1. Introduction
Widespread and voluminous silicic volcanic rocks overlie mafic lavas in many continental flood basalt (CFB) provinces of the world, such as the Karoo, Paraná–Etendeka, Deccan, British Palaeogene, Yemen, Ethiopian and Columbia River CFB provinces (e.g., Bryan et al. Reference Bryan, Riley, Jerram, Stephens, Leat, Menzies, Klemperer, Ebinger and Baker2002, Reference Bryan, Ukstins Peate, Peate, Self, Jerram, Mawby, Marsh and Miller2010). The petrogenesis of these silicic rocks involves diverse mechanisms such as fractional crystallization of basaltic melts, liquid immiscibility, partial melting of hydrothermally altered basalts and anatexis of continental crust and is, therefore, a topic of considerable interest (e.g. Rooney et al. Reference Rooney, Sinha, Deering and Briggs2010; Halder et al. Reference Halder, Paul and Sensarma2021 and references therein). So is their physical volcanology: the silicic volcanics occur as lava flows and domes, formed by effusive eruptions (e.g., Polo et al. Reference Polo, Janasi, Giordano, Lima, Cañon-Tapia and Roverato2018), and as pyroclastic deposits, including ignimbrites, formed by explosive eruptions (e.g., Ayalew et al. Reference Ayalew, Barbey, Marty, Reisberg, Yirgu and Pik2002; Luchetti et al. Reference Luchetti, Nardy and Madeira2018). Correctly identifying and interpreting these deposits and eruption types are important for understanding their likely environmental impact, given that explosive eruptions can inject ash and magmatic gases to much greater heights in the atmosphere than effusive eruptions, with correspondingly significantly wider distribution and environmental impact (e.g. Self, Reference Self2006; Cassidy et al. Reference Cassidy, Manga, Cashman and Bachmann2018). This is especially so when the CFB volcanism is known to have overlapped with a major mass extinction, such as the ∼65.5 Ma Deccan Traps of India (Fig. 1) and the Cretaceous/Palaeogene (K/Pg) boundary mass extinction (e.g. Baksi, Reference Baksi2014).
In the Deccan Traps, covering 500,000 km2 in west-central India (Fig. 1), silicic rocks are minor overall. However, rhyolites, dacites and granophyres are notable in the western and northern parts of the province and are particularly abundant in the Saurashtra peninsula in the northwest (Fig. 1) (e.g. Fedden, Reference Fedden1884; Subba Rao, Reference Subba Rao1971). Both silicic lavas and ignimbrites are recognized in these parts (Wakhaloo, Reference Wakhaloo1967; Krishnamacharlu, Reference Krishnamacharlu1974; Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020a, b; Naik et al. Reference Naik, Sheth, Sheikh and Kumar2021), as is a giant (30 km-diameter) silicic caldera (Bandopadhyaya, Reference Bandopadhyaya1976; Sheth et al. Reference Sheth, Naik, Sheikh and Kumar2022a).
Silicic volcanic rocks are abundant around the towns of Rajula, Savarkundla, Gariyadhar and Talaja in southeastern Saurashtra (Fig. 1). They have been the subject of geological–geochemical accounts in varying degrees of detail (Krishnamacharlu, Reference Krishnamacharlu1974; Misra, Reference Misra1976, Reference Misra, Subbarao and Sukheswala1981, Reference Misra and Subbarao1999; Chatterjee & Bhattacharji, Reference Chatterjee and Bhattacharji2001, Reference Chatterjee, Bhattacharji, Sheth and Pande2004; Sethna et al. Reference Sethna, Kothare, Sethna and Javeri2001; Kshirsagar et al. Reference Kshirsagar, Sheth, Seaman, Shaikh, Mohite, Gurav and Chandrasekharam2012; Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020a). In this work, we present new and detailed data on the locations, outcrop-scale structures and microscopic textures of previously described and undescribed silicic volcanic rocks (and associated dykes) of this area, along with new geological maps. These datasets help us to recognize large-scale effusive and explosive silicic eruptions and improve our understanding of Deccan silicic magmatism and CFB volcanism in general.
