DOI QR코드

DOI QR Code

Petrological Study on the Mantle Xenolith from Songaksan, Jeju Island

제주도 송악산에 분포하는 맨틀포획암의 암석학적 연구

  • Youngwoo Kil (Department of Energy and Resources Engineering, Chonnam National University)
  • 길영우 (전남대학교 에너지자원공학과)
  • Received : 2023.10.15
  • Accepted : 2023.11.28
  • Published : 2023.12.30

Abstract

Songaksan, formed about 3800 year ago, is one of the tuff rings in the Jeju Island. Mantle xenoliths, spinel peridotites, are enclosed in the Songaksan Trachybasalt. The spinel peridotites are less than 2 cm in size and are composed of olivine, orthopyroxene, clinopyroxene, and spinel. The uniform compositions of the minerals from core to rim indicate that equilibrium was reached in the spinel peridotites before these were enclosed in the host magma. The spinel peridotites originated at depths between 55 and 60 km with equilibrium temperatures ranging from 915 to 968℃. The spinel peridotites from Songaksan reveal porphyroclastic texture with a lot of neoblast minerals. Olivines display strong kink banding, indicating that the upper mantle of Songaksan has been deformed. The spinel peridotites from Songaksan have undergone about 5~7% fractional melting, and cryptic metasomatism by an silicate melt. The period of entrainment and transport of the spinel peridotites in the host magma is about 15 days.

제주도 응회환 중 하나인 송악산은 약 3800년 전에 형성되었고, 송악산의 조면현무암에는 스피넬 페리도타이트라는 맨틀암석이 포획되어 있다. 스피넬 페리도타이트의 크기는 2 cm 이하이고, 감람석, 사방휘석, 단사휘석, 스피넬로 구성되어져 있다. 스피넬 페리도타이트 구성광물들의 중심부와 연변부의 화학조성이 유사한 것은 스피넬 페리도타이트가 모암 마그마에 포획되기 전 평형상태에 있었다는 것을 의미이다. 평형온도는 지하 약 55~60km 깊이에서 약 915~968℃ 이다. 네오블라스트 광물을 많이 함유하고 있는 스피넬 페리도타이트는 잔쇄반상조직을 보이고, 구성광물 중 감람석이 킹크밴드를 보이는 것은 송악산 상부맨틀이 변형 받았음을 지시한다. 약 5~7%의 분별용융작용과 규산염 용융체에 의한 은폐교대작용을 경험한 송악산 스피넬 페리도타이트는 모암 마그마에 포획된 후 약 15일이라는 빠른 기간 만에 지표에 올라왔다.

Keywords

Acknowledgement

이 연구는 2023년도 교육부 및 산업통상자원부 재원으로 K-CCUS 추진단의 지원(KCCUS20220001, 온실가스감축 혁신인재양성사업)을 받아 수행된 연구이다. 논문을 상세히 검토하여 주신 익명의 심사 위원에게 감사를 드린다.

