$\require{mediawiki-texvc}$

연합인증

연합인증 가입 기관의 연구자들은 소속기관의 인증정보(ID와 암호)를 이용해 다른 대학, 연구기관, 서비스 공급자의 다양한 온라인 자원과 연구 데이터를 이용할 수 있습니다.

이는 여행자가 자국에서 발행 받은 여권으로 세계 각국을 자유롭게 여행할 수 있는 것과 같습니다.

연합인증으로 이용이 가능한 서비스는 NTIS, DataON, Edison, Kafe, Webinar 등이 있습니다.

한번의 인증절차만으로 연합인증 가입 서비스에 추가 로그인 없이 이용이 가능합니다.

다만, 연합인증을 위해서는 최초 1회만 인증 절차가 필요합니다. (회원이 아닐 경우 회원 가입이 필요합니다.)

연합인증 절차는 다음과 같습니다.

최초이용시에는
ScienceON에 로그인 → 연합인증 서비스 접속 → 로그인 (본인 확인 또는 회원가입) → 서비스 이용

그 이후에는
ScienceON 로그인 → 연합인증 서비스 접속 → 서비스 이용

연합인증을 활용하시면 KISTI가 제공하는 다양한 서비스를 편리하게 이용하실 수 있습니다.

[국내논문] 전세계의 지진 연구의 추세 분석
Trend Analysis of Earthquake Researches in the World 원문보기

한국지구과학회지 = Journal of the Korean Earth Science Society, v.42 no.1, 2021년, pp.76 - 87  

윤설민 (부산대학교 BK21지구환경시스템 교육연구단 지질환경과학과) ,  함세영 (부산대학교 지질환경과학과) ,  전항탁 (부산대학교 지질환경과학과) ,  정재열 (한국원자력환경공단)

초록
AI-Helper 아이콘AI-Helper

본 연구에서는 2001년부터 2020년까지 지진과 관련된 지하수위, 수질, 라돈, 원격탐사, 전기비저항, 중력, 지자기 분야의 세계적으로 학술지에 게재된 논문 편수를 Web of Science에서 검색하여 그 경향성을 분석하였다. 그리고 논문 편수와 Mw 5.0 이상, Mw 6.0 이상, Mw 7.0 이상, Mw 8.0 이상, Mw 9.0 이상 지진 발생 건수를 비교 분석하였다. 지진과 관련한 중력, 라돈, 지하수(지하수위, 수질), 전기비저항, 지자기분야 논문 편수는 장기적으로 증가하는 추세를 보인다. 이는 원격탐사 기술의 발달, 측정 장비의 고도화, 빅데이터 분석 등을 통한 종합적인 자료 해석이 가능해지면서 여러 분야에서 지진 전조 및 지진 현상 연구가 활발해지고 있기 때문이다. Mann-Kendall과 Sen 추세 검정에 의하면, 중력 관련 논문의 경우 1.30편/년의 증가추세를 보이고, 라돈 0.60편/년, 지하수 0.70편/년, 전기비저항 0.25편/년, 원격탐사 0.67편/년의 증가추세를 보인다. Mw 5.0 이상, Mw 6.0 이상, Mw 7.0 이상, Mw 8.0 이상, Mw 9.0 이상의 지진발생 건수와 경향성을 제거한 분야별 논문 편수 간의 교차상관분석에 의하면, 라돈과 원격탐사 분야의 교차상관성이 높으며, 지연시간은 1년이다. 또한 2004년과 2005년 수마트라 지진, 2008년 쓰촨성 지진, 2010년 아이티 지진, 2010 칠레 지진 등의 큰 규모의 지진 발생이 논문 편수 증가와 관련되는 것으로 추정된다.

Abstract AI-Helper 아이콘AI-Helper

In this study, temporal trend of researches in earthquake with groundwater level, water quality, radon, remote sensing, electrical resistivity, gravity, and geomagnetism was searched from 2001 to 2020, using the journals indexed in Web of Science, and the number of articles published in internationa...

주제어

참고문헌 (50)

  1. Charmoille, A., Fabbri, O., Mudry, J., Guglielmi, Y. and Bertrand, G., 2005, Post-seismic permeability changes in a shallow fractured aquifer following a ML 5.1 earthquake (Fourbanne karst aquifer, Jura outermost thrust unit, eastern France). Geophysical Research Letters, 32, L18406. 

  2. Che, Y., Yu, J., Zhang, D., Sun, Z.A., Jian, C. and Peng, G., 1994, Annual regime characteristics of water level in bedrock wells in Beijing plain. Seismology & Geology, 16(3), 255-363. 