2. Geology and field observations
2.a. Geological background
Large parts of the Saurashtra (syn. Kathiawar) peninsula in the northwestern part of the Deccan Traps (Fig. 1) are topographically flat and low-lying (∼100 m above sea level), and there are few thick vertical sections through the Deccan basalts. In the northern parts of Saurashtra, the basalts rest upon Mesozoic sedimentary rocks, whereas the coastal strips of Saurashtra expose Palaeogene and Quaternary carbonate sediments or alluvium (Fedden, Reference Fedden1884; Misra, Reference Misra, Subbarao and Sukheswala1981, Reference Misra and Subbarao1999). Saurashtra has two special features compared to the Deccan Traps in general: (i) Tholeiitic rocks of Saurashtra are associated with picrites and ankaramites, andesites, dacites and rhyolites, and alkaline rocks including essexites, nepheline syenites, trachytes and lamprophyres (e.g. Sahu & Karim, Reference Sahu and Karim1993; Sethna & Javeri, Reference Sethna and Javeri2000; Cucciniello et al. Reference Cucciniello, Sheth, Duraiswami, Wegner, Koeberl, Das and Ghule2020; Sahoo et al. Reference Sahoo, Chalapathi Rao, Monie, Belyatsky, Dhote and Lehmann2020). (ii) Saurashtra contains numerous plutonic complexes and ring dykes (Fig. 1), dominated by granophyre-microgranite (Sheth et al. Reference Sheth, Choudhary, Bhattacharyya, Cucciniello, Laishram and Gurav2011, Reference Sheth, Naik, Sheikh and Kumar2022a; Cucciniello et al. Reference Cucciniello, Choudhary, Pande and Sheth2019) and gabbro (Chatterjee, Reference Chatterjee1932; Banerjee et al. Reference Banerjee, Raj and Roychowdhury2000). The Girnar Complex is dominantly of gabbro and diorite (Mathur et al. Reference Mathur, Dubey and Sharma1926; Cucciniello et al. Reference Cucciniello, Avanzinelli, Sheth and Casalini2022; Halder et al. Reference Halder, Paul and Stracke2023).
2.b. Topography and structure-controlled geomorphology
Much of the study area (∼7,000 km2, Figs. 1, 2) is topographically flat. Figure 3 shows the southwestern ∼20% of this area, which is relatively rugged and where we have made particularly detailed field observations and sampling. All GPS-based coordinates of outcrops and their elevations (in metres above mean sea level) reported in this paper (Supplementary Table S1) have an uncertainty of ±3 m. All topographic features and localities mentioned are marked in Figs. 1–3, and numbers refer to both samples and outcrops.
The area consists of vast plains of basalts and alluvium, traversed by long linear rocky ridges. The volcanic rocks forming the ridges (either basaltic lava flows or basalts overlain by silicic units) dip gently southeast (12–16°). The ridges are, therefore, cuestas with asymmetrical cross-profiles, i.e., with long gentle dip slopes to the east or southeast and steep escarpments to the north and west (Misra, Reference Misra1976, Reference Misra, Subbarao and Sukheswala1981, Reference Misra and Subbarao1999; Ramasamy, Reference Ramasamy, Srivastava and Chandra1995, Figs. 2–4). Good examples of cuestas of basalt are found at Vavdi (Fig. 4a) and Adsang (Fig. 4b). Around Hanumanpura just west of our study area (Fig. 3), steep (∼45°) structural dips of the basalts have produced hogbacks (Fig. 4c). The basalts are dominantly pāhoehoe flows (both small-scale compound flows and sheet lobes) and rarely ‘a’ā flows (Sheth et al. Reference Sheth, Duraiswami, Ghule, Naik and Das2022b).
