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Structural, lithostratigraphic and thermal features of a Permian lower crust from the Western Italian Alps (Valpelline Series, Valle d’Aosta)

Published online by Cambridge University Press:  06 February 2024

Fabiola Caso*
Affiliation:
Dipartimento di Scienze della Terra “A. Desio”, Università degli Studi di Milano, Milano, Italy
Antonella Strambini
Affiliation:
Dipartimento di Scienze della Terra “A. Desio”, Università degli Studi di Milano, Milano, Italy
Michele Zucali
Affiliation:
Dipartimento di Scienze della Terra “A. Desio”, Università degli Studi di Milano, Milano, Italy
*
Corresponding author: Fabiola Caso; Email: fabiola.caso@unimi.it
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Abstract

The Valpelline Series (Dent-Blanche Tectonic System, Western Italian Alps) is a sector of lower continental crust, which consists of Permian migmatitic metapelite with different mineral assemblages (i.e., garnet-, cordierite- and orthopyroxene-bearing), minor amphibolite and marble, intruded by aplite and pegmatite. Widespread melt production in metapelite and locally in amphibolite occurred during the development of the regional foliation. The PT conditions during migmatisation, estimated using conventional geothermobarometers, range between 800–900 °C and 0.5–0.8 GPa, with a difference of up to ∼50 °C between cordierite- and orthopyroxene-bearing migmatites, the latter reaching higher temperatures. The Valpelline Series shows rock types, metamorphic assemblages, PT conditions and published ages of high-temperature regional metamorphism like the archetypal lower crust section of the Ivrea-Verbano Zone in the Southern Western Alps. The latter likely represents an external portion of the same extending lower crust, at the onset of the Tethyan rifting due to lithospheric extension and asthenospheric rising.

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Copyright
© The Author(s), 2024. Published by Cambridge University Press
Figure 0

Figure 1. (a) Tectonic sketch map of the Alps showing the main palaeogeographic domains. (b) Geological map of the Western Alps highlighting the Adria-derived tectono-metamorphic units (modified after Roda et al.2021). E: Etirol-Lèvaz; Em: Emilius; GR: Glacier Refray; Pi: Pillonet; V: Vanoise; IIDK: II Zona Diorito-Kinzigitica (Dent-Blanche s.s. and MM s.s. have not been differentiated).

Figure 1

Figure 2. Schematic geological map showing the main units of the Dent-Blanche Tectonic System and the equal area stereographic projection of the main structural elements. At the bottom, geological cross-section (A – A’) across the Arolla and Valpelline series.

Figure 2

Figure 3. (a) Modal percentages (% vol) in metapelites and (b) metabasites.

Figure 3

Table 1. Summary of the main features of the rock types cropping out in the VP.

Figure 4

Figure 4. (a) Outcrop of migmatite gneiss with the typical alternation between leucosomes and melanosomes marking the main foliation. The red star indicates the Kfs-bearing leucosome; blue star is the Pl-bearing one. (b) Microscale detail of Bt + Sil foliation in migmatite gneiss (PPL: plane-polarised light). (c) Migmatite gneiss with folded leucosome characterised by the occurrence of dark Crd porphyroblasts (Lac Mort). (d) Crd poprhyroblast in a leucosome of migmatite gneiss substituted by fine-grained Wm along fractures (XPL: crossed-polarised light). (e) Detail of migmatite gneiss with Opx grey blasts and Grt pink blasts (Dzovenno). (f) Microscale view of Opx and Grt porphyroblasts in a migmatite gneiss wrapped by the Bt-rich foliation (XPL). (g) Fine-grained Bt-migmatite gneiss levels cut by thin leucosomes. (h) Millimetric Grt blasts in a fine-grained Bt-migmatite gneiss (PPL). (i, j) Sillimanite-gneiss whose foliation is defined by prismatic sillimanite blasts wrapping around centimetric Grt porphyroblasts (j: XPL). (k) Felsic granulite characterised by widespread presence of plurimillimetric Grt in a white Pl-rich matrix. (l) Microscale detail of Grt porphyroblasts and Pl blasts overgrown by fine-grained white mica in felsic granulite. Rt crystals are also present (XPL).

Figure 5

Figure 5. (a) Basic granulite level within migmatite gneiss at the Lac Mort area with a zoom on the selvedge between the level and migmatite on the bottom right. (b) Centimetric Oamp crystal in basic granulite at Thoules. (c) Detail of a basic granulite at the microscale made of granoblastic Opx, retrogressed Pl, Oamp and minor Qz and Bt (XPL). (d) Brown amphibolite boudins cut by Pl–Bt-pegmatite (red arrow) within migmatite gneiss at Oyace. (e) Microscale detail of brown amphibolite (PPL). (f) Black amphibolite outcrop crosscut by a pegmatite dyke. (g) Garnet megablast within black amphibolite surrounded by Pl + Qz-rich aggregates (red arrow). (h) Microscale view of black amphibolite made of Amp + Cpx-rich and Qz + Pl rich-levels (PPL). (i) Outcrop of an impure marble with pluricentimetric Qz-rich disrupted fold hinges. (j) Ol and Cpx blasts in a Cc-rich matrix in impure marble. The red arrow highlights a melt film (XPL). (k) Melt pocket (red arrow) moving from migmatite gneiss and cutting a basic granulite level. (l) Pegmatitic dyke cutting the migmatitic foliation and the basic granulite boudin at Lac Mort area.