  3. Chen, C.H., Wang, C.H., Liu, J.Y., Liu, C., Liang, W.T., Yen, H.Y., Yeh, Y.H., Chia, Y.P. and Wang, Y., 2010 Identification of earthquake signals from groundwater level records using HHT method. Geophysical Journal International, 180, 1231-1241, doi:10.1111/j.1365-246X.2009.04473.x. 

  4. Cheong, J.Y., Hamm, S.Y., Kim, S.H., Lee, S.H., Woo, N.C. and Kim, G.B., 2013, Analyzing groundwater change on a volcanic island caused by the impact of the M9 Sumatra earthquake. Geosciences Journal, 17(2), 183-195. 

  5. De Santis, A., Marchetti, D., Pavon-Carrasco, F.J., Cianchinim G., Perrone, L., Abbattista, C., Alfonsi, L., Amoruso, L., Campuzano, S.A., Carbone, M., Cesaroni, C., De Franceschi, G., De Santis, A., Di Giovambattista, R., Ippolito, A., Piscini, A., Sabbagh, D., Soldani, M., Santoro, F., Spogil, L. and Haagmans, R., 2019, Precursory worldwide signatures of earthquake occurrences on Swarm satellite data. Scientific Reports, 9:20287, 10.1038/s41598-019-56599-1. 

  6. Dea, J.Y., Hansen, P.M. and Boerner, W.M., 1993, Long-term ELF background noise measurements, the existence of window regions, and applications to earthquake precursor emission studies. Physics of the Earth and Planetary Interiors, 77, 109-125. 

  7. Fraser-Smith, A.C., Bernardi, A., McGill, P.R., Ladd, M.E., Helliwell, R.A. and Villard Jr., O.G., 1990, Low-frequency magnetic field measurements near the epicenter of the Ms 7.1 Loma Prieta earthquake. Geophysical Research Letters, 17, 1465-1468. 

  8. Geller, R.J., 1997, Earthquake prediction: a critical review, Geophysical Journal International, 131(3), 425-450. 

  9. Geng, J., Zhang, Z., Wei, H. and Wang, Z., 1998, Dynamic pattern of groundwater level before and after the Tangshan earthquake and its mode of formation and evolution. Dizhen Dizhi, 20(3), 255-260. 

  10. Ha, J.C. and Song, Y.J., 2015, An investigation of awareness on the Fukushima nuclear accident and radioactive contamination. Journal of Radiation Protection and Research, 41, 7-14. 

  11. Hong, S.H., Jang, M.J., Jung, S.W. and Park, S.W., 2018 A Review on Monitoring Mt. Baekdu Volcano Using Space-based Remote Sensing Observations. Korean Journal of Remote Sensing, 34(6), 1503-1517. 

  12. Hwang, H.S., Hamm, S.Y., Cheong, J.Y., Lee, S.H., Ha, K.C., Lee, C.W., Woo N.C., Yun S.M. and Kim, K.H., 2020, Effective time-and frequency-domain techniques for interpreting seismic precursors in groundwater level fluctuations on Jeju Island, Korea. Scientific Reports, 10(1), 1-14. 

  13. Ingebristen, S.E. and Manga, M., 2014, Earthquakes: Hydrogeochemical precursors. Nature Geoscience, 7, 697-698. 

  14. Jeong, C.H., Park, J.S., Lee, Y.C., Lee Y.J., Yang, J.H., Kim, Y.S. and Ou, S.M., 2018, Relationship of Radon-222 and Chemical Composition of Groundwater as a Precursor of Earthquake. The Journal of Engineering Geology, 28(2), 313-324. 

  15. Kendall, M.G., 1975, Rank Correlation Methods, 4th edition. Charles Griffin, London. 

  16. Korea Meteorological Administration, 2011, A study on the evaluation of earthquake-precognition cases and the feasibility to develop monitoring systems to observe earthquake precursors. 

  17. Kuo, T., Fan, K., Kuochen, H., Han, Y., Chu, H. and Lee, Y., 2006, Anomalous decrease in groundwater radon before the Taiwan M6. 8 Chengkung earthquake. Journal of environmental radioactivity, 88(1), 101-106. 

  18. Lee, D.S., Choi, S.C., Oh, C.W., Seo, M.H. and Ryu, I.C., 2013, The Study on the Possibility of Using Satellite in Monitoring Precursor of Magma Activity in the Baegdusan Volcano. The Journal of the Petrological Society of Korea, 22(1), 35-47. 

  19. Lee, H.A. and Woo, N.C., 2012, Influence of the M9.0 Tohoku Earthquake on groundwater in Korea. Geosciences Journal, 16(1), 1-6. 