Other cuestas in the study area are composed of gently SE-dipping basaltic lava flows overlain by silicic volcanics (rhyolites and dacites), and often reach substantial size; they are named here after the adjacent villages (Fig. 3). The Moti Kherali Ridge reaches a length of 15 km and relief of up to 150 m above the surrounding flat terrain (Fig. 4d). The Barman Mota Ridge and the nearby, parallel Khalsa Kanthariya Ridge (Fig. 4e) are 4.8 and 2.8 km long, respectively. The silicic units are everywhere younger than the basalts, and, even with their tops eroded away, are tens of metres thick and show well-developed columnar jointing (Fig. 4f). Exposed vertical sections of these ridges show no palaeosols or sedimentary interbeds between the basalts and the silicic volcanics, indicating a conformable relationship.
There are numerous other kilometres-long rocky ridges found in the area (Figs. 2, 3), composed of silicic tuff breccias. The area also contains many mafic dykes and several silicic dykes, which form erosion-resistant linear ridges (Figs. 2, 3; see also Chaurasia & Jain, Reference Chaurasia and Jain2002; Raj & Jain Reference Raj and Jain2002), but these dyke ridges have much lower relief than the other two types.
2.c. Rheomorphic rhyolites and dacites
The silicic volcanics forming the cuestas are rhyolites and dacites as determined from prior petrographic and geochemical work (Chatterjee & Bhattacharji, Reference Chatterjee and Bhattacharji2001, Reference Chatterjee, Bhattacharji, Sheth and Pande2004; Kshirsagar et al. Reference Kshirsagar, Sheth, Seaman, Shaikh, Mohite, Gurav and Chandrasekharam2012; Basu et al. Reference Basu, Chakrabarty, Szymanowski, Ibanez-Mejia, Schoene, Ghosh and Georg2020; Supplementary Table S2). The Rajula rhyolite, golden brown on weathered faces and, therefore, a popular building stone (Fig. 5a), is light grey on fresh surfaces, with small phenocrysts of white alkali feldspars. The light grey dacite capping the Barman Mota and Khalsa Kanthariya ridges is also feldspar-phyric.
A pervasive subhorizontal flow-banding is the prominent rheomorphic deformation feature observed in the Rajula rhyolite and the Barman Mota and Khalsa Kanthariya dacites (Fig. 5a, b). The rhyolite near Katar shows flow bands and folds (Fig. 5c, d). Other rhyolites show millimetre-scale flow banding (Fig. 5e, f). Flow banding is here taken as S0–1 and represents the transposition of the depositional fabric S0 (typically unidentifiable in our rocks) during flow (D1 rheomorphic deformation) (e.g. Andrews & Branney, Reference Andrews and Branney2011). The S0–1 bands have been rheomorphically deformed to produce folds of many different geometries, sizes and generations. These include F1 open to tight folds (Fig. 5c–e, g), asymmetrical folds (Fig. 5f), isoclinal folds (Fig. 5h) and complex folds (Fig. 5i). Some fold limbs show highly stretched vesicles (Fig. 5d), whereas exposed fold surfaces show a well-defined elongation lineation L1 (Fig. 5e). Refolding of F1 tight to isoclinal folds by gentle to open F2 folds is common (Fig. 5h).
The best exposures of rheomorphic deformation are located 1.5 km southeast of Moti Kherali village on the road to Doliya (Figs. 3, 6). The light grey rhyolite, with phenocrysts of white alkali feldspars and smoky quartz, shows prominent flow banding (Fig. 6a). There are F1 tight to isoclinal folds (Fig. 6b–d) and sheath folds (Fig. 6e), and stretched and boudinaged flow bands (Fig. 6f). Single outcrops at this site show a range of F1 fold geometries from symmetrical to asymmetrical and open to isoclinal, and fold orientations from subvertical to recumbent and inclined (Fig. 6g). Gentle to open F2 folds reaching sizes of tens of metres are seen to refold the F1 tight to isoclinal folds (Fig. 6b, g). This easily accessible site is an excellent potential geosite for its exquisite rheomorphic deformation features in rhyolite.
