ENERO%2031-GEOCIENCIAS-VOL%2012-2%20DIC-EN%20BAJA[1].pdf EARTH SCIENCES RESEARCH JOURNAL Earth Sci. Res. J. Vol. 12, No. 2 (December 2008): 235-264 MULTIDISCIPLINARY APPROACH TO STUDYMIGMATITES: ORIGIN AND TECTONIC HISTORY OF THE NASON RIDGE MIGMATITIC GNEISS, WENATCHEE BLOCK, CASCADES CRYSTALLINE CORE, WA, USA Carlos A. Zuluaga C.1 and Harold H. Stowell2 1 Departament of Geosciences, Universidad Nacional de Colombia. 2 Department of Geological Sciences, University of Alabama, Tuscaloosa, AL 35487. ABSTRACT The Nason Ridge Migmatitic Gneiss of the Cascades Core is a migmatitic unit comprising concordant pelitic schist and gneiss, amphibolite, and tonalite gneiss, and cross cutting tonalite, quartz-rich granitoid, and pegma- tite. There are several generations of ‘igneous’ lithologies (leucosomes = tonalite, quartz-rich granitoid, and pegmatite) some of which are concordant; others clearly crosscut the strongly deformed host rocks. The host rocks are interpreted to be Chiwaukum Schist with metasedimentary (pelitic schist and some gneiss) and meta- volcanic (amphibolites) origins. Metamorphic fabric in the Nason Ridge Migmatitic Gneiss is characterized by preferred orientation of platy minerals (continuous schistosity), compositional layering, mineral lineations (elongate grains and grain aggregates), and non-coaxial deformational features (asymmetric augen, grain off- sets, rotated porphyroblasts, etc.). Compositional layering is characterized by quartz-plagioclase lenses and patches (mm to cm scale) and by large variations in biotite content. This composite fabric is faulted and folded by mesoscopic structures. The most strongly foliated leucosomes (gneissic tonalites) are generally concordant with the regional trend of foliation, while weakly foliated leucosomes (tonalites) and pegmatite veins crosscut host rock and tonalite gneisses. Thin melanosome layers (biotiteand amphibole schist) are developed locally around quartz – plagioclase lenses and patches. Metamorphism in the Nason Ridge Migmatitic Gneiss and the nearby Chiwaukum Schist likely peaked after intrusion of the Mt. Stuart Batholith ca. 91-94 Ma. Peak tempera- tures and pressures for the Nason RidgeMigmatiticGneiss in theWenatchee Ridge and Pacific Crest areas were 650 - 720 °C and 6 - 9 kbar with a pressure increase of £ 2.0 kbar during metamorphism. Thermodynamic modeling indicates that hydrous partial melting would begin at ca. 660 °C and is relatively pressure independent. Field and petrographic observations, mineral chemistry and thermobarometry, and bulk rock chemistry and thermodynamic modeling of phase equilibria (pseudosections) applied to the Nason Ridge 235 Manuscript received: June 10th, 2008. Accepted for publication: November 11th, 2008. 236 CARLOS A. ZULUAGA AND Migmatitic Gneiss indicate that at least some of the leucosome bodies were derived by local partial melting. The clearly intrusive character and the sharp contacts between some tonalite leucosome bodies and host rock support an externally derived origin for these tonalite melts. However, some of these bodies may have originated from partial melting of the host Chiwaukum Schist and traveled a short distance before crystallization, or have been modified by deformation so as to obscure textural evidence for local derivation. Results are compatible with derivation of leucosome rocks in the Nason RidgeMigmatitic Gneiss from two non-exclusive processes: partial melting of the host rock and intrusion of externally derived tonalite melts. RESUMEN El canto del Nason Migmatitico Gneiss de las cascadas Core es una unidad migmatìtica que concuerda con el pelitico schist y gneiss, amphibolite, y tonalite gneiss, y atraviesa cortando el tonalite, rico en cuarzo granitoide, y pegmatita. Hay varias generaciones de lithologias ígneas (leucosomes = tonalite, cuarzo rico en granitoide y pegmatite) algunos de los cuales son concordantes; otros claramente cortan transversalmente las rocas deformándoles. Las rocas son interpretadas para ser Chiwaukum Schist con metasedimentary y metavolcanic rigins. La telametamórfica en el Canto NasonMigmatiticGneiss es caracterizada por la orientación preferida de minerales platy, la acodadura compositiva, el mineral lineations, y rasgos de deformational no coaxiales. La acodadura compositiva es caracterizada por lentillas de-cuarzo-plagioclase y parches y por variaciones grandes en el contenido de biotite. Esta tela compuesta es tachada y doblada por estructuras demesoscopic. El más fuerte foliated leucosomes son generalmente concordante con la tendencia regional de foliación, mientras débilmente foliated leucosomes y el corte transversal de venas pegmatite reciben la roca y tonalite gneisses. Melanosome delgado(fino) se encama son desarrollados en la zona alrededor de lentillas de-cuarzo-plagioclase y parches. Metamorphism en el Canto nason Migmatitic Gneiss y Chiwaukum cercano Schist probablemente alcanzó su punto máximo después de la intrusión del Mt. California de Estuardo Batholith 91-94 mamá. Temperaturas máximas y presiones para el Canto Nason Migmatitic Gneiss en el Canto Wenatchee y la Cresta Pacífica áreas eran 650-720 °C y 6-9 kbar con una disminución de presión de £ 2.0 kbar durante metamorfismo. El modelado termodinámico indica que la fusión hydrous parcial beging en la California 660 ºC y es relativamente la presión independiente. El campo y observaciones petrographic, la química mineral y thermobarometry, y la química de roca de bulto y el modelado termodinámico de fase equilibra aplicado al Canto Nason Migmatitic Gneiss indican que al menos algunos cuerpos leucosome fueron sacados por la fusión local parcial. El carácter claramente intruso y los contactos agudos entre algún tonalite leucosome cuerpos y la roca de anfitrión apoyan un origen por fuera sacado para estos tonalite se derrite. Sin embargo, algunos de estos cuerpos pueden haber provenido de la fusión parcial del anfitrión Chiwaukum Schist y viajar una distancia corta antes de la cristalización, o han sido modificados por la deformación para obscurecer pruebas de textural para la derivación local. Los resultados son compatibles con la derivación de rocas de leucosome en el Canto Nason Migmatitic Gneiss de dos procesos no exclusivos: la fusión parcial de la roca de anfitrión y la intrusión de tonalite por fuera sacado se derrite. Palabras clave: Introduction This paper presents a multidisciplinary methodology to fully characterize a migmatitic unit: the Nason Ridge Migmatitic Gneiss (NRMG). The NRMG is one of three metamorphic culminations in the Cascades magmatic arc of the Cascades Crystalline Core (Cas- cades Core). The origin and metamorphic history of the NRMG constrains the deep crustal evolution of the magmatic arc; however, its origin is enigmatic and few data are available to constrain interpreta- tions. The unit has been interpreted as one of themost deeply exhumed parts of the Nason terrane (Brown andWalker, 1993;Miller and Paterson, 2001). Multi- ple techniques are used to elucidate the origin of the NRMG migmatites exposed in the Wenatchee Ridge area (Figure 1). Techniques include: petrographic analysis, thermobarometric calculations and P-T pseudosections. Pseudosections are used to construct quantitative P-T paths for metamorphism and to pre- dict conditions for partial melting. Thermobarometry and P-T pseudosections indicate that garnet grew over temperatures from 550 to 700 °C with a negligi- ble to moderate pressure increase of £ 2.0 kbar. P-T estimates from thermobarometry and pseudosection modeling support petrographic interpretations that partial melting produced leucosome quartz – plagioclase lenses in the NRMG. Methods Textural analysis Changes that rocks experience during metamorphism may be recorded in the mineralogy and texture. Par- tial melting of a rock suite generally produces identi- fiable petrographic characteristics that yield infor- mation about metamorphism and tectonic events. Macroscopic textures