OHARA Y, ISHII T. Peridotites from the southern Mariana forearc: heterogeneous fluid supply in mantle wedge[J]. Island Arc, 1998, 7(3): 541-558.
|
PARKINSON I J, PEARCE J A. Peridotites from the Izu-Bonin-Mariana forearc (ODP Leg 125): evidence for mantle malting and melt-mantle interaction in a supra-subduction zone setting[J]. Journal of Petrology, 1998. 39(9): 1577-1618.
|
陈俊兵, 曾志刚. 马里亚纳南部前弧橄榄岩的岩石及矿物学:对弧下地幔楔交代作用的指示[J]. 海洋地质与第四纪地质, 2007(1): 53-59.
|
陈俊兵, 曾志刚. 马里亚纳岛弧南部前弧方辉橄榄岩的交代作用:单斜辉石和角闪石的微量元素特征[J]. 中国科学:D辑, 2007(06): 720-727.
|
MURATA K, MAEKAWA H, YOKOSE H, et al. Significance of serpentinization of wedge mantle peridotites beneath Mariana forearc, western Pacific[J]. Geosphere, 2009, 5(2): 90-104.
|
汪小妹, 曾志刚, 陈俊兵. 马里亚纳前弧南部橄榄岩的蛇纹石化[J]. 自然科学进展, 2009(08): 859-867.
|
PARKINSON I J, HAWKESWORTH C J, COHEN A S. Ancient mantle in a modern arc: osmium isotopes in Izu-Bonin-Mariana forearc peridotites[J]. Science, 1998, 281: 2011-2013.
|
STERN R J, BLOOMER S H. Subduction zone infancy: examples from the Eocene Izu-Bonin-Mariana and Jurassic California arcs[J]. Geological Society of America Bulletin, 1992, 104: 1621-1638.
|
HALL C E, GURNIS M, SDROLIAS M, et al. Catastrophic initiation of subduction following forced convergence across fracture zones[J]. Earth and Planetary Science Letters, 2003, 212(1-2): 15-30.
|
任建业. 海洋底构造导论[M]. 武汉: 中国地质大学出版社,2008.
|
BLOOMER S H. Distribution and Origin of Igneous Rocks from the landward slopes of the Mariana trench: implicaitons for its structure and evolution[J]. Journal of Geophysical Research, 1983, 88(B9): 7411-7428.
|
LEAKE B E. A catalog of analysed calciferous and subcalciferous amphiboles together with their nomenclature and associated minerals[J]. Geological Society of America Special Paper, 1968, 98: 1-210.
|
COLTORTI M, BONADIMAN C, FACCINI B, et al. Amphiboles from suprasubduction and intraplate lithospheric mantle[J]. Lithos, 2007, 99(1-2): 68-84.
|
ISHIMARU S, ARAI S, ISHIDA Y, et al. Melting and multi-stage metasomatism in the mantle wedge beneath a frontal arc inferred from highly depleted peridotite xenoliths from the avacha volcano, southern kamchatka [J]. Journal of Petrology, 2007, 48(2): 395-433.
|
MAROCCHI M, HERMANN J, MORTEN L. Evidence for multi-stage metasomatism of chlorite-amphibole peridotites (Ulten Zone, Italy): Constraints from trace element compositions of hydrous phases[J]. Lithos, 2007, 99(1-2): 85-104.
|
ZANETTI A, MAZZUCCHELLI M, RIVALENTI G, et al. The Finero phlogopite-peridotite massif: an example of subduction-related metasomatism[J]. Contributions to Mineralogy and Petrology, 1999, 134(2): 107-122.
|
MOTTL M J, WHEAT C G, FRYER, et al. Chemistry of springs across the Mariana forearc shows progressive devolatilization of the subducting plate[J]. Geochimica Et Cosmochimica Acta, 2004, 68(23): 4915-4933.
|
BEBOUT G E, BARTON B D. Fluid flow and metasomatism in a subduction zone hydrothermal system: Catalina Schist terrane, California[J]. GEOLOGY, 1989, 17: 976-980.
|
MANNING C E. The chemistry of subduction-zone fluids[J]. Earth and Planetary Science Letters, 2004, 223(1-2): 1-16.
|
HERMANN J, SPANDLER C, HACK A, et al. Aqueous fluids and hydrous melts in high-pressure and ultra-high pressure rocks: Implications for element transfer in subduction zones[J]. Lithos, 2006, 92(3-4): 399-417.
|
GRGOIRE M, MCINNES B I A, O'REILLY S Y. Hydrous metasomatism of oceanic sub-arc mantle, Lihir, Papua New Guinea: Part 2. Trace element characteristics of slab-derived fluids[J]. Lithos, 2001, 59(3): 91-108.
|