We observed the basal parts of the rheomorphic silicic eruptive units overlying basalt at many locations and generally found no autobreccias (e.g., Figs. 4d–f, 5b, c). However, at the northern end of the Khalsa Kanthariya Ridge, a well-developed basal autobreccia of dacite overlies a columnar-jointed basaltic sheet lobe in an abandoned quarry pit (Fig. 7a–d). This clast-supported autobreccia is up to a few metres in exposed thickness and contains large (many > 10 cm) angular fragments of vesicular dacite in a dark, glass-rich matrix (Fig. 7b, c). A vertical, centimetre-thick rhyolitic dykelet with sharp margins was seen intruding the autobreccia (Fig. 7d).
The 71 m, NNE-SSW-elongated hillock located between the Barman Mota and Khalsa Kanthariya ridges (Fig. 7e), probably constituting their extension, is made up of clasts of vesicular and flow-banded rhyolite or dacite (Fig. 7f). Some large flow bands in between the clasts can be traced over several metres, and the base of the breccia is not exposed. The top of the 71 m Hindorna Hill just south of Rajula town is composed of rheomorphic rhyolite, but breccia is found below this (Fig. 7g). Southwest of Hindorna, the top of the 51 m hillock, shows possible autobreccia (Fig. 7h), whereas the 41 m hillock shows blocks of breccia within rheomorphic rhyolite (Fig. 7i).
2.d. Pitchstones and vitrophyres
Pitchstone is silicic volcanic glass with much more crystalline material and H2O (up to 6 wt.%) than obsidian (<1 wt.% H2O) and, therefore, has a waxy or resinous lustre, unlike the vitreous lustre and characteristic conchoidal fracture of obsidian (Hatch et al. Reference Hatch, Wells and Wells1983). Vitrophyre is silicic glass with abundant phenocrysts.
Bands of silicic glass are encountered at several places and are often surprisingly fresh (Misra, Reference Misra, Subbarao and Sukheswala1981, Reference Misra and Subbarao1999; Banerjee, Reference Banerjee1998). An outcrop near Kagvadar shows decimetre-scale bands of fresh pitchstone (locally obsidian) and altered, spherulitic pitchstone (Fig. 8a, b). Kshirsagar et al. (Reference Kshirsagar, Sheth, Seaman, Shaikh, Mohite, Gurav and Chandrasekharam2012) reported a nearby pitchstone outcrop with decimetre-scale subhorizontal banding, some bands showing a profuse development of spherulites 3–4 mm in diameter (Fig. 8c, d).
The other silicic glasses in the area are all vitrophyres and are typically overlain by lava-like rhyolites, as at Khakhbai Hill, Bhaguda Hill, the Moti Kherali Ridge at Barbtana and a location 3 km north of Mandal. Columnar-jointed vitrophyre forms a small exposure at Doliya, within a large flat, cultivated area without rock outcrops (Fig. 8e). In the Bhaguda Hill, vitrophyre overlies eutaxitic ignimbrite and green tuff and is overlain by brown lava-like rhyolite (see also Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020a). In the Moti Kherali Ridge at Barbtana, vitrophyre is overlain by rheomorphic, lava-like red rhyolite, and patches of fresh vitrophyre (Fig. 8b) are found within the rhyolite. In the Rajula Ridge near Kundaliyala, vitrophyre overlies rhyolite (Fig. 8f). Vitrophyric portions are found in the southern margin of a NE-SW-trending rhyolitic dyke at Navagam-Meriyana.