are the first and the simplest criteria that can be used to identify if a suite of rocks had been formed by partial melting. The presence of melanosome layers or patches (e.g., biotite selvages) provides the best evidence of local melt formation, and the presence of leucosome (rich in non-ferro- 237 MULTIDISCIPLINARY APPROACH TO STUDY MIGMATITES: ORIGIN AND TECTONIC HISTORY OF THE NASON RIDGE MIGMATITIC GNEISS, WENATCHEE BLOCK, CASCADES CRYSTALLINE CORE, WA, USA Figure 1. Generalized geologic map of the Wenatchee block in the Cascades Core, WA. Note the distribution of the main geologic units in the Nason terrane: Chiwaukum Schist, Nason Ridge Migmatitic Gneiss, and Mt. Stuart Batholith. magnesian minerals – generally quartz and feldspar), where the melt collected (Sawyer, 1999). Thin sec- tion analysis of textures and mineral assemblages was used to identify mineral assemblages that may have undergone melting and the potential melt form- ing reactions (e.g., Sawyer, 1999) and/or micro- scopic textures generally linked with partial melting processes (Sawyer, 1999; Mehnert et al., 1973; Ashworth and McLellan, 1985). These microscopic textures include: 1) thin films of plagioclase, quartz, and K-feldspar along grain boundaries (crystallized melt), and 2) melt-solid reaction textures. Macro- scopic features, assigned to partial melting, are readily identified in some mesosome rocks from the Nason Ridge Migmatitic Gneiss. On the other hand, microscopic features related to partial melting cannot be identified in Nason Ridge Migmatitic Gneiss rocks; likely because of extensive deformation. However, mineral parageneses identified in thin sec- tions are important for constraining thermodynamic models. Bulk rock chemistry Whole-rock compositions were determined by X-ray fluorescence from fused glass discs (samples were analyzed by Activation Laboratories, Ltd. and at The University of Alabama analytical facilities). One sample (00NC9d) was analyzed in both laboratories for interlaboratory comparison. Bulk rock samples were ground on a diamond embedded lap to remove surfaces that were obviously weathered or cut by the rock saw. Approximately 30 g of resulting ‘fresh’ sample was washed, and rinsed in acetone and 2M HCl before jaw crushing and grinding to a powder in a steel ring-and-puck mill. Samples prepared and an- alyzed at The University of Alabama were dried in two steps (120 ºC followed by ca. 1000 ºC), mixed with flux (lithium tetraborate 67% - lithium metaborate 33%) in a 1:9 proportion (sample/flux), and combined with a drop of lithium bromide non-wetting agent. This mix was fused in a plati- num-gold crucible using a gas burner, and cast into a 32 mm diameter disc using a platinum-gold mold. Glass discs were analyzed with The University of Al- abama Phillips PW2400 X-ray fluorescence spec- trometer equipped with a Rh X-ray tube. Calibration was based on 15 to 20 certified rock standards per el- ement. Mineral chemistry Quantitative mineral analyses and X-ray maps were collected with the JEOL 8600 electron probe microanalyzer at The University of Alabama using wavelength dispersion spectrometry. Major element analyses were collected with a 1 to 20 mm diameter beam at a current of 20 nA under a 15 kV accelerating potential. Raw counts from characteristic X-ray peaks were converted to weight percent oxides by comparison to natural mineral and synthetic stan- dards, using the CitZAF correction technique of Armstrong (1984). Count times ranged from 30 to 45 seconds. Operating conditions for collection of X-ray mapswere 15 kV accelerating potential, 75 to 300 nA beam current, and a 1 mm beam. Count times ranged from 50 to 100 ms pixel. Thermodynamic modeling and P-T paths for metamorphism Several methods have been used for constructing P-T paths for rocks (Spear and Selverstone, 1983; Spear, 1988; St-Onge, 1987; Stowell et al, 2001, Tinkham, 2002). The P-T paths constructed here follow the methods of Vance and Mahar (1998), Stowell et al. (2001), and Stowell and Tinkham (2003). Garnet rim thermobarometry was used to estimate P-T at peak metamorphic conditions with the average P-T routine of THERMOCALC (v. 3.21; Powell and Holland, 1988; Powell et al., 1998) using externally calculated activities. Activities were calculated using pressures and temperatures close to the estimated P-T condi- tions, then input in THERMOCALC for linearization of reactions or for average P-T calculation (Powell and Holland, 1994). Activities and P-T estimates were refined by iteration until calculation and esti- mated temperatures and pressures differ in less than 5 ºC and 0.1 kbar, respectively. Estimates for peak pressures and temperatures were further refined with pseudosection fields following the technique pre- sented in Zuluaga et al. (2005). Garnet core composi- 238 CARLOS A. ZULUAGA AND tions were plotted as the compositional variables spessartine, grossular, and iron number (Fe# = Fe/Fe+Mg) in P-T pseudosections (isopleths). Ide- ally, the three isopleths intersect at a single point, but frequently this is not the case because of the uncer- tainties in analytical data and in model calculations. However, the area bounded by isopleth intersections provides an estimate for initial garnet growth P-T conditions. Initial garnet growth P-T estimates were integrated with garnet rim thermobarometry to pro- vide a simplified finite P-T path for garnet growth. Pseudosections were constructed using the computer program THERMOCALC and the thermodynamic da- tabase of Holland and Powell (1998) with the silicate melts model extension (Holland and Powell, 2001; White et al., 2001; th pdata files created February 13, 2002). All thermodynamic models used the nine- component oxide system: MnO, Na2O, CaO, K2O, FeO, MgO, Al2O3, SiO2, and H2O (MnNCKFMASH) because this is the minimum system needed to realis- tically predict mineral stability for garnet-bearing pelites (Tinkham et al., 2001). Except for the melt phase, activity models used here are the same as those used and discussed in Tinkham et al., (2001). Melt activity models are the same as those presented in Holland and Powell (2001) andWhite et al (2001). Regional geology The Cascades Core of the North Cascades and the Coast Plutonic Complex to the north represent the roots of a Mesozoic to early Tertiary magmatic arc. Mesozoic metamorphic rocks and Cretaceous to Ter- tiary plutons crop out in the Cascades Core in a mo- saic of amalgamated terranes. The overall tectonic history of the Cascades Core has been discussed in several publications (e.g., Brown et al., 1994; Evans and Davidson; 1999; Miller et al., 1994; Tabor et al., 1993). The post metamorphic high angle Entiat fault divides the Cascades Core into two tectonic blocks with different thermal histories, the Wenatchee and Chelan Blocks (Miller et al., 1994; Miller and Pater- son, 2001; Haugerud et al., 1991). This paper focuses on the Wenatchee Block and does not discuss the Chelan Block. The most prominent metamorphic rock units in the Wenatchee Block are part of the Nason terrane. The Nason terrane consists of domi- nantly metasedimentary Chiwaukum Schist and the migmatitic Nason Ridge Migmatitic Gneiss. The earliest metamorphic event in the Chiwaukum Schist was a poorly understood pre-Mount Stuart amphibolite facies regional meta- morphic event (M R 1 )(e.g., Evans and Davidson, 1999). M R 1 mineral assemblages were overprinted by minerals that grew during Buchan style dynamic contact metamorphism associated with the Mount Stuart Batholith (M C 2 )(Evans and Berti, 1986) and other Late Cretaceous plutons. Late Cretaceous contact metamorphism was followed by Barrovian style regional metamorphism (M R 3 )(Evans and Berti, 1986; Evans and Davidson, 1999; Tinkham, 2002). Rocks adjacent to Late Cretaceous plutons typically containM C 2 andM R 3 mineral assemblages: for example, andalusite + cordierite ± garnet are typical of M C 2 , and staurolite + kyanite + garnet are typical of M R 3 (Evans and Berti, 1986; Tinkham, 2002). Chiwaukum Schist dominantly comprises metasedimentary rocks (aluminous biotite-rich schists) and lesser amounts of metavolcanic rocks (amphibolite) with penetrative foliation, predomi- nantly continuous schistosity, and lineation defined by mineral alignment. The Nason Ridge Migmatitic Gneiss contains biotite-rich and/or muscovite-rich schist, amphibolite, quartzite, and minor calc-sili- cate layers, and layers, lenses, patches, and veins of granitoid rocks yielding a migmatitic texture (Van Diver, 1967). Thermobarometry in the Nason terrane yields temperatures of 500-700 °C and systematic trends in pressure increasing from ca. 3 kbar, in the south to ca. 9 kbar in the northeast (Brown and Walker, 1993; Tinkham, 2002). Several tectonic models have been developed to explain the metamorphic and structural features of the Cascades Core. These models can be grouped into two types: (1) orogen normal contrac- tion, produced by bulk-shortening in a pure shear set- ting (Whitney and McGroder, 1989; McGroder, 1991; Whitney, 1992a; Whitney et al., 1999; Pater- son et al., 2004; Stowell et al., 2007) and (2) orogen 239 MULTIDISCIPLINARY APPROACH TO STUDY MIGMATITES: ORIGIN AND TECTONIC HISTORY OF THE NASON RIDGE MIGMATITIC GNEISS, WENATCHEE BLOCK, CASCADES CRYSTALLINE CORE, WA, USA parallel strike slip in a simple shear setting (Brown and Talbot, 1989; Brown and Walker, 1993; Brown et al., 1994; Walker and Brown, 1991). Thermal relaxation signature characterized by a fairly rapid pressure increase followed by tempera- ture increase during garnet growth supports the orogen normal contraction model with loading by a tapered thrust sheet (Stowell et al., 2007). Late Creta- ceous thrusting is preserved at the southern margin of the Wenatchee Block, where the Ingalls Ophiolite Complex was thrust over the Chiwaukum Schist (Windy Pass Thrust). Other evidence for thrusting is observed on the western border of the Cascades Core where an assemblage of oceanic sedimentary and volcanic rocks, were thrust onto the magmatic arc along a complex array of faults known as the North- west Cascades System. Metamorphic stretching lineations throughout the Cascades Core show a hori- zontal NW-SE preferred orientation and shear sense features indicate non-coaxial right-lateral motion (Brown and Talbot, 1989). Evidence for non-coaxial deformation includes asymmetric augen and porphyroclasts, rotated (snowball) porphyroclasts, S-C fabrics, and grain offsets. Strain partitioned fold- ing might have been the cause for the lack of struc- tural evidence for thrusting and steepening of paleobarimetric gradients (Stowell et al., 2007). Textural and compositional description of the Nason Ridge Migmatitic Gneiss Rosenberg (1961) and Van Diver (1967) reported the first detailed studies of the Nason Ridge Migmatitic Gneiss. Rosenberg (1961) subdivided the Chi- waukum Schist into the “Whittier Peak unit” and “Poe Mountain unit”, the last being the equivalent of the Nason Ridge Migmatitic Gneiss. Van Diver (1967) produced a detailed petrographic study of these rocks in the Wenatchee Ridge area. He inter- preted that this unit formed by granitization of Chiwaukum Schist following a migmatization front that focused around the Wenatchee Ridge Orthogneiss. Magloughlin (1986, 1989, and 1993) determined metamorphic conditions from thermo- barometric calculations and described pseudo- tachylites and other cataclastic rocks in the Chiwaukum Schist and Nason Ridge Migmatitic Gneiss on Wenatchee Ridge. Taylor (1994) and Miller and Paterson (2001) presented results from structural studies on the Chiwaukum Schist, which displays a strong composite schistosity resulting from transposed cycles of folding. Tinkham (2002) and Stowell and Tinkham (2003), reported garnet Sm-Nd geochronology and P-T-t paths for rocks at the western end of the Nason Ridge Migmatitic Gneiss near Heather Lake (Figure 1). These studies indicate that garnet grew at ca. 86 – 88 Ma (after Mt. Stuart emplacement ca. 93.5 Ma) during the latter stages of crustal loading recording 0 to £ 2 kbar of pressure increase along the heating path. The Nason Ridge Migmatitic Gneiss is an elon- gate northwest to southeast oriented body within the Chiwaukum Schist (Figure 1). Gradational contacts with the adjacent Chiwaukum Schist have been used to infer that the Nason RidgeMigmatitic Gneiss orig- inated from a Chiwaukum Schist protholith. In the Wenatchee Ridge area, Nason Ridge Migmatitic Gneiss is composed mainly of schist and gneiss with lesser volumes of tonalites, pegmatites and amphibo- lites. The rocks are classified into leucosomes, mesosomes, and melanosomes; following that scheme, textures and mineralogy for each lithology are discussed below. Figures 2 and 3 portray the lithological and structural features of the Nason Ridge Migmatitic Gneiss and sample localities dis- cussed here along Wenatchee Ridge and the Pacific Crest. Table 1 summarizes the most important petrographic features of samples described in the text. Leucosomes Leucosomes include a variety of igneous-like lithologies, which have variable composition, tex- tures, and field relations with other units (Figure 3; Tables 1 and 2). These units are generally tabular to sub-tabular in geometry and have thicknesses that range from cm to m scale (Figure 3). Three compositional groups are observed: 1) tonalites, 2) granodiorites, and 3) quartz-rich granitoids. Varia- 240 CARLOS A. ZULUAGA AND 241 MULTIDISCIPLINARY APPROACH TO STUDY MIGMATITES: ORIGIN AND TECTONIC HISTORY OF THE NASON RIDGE MIGMATITIC GNEISS, WENATCHEE BLOCK, CASCADES CRYSTALLINE CORE, WA, USA Figure 2. Geologic map of the Wenatchee Ridge area, Cascades Core, WA. Location provided on Fig. 1. Data to the northeast and to the southwest from Van Diver (1967). 242 CARLOS A. ZULUAGA AND F ig u re 3 . O u tc ro p m ap o f N as o n R id g e M ig m at it ic G n ei ss ea st o f P o e M o u n ta in , W en at ch ee R id g e, W A . T h is m ap il lu st ra te s co n ta ct re la ti o n s an d d is tr ib u ti o n o f m es o so m e an d le u co so m e li th o lo g ie s. N o te al so st ru ct u re s at ce n ti m et er to m et er sc al e. 243 MULTIDISCIPLINARY APPROACH TO STUDY MIGMATITES: ORIGIN AND TECTONIC HISTORY OF THE NASON RIDGE MIGMATITIC GNEISS, WENATCHEE BLOCK, CASCADES CRYSTALLINE CORE, WA, USA T a b le 1 . P et ro g ra p h y o f N as o n R id g e M ig m at it ic G n ei ss li th o lo g ie s, C as ca d es C o re , W A . S a m p le s Q tz P l K fs M s B t H b l C a m G rt K y S il T u r E p A cc e ss o ri e s N a m e ; te xt u re s L e u co so m e s 0 1 N C 2 a 3 5 3 0 1 0 2 0 5 - - - - - - - G rt , C z o , Z rn , R t G ra n o d io ri te ; F G -S F , IZ -M I, D 0 1 N C 2 b 4 5 4 0 - 1 5 - - - - - - - - R t. P e g m a ti te to n a lit e ; W F , D 0 1 N C 2 c 7 0 3 0 T r T r - - T r - - - - Q tz -P l le n s; G ra n o b la st ic 0 1 N C 3 b 3 0 3 5 - 3 5 - - - - - - - - E p , A p , Z rn , R t, G rt T o n a lit e ; M G -W F , M I, D 0 1 N C 8 a 4 0 3 5 - 1 5 5 - - - - - - - A p , Z rn , E p T o n a lit e ; S F , M I, C 0 1 N C 8 c 2 3 7 5 - - 1 - - - - - - - M s, S p n , A p , Z rn , C h l P e g m a ti te to n a lit e ; C G -W F , IZ , C 0 1 N C 9 a 3 5 3 7 1 5 - - - - - - - - - E p , A p , Z rn . G ra n o d io ri te ; F G -M G -S F , M I, P I, D 1 0 1 N C 9 b 4 0 3 5 1 5 1 0 - - - - - - - - B t, A p , Z rn , E p , C z o , O p G ra n o d io ri te ; M G -S F , M I, D 0 1 N C 1 5 c 4 5 3 5 - 1 5 5 - - - - - - - E p , A p , C h l T o n a lit e ; F G -W F , IZ , D 0 1 N C 1 5 a 6 0 2 0 - 2 0 - - - - - - - - G rt , A p , Z rn . P e g m a ti te Q tz -g ra n it o id ; W F , M I, D M e so so m e s 0 1 N C 2 c 5 5 1 5 - 2 2 0 - - 5 2 - - - R t, Z rn , A p G rt -K y -T u r g n e is s; Le p -G ra n 0 1 N C 3 a 5 5 2 0 - T r 2 5 - - T r - - - - A p , Z rn , R t B t- G rt sc h is t; Le p id o b la st ic 0 1 N C 6 5 0 2 0 - 3 1 5 - - 5 5 - T r T r A p , Z rn , R t( 2 % ), C z o G rt -K y sc h is t; Le p id o b la st ic 