References

  1. Ahn, U.S., Sohn, Y.K., Yoon, W.S., Ryu, C.K., Jeong, J.O. and Kang, C.W., 2015, Geochemical fingerprinting of basaltic glass in tephra deposits underlying the human footprints-bearing strata in Jeju Island, Korea: Provenance of tephra and age of the human footprints. Journal of the Geological Society of Korea, 51, 105-126. https://doi.org/10.14770/jgsk.2015.51.2.105
  2. Bertrand, P. and Mercier, J.C.C., 1985, The mutual solubility of coexisting ortho- and clinopyroxene: toward an absolute geothermometer for the natural system? Earth Planetary Science Letters, 76, 109-122. https://doi.org/10.1016/0012-821X(85)90152-9
  3. Brey, G.P. and Kohler, T., 1990, Geothermobarometry in fourphase lherzolites II. New thermobarometers, and practical assessment of existing thermobarometers. Journal of Petrology, 31, 1353-1378. https://doi.org/10.1093/petrology/31.6.1353
  4. Choi, S.-H., 2000, Oxidation state of mantle xenoliths from Jeju-do, South Korea. Geosciences Journal, 4, 211-220. https://doi.org/10.1007/BF02910139
  5. Choi, S.-H., 2012, Lithospheric mantle beneath the Korean peninsula: Implications from peridotite xenoliths in alkali basalt. Journal of the Petrological Society of Korea, 21, 235-247. https://doi.org/10.7854/JPSK.2012.21.2.235
  6. Choi, S.H., Jwa, Y.-J. and Lee, H.Y., 2001, Geothermal gradient of the upper mantle beneath Jeju Island, Korea: Evidence from mantle xenoliths. Island Arc, 10, 175-193. https://doi.org/10.1111/j.1440-1738.2001.00317.x
  7. Choi, S.-H., Lee, J.-I., Park, C.-H. and Moutte, J., 2002, Geochemistry of peridotite xenoliths in alkali basalts from Jeju Island, Korea. Island Arc, 11, 221-235. https://doi.org/10.1046/j.1440-1738.2002.00367.x
  8. Coltorti, M., Bonadiman, C., Hinton, R.W., Siena, F. and Upton, B., 1999, Carbonatite metasomatism of the oceanic upper mantle: Evidence from clinopyroxenes and glasses in ultramafic xenoliths of Grande Comore, Indian Ocean. Journal of Petrology, 40, 133-165. https://doi.org/10.1093/petroj/40.1.133
  9. Coltorti, M., Beccaluva, L., Bonadiman, C., Salvini, L. and Siena, F., 2000, Glasses in mantle xenoliths as geochemical indicators of metasomatic agents. Earth and Planetary Science Letters, 183, 303-320. https://doi.org/10.1016/S0012-821X(00)00274-0
  10. Dawson, J.B., 1984, Contrasting types of upper mantle metasomatism? In Kimberlites (eds. Kornprobst, J.), Elsevier, Amsterdam, 289-294.
  11. Droop, G.T.R., 1987, A general equation for estimating Fe3+ concentrations in ferromagnesian silicates and oxides from microprobe analyses, using stoichiometric criteria. Mineralogical Magazine, 51, 431-435. https://doi.org/10.1180/minmag.1987.051.361.10
  12. Han, Y.-H., 2007, Trace element characteristics of clinopyroxene in peridotite xenoliths from Jeju island. MS thesis, Pusan National University, 45p.
  13. Harte, B., 1977, Rock nomenclature with particular relation to deformation and recrystallization textures in olivine-bearing xenolith. The Journal of Geology, 85, 279-288. https://doi.org/10.1086/628299
  14. Hofmann, A.W., 1988, Chemical differentiation of the Earth: the relationship between mantle, continental crust, and oceanic crust. Earth and Planetary Science Letters, 90, 297-314. https://doi.org/10.1016/0012-821X(88)90132-X
  15. Kil, Y., 2002, Mantle evolution associated with the Rio Granderift: Geochemistry and geothermobarometry of upper mantle xenoliths. Ph.D. dissertation, Colorado School of Mines, 160p.
  16. Kil, Y., 2006, Characteristics of subcontinental lithospheric mantle beneath Baegryeong Isalnd, Korea: Spinel peridotite xenoliths. Island Arc, 14, 269-282. https://doi.org/10.1111/j.1440-1738.2006.00526.x
  17. Kil, Y., 2007, Geochemistry and petrogenesis of spinel lherzolite xenoliths from Boeun, Korea. Journal of Asian Earth Sciences, 29, 29-40. https://doi.org/10.1016/j.jseaes.2005.12.006