  20. Lee, H.A., 2013, Investigation of Groundwater Response to Earthquakes using the National Groundwater Monitoring Data of Korea. Doctoral dissertation, Yonsei University. 

  21. Lee, H.A., Hamm, S.Y. and Woo, N.C., 2017, Groundwater Monitoring Network for Earthquake Surveillance and Prediction. Economic and Environmental Geology, 50, 401-414. 

  22. Lee, H.A., Hamm, S.Y. and Woo, N.C., 2018, The Abnormal Groundwater Changes as Potential Precursors of 2016 ML5.8 Gyeongju Earthquake in Korea. Economic and Environmental Geology, 51, 393-400. 

  23. Lee, H.A., Kim, M.H., Hong, T.K. and Woo, N.C., 2011, Earthquake observation through groundwater monitoring: A case of M4.9 Odaesan Earthquake. Journal of Soil and Groundwater Environment, 16(3), 38-47. 

  24. Lee, S.H., Cheong, J.Y., Park, Y.S., Ha, K., Kim, Y.C., Kim, S.W. and Hamm S.Y., 2017, Groundwater level changes on Jeju Island associated with the Kumamoto and Gyeongju earthquakes. Geomatics, Natural Hazards and Risk, 8, 1783-1791. 

  25. Lee, S.H., Ha, K., Shin, J.S., Ko, K.S. and Hamm, S.Y., 2013, 2013, Successive groundwater level changes on Jeju Island due to the Mw 9.0 off the Pacific coast of Tohoku earthquake. Bulletin of the Seismological Society of America, 103, 2B, 1614-1621. 

  26. Mann, H.B., 1945, Non-parametric tests against trend. Econometrica, 13, 163-171. 

  27. Mao, Z., Chen, C. H., Zhang, S., Yisimayili, A., Yu, H., Yu, C. and Liu, J.Y., 2020, Locating seismoconductivity anomaly before the 2017 Mw 6.5 Jiuzhaigou earthquake in China using far magnetic stations. Remote Sensing, 12, 10.3390/rs12111777. 

  28. Marchetti, D., De Santis, A., D'Arcangelo, S., Poggio, F., Jin, S., Piscini, A. and Campuzano, S.A., 2020, Magnetic field and electron density anomalies from Swarm satellites preceding the major earthquakes of the 2016-2017 Amatrice-Norcia (Central Italy) seismic sequence. Pure and Applied Geophysics, 177(1), 305-319. 

  29. Mok, J.G., Lim, H.G., Jang, B.J., Park, Y.C. and Lee, J.Y., 2011, Time Series Analysis of the Effect of Groundsource Heat Pumps on Groundwater Characteristics. The Journal of Engineering Geology, 21(1), 35-43. 

  30. Oh, S.H., 2009, Variation Analysis of Geomagnetic Data Observed Around the Event of Andong Earthquake (May 2, 2009). Journal of The Korean Earth Science Society, 30, 683-691. 

  31. Oh, Y.H. and Kim, G., 2015, A radon-thoron isotope pair as a reliable earthquake precursor. Scientific Reports, 5, 13084. 

  32. Ohta, K., Izutsu, J., Chekotov, A. and Hayakawa, M., 2013, The ULF/ELF electromagnetic radiation before the 11 March 2011 Japanese earthquake, Radio Science, 48, 589-596. 

  33. Ok, S.I., Hamm, S.Y., Kim, B.S., Cheong, J.Y., Woo, N.C., Lee, S.H., Koh, G.W. and Park, Y.S., 2010, Characteristics of Aquifer System and Change of Groundwater Level due to Earthquake in the Western Half of Jeju Island. Economic and Environmental Geology, 43(4), 359-369. 

  34. Qi, Y., Wu, L., He, M. and Mao, W., 2020, Spatio-temporally weighted two-step method for retrieving seismic MBT anomaly: May 2008 Wenchuan earthquake sequence being a case. IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing, 13. 

  35. Qu, C., Shan, X., Zhang, G., Song, X. and Zhang, G., 2010, Coseismic displacement field of the Wenchuan Ms 8.0 earthquake in 2008 derived using differential radar interferometry. Journal of Applied Remote Sensing, 4(1), 043516. 

  36. Qu, W., Han, Y., Lu, Z., An, D., Zhang, Q. and Gao, Y., 2020, Co-Seismic and Post-Seismic Temporal and Spatial Gravity Changes of the 2010 Mw 8.8 Maule Chile Earthquake Observed by GRACE and GRACE Follow-on. Remote Sensing, 12(17), 2768. 