2.e. Tuffs and ignimbrites
Krishnamacharlu (Reference Krishnamacharlu1974) described three distinct units of ignimbrite, 3–10 m thick and with a ‘fluxion’ structure, overlying pitchstone ‘about 1 km northeast of Rajula’. His given coordinates of N 21° 2’ and E 71° 29’ plot a few kilometres to the east within cultivated fields. In the Moti Kherali Ridge at Barbtana, altered vitrophyre overlies lapilli tuff, which grades laterally into eutaxitic ignimbrite (Fig. 8g). This may be the site described by Krishnamacharlu (Reference Krishnamacharlu1974), actually located 2 km northeast of Rajula Junction railway station, though we have not found the three ignimbrite units he described.
Eutaxitic ignimbrite has also been described from Bhaguda Hill (Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020a). The hill exposes brown lava-like rhyolite at the 97 m summit (Fig. 5g), underlain successively by vitrophyre, eutaxitic ignimbrite (Fig. 8h, i) and massive green tuff. The vitrophyre and green tuff continue southwards, and the latter forms extensive outcrops between Bhaguda and Longdi.
2.f. Spherulites and lithophysae
Spherulites are composed of radiating microscopic fibres of alkali feldspar and quartz and form due to heterogeneous nucleation in highly supercooled silicic melts or by devitrification of glass (e.g. Cross, Reference Cross1891; Marshall, Reference Marshall1961; Lofgren, Reference Lofgren1971; Breitkreuz, Reference Breitkreuz2013). Their spherical shape may be due to the isotropic physical properties of the host melt or glass, implying the absence of any preferred direction of growth, or to non-crystallographic branching of mineral fibres as a space-filling mechanism (Vernon, Reference Vernon2018). Lithophysae (‘stone bubbles’) have an exterior (sometimes concentric shells) of fine quartz and feldspar and internal cavities left by escaping gas, and when filled by secondary silica, these are termed thundereggs (Tyrrell, Reference Tyrrell1926; Breitkreuz, Reference Breitkreuz2013).
The few notable spherulite occurrences in the area were mentioned above (see also Kshirsagar et al. Reference Kshirsagar, Sheth, Seaman, Shaikh, Mohite, Gurav and Chandrasekharam2012). Lithophysae are much more common, for example, in the Khalsa Kanthariya and Moti Kherali Ridges (Fig. 9a, b). Profuse local development of hundreds of lithophysae, each a few centimetres in size, is observed in the rheomorphic rhyolite just southwest of Ghanshyamnagar (Fig. 9c), and at the top of Khakhbai Hill (Fig. 9d) where individual lithophysae are up to 15 cm across. Lithophysae are also found within the fresh pitchstone of Kagvadar (Fig. 9e, f).
Development of lithophysae on an extraordinary scale is observed about halfway between Bhaguda and Longdi, where a gently rolling plain of altered green tuff exposes tens of thousands of lithophysae ranging in size from <1 mm to ∼10 cm or so, most being a few centimetres in size (Fig. 9g–i). Besides the common single lithophysae, there are twins, triplets and even quadruplets (see photos in Misra, Reference Misra and Subbarao1999; Kshirsagar et al. Reference Kshirsagar, Sheth, Seaman, Shaikh, Mohite, Gurav and Chandrasekharam2012; Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020a).
In addition to the megascopic examples of spherulites and lithophysae, microscopic ones are found in many of the rock units and are described below.
2.g. Tuff breccias
Like the rheomorphic rhyolites and dacites, the silicic tuff breccias form long linear ridges (or distinctly aligned hills) that rise 70–80 m from the basaltic or alluvial plains and often extend for many kilometres. However, unlike the case with the rheomorphic rhyolites and dacites, the tuff breccias are not observed in stratigraphic contact with the other rock types.