0 1 N C 8 d 7 8 - T r - 8 0 - 2 - - - - S p n (3 % ), A p , R t, C h l G rt a m p h ib o lit e ; Le p id o b la st ic 0 1 N C 9 c 4 0 3 3 - 1 2 5 - - 1 - - - T r A p , R t, Z rn G rt sc h is t; Le p id o b la st ic 0 1 N C 9 d 4 0 3 0 - 2 1 7 - - 5 3 - T r - C h l (3 % ), R t, Z rn , A p G rt -K y sc h is t; Le p -G ra n 244 CARLOS A. ZULUAGA AND S a m p le s Q tz P l K fs M s B t H b l C a m G rt K y S il T u r E p A cc e ss o ri e s N a m e ; te xt u re s 0 1 N C 1 0 7 7 - - - 5 5 - - - - - 3 0 C z o , R t, S p n A m p h ib o lit e ; Le p id o b la st ic 0 1 N C 1 5 b 4 5 3 0 - - 1 5 - - 5 1 - 1 - Z rn , R t( 3 % ), A p , C h l G rt -K y sc h is t; Le p id o b la st ic 0 1 N C 5 2 a 4 0 3 5 - - 2 0 - - 2 - 1 - M n z , A p , R t, Il m , Z rn , G r G rt -S il g n e is s; Le p id o b la st ic 0 1 N C 5 4 3 0 4 0 - - 5 1 5 - 7 - - - T r Z rn , Il m (3 % ), A p , C h l G rt -H b l sc h is t; le p id o b la st ic M e la n o so m e s 0 1 N C 2 c 8 4 1 0 7 0 - - 5 - 3 - - B t sc h is t; Le p id o b la st ic 0 1 N C 8 b 7 T r T r 3 - 9 0 - - - - - Z rn , A p , R t, E p A m p h ib o lit e ; Le p id o b la st ic 0 1 N C 4 0 3 T r 2 9 5 Z rn , A p B t sc h is t; Le p id o b la st ic W F = w ea k fo li at io n S F = st ro n g fo li at io n IZ = P l id io b la st ic zo n in g M I = m ir m ek it ic in te rg ro w th P I = p er th it ic in te rg ro w th F G = fi n e g ra in ed M G = m ed iu m g ra in ed C G = co ar se g ra in ed P eg . = p eg m at it ic C = C o n co rd an t D = D is co rd an t M in er al ab re v ia ti o n af te r K re tz (1 9 8 3 ). A ll n u m b er s ar e m o d es o b ta in ed m o st ly b y v is u al co m p ar is o n w it h m o d e es ti m at io n ch ar ts . 245 MULTIDISCIPLINARY APPROACH TO STUDY MIGMATITES: ORIGIN AND TECTONIC HISTORY OF THE NASON RIDGE MIGMATITIC GNEISS, WENATCHEE BLOCK, CASCADES CRYSTALLINE CORE, WA, USA T a b le 2 . W h o le ro c k a n a ly se s o f N a so n R id g e M ig m a ti ti c G n e is s lit h o lo g ie s, C a sc a d e s C o re , W A . S iO 2 T iO 2 A l 2 O 3 F e O F e 2 O 3 M n O M g O C a O N a 2 O K 2 O P 2 O 5 L O I T o ta l L e u co so m e 0 1 N C 2 a 7 0 .3 0 .1 9 1 6 .1 n .d . 1 .5 0 .0 2 0 .4 1 .6 3 .7 2 .9 0 .0 6 1 .2 5 9 8 .2 1 N C 2 b 7 5 .8 0 .0 4 1 4 .8 n .d . 0 .9 0 .0 0 0 .2 1 .2 4 .3 1 .6 0 .0 3 1 .2 3 1 0 0 .1 0 1 N C 2 c 7 8 .8 0 .0 5 1 2 .3 n .d . 0 .8 0 .0 0 0 .2 2 .6 3 .9 0 .2 0 .1 1 0 .5 6 9 9 .5 0 1 N C 3 b 7 5 .3 0 .0 5 1 7 .2 n .d . 0 .8 0 .0 0 0 .2 1 .5 3 .4 2 .4 0 .0 4 1 .1 7 1 0 2 .0 0 1 N C 8 a 7 1 .2 8 0 .2 8 5 1 6 .2 1 1 .8 4 0 0 .0 3 0 .9 4 2 .5 5 3 .9 6 2 .0 5 0 .1 0 .9 7 1 0 0 .2 0 1 N C 8 c 7 4 .2 4 0 .0 6 4 1 5 .1 6 0 .8 6 0 0 .0 0 8 0 .2 3 3 .0 5 5 .2 8 0 .7 2 0 .0 2 0 .7 8 1 0 0 .4 0 1 N C 9 a D K 6 9 .9 0 .3 8 1 7 .1 n .d . 2 .4 0 .0 0 0 .6 2 .4 4 .2 2 .8 0 .1 3 0 .6 8 1 0 0 .7 0 1 N C 9 a LT 6 8 .9 0 .2 0 1 6 .4 n .d . 1 .6 0 .0 0 0 .4 2 .1 3 .8 3 .1 0 .0 8 0 .8 6 9 7 .4 0 1 N C 9 b 7 2 .7 0 .0 8 1 6 .0 n .d . 0 .9 0 .0 0 0 .2 1 .3 3 .3 4 .3 0 .0 7 0 .8 2 9 9 .7 0 1 N C 4 0 7 2 .1 0 .1 4 1 6 .6 n .d . 0 .9 0 .0 2 0 .4 2 .5 5 .3 1 .0 0 .0 4 0 .6 1 9 9 .7 0 3 N C H S 3 b 7 0 .0 0 .2 6 1 6 .6 n .d . 2 .4 0 .0 0 1 .0 2 .6 4 .3 0 .8 0 .0 6 0 .3 7 9 8 .4 L e u co so m e -l e n se s 0 1 N C 1 5 b 8 5 .8 0 .1 0 7 .3 n .d . 1 .9 0 .0 0 0 .3 1 .5 1 .7 0 .3 0 .0 7 0 .3 9 9 9 .3 0 1 N C 5 2 a 8 1 .1 0 .0 7 1 0 .1 n .d . 1 .5 0 .0 1 0 .3 2 .6 2 .6 0 .2 0 .2 4 0 .3 0 9 9 .0 0 2 N C 7 7 9 .8 0 .0 3 1 1 .8 n .d . 0 .9 0 .0 0 0 .1 2 .3 3 .2 0 .1 0 .0 4 0 .1 6 9 8 .5 0 2 N C o u t1 9 7 2 .4 0 .1 1 1 4 .8 n .d . 2 .1 0 .0 1 0 .5 3 .2 4 .5 0 .5 0 .0 7 0 .4 4 9 8 .6 0 3 (9 9 )N C 5 7 p 7 3 .2 0 .0 5 1 4 .8 n .d . 1 .2 0 .0 0 0 .4 4 .4 4 .5 0 .3 0 .7 2 0 .2 3 9 9 .9 0 3 N C H S 3 b 7 6 .0 0 .0 6 1 5 .2 n .d . 1 .1 0 .0 0 0 .3 2 .8 4 .0 0 .2 0 .1 1 0 .2 0 1 0 0 .0 246 CARLOS A. ZULUAGA AND S iO 2 T iO 2 A l 2 O 3 F e O F e 2 O 3 M n O M g O C a O N a 2 O K 2 O P 2 O 5 L O I T o ta l M e so so m e 9 6 N C 6 7 (0 3 ) 6 2 .5 0 .8 1 1 7 .3 n .d . 8 .4 0 .1 5 3 .0 1 .7 1 .9 2 .0 0 .0 9 2 .0 7 9 9 .9 9 9 N C 3 7 6 6 .5 0 .7 8 1 5 .8 5 .3 2 0 .7 0 .1 1 2 .9 1 .7 2 .0 2 .3 0 .1 7 1 .1 0 9 9 .4 0 1 N C 2 -c 5 9 .6 0 .8 1 1 7 .7 n .d . 7 .7 0 .1 3 2 .8 2 .4 3 .4 3 .0 0 .2 6 2 .0 5 9 9 .8 0 1 N C 3 -a 6 3 .1 0 .8 2 1 6 .1 n .d . 7 .4 0 .1 0 3 .0 2 .2 3 .2 2 .9 0 .1 7 0 .9 8 1 0 0 .1 0 1 N C 6 5 8 .4 0 .8 8 1 8 .8 n .d . 8 .1 0 .1 1 3 .1 2 .6 3 .3 2 .6 0 .2 0 2 .7 6 1 0 0 .9 0 1 N C 8 d 4 8 .3 2 .2 8 1 3 .3 1 0 .0 9 2 .6 0 .2 3 6 .3 3 1 2 .0 1 .4 0 .7 0 .2 2 0 .8 7 9 8 .3 0 1 N C 9 c 6 5 .6 0 .7 2 1 5 .8 n .d . 6 .6 0 .1 0 2 .8 2 .2 3 .0 2 .6 0 .1 5 0 .8 4 1 0 0 .4 0 1 N C 9 d 6 4 .9 0 .8 3 1 5 .7 5 .5 8 0 .8 0 .1 2 3 .1 2 .0 2 .5 2 .6 0 .1 6 1 .8 8 1 0 0 .2 0 1 N C 1 5 b 6 7 .3 0 .7 3 1 3 .2 n .d . 6 .5 0 .0 8 2 .6 2 .4 2 .4 1 .7 0 .1 7 1 .3 9 9 8 .4 0 1 N C 5 2 a 6 0 .3 0 .8 9 1 8 .3 n .d . 8 .0 0 .1 0 3 .1 2 .8 2 .8 1 .8 0 .2 2 2 .4 3 1 0 0 .7 0 1 N C 5 4 4 9 .6 1 .6 4 2 1 .2 9 .7 1 .9 0 .2 5 2 .5 7 .6 3 .4 0 .9 0 .1 6 0 .2 7 9 9 .2 0 2 N C 3 b 6 4 .1 0 .7 8 1 6 .0 n .d . 7 .3 0 .1 0 2 .7 2 .4 3 .0 2 .1 0 .1 3 1 .3 2 9 9 .9 M e la n o so m e 0 1 N C 2 c 4 5 .8 1 .8 2 2 .6 4 n .d . 1 6 .1 0 .3 5 .6 1 .0 1 .1 2 6 .3 1 0 .3 n .d . 1 0 1 .1 (d ry ) 0 1 N C 8 b 5 4 .4 0 .2 1 8 .4 6 .4 1 1 .1 0 .2 4 1 3 .9 1 0 .6 0 .8 0 .7 0 .1 7 1 .5 8 9 8 .6 0 1 N C 4 0 4 1 .5 2 .6 7 1 8 .1 n .d . 1 7 .7 0 .1 4 7 .8 0 .5 0 .4 8 .4 0 .3 3 2 .2 0 9 9 .8 (1 ) W h en n o F eO is re p o rt ed al l ir o n is as su m ed as F e3 + A ll v al u es re p o rt ed as w ei g h t p er ce n t. B u lk -r o ck co m p o si ti o n s w er e d et er m in ed b y X -r ay fl u o re sc en ce an al y si s o f fu se d g la ss d is cs w it h T h e U n iv er si ty o f A la - b am a P h il li p s P W 2 4 0 0 X -r ay fl u o re sc en ce sp ec tr o m et er eq u ip p ed w it h a R h X -r ay tu b e. C al ib ra ti o n w as b as ed o n 1 5 to 2 0 ce rt if ie d ro ck st an d ar d s p er el em en t. 247 MULTIDISCIPLINARY APPROACH TO STUDY MIGMATITES: ORIGIN AND TECTONIC HISTORY OF THE NASON RIDGE MIGMATITIC GNEISS, WENATCHEE BLOCK, CASCADES CRYSTALLINE CORE, WA, USA Figure 4. Outcrop photograph and sketch showing general relations between lithologies in the Nason Ridge Migmatitic Gneiss, Wenatchee Ridge, WA. Locality 01NC9 (see Fig. 2). The sledgehammer in the center of the picture is 0.4 m long. A thick amphibolite layer (~25 m) is observed above and left of a tonalite gneiss, these lithologies are cross-cut by pegmatites. Within the tonalite gneiss and just below teh amphibolite contact is observed a dark lens of amphibole schist. tion in the type of mica present (muscovite, biotite, or both) and variation in the content of mica, garnet, and tourmaline are the most definitive expression of compositional differences between groups. Textur- ally, these rocks can be differentiated on the basis of grain size and metamorphic foliation. Grain size is variable from fine grained to pegmatitic; pegmatites are tonalites to quartz-rich granitoids, but fine- to me- dium-grained leucosomes have a larger compo- sitional range from granodiorite to tonalite. The de- 248 CARLOS A. ZULUAGA AND Figure 5. Examples of cross cutting relations between lithologies in the Nason RidgeMigmatitic Gneiss, Wenatchee Ridge, WA. a. A strongly-foliated tonalite crosscuting gneissose mesosome and weakly foliated tonalite. Note the two thin concordant non-foliated tonalites. b. Two foliated leucosomes interfingering with schistose mesosome. c. Weakly- to non-foliated leucosomes crosscutting schistose mesosome. d. Weakly-foliated pegmatite leucosome cross cutting schistose mesosome and weakly-foliated fine-grained tonalite concordant with schistose mesosome. 