Garnet as Indicator of Pegmatite Evolution: The Case Study of Pegmatites from the Oxford Pegmatite Field (Maine, USA)

被引:14
作者
Hernandez-Filiberto, Lorena [1 ]
Roda-Robles, Encarnacion [2 ]
Simmons, William B. [3 ]
Webber, Karen L. [3 ]
机构
[1] Univ Alicante, Dept Ciencias Tierra & Medio Ambiente, San Vicente Del Raspeig 03690, Spain
[2] Univ Pais Vasco UPV EHU, Dept Geol, Leioa 48940, Spain
[3] Maine Mineral & Gem Museum, POB 500,99 Main St, Bethel, ME 04217 USA
基金
欧盟地平线“2020”;
关键词
garnet; pegmatites; petrogenetic indicator; Oxford pegmatite field; Maine; GRANITIC PEGMATITES; MT; MICA; NEW-HAMPSHIRE; ORIGIN; TOURMALINE; ELEMENT; FRACTIONATION; GEOCHEMISTRY; LINE;
D O I
10.3390/min11080802
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Almandine-spessartine garnets, from the Oxford County pegmatites and the Palermo No. 1 pegmatite, record significant compositional variations according to the degree of evolution of their hosting rock. Garnets from the most fractionated pegmatites (Mt. Mica, Berry-Havey, and Emmons) show the highest Mn, Nb, Ta, Zr, and Hf values, followed by those from the intermediate grade pegmatites (Palermo No. 1) and, finally, garnets from the barren pegmatites show the lowest values (Perham and Stop-35). Iron, Ca, and Mg contents follow an inverse order, with the highest contents in the latter pegmatites. Major element zoning shows increasing Mn values from core to rim in most garnet samples, while trace element zoning is not systematic except for some crystals which show a core to rim depletion for most of these elements. Chondrite normalized HREE (Heavy Rare Earth Elements) spectra show positive slopes for garnets from barren pegmatites, both positive and negative slopes for those associated with the intermediate pegmatite, and negative or flat slopes in garnets from the highly fractionated pegmatites. Ion exchange mechanisms, including Fe-12+Mn12+, (Fe2+, Mn2+)(-1)Si-1Li1P1; and, (Y, Ho3+)(2)(vac)(1)(Fe2+, Mn2+)(-3), could explain most of the compositional variations observed in these garnets. These compositional variations are the reflection of the composition of the pegmatitic magma (barren pegmatites originate from a more ferromagnesian magma than fractionated pegmatites); and of the coexisting mineral phases competing with garnets to host certain chemical elements, such as biotite, schorl, plagioclase, apatite, Fe-Mn phosphates, Nb-Ta oxides, zircon, xenotime, and monazite.
引用
收藏
页数:29
相关论文
共 52 条
[1]  
Allan BD, 1981, CAN MINERAL, V19, P19
[2]  
[Anonymous], 2013, PEG2013 6 INT S GRAN
[3]  
BALDWIN JR, 1983, CAN MINERAL, V21, P683
[4]  
Bastin E.S, 1911, GEOLOGY PEGMATITES A
[5]   Controls on the fractionation of isovalent trace elements in magmatic and aqueous systems: Evidence from Y/Ho, Zr/Hf, and lanthanide tetrad effect [J].
Bau, M .
CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 1996, 123 (03) :323-333
[6]  
Bitner J., 2011, P GSA ANN M MINN MN, V43, P413
[7]   GEOCHRONOLOGY AND TECTONIC CONTEXT OF LITHIUM-CESIUM-TANTALUM PEGMATITES IN THE APPALACHIANS [J].
Bradley, Dwight ;
Shea, Erin ;
Buchwaldt, Robert ;
Bowring, Sam ;
Benowitz, Jeff ;
O'Sullivan, Paul ;
McCauley, Andrew .
CANADIAN MINERALOGIST, 2016, 54 (04) :945-969
[8]   Phosphorus -: an omnipresent minor element in garnet of diverse textural types from leucocratic granitic rocks [J].
Breiter, K ;
Novák, M ;
Koller, F ;
Cempírek, J .
MINERALOGY AND PETROLOGY, 2005, 85 (3-4) :205-221
[9]   Granite ascent and emplacement during contractional deformation in convergent orogens [J].
Brown, M ;
Solar, GS .
JOURNAL OF STRUCTURAL GEOLOGY, 1998, 20 (9-10) :1365-1393
[10]   The classification of granitic pegmatites revisited [J].
Cerny, P ;
Ercit, TS .
CANADIAN MINERALOGIST, 2005, 43 :2005-2026