In the alluvial plain of the Shetrunji River (Fig. 2), alignments of tuff breccia hills appear to define two ridges, each slightly curved but with an overall NNE-SSW trend. The western ridge, which we term the Sakhpur Ridge, runs from Nana Rajkot through Sakhpur to the 149 m hill just east of Bhoringda, a distance of some 14 km. The eastern ridge, termed here the Bovadi Ridge, runs from Bhoringda police checkpost through Bovadi, continues through Hathila ni Vav and Dhar and terminates at Mota Zinzuda, a total distance of some 22 km. These lengths are minimum lengths as the tuff breccias of either ridge may continue further under the alluvium (Fig. 2). At every location visited in the Sakhpur Ridge (Fig. 10a–d) and the Bovadi Ridge (Fig. 10e–i), the tuff breccias are entirely massive, lacking bedding, size sorting or grading and any preferred orientations of clasts, and are commonly clast-supported. The clasts are many centimetres in size and typically angular. The tuff breccias are extensively silicified and ferruginized.
Two isolated hills, located at Talaja and Devgana in the eastern and northeastern parts of the area, respectively (Fig. 2), are composed of similar tuff breccias. Talaja Hill (119 m, Fig. 11a) is a poorly maintained archaeological and religious site, with rock-cut caves in the western side composed of pumice and tuff breccias. The pumice is characteristically highly vesicular (Fig. 11b, c). Metre-size and smaller blocks of pale grey tuff within an ash-size matrix, resembling fault breccia, are exposed within one of the caves (Fig. 11d), and bedded and faulted ash beds are found within another cave (Fig. 11e). The higher, eastern side of the hill is composed mainly of tuff breccias (Fig. 11f). The Devgana Ridge (140 m) is a N-S-trending linear ridge composed of altered silicic tuff breccias, which as elsewhere are massive and unsorted (Fig. 11g, h).
Notable silicic tuff breccias are also found in the southwestern corner of the area (Figs. 2, 3). They form the 4 km-long Barman Nana Ridge (Fig. 12a) and the low (56 m) mound of Mahadev ni Dhar (Fig. 3). These E-W-trending tuff breccia ridges are notably oblique (120°) to the NNE-SSW-trending Barman Mota and Khalsa Kanthariya ridges of rheomorphic dacite (Figs. 3, 12a). Though the tuff breccias and the rheomorphic dacites are nowhere observed in contact, the tuff breccias appear to be younger. As elsewhere (Figs. 10, 11), the tuff breccias forming the Barman Nana Ridge and Mahadev ni Dhar mound are massive and lack any clast fabric. They range from matrix-supported to clast-supported, with pervasive silicification and ferruginization (Fig. 12b–g). One additional feature observed in the 108 m hill in the Barman Nana Ridge is that its basal part shows unconsolidated, massive, greyish white ashes underlying the tuff breccias (Fig. 12c), mentioned by Misra (Reference Misra1976) as altered andesitic tuffs. At places, they show large-scale Liesegang rings and are intruded by a set of subvertical to steeply dipping rhyolitic dykes with strikes between N250° and N215° (Fig. 12c).
2.h. Mafic and silicic dykes
Numerous mafic and silicic dykes occur in the area (see also Sethna et al. Reference Sethna, Kothare, Sethna and Javeri2001; Cucciniello et al. Reference Cucciniello, Sheth, Duraiswami, Wegner, Koeberl, Das and Ghule2020) and are generally seen to intrude the basaltic lava flows. No dyke was observed to pass into (feed) a volcanic unit, though some of the dykes might have fed higher stratigraphic levels of the volcanic sequence now lost by erosion.
The prominent dyke cluster in the central part of Fig. 2 is the Southeastern Saurashtra dyke swarm as mapped by Cucciniello et al. (Reference Cucciniello, Sheth, Duraiswami, Wegner, Koeberl, Das and Ghule2020) using the then-available Survey of India 1:50,000 topographic sheets. New satellite imagery such as Google Earth shows that several of the dykes are longer than shown. This dyke swarm differs from the exclusively mafic Eastern Saurashtra, Central Saurashtra and circum-Girnar dyke swarms (Fig. 1, Cucciniello et al. Reference Cucciniello, Avanzinelli, Sheth and Casalini2022 and references therein) in containing silicic members. It is also intriguing that whereas several strike directions are represented in the swarm (mainly NE-SW, ENE-WSW and NNW-SSE), the silicic dykes all strike NE-SW. Cucciniello et al. (Reference Cucciniello, Sheth, Duraiswami, Wegner, Koeberl, Das and Ghule2020) studied many dykes of this swarm for mineral chemistry and whole-rock geochemistry (including Sr-Nd isotopes) and found substantial input from Precambrian basement crust, especially the silicic dykes.