249 MULTIDISCIPLINARY APPROACH TO STUDY MIGMATITES: ORIGIN AND TECTONIC HISTORY OF THE NASON RIDGE MIGMATITIC GNEISS, WENATCHEE BLOCK, CASCADES CRYSTALLINE CORE, WA, USA Table 3. Mineral chemistry, Nason Ridge Migmatitic Gneiss, Cascades Core (WA) 01NC15b (Grt-Ky schist) Garnet Core - 5 anal. 01NC52a (Grt-Sil Gneiss) Garnet core - 29 anal. Rep. Average Cations Rep. Average Cations Oxides Oxides s.d. Oxides Oxides s.d. SiO2 36.72 36.71 0.09 2.96 37.01 37.13 0.16 2.96 TiO2 0.11 0.22 0.23 0.01 0.02 0.05 0.10 0.00 Al2O3 21.32 21.20 0.20 2.02 21.63 21.74 0.15 2.05 Cr2O3 FeO 26.13 26.45 0.29 1.78 28.81 28.71 0.20 1.93 MgO 1.33 1.33 0.02 0.16 2.18 2.30 0.06 0.28 MnO 5.81 5.59 0.16 0.38 5.32 5.30 0.12 0.35 CaO 8.05 8.06 0.24 0.70 5.18 5.33 0.13 0.45 Na2O K2O Total 99.47 99.56 100.15 100.56 02NC3b (Grt-Ky schist) Garnet core-20 anal. 01NC8b (Amp. schist) Amphibole - 20 anal. Rep. Average Cations Rep. Average Cations Oxides Oxides s.d. Oxides Oxides s.d. SiO2 36.78 36.55 0.15 2.95 47.81 47.90 0.43 6.93 TiO2 0.15 0.14 0.02 0.01 0.28 0.30 0.03 0.03 Al2O3 21.13 21.31 0.13 2.03 11.23 10.94 0.38 1.86 Cr2O3 0.22 0.16 0.04 FeO 27.38 27.44 0.23 1.85 8.55 8.43 0.22 1.02 MgO 1.21 1.25 0.04 0.15 14.68 14.70 0.20 3.17 MnO 5.16 5.16 0.08 0.35 0.28 0.27 0.03 0.03 CaO 7.98 7.91 0.15 0.68 11.81 11.91 0.15 1.85 Na2O 1.02 1.04 0.07 0.29 K2O 0.75 0.69 0.10 0.13 Total 99.80 99.76 96.63 96.33 (1) The average of all analyses is reported together with the standard deviation and a representative analysis (2) Oxides = oxide weight percent (3) Cation are calculated based on 11 oxygens for biotite, 12 oxygens for garnet, 8 oxygens for plagioclase, and 23 oxygens for am- phibole gree of foliation development varies from almost non-foliated to gneissic. Foliation is defined by alignment of micas, compositional layering, and elongation of quartz and plagioclase. Compositional layering is more com- mon within the thickest concordant gneissic leucosomes, where it is de- fined by variations in biotite content. Foliation in leucosomes is dominantly parallel to the regional trend of folia- tion observed in mesosomes (Figure 3). Pegmatite leucosomes are non-fo- liated to weakly-foliated and generally crosscut mesosomes, but fine- to me- dium-grained leucosomes show both concordant and discordant relations with mesosomes (Figure 4 and Figure 5). Fine-grained leucosome bodies are weakly- to strongly foliated and show complex outcrop interrelationships, some weakly-foliated bodies crosscut strongly-foliated bodies (Figure 4) and some gneissic bodies crosscut weakly-foliated bodies (Figure 5a). Contacts with adjacent rocks are gener- ally sharp and there is no evidence for contact metamorphism. Small-scale relict igneous tex- tures are common in pegmatite leucosomes, but are less common in finer grained rocks. These textures in- clude idioblastic compositional zon- ing in plagioclase (most commonly simple zoning, and rarely oscillatory) and myrmekitic intergrowths of quartz and plagioclase. Leucosome rock types are grouped, according to the degree of foliation development, into strongly foliated and weakly to non-foliated. This scheme emphasizes the variable deformation style and is readily appli- 250 CARLOS A. ZULUAGA AND Figure 6. Characteristics of strongly foliated leucosomes, Nason Ridge Migmatitic Gneiss. Locality 01NC8. a. Compositional layering at cm scale observed in outcrop. b. Thin section photomicrograph of sample 01NC8a showing foliation defined by muscovite and biotite alignment, and compositional layering expressed as variable biotite content. cable as objective criteria for field classification. Quartz-plagioclase lenses are grouped with weakly to non-foliated rocks because they do not show inter- nal foliation features. Leucosome bodies with the ex- ception of quartz – plagioclase lenses, constitute 16% to 43% of the outcrop area, along Wenatchee Ridge (Figure 2). The proprotion of these leucosomes drops to ca. 8% near the contact with the adjacent Chiwaukum Schist in the north. Strongly-foliated rocks. Strongly-foliated leucosomes are both concordant (Figure 4) and dis- cordant (Figure 5a) with mesosome fabrics. Mica alignment and alternating ferromagnesian-rich and quartz feldspathic-rich layers (Figure 6a) define foli- ation. Variation in biotite content at cm scale is the most notable expression of compositional layering (Figure 6b). Variation in grain size between layers is from fine- to medium-grained. This group of rocks ranges in composition from tonalite to granodiorite, contains one (muscovite) or two (muscovite + bio- tite) micas, and commonly contains: quartz + plagioclase + muscovite ± biotite ± garnet. Bulk rock chemical analyses (Table 2) reveals that these rocks are composed mainly of silica and aluminum (SiO2+Al2O3 ~ 90%) and that they have low iron and magnesium contents (Fe2O3+MgO < 2%). In general, these rocks are gneissic with granoblastic texture. Within the light colored bio- tite-poor layers, quartz-feldspar microlithons (< 0.2 cm) alternate with thin discontinuous muscovite microlithons (< 0.02 cm). Quartz is xenoblastic with arrested grain boundaries, undulatory extinction, and needle-like rutile inclusions aligned parallel to gneissosity. Plagioclase is xenoblastic or less com- monly subidioblastic, regularly has idioblastic compositional zoning (Figure 7), and albite twinning. Pericline and Carlsbad twinning are rare. Plagioclase commonly contains relatively large muscovite grains parallel to cleavage (Figure 7a), epidote, and occa- sionally quartz inclusions. Plagioclase can rarely be seen in vermicular intergrowths with quartz (Figure 7b). Potassium feldspar is xenoblastic and is perva- sively altered to white mica (kaolinite, muscovite, and/or paragonite). Muscovite and biotite are subidioblastic and platy; both define gneissosity. Zircon inclusions are common in biotite. Garnet is an 251 MULTIDISCIPLINARY APPROACH TO STUDY MIGMATITES: ORIGIN AND TECTONIC HISTORY OF THE NASON RIDGE MIGMATITIC GNEISS, WENATCHEE BLOCK, CASCADES CRYSTALLINE CORE, WA, USA Figure 7. Photomicrographs illustrating relict igneous textures in leucosomes lithologies, Nason Ridge Migmatitic Gneiss, WA. a. Subidioblastic simple zoning in plagioclase. b. Quartz- plagioclase mirmekitic intergrowth. c. Idioblastic oscillatory zoning in plagioclase. accessory phase, idioblastic to subidioblastic and nearly inclusions-free. Weakly- to non- foliated rocks. These leuco- some rocks are discordant and concordant bodies with compositions that range from tonalite to quartz-rich granitoid. Grain size varies from fine grained to pegmatitic (Figure 8a) and mineralogy is quartz + plagioclase + muscovite with biotite and garnet as minor to accessory phases. Quartz- plagioclase discontinuous lenses that occur in varying proportions within the gneisses and schists are grouped in this category. Chemically, these lithologies are very similar to strongly foliated bodies (Table 2), except the quartz – plagioclase lenses, which have lower Al2O3 content (~ 12%), slightly higher SiO2 content, and slightly lower Fe2O3+MgO. Weakly gneissose bodies have a granoblastic texture (Figure 8b). Quartz is xenoblastic with un- dulatory extinction. Plagioclase is xenoblastic, but some small grains are subidioblastic with lath shape. Twinning is uncommon, but when present is pericline or rarely albite twinning. Quartz inclu- sions are common in plagioclase, and as in gneissic bodies, plagioclase is altered to muscovite along cleavage planes and in some cases to sericite, 252 CARLOS A. ZULUAGA AND Figure 8. Characteristics of weak to non-foliated leucosomes, Nason Ridge Migmatitic Gneiss,WA. a. Outcrop aspect of a non-foliated (two-mica tonalite) and a weak foliated leucosome (muscovite pegmatite tonalite). b. Photomicrographs of the two-mica tonalite, no foliation is observed and mica grains are randomly orientated. 253 MULTIDISCIPLINARY APPROACH TO STUDY MIGMATITES: ORIGIN AND TECTONIC HISTORY OF THE NASON RIDGE MIGMATITIC GNEISS, WENATCHEE BLOCK, CASCADES CRYSTALLINE CORE, WA, USA Figure 9. Characteristics of mesosome garnet-kyanite gneiss, sample 01NC2c, Nason Ridge Migmatitic Gneiss, WA. a. Layering at cm scale with abundant leucosome lenses. b. Thin melanosome layers are observed on each side of the leucosome lenses. c. Photomicrograph of the gneiss, mm scale leucosome, melanosome, and mesosome layers can be recognized. d. Photomicrograph under plane polarized light of the mesosome portion of the gneiss, observe the abundance of garnet. e. Photomicrograph of the melanosome portion, biotite, garnet, and quartz are the main components, tourmaline and muscovite are also present. f. Photomicrograph of the mesosome portion showing the most common mineral paragenesis: garnet + kyanite + quartz + plagioclase + biotite + muscovite. 