440-447; DOI: 10.1785/0120070163.10.1785/0120070163
  31. Outkin, V.I. and Yurkov, A.K. (2009), Radon as a Deterministic indicator of natural and industrial geodynamic processes. Doklady Earth Sciences, Vol: 427:833-836, doi:10.1134/S1028334X09050274.10.1134/S1028334X09050274
  32. Rhoades, D.A., Robinson R., Gerstenberger, M.C. (2011), Long-range predictability in physics-based synthetic earthquake catalogues. Geophysical Journal International. Vol 185, pp. 1037–1048. doi: 10.1111/j.1365-246X.2011.04993.x.10.1111/j.1365-246X.2011.04993.x
  33. Rial, J.A. (2004), abrupt climate change: Chaos and order at orbital and millennial scales. Global and Planetary Change, 41, 95-109.10.1016/j.gloplacha.2003.10.004
  34. Rooijackers, M., (2002), K-means clustering with Ant colony optimization Retrieved 24th July, 2011 www.es.ele.tue.nl/education/ci/5ci10/clusterants.pdf.
  35. Rundle, J. and Klein, W. (2000), Geo-Complexity and the physics of earthquakes, Geophysical Monograph Series, 120 AGU-147–163, Washington.10.1029/GM120
  36. Sarlis, N. V., Skordas, E. S., Lazaridou, M. S., & Varotsos, P. A. (2008). Investigation of seismicity after the initiation of a seismic electric signal activity until the main shock. In: Proceedings of the Japan Academy. Series B, Physical and biological sciences, 84(8), pp.331.
  37. Sarlis, N. V., Skordas, E. S., Varotsos, P. A., Nagao, T., Kamogawa, M., Tanaka, H., &Uyeda, S. (2013). Minimum of the order parameter fluctuations of seismicity before major earthquakes in Japan. Proceedings of the National Academy of Sciences, 110(34), pp. 13734-13738.10.1073/pnas.1312740110
  38. Scholz, C.H. (1991), Earthquakes and faulting: selforganized critical phenomena with a characteristic dimension, in Spontaneous Formation of Space-Time Structures and Criticality, Kluwer Academic Publishers, Netherlands, pp. 41–56.
  39. Scholz, C. H. (2002), The Mechanics of Earthquakes and Faulting, Cambridge University Press, Cambridge.10.1017/CBO9780511818516
  40. Scholz, C.H. (2010), Large Earthquake Triggering, Clustering, and the Synchronization of Faults Bulletin of the Seismological Society of America, Vol. 100, pp. 901–909, doi: 10.1785/0120090309.10.1785/0120090309
  41. Singh, A. P., Mishra, O. P., Rastogi, B. K., and Kumar, D. (2011), 3-D seismic structure of the Kachchh, Gujarat, and its implications for the earthquake hazard mitigation. Natural Hazards, 57(1), pp.83-105.10.1007/s11069-010-9707-2
  42. Sornette, D. (2002), Predictability of catastrophic events: Material rupture, earthquakes, turbulence, financial crashes, and human birth. Proceedings of the National Academy of Sciences. Vol. 99, pp. 25222529. doi:10.1073/pnas.022581999. Available online at<http://www.pnas.org/content/99/suppl.1/2522.full. Retrieved 29th July, 2011.
  43. Stein, R. S. (1999), the role of stress transfer in earthquake occurrence, Nature 402, no. 6762, pp. 605–609.
  44. Varotsos, P. and Alexopoulos, K. (1977), Calculation of the formation entropy of vacancies due to anharmonic effects, Physical Review B 15, pp. 4111-4114.
  45. Varotsos, P., Ludwig, W., and Alexopoulos, K. (1978), Calculation of the formation volume of vacancies in solids, Physical Review B 18, 2683-2691.10.1103/PhysRevB.18.2683
  46. Varotsos, P., and Alexopoulos, K. (1984), Physical properties of the variations of the electric field of the earth preceding earthquakes, I, Tectonophysics 110.1: 73-98.
  47. Varotsos, P., and Alexopoulos, K. (1984), Physical properties of the variations of the electric field of the earth preceding earthquakes, II. Determination of epicenter and magnitude, Tectonophysics 110, pp. 99-125.
  48. Varotsos, P., Alexopoulos, K. and Lazaridou, M. (1991), On recent seismic electrical signal activity in nothern Greece, Tectonophysics 188, 403-405.10.1016/0040-1951(91)90470-D
  49. Varotsos, P., Alexopoulos, K., and Lazaridou, M. (1993), Latest aspects of earthquake prediction in Greece based on Seismic Electric Signals II, Tectonophysics224, pp. 1-37.
  50. Varotsos, P. A., Sarlis, N. V., and Skordas., E. S. (2002), Long-range correlations in the electric signals that precede rupture. Physical Review E, 66-1, 011902.10.1103/PhysRevE.66.01190212241379
  51. Varotsos, P. A., Sarlis, N. V., Skordas, E. S. (2003a), Long-range correlations in the electric signals that precede rupture: Further investigations, Phys. Rev. E, 67, 021109 (13).10.1103/PhysRevE.67.02110912636655
  52. Varotsos, P. A., Sarlis, N. V., Skordas, E. S. (2003b), Attempt to distinguish electric signals of a dichotomous nature, Phys. Rev. E. 68, 031106 (7).10.1103/PhysRevE.68.03110614524749
  53. Varotsos, P. A., Sarlis, N. V., Tanaka, H. K., and Skordas., E. S. (2005), Similarity of fluctuations in correlated systems: The case of seismicity. Physical Review E 72, no. 4 : 041103.10.1103/PhysRevE.72.04110316383358
  54. Varotsos, P. A., Sarlis, N. V., Skordas, E. S., Tanaka, H. K., and Lazaridou, M. S. (2006), Attempt to distinguish long-range temporal correlations from the statistics of the increments by natural time analysis. Physical Review E 74, no. 2: 021123.10.1103/PhysRevE.74.02112317025409
  55. Varotsos, P. A., et al. (2010), Natural-time analysis of critical phenomena: The case of seismicity. EPL (Europhysics Letters) 92.2 (2010): 29002.10.1209/0295-5075/92/29002
  56. Varotsos, P., Sarlis, N. V., Skordas, E. S., Uyeda, S., & Kamogawa, M. (2011), Natural time analysis of critical phenomena. Proceedings of the National Academy of Sciences, 108(28), pp, 11361-11364.10.1073/pnas.1108138108313629421700886
  57. Varotsos, P. A., Sarlis, N. V., Skordas, E. S., & Lazaridou, M. S. (2013), Seismic Electric Signals: An additional fact showing their physical interconnection with seismicity. Tectonophysics, 589, pp. 116-125.10.1016/j.tecto.2012.12.020
  58. Turcotte, D. (1992), Fractals and Chaos in Geology and Geophysics, Cambridge University Science 1-17, pp.398.
Language: English
Page range: 15 - 22
Submitted on: Dec 10, 2016
Accepted on: Jan 10, 2017
Published on: Jul 14, 2017
Published by: University of Oradea, Civil Engineering and Architecture Faculty
In partnership with: Paradigm Publishing Services
Publication frequency: 2 issues per year

© 2017 P.K. Dutta, O.P. Mishra, published by University of Oradea, Civil Engineering and Architecture Faculty
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.