Some of the dykes in the area are multiple and were produced by repeated magma injections. A good example is a mafic dyke with six columnar-jointed rows exposed ∼1 km north of Adsang (Fig. 13a). The dyke intrudes an altered basaltic lava flow, strikes N30° and dips 75° NW, and its six columnar rows suggest three or more separate magma injections. The silicic dykes appear to represent single magma injections. Examples include the N57°-trending, extensively spherulitic Chhapariyali rhyolite dyke with vitrophyric portions (Fig. 13b, Sheikh et al. Reference Sheikh, Cucciniello, Naik, Sheth and Duraiswami2023). Another is a N40°-striking rhyolitic dyke at Navagam-Meriyana, with subvertical flow banding and margins that are vitrophyric at places (Fig. 13c, d). Both these dykes intrude the basaltic lava flows.
There are also a few dykes intruding the tuff breccia ridges. Rhyolitic dykes with strikes ranging from NNE-SSW to ENE-WSW intrude the tuffs and breccias of the Barman Nana Ridge (Figs. 12c, 13e). A dolerite dyke striking N320° and dipping 42° NE intrudes the tuff breccia of the Devgana Ridge (Fig. 13f). Because the tuff breccias are younger than the basaltic lava flows and the rheomorphic rhyolites and dacites, the dykes intruding the tuff breccias constitute the youngest magmatic phase in the area.
2.i. Mafic enclaves
Cucciniello et al. (Reference Cucciniello, Sheth, Duraiswami, Wegner, Koeberl, Das and Ghule2020) and Sheikh et al. (Reference Sheikh, Cucciniello, Naik, Sheth and Duraiswami2023) have noted that mafic enclaves are a common feature of the silicic members of the Southeastern Saurashtra dyke swarm. The mafic enclaves range in size from <1 mm to 30 cm and have rounded and cuspate but typically sharp margins with the host rhyolite (Fig. 13g). The rheomorphic rhyolite of the Moti Kherali Ridge at Barbtana village and the silicic tuff breccia forming the 83 m hill in the Barman Nana Ridge also contain a few mafic enclaves (Fig. 13h, i).
3. Petrography and textures
Textures of volcanic rocks observed under the microscope provide valuable clues to their origin and emplacement (e.g. McPhie et al. Reference McPhie, Doyle and Allen1993; Vernon, Reference Vernon2018). We therefore carried out petrographic and textural studies of the various silicic rocks and present our observations below.
3.a. Rheomorphic rhyolites and dacites
The rheomorphic rhyolites and dacites are crystal-rich, with the phenocrysts dominantly of quartz and alkali feldspar (Fig. 14a–g). We use the term phenocryst in a purely textural sense, without genetic connotations, for easily identifiable crystals much larger than the groundmass (Iddings, Reference Iddings1892; Zellmer, Reference Zellmer2021). The quartz phenocrysts are angular to rounded, commonly traversed by fractures (Fig. 14b–g), and sometimes embayed (Fig. 14f, g). Alkali feldspar phenocrysts are euhedral to subhedral and lath-shaped (Fig. 14a–c). Both minerals form phenocrysts in the Bhaguda Hill summit rhyolite (Kshirsagar et al. Reference Kshirsagar, Sheth, Seaman, Shaikh, Mohite, Gurav and Chandrasekharam2012).