  18. Kil, Y., Shin, H.-J. and Ko, B., 2007, Magma Magma Pathway of Alkali Volcanic Rocks in Goseong, Gangwon-do, Korea. Journal of the Petrological Society of Korea, 16, 196-207.
  19. Kil, Y., Shin, H.-J., Yun, S.-H., Koh, J.-S. and Ahn, U.-S., 2008, Geochemical Characteristics of Mineral Phases in the Mantle Xenoliths from Sunheul-ri, Jeju Island. Journal of the Mineralogical Society of Korea, 21, 373-382.
  20. Kil, Y., Jung, H. and Yang, K., 2016, Li isotopic disequilibrium of the Cenozoic subcontinental lithospheric mantle in East Asia. Geosciences Journal, 20, 597-607. https://doi.org/10.1007/s12303-016-0024-y
  21. Kil, Y., Hong, S.S., Lee, C.H. and Ahn, U.S., 2022, Petrological study on the mantle xenolith from Dongsuak crater, Jeju island. Korean Journal of Mineralogy and Petrology, 35, 173-182. https://doi.org/10.22807/KJMP.2022.35.3.173
  22. Kim, Y.-K., Lee, D.-S., Song, Y.-K. and Kim, S.-E., 1988, Petrological of ultramafic nodules in Jogok-ri Basalt, Boun area. Journal of the Geological Society of Korea, 24, 57-66.
  23. Kim, K.-H., Kagao, K., Jang, H.-S., Sumino, H. and Chung, J.-I., 2002, Nd, Sr and noble gas isotopic compositions of alkali basaltic rocks and mantle xenoliths in the Baeryongdo. Journal of the Korean Society of Economic and Environmental Geology, 35, 523-532.
  24. Kohler, T.P. and Brey, G.P., 1990, Calcium exchange between olivine and clinopyroxene calibrated as geothermobarometer for natural peridotites from 2 to 60 kb with applications. Geochemica et Cosmochimica Acta, 54, 2375-2388. https://doi.org/10.1016/0016-7037(90)90226-B
  25. Lee, M.-W., 1984, Petrology of mafic inclusion in Jeju volcanic rock. Journal of the Geological Society of Korea, 20, 306-313.
  26. Lee, H.-Y., 2002, Petrology of spinel lherzolite from South Korea: Implication of P/T estimate. Journal of the Korean Earth Science Society, 23, 38-51.
  27. Lee, J.-A., Kim, K.-H., Lee, J.-I. and Choo, M.-K., 2013, Oxygen isotopic ratios for ultramafic xenoliths from the Korean peninsula. Journal of the Korean Earth Science Society, 34, 28-40. https://doi.org/10.5467/JKESS.2013.34.1.28
  28. Lee, S.R. and Walker, R.J., 2006, Re-Os isotope systematics of mantle xenolith from South Korea: Evidence for complex growth and loss of lithospheric mantle beneath East Asia. Chemical Geology, 231, 90-101. https://doi.org/10.1016/j.chemgeo.2006.01.003
  29. Lim, S.-A., Koh, J.-S. and Yun, S.-H., 2000, The study on spinel peridotite xenoliths from Songaksan, Jeju Island. The conference of petrological society of Korea and mineralogical society of Korea, Andong-Si, 18.
  30. Marsden, R.C., Danisik, M., Ahn, U.-S., Friedrichs, B., Scmitt, A.K., Kirkland, C.L., McDonald, B. and Evans, N.J., 2021, Zircon double-dating of Quaternary eruptions on Jeju Island. Journal of Volcanology and Geothermal Research, 410, 107171.
  31. Mercier, J.C. and Nicolas, A., 1975, Texture and fabrics of upper mantle peridotites as illustrated by xenoliths from basalts. Journal of Petrology, 16, 454-487. https://doi.org/10.1093/petrology/16.2.454
  32. Nam, B.-H., 2008, Foliated peridotite xenoliths in basalt from Jeju Island. MS thesis, Pusan National University, 102p.
  33. Nixon, P.H., 1987, Mantle xenoliths. Wiley and Sons, New York, 844p.
  34. O'Neill, H.S.T.C., 1981, The transition between spinel lherzolite and garnet lherzolite, and its use as a geobarometer. Contribution to Mineralogy and Petrology, 77, 185-194. https://doi.org/10.1007/BF00636522
  35. Park, G., Kim, E., Kim, S.-W., Jeong, H.-Y. and Yang, K., 2018, Petrology of peridotite xenoliths from the Neocene alkaline basalt from Baegryeong Island. Journal of the Geological Society of Korea, 54, 75-92. https://doi.org/10.14770/jgsk.2018.54.1.75