  37. Roeloffs, E., 2000, The Parkfield, California earthquake experiment: An update in 2000. Current Science, 79(9), 1226-1236. 

  38. Sadovsky, M.A., Nersesov, I.L., Nigmatullaev, S.K., Latynina, L.A., Lukk, A.A., Semenov, A.N., Simbireva, I.G. and Ulomov, V.I., 1972, The processes preceding strong earthquakes in some regions of Middle Asia. Tectonophysics, 14(3/4), 295-307. 

  39. Sen, P.K., 1968, Estimates of the regression coefficient based on Kendall's tau. Journal of the American Statistical Association, 63, 1379-1389. 

  40. Shen, C., Li, H., Sun, S., Liu, S., Xuan, S. and Tan, H., 2009, Dynamic variations of gravity and the preparation process of the Wenchuan Ms8.0 earthquake. Chinese Journal of Geophysics, 52(10), 2547-2557. 

  41. Watanabe, M., Thapa, R.B., Ohsumi, T., Fujiwara, H., Yonezawa, C., Tomii, N. and Suzuki, S., 2016, Detection of damaged urban areas using interferometric SAR coherence change with PALSAR-2. Earth, Planets and Space, 68, 131, 10.1186/s40623-016-0513-2. 

  42. Wongpornchai, P. and Suwanprasit, C., 2019, Feasibility study of thermal anomaly detection for earthquake: A case study from 2014 Mae Lao earthquake, Thailand. Earth and Environmental Science, 538, 1-8. 

  43. Woo, N.C., Lee, J.M., Lee, C.J., Kang, I.O. and Choi, D.H., 2015, Abnormal Changes in Groundwater Monitoring Data Due to Small-Magnitude Earthquakes. The Journal of Engineering Geology, 25(1), 21-33. 

  44. Yao, Q. L. and Qiang, Z. J., 2010, The elliptic stress thermal field prior to MS 7.3 Yutian, and MS 8.0 Wenchuan earthquakes in China in 2008. Natural Hazards, 54(2), 307-322. 

  45. Yoshino, T., Tomizawa, I. and Sugimoto, T., 1993, Results of statistical analysis of low-frequency seismogenic EM emissions as precursors to earthquakes and volcanic eruptions. Physics of the Earth and Planetary Interiors, 77(1-2), 21-31. 

  46. Yu, W., He, J., Lin, W., Li, Y., Men, W., Wang, F. and Huang, J., 2015, Distribution and risk assessment of radionuclides released by Fukushima nuclear accident at the Northwest Pacific. Journal of Environmental Radioactivity, 142, 54-61. 

  47. Yun, S.M., Hamm, S.Y., Cheong, J.Y., Lee, C.M., Seo, W.S. and Woo, N.C., 2019, Analyzing groundwater level anomalies in a fault zone in Korea caused by local and offshore earthquakes. Geosciences Journal, 23(1), 137-148. 

  48. Zhang, X., Zhang, Y., Tian, X., Zhang, Q. and Tian, J., 2017, Tracking of thermal infrared anomaly before one strong earthquake-In the case of Ms6.2 earthquake in Zadoi, Qinghai on October 17th, 2016. In Journal of Physics: Conference Series, 910(1), 012048 p. 

  49. Zhang, Y., Chen, S., Xing, L., Liu, M. and He, Z., 2020, Gravity changes before and after the 2008 Mw 7.9 Wenchuan earthquake at Pixian absolute gravity station in more than a decade. Pure and Applied Geophysics, 177(1), 121-133. 

  50. Zhima, Z., Hu, Y., Piersanti, M., Shen, X., De Santis, A., Yan, R., Yang, Y., Zhao, Z., Wang, Q., Huang, J. and Guo, F., 2020, The seismic electromagnetic emissions during the 2010 Mw 7.8 Northern Sumatra Earthquake revealed by DEMETER satellite. Frontiers in Earth Science, 8, 1-14. 

저자의 다른 논문 :

관련 콘텐츠

오픈액세스(OA) 유형

GOLD

오픈액세스 학술지에 출판된 논문

저작권 관리 안내
섹션별 컨텐츠 바로가기

AI-Helper ※ AI-Helper는 오픈소스 모델을 사용합니다.

AI-Helper 아이콘
AI-Helper
안녕하세요, AI-Helper입니다. 좌측 "선택된 텍스트"에서 텍스트를 선택하여 요약, 번역, 용어설명을 실행하세요.
※ AI-Helper는 부적절한 답변을 할 수 있습니다.

선택된 텍스트

맨위로