Figure 6

Figure 6. (a) S1 foliation in basic granulite boudin wrapped by S2 foliation in migmatites. (b) S1 folded foliation in brown amphibolite boudin. (c) Inclusions-rich Grt I core rimmed by the inclusions-poor Grt II. The latter includes rounded Bt I and is wrapped by the S3 foliation (PPL). (d) Rounded Bt I blasts included in Crd in a migmatite gneiss (XPL). (e) S2 foliation in migmatite gneiss at the Perquis area. f) S2 foliation in migmatite gneiss at the microscale made by Bt II and Grt II and leucosome (XPL). (g) S2 foliation in black amphibolite cut by Grt and Cpx-rich leucosomes. (h) S2 foliation folded at the Lac Mort area. (i) S3 foliation defined by Sil III + Bt III and locally Ilm in a sillimanite-gneiss (XPL). (j) Syn-kinematic Grt II porphyroblasts with an internal foliation in the rim concordant with the external S3 (XPL). (k) Opx II blast in migmatite gneiss wrapped by the S3 foliation made by Bt III + Qz II intergrowths (XPL). (l) Folded pegmatitic dyke intruding migmatite gneiss at the Lac Mort area.

Figure 7

Figure 7. Blastesis-deformation relationships diagrams for metapelite and metabasite relative to the HT stages.

Figure 8

Figure 8. Whole-rock compositions of the main rock types of the VP with shaded areas indicating data from the literature of IVZ (Kunz et al.2014; Redler et al.2013; Williams et al.2022). (a) SiO2 vs. alkali content plot. (b) SiO2 vs. Al2O3 wt% in metapelite. (c) SiO2 vs. FeO + Fe2O3 wt% plot. (d) SiO2 vs. MgO wt% plot. (e) SiO2 vs. CaO wt% plot. (f) SiO2 vs. TiO2 wt% plot.

Figure 9

Figure 9. (a, b) XMg (Mg/Mg+Fe) vs Ti (a.p.f.u.) content in biotite (22 oxigens) from metapelite and metabasite (isolines are after Henry et al.2005). (c, d) Garnet ternary plot of metapelite (with Mg and Fe X-Ray maps) and metabasite (data from Nicot, 1977). (e, f) Feldspar ternary plots of metapelite and metabasite.

Figure 10

Figure 10. (a) FeTOT + Mg (a.p.f.u.) vs Ca (a.p.f.u.) plot of amphiboles from metabasite. (b) AlTOT vs Ti (a.p.f.u.) plot of amphibole of metabasite. (c) Fe2+ vs Mg (a.p.f.u.) content plot of pyroxene from both migmatite gneiss and metabasite. (d) Ternary compositional diagram showing pyroxene variation in the terms of Fe, Mg and Ca of both migmatite gneiss and metabasite. (e) Mg (a.p.f.u.) vs Fe2+ (a.p.f.u.) in cordierite from migmatite gneiss. (f) Compositional variations diagram of rutile from metapelites: on the top Fe vs Zr ppm plot, at the bottom Nb vs Cr ppm plot.

Figure 11

Figure 11. Summary of the T °C ranges of each analysed sample for different applied methods. (a) garnet-biotite thermometer (Ferry & Spear, 1978). (b) Zr-in-rutile thermometer of Tomkins et al. (2007). (c) Ti-in-biotite thermometer of Henry et al. (2005). (d) Ti-in-amphibole thermometer of Liao et al. (2021).

Figure 12

Table 2. T °C estimated for different samples with the standard deviation reported.

Figure 13

Figure 12. Geological sketch map of the VP with the position of samples analysed for temperature estimations and zoom with the mean temperatures and errors reported.

Figure 14

Figure 13. Simplified foliation traces map and sketches of key outcrops of the VP.

Figure 15

Figure 14. Diagnostic microstructrures related to the migmatisation: (a) Opx I, Bt I and Amp I in basic granulite boudin (XPL). (b) Amp I and Pl I in brown amphibolite (PPL). (c) Grt + Pl-rich domain in brown amphibolite (XPL). (d) Grt II porphyroblast rich in rounded Qz I inclusions (PPL). (e) Relict deformed Bt I and fibrous Sil I reacting to produce melt and Grt II (PPL). (f) Myrmekites between Pl and Qz (XPL). (g) Sil III and Bt III S3 foliation growing after Grt porphyroblast (PPL). (h) Bt III and Sil III growing over Crd (XPL). (i) Bt III and Qz II intergrowth after Crd (PPL).

Figure 16

Figure 15. PT conditions of VP. Pl–Amp barometer calibration of Molina et al. (2015); Grt–Crd barometer of Bhattacharya (1986).

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