  36. Park, J.B., Ko, G.W., Jeon, Y., Park, W.B., Moon, S.H. and Moon, D.C., 2021, Geology and volcanism of Hyeongjeseom (Islet) volcano, Jeju Island. Economic and Environmental Geology, 54, 187-197. https://doi.org/10.9719/EEG.2021.54.2.187
  37. Park, K.H., Cho, D.L., Kim, J.C., 2000, Geological report of the Moseulpo-Hanlim sheet (1:50,000). Korea Institute of Energy and Resources, 56p.
  38. Park, K.H., Kim, Y.J., Kwon, C.W., Ha, G.C., Park, W.B., Go, G.W. and Park, J.B., 2013, Experience the Geological splendor of Jeju Island: the visitor' Guide. KIGM, Daejeon, 204p.
  39. Seo, M., Woo, Y., Park, G., Kim, E., Lim, H.-S. and Yang, K., 2016, Mantle-derived CO2-fluid inclusions in peridotite xenoliths from the alkali basalt, Jeju Island, South Korea. Journal of the Petrological Society of Korea, 25, 39-50. https://doi.org/10.7854/JPSK.2016.25.1.39
  40. Shin, H.-J., Kil, Y., Jin, M.-S. and Lee, S.-H., 2006, Petrological study on upper mantle xenoliths from Asan and Pyeongtaek area. Journal of the Geological Society of Korea, 42, 95-113.
  41. Sohn, Y.K., Park, J.B., Khim, B.K., Park, K.H. and Koh, G.W., 2003, Stratigraphy, petrochemistry and Quaternary depositional record of the Songaksan tuff ring, Jeju Island, Korea. Journal of Volcanology and Geothermal Research, 119, 1-20. https://doi.org/10.1016/S0377-0273(02)00302-5
  42. Sohn, Y.K., Yoon, W.S., Ahn, U.S., Kim, G.B., Lee, J.H., Ryu, C.K., Jeon, Y.M. and Kang, C.H., 2015, Stratigraphy and age of the human footprints-bearing strata in Jeju Island, Korea: Controversies and new findings. Journal of Archaeological Science: Reports, 4, 264-275. https://doi.org/10.1016/j.jasrep.2015.09.014
  43. Soto, J.I. and Soto, V.M., 1995, PTMafic (v.2.0): software package for thermometry, barometry, and activity calculations in mafic rocks using an IBM or compatible computer. Computers and Geosciences, 21, 619-652. https://doi.org/10.1016/0098-3004(94)00101-Y
  44. Witt-Eickschen, G. and Seck, H.A., 1991, Solubility of Ca and Al in orthopyroxene from spinel peridotite: an improved version of an empirical geothermometer. Contribution to Mineralogy and Petrology, 106, 431-439. https://doi.org/10.1007/BF00321986
  45. Woo, Y., Yang, K., Kil, Y., Yun, S.-H. and Arai, S., 2014, Silica- and LREE-enriched spinel peridotite xenoliths from the Quaternary intraplate alkali basalt, Jeju Island, South Korea: Old subarc fragments? Lithos, 208-209, 312-323. https://doi.org/10.1016/j.lithos.2014.09.003
  46. Wood, B.J. and Banno, S., 1973, Garnet-orthopyroxene and orthopyroxene- clinopyroxene relationships in simple and complex systems. Contribution to Mineralogy and Petrology, 42, 109-124. https://doi.org/10.1007/BF00371501
  47. Yang, K., 2004, Fluid inclusions trapped in xenoliths from the lower crust/upper mantle beneath Jeju Island (I): a preliminary study. Journal of the Petrological Society of Korea, 13, 34-45.
  48. Yang, K., 2016, Composition and evolution of lithosphere beneath the Jeju Island region (I): a review. Journal of the Petrological Society of Korea, 25, 261-281. https://doi.org/10.7854/JPSK.2016.25.3.261
  49. Yu, J.-E., Junm, S.-W. and Yang, K., 2011, Silica enrichment in mantle xenoliths trapped in basalt, Jeju Island: Modal metasomatic evidence. Journal of the Petrological Society of Korea, 20, 61-75. https://doi.org/10.7854/JPSK.2011.20.1.061
  50. Yu, J.-E., Yang, K., Jeong, H. and Kil, Y., 2012, Petrology of pyroxenite xenoliths enclosed in basaltic rocks from Shinsanri of Jeju Island. Journal of the Geological Society of Korea, 48, 299-312.
  51. Yun, S.-H., Koh, J.-S. and Anh, J.-Y., 1998, A study on the spinel-lherzolite xenolith in the alkali basalt from eastern Cheju Island, Korea. Journal of the Korean Society of Economic and Environmental Geology, 31, 447-458.