254 CARLOS A. ZULUAGA AND Figure 10. Characteristics of mesosome schist and amphibolite, Nason Ridge Migmatitic Gneiss, WA. a. Fine- to medium-grained with < 10% leucosome lenses. b. Photomicrograph in plane polarized light of a garnet-kyanite schist, note the large garnet porphyroblasts and the quartz-plagioclase lens (no associated selvage) in the lower portion of the photograph. c. Amphibolite layer with alternating dark hornblende-rich bands and thin light colored bands with quartz, plagioclase, and epidote. d. Photomicrograph of a garnet amphibolite composed mainly of hornblende, quartz, epidote, and small garnet porphyroblasts, sphene is accessory and observed evenly distributed. 255 MULTIDISCIPLINARY APPROACH TO STUDY MIGMATITES: ORIGIN AND TECTONIC HISTORY OF THE NASON RIDGE MIGMATITIC GNEISS, WENATCHEE BLOCK, CASCADES CRYSTALLINE CORE, WA, USA Figure 11. Mesoscopic structures observed on Wenatchee Ridge, WA. a. Quartz veins with tight isoclinal folding. b. Boudinage in pegmatite. c. Similar isoclinal folding in biotite-garnet-kyanite gneiss. d. Similar folding in biotite-garnet schist. epidote, and clinozoisite. Muscovite is idioblastic to subidio- blastic, with platy form, and its alignment defines the gneissosity. Large grains of plagioclase and quartz have cracks filled with finer grained ag- gregates of quartz, muscovite, and plagioclase. The quartz – plagioclase lens-shaped bodies have long dimensions of 0.05 to >1 m and are typically par- allel or at low angle to the dominant foliation. They are composed mainly of quartz and plagioclase with mi- nor amounts of biotite (Figures 9b and 9c). Quartz is xenoblastic and plagioclase is xenoblastic to subidioblastic. The plagioclase is commonly altered to muscovite and epidote. Quartz-plagioclase lenses are locally associated with thin discontinuous selvages of biotite-rich schist that are described below as melanosomes. Melanosomes Biotite schist. These thin (generally £ 2 cm thick) bi- otite-rich layers only occur directly adjacent to quartz-plagioclase leucosome lenses in the gneisses (Figure 9b). The mineral assemblage for these lenses is biotite + garnet + quartz + plagioclase ± muscovite ± tourmaline (Figure 9e). They are schistose with a strong lepidoblastic texture as a result of the high bio- tite content. Biotite is subidioblastic and tourmaline is idioblastic, other minerals present are generally xenoblastic. Garnet, when present, is generally strongly elliptical and elongate in the foliation orien- tation. The chemical composition of these rocks is controlled by the high biotite mode. The most impor- tant constituents are SiO2 + Al2O3 + Fe2O3 + MgO + K2O + TiO2 (Table 2). SiO2 content is notably lower than other Nason Ridge Migmatitic Gneiss lithologies and they have a high TiO2 content (~2.7%). Amphibole schist. Amphibole schist is coarse- to medium-grained and composed mainly of a calcic amphibole (Table 3). Other minerals present are quartz and plagioclase, and locally muscovite. The texture is strongly schistose and lepidoblastic (linear fabric defined by amphibole orientation). The amphi- bole is idioblastic with lamellar and simple twinning. It has abundant inclusions of quartz-plagioclase- muscovite-biotite, and is locally poikiloblastic. Quartz is xenoblastic with undulatory extinction, and fills voids between amphibole grains. Plagioclase is subidioblastic to xenoblastic. Muscovite is present mainly as inclusions in amphibole. These melanosome have also lower SiO2 content that mesosomes or leucosomes (Table 2). Their chemical composition is similar to that of Biotite schist except that CaO is a major component and K2O is a minor component. Mesosomes Mesosomes comprise schist, gneiss, and amphibo- lite. Gneiss described here as mesosome is com- positionally distinct from leucosome gneiss, has con- tacts that are concordant with adjacent mesosome schists, and differs from mesosome schist only by containing lesser amounts of biotite. Mesosome gneiss differs mineralogically from leucosome gneiss in that it contains abundant garnet and kyanite. Schist and gneiss. Fine- to medium-grained schist and medium grained gneiss with porphyroblasts of kyanite (1 – 5 mm), garnet (1 – 30 mm), and tourmaline (< 2 mm). The most common prograde mineral assemblage is biotite + quartz + plagioclase with variable amounts of muscovite, gar- net, staurolite, and kyanite/sillimanite. Accessory phases include tourmaline, apatite, rutile, ilmenite, and zircon. Chemical composition of schist and gneiss is characterized by SiO2 between 60 and 70%, Al2O3 between 13 and 18%, Fe2O3 between 6 and 8%, and MgO+CaO+Na2O+K2O between 2 and 4% (Table 2). Mesosome gneiss is chemically different from leucosome gneiss in that Fe2O3+MgO is greater than 9% and SiO2 is lower than 70% in mesosomes while Fe2O3+MgO is lower than 3% and SiO2 is greater than 70% in leucosomes. Gneiss shows compositional layering at mm scale with alternating biotite-rich and biotite-poor layers, and at cm scale with < 2 cm thick leucosome lenses bounded by < 0.5 cm thick melanosome layers (Figure 9). Compositional layering is also expressed by subtle variations in garnet and kyanite content, and porphyroblast size. Schist contains quartz-plagio- 256 CARLOS A. ZULUAGA AND clase leucosome lenses of < 10% with lengths from 2 cm to 10 cm and thickness < 5 mm (Figure 10a). Mineral alignment is commonly observed in hand sample and includes parallel orientation of mica (defining foliation) and sub-parallel orientation of kyanite and tourmaline porphyroblasts (defining lineation). Foliation along the crest of Wenatchee Ridge generally strikes west-northwest and dips north-northeast (Figure 2 and Figure 3). Lineation is subhorizontal west trending (Figure 3). Other fabrics observed at thin section and outcrop scale include asymmetric augen and microfolding to mesofolding with axial surfaces parallel to subparallel with folia- tion (Figure 11). At the microscopic scale penetrative foliation is characterized by parallel orientation of bi- otite and muscovite grains. Locally, garnet porphyroblasts have helicitic snowball structures compatible with rotation and large biotite grains have mica fish morphology also compatible with porphyroblast rotation. Gneiss has lepidoblastic tex- ture in melanosomes, granoblastic texture in leucosomes, and granoblastic predominating over lepidoblastic textures in mesosomes (Figure 9). Schist varies from strongly schistose to weakly gneissose, with subtle compositional layering formed by quartz-rich lenses and varying amounts of biotite. Grain contacts show generally arrested morphology, but some minerals are subidioblastic to idioblastic with well-developed faces (especially porphy- roblasts). Muscovite and chlorite occur as retrograde minerals that commonly crosscut foliation and/or form epitaxial intergrowths with biotite.Muscovite is also present in some layers apparently as a prograde mineral. Quartz is fine-grained to locally coarse, xenoblastic, and in some cases elongated in the folia- tion direction, with undulatory extinction and abun- dant fractures probably reflecting late brittle features. Plagioclase is fine-grained, xenoblastic to subidioblastic with irregular shape, but a few laths are observed. Pericline and albite twinning are com- mon, and carlsbad twinning is rare. Simple idioblastic compositional zoning is observed in some grains, with an inclusion rich albitic core. Larger grains contain rounded inclusions of quartz. Locally, plagioclase is altered to muscovite and epidote. Bio- tite is subidioblastic, deep brown in color, contains abundant zircon inclusions, and a lesser number of apatite and opaque mineral grains. Biotite preferred orientation generally defines the dominant foliation. In some rocks, biotite is replaced by chlorite in epitaxial intergrowth. Muscovite is subidioblastic and most commonly occurs as fine aggregates of ran- domly oriented grains replacing kyanite porphy- roblasts. Garnet is xenoblastic to subidioblastic in gneisses (Figure 13, Figure 14, and Figure 15) and idioblastic to subidioblastic in schists. Locally garnet is poikiloblastic, and elongated parallel to the folia- tion. Poikiloblastic crystals contain inclusions of quartz, plagioclase, and biotite, and are surrounded by coronas or pressure shadows of quartz- plagioclase aggregates. X-ray maps and quantitative mineral analyses across grains indicate that xenoblastic to subidioblastic garnet grains generally have weak compositional zoning while other subidioblastic to idioblastic garnet grains have strong compositional zoning.Weakly-zoned garnet displays smooth zoning profiles with no significant central zoning and with relatively wide (> 0.2 mm) rimswith increased spessartine mole fraction and Fe/(Fe +Mg) (Figure 12b) which is refer to as reverse zoning to in- dicate that this pattern is the reverse to that which would be predicted for growth during increasing temperatures (Hollister, 1966). The lack of strong central zoning and wide ‘reverse’ zoned rims in these subidioblastic to xenoblastic grains is interpreted to result from post-growth diffusion and partial resorp- tion. Strongly zoned garnet grains have smooth bell-shaped zoning profiles and wide to thin reverse zoned rims. Almandine and pyrope mole fractions show enrichment from core to rim (Xalm ~0.60 to ~0.73, Xprp ~0.05 to ~0.18), and spessartine and grossular mole fractions are correspondingly de- pleted (Xspss ~0.15 to ~0.02, Xgrs ~0.23 to ~0.09). A reversal in zoning is also present near the rims, but this is typically a zone less than 0.1 mm wide. The strong zoning in these subidioblastic to idioblastic grains is interpreted to result from growth during prograde metamorphism. Grain size distribution for garnet is bimodal with a median for larger grains be- tween 1-3 mmand amedian for smaller grains at ~0.1 257 MULTIDISCIPLINARY APPROACH TO STUDY MIGMATITES: ORIGIN AND TECTONIC HISTORY OF THE NASON RIDGE MIGMATITIC GNEISS, WENATCHEE BLOCK, CASCADES CRYSTALLINE CORE, WA, USA mm. Larger grains generally have abundant inclu- sions of quartz, plagioclase, biotite, muscovite, il- menite, and graphite. Smaller garnet grains generally lack inclusions. Kyanite is idioblastic to subidioblastic, bladed with an orientation parallel to foliation, and varies from pristine in some samples to completely replaced by muscovite in others. Sillimanite is present as prismatic, isolated, less than 5 mm long grains and as aggregates of fibrolite. Chlorite only occurs as a retrograde mineral replac- ing biotite. Tourmaline is acicular idioblastic, aligned with foliation, and color zoned (green core – brown rim). Amphibolite. Amphibolite varies from fine to medium grained layers that are up to 25 m thick (Figure 2 and Figure 4). The typical mineral assem- blage is hornblende + quartz + plagioclase ± garnet ± sphene ± epidote ± zoisite (Fig. 10d). Bulk rock chemical analysis for one amphibolite sample re- veals that their SiO2 content is lower than 50% and that they have higher Fe2O3+MgO (> 25%) and CaO (> 12%) than other mesosome lithologies (Ta- ble 2). The texture is schistose with compositional layering characterized by alternating light green quartz-plagioclase-epidote and dark green hornblende-rich layers (Figure 10c and Figure 10d). Dark green layers have lepidoblastic texture defined by hornblende alignment. Quartz-rich lenses with granoblastic texture are commonly present. Hornblende is idioblastic to subidioblastic in elon- gated prisms defining schistosity. It contains abun- dant inclusions of quartz and epidote that are poorly aligned with schistosity. Epidote is equant xenoblastic to subidioblastic. Plagioclase is xenoblastic to subidioblastic (in quartz-rich lenses), strongly altered to muscovite-epidote-clinozoisite, but albite twinning and a subidioblastic zoning are still recognizable. Quartz is present as a minor phase mainly filling spaces between amphiboles. Sphene is diamond shaped, idioblastic, and regularly dis- tributed. Garnet is equant, poikiloblastic and xenoblastic, concentrated in hornblende-rich layers, and has abundant inclusions of plagioclase, quartz, and epidote. Interpretation of textural features The Nason Ridge Migmatitic Gneiss leucosomes de- scribed above (non-foliated to weakly-foliated pegmatites and tonalites, strongly-foliated tonalites, and quartz-plagioclase lenses) are interpreted as: undeformed (some pegmatites), weakly deformed (some pegmatites and tonalites), and strongly de- formed (tonalite gneiss). These differing amounts of deformation likely reflect emplacement of magmatic bodies over a protracted period of time during vari- able states of stress. Unfortunately, no geochronol- ogical data are available to quantify the timing and duration of emplacement. The non-foliated quartz- plagioclase lenses define foliation in mesosomes and thus were probably affected by or related to the de- formation event that produced foliation in the strongly deformed tonalite gneiss. They are also lo- cally rimmed with selvages composed mainly of bio- tite and garnet. These textural features support the local development of partial melts (quartz- plagioclase lenses) from mesosome lithologies. Seg- regation of melt into the lenses would leave behind an un-melted restite. There are no other unambiguous textures supporting partial melting; however, low generation of partial melts hindered melt segregation and extensive deformation and metamorphic re-equilibration subsequent to melting could have erased other partial melting textures. Nason Ridge Migmatitic Gneiss rocks show variable evidence for retrogression. The most com- monly observed retrograde features are poikilo- blastic garnet with wide rims of reverse or retrograde zoning, kyanite partially or completely replaced by muscovite, and chlorite replacing Fe-Mg minerals. Wide (up to 0.2 mm) rims of manganese enrichment and increased Fe/(Fe+Mg) are interpreted to repre- sent resorption of garnet. Manganese that was prefer- entially incorporated into garnet during growth is inferred to have been re-incorporated into remaining garnet near the rim during consumption of the grain. Other components in the garnet are distributed into matrix phases, and there likely was Fe-Mg exchange with other matrix minerals and equilibration associ- 258 CARLOS A. ZULUAGA AND ated with diffusion of these elements into the garnet at high temperature. Melanosome origins have been interpreted in several ways (Brown, 2002; Kriegsman, 2001). The most common interpretation for melanosomes is that they are sites of melt extraction, and represent the non-reactive un-melted fraction of the rock or restite (Mehnert, 1968; Brown et al., 1995). A second inter- pretation, which has received recent attention, is that melanosomes result from retrograde back reactions between crystallizingmelt (leucosome) and host rock (Kriegsman and Hensen, 1998; Kriegsman, 2001). A third interpretation is that melanosomes are formed by mafic minerals crystallizing from a melt (Kriegsman, 2001). The interpretation that selvages are an un-melted fraction is disregarded here based on thermodynamic modeling (see Chapter 3). Al- though, as predicted by modeling, the probable melt- ing reactions involve very little biotite and the resulting melts would have low iron and magnesium, back-reactions during partial melt crystallization and retrograde metamorphism would produce biotite modal increase in restite rimming leucosomes. An ar- gument against formation of selvages by back-reac- tions is that they are not always observed around leucosome lenses, even within the same mesosome lithologies. It seems reasonable, if retrogression was an extensive selvage forming mechanism, that the melanosome would be present around all leucosome lenses in the Nason Ridge Migmatitic Gneiss. How- ever, the biotite selvage forming mechanism envi- sioned here requires that the volume of equilibration between leucosome and restite must be close to a 1:1 proportion or higher (see Figure 11, Chapter 3) and that this back-reactions focused on a thin layer sur- rounding the segregated melt. If back-reactions are taking place between equal proportions of leucosomes and restite in a larger scale (not focusing in mm to cm rimming restite) modal proportion of bi- otite will be uniform across the re-equilibrated por- tion of the rock and no biotite-rich rimming selvage will be observed. Sharp contacts between leucosome gneiss and adjacent rocks and the strongly deformed character of the gneiss suggest that these bodies were emplaced as magmas before the last deformation event. These rocks most probably formed by injection of foreign magma because the volume of magma (up to 43%) is too great to have formed locally. There is a general absence of evidence for contact metamorphism around leucosomes; however this is readily ex- plained by overprinting of later metamorphic events (M R 3 ) and/or by small temperature differences be- tween the igneous bodies and the country rock. The origin of discordant weakly foliated leucosome is un- certain, because they could have originated by partial melting at lower crustal levels within the same unit, then traveled short distances to their emplacement position. P-T paths for metamorphism in the Nason Ridge Migmatitic Gneiss Three P-T paths from NRMG (see Stowell et al., 2007) based on metamorphic peak P-T estimates from thermobarometry and pseudosections and ini- tial garnet growth P-T estimations from garnet chem- istry compositions plotted in P-T pseudosections show that garnet initial growth was in all samples in a range of 550 ºC ± , and 6.5 kbar ± ; estimated peak P-T conditions are, however, variable and they are evidence of the degree of exhumation of a particular area. The finite P-T paths reflect a pressure increase during garnet growth of less than 2 kbar (Figure 12) in agreement with other estimates in the NRMG and the nearby Chiwaukum Schist. Pseudosection models of partial melts in metapelitic rocks of the Nason Ridge Migmatitic Gneiss Pseudosection models of two samples from the NRMG (Zuluaga, 2004) support wet partial melting as the origin for leucosome lenses and associated bio- tite selvages. Water likely saturated the system dur- ing metamorphism and partial melting as indicated by T-X(H2O) pseudosections. Temperature predic- tions for wet partial melting, using P-T pseudosections, are in the range of 655 ºC (10 kbar) – 259 MULTIDISCIPLINARY APPROACH TO STUDY MIGMATITES: ORIGIN AND TECTONIC HISTORY OF THE NASON RIDGE MIGMATITIC GNEISS, WENATCHEE BLOCK, CASCADES CRYSTALLINE CORE, WA, USA 260 CARLOS A. ZULUAGA AND Figure 12.Metamorphic P-T paths for Nason Ridge Migmatitic Gneiss, WA. Garnet rim and core P-T estimates plotted on the MnNCKFMASH P-T pseudosection define the garnet growth segment of the path. Final ‘peak’ P-T for garnet growth is estimated from garnet near-rim compositions and matrix mineral chemistry using avergae P-T with THERMOCALC. The intersection of the uncertainty ellipse for rim thermobarometry with the fields for the peak mineral assemblage provides the best estimation of peak metamorphic conditions. a. Sample 01NC15b (Wenatchee ridge). b. Sample 01NC52a. (Pacific crest) c. Sample 02NC3b (Nason ridge). 703 ºC (3 kbar); melts were produce likely by reac- tions that involve comsumption of quartz and plagioclase. P-T pseudosection predictions also in- clude production of leucocratic melts, peritectic gar- net, and peritectic kyanite, and consumption of biotite and muscovite. Predictions are also consistent with the presence of biotite selvages as product of retrograde back-reactions (Zuluaga, 2004; see also Kriegsman, 2001). Discussion Four general models have been proposed to explain the origin of migmatitic rocks: metamorphic differ- entiation, metasomatism, injection of foreign magma, and partial melting. Metasomatism was in- ferred for formation of the Nason Ridge Migmatitic Gneiss by Van Diver (1967). Later, other authors have inferred that this unit originated mainly from magmatic injection (Miller and Patterson, 2001). Re- sults from thermodynamic modeling and petrographic observations suggest that partial melt- ing was responsible for some of the leucosomes ob- served within the Nason Ridge Migmatitic Gneiss. Water content and temperature are the two most im- portant variables controlling the formation of partial melts. In the model presented in chapter 3, water is assumed to be the product of dehydration reactions and that remained in the system (closed system) or it was sequentially expulsed from the system during prograde metamorphism (open system). Lack of wa- ter availability would cause low volumes of partial melt and unlikely preservation of partial melting tex- tures because of metamorphic re-equilibration. Tem- perature estimates for Nason Ridge Migmatitic Gneiss (625 ºC – 806 ºC) are close to or above the es- timated wet solidus (655 ºC at 10 kbar – 703 ºC at 3 kbar). Estimated peak metamorphic conditions and rock textures for sample 01NC52a support a partial melt origin for leucosome quartz – plagioclase lenses. In outcrops close to sample 01NC15b locality textures are also compatible with partial melt origin for quartz – plagioclase lenses. However, estimated peak metamorphic conditions for this sample are at temperatures lower than those predicted for initiation of melting. This discrepancy may be explained by back-reactions that are modeled thermodynamically in Chapter 3, where the absence of textures indicative of partial melting are explained by low melt genera- tion at some levels that hindered melt segregation and allowed retrograde re-equilibration. The P-T paths calculated for samples 01NC15b and 02NC3b are similar toP-T paths determined in the nearby Chiwaukum Schist (Tinkham, 2002), where P-T paths show zero to £ 2 kbar pressure increase dur- ing garnet growth. The P-T path for sample 01NC52a is not well constrained; however, the possible P-T paths in this sample are consistent with the interpreta- tion of paths with less than 2 kbar pressure increase. Results show considerably smaller pressure increases than those proposed by previous workers (e.g., Brown and Walker, 1993; Whitney et al., 1999). The working hypothesis proposed for the Nason Ridge Migmatitic Gneiss origin include three events: pre- to syn-tectonic intrusives (gneissic tonalites), melting with formation of leucosome lenses, veins and patches, and a late intrusive event, that might or might not be related to partial melting of the same unit at lower crustal levels. The concordant character and the strong foliation interpreted to have resulted from the main deformation event are the arguments supporting a pre- to syn-tectonic intrusion origin for the gneissic tonalites. The presence of selvages and thermody- namic model predictions suggest partial melting for the origin of discontinuous leucosome lenses present in Nason Ridge Migmatitic Gneiss lithologies. These lenses did not form an interconnected net of melt and thus partial melts generated at this crustal level did not migrate far from the melting site. The interconnected array of pegmatites and weakly foliated tonalites are probably of post- or syn-tectonic origin. Acknowledgements Bob Miller and Scott Patterson are thanked for their generous help during field work. NSF EAR–9628232 (Green and others) and NSF EAR–0207777 (Stowell) provided partial analyti- cal and field support. 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