Dacites of the Barman Mota and Khalsa Kanthariya ridges and the 112 m hill, and the Rajula quarry rhyolite show glomerocrysts of feldspars and olivine (Fig. 14a, c), sometimes with minor orthopyroxene, in decreasing order of abundance. Glomerocrysts of plagioclase several millimetres in size are abundant in the rhyolite exposed 3 km north of Mandal (Fig. 14h); the constituent crystals show large numbers of melt inclusions, and many crystals show oscillatory zoning in cross-polarized light. The Bhaguda Hill summit rhyolite also shows such plagioclase glomerocrysts, and some crystals display bent twin lamellae (Fig. 14i), suggesting some deformation of the crystal-bearing magma.
Groundmasses of the various rocks are fine and microcrystalline, composed of quartz and alkali feldspar. A micropoikilitic or ‘snowflake’ texture (Anderson Jr., Reference Anderson1969; McPhie et al. Reference McPhie, Doyle and Allen1993) is common, in which anhedral crystals of quartz or alkali feldspar contain numerous microlites of feldspar (Fig. 14a, c, f, i). A well-developed flow banding defined by aligned alkali feldspar microlites is seen in the dacite of Khalsa Kanthariya Ridge (Fig. 14b). In the rhyolite near Samadhiyala, phenocrysts of quartz are surrounded by glass-rich bands (Fig. 14d). In the rhyolite of Moti Kherali Ridge at Barbtana, numerous spherulites are seen to have nucleated on the corners of quartz phenocrysts, and others in the groundmass between the phenocrysts (Fig. 14e), whereas the rhyolite 3 km north of Mandal shows tiny lithophysae. Vitroclasts (glass shards and pumice fragments) are absent in all rocks examined.
3.b. Pitchstones and vitrophyres
The fresh pitchstone of Kagvadar lacks phenocrysts and shows a few well-developed spherulites and lithophysae in a groundmass with spectacular acicular, feathery and fernlike growths of feldspar (Fig. 15a). The vitrophyres, as the name suggests, are crystal-rich with glassy groundmasses (Fig. 15b–i). Quartz is the most common phenocryst and typically forms rounded and fractured grains (Fig. 15b, e, f, i). The vitrophyre of the Moti Kherali Ridge at Barbtana shows some mafic enclaves (Fig. 15b) whose larger versions are seen in outcrop in the surrounding rheomorphic rhyolite (Fig. 13h).
A major petrographic feature of essentially all the vitrophyres are crystal aggregates or glomerocrysts of plagioclase and ferromagnesian minerals (most commonly orthopyroxene, with less clinopyroxene and olivine). Orthopyroxene is found, commonly with abundant plagioclase, in the vitrophyres at Barbtana, 3 km north of Mandal (Fig. 15c), Doliya (Fig. 15e), Zanzarda (Fig. 15f), Khakhbai Hill (Fig. 15g), Bhaguda Hill (Fig. 15h) and the Navagam-Meriyana dyke (Fig. 15i). Some plagioclase crystals contain many melt inclusions (Fig. 15c, g, h), and other crystals are evidently broken (Fig. 15e).
The glassy groundmasses of the vitrophyres often show a well-developed flow banding, defined by aligned microlites and crystallites of alkali feldspars and Fe-Ti oxides (Fig. 15b–d). The flow bands wrap around crystals and are often folded (Fig. 15c, d) and refolded (Fig. 15b). Darker and lighter flow bands reflect high and low densities of microlites and crystallites (including those of submicroscopic size); similar observations have been made at Osham Hill (Fig. 1), for example (Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020a; Naik et al. Reference Naik, Sheth, Sheikh and Kumar2021). High-magnification examination reveals trains of hundreds of flow-sorted crystallites, many forming axiolitic arrangements, defining the flow bands (Fig. 15d). Numerous small spherulites are seen in some samples (Fig. 15f), and perlitic cracks are developed in different degrees in all samples.
In contrast to the many fresh vitrophyres illustrated above, vitrophyres from the Moti Kherali Ridge at Barbtana and Khakhbai Hill are altered (Fig. 16a, b) and provide good examples of ‘false vitroclastic’ textures produced by phyllosilicate alteration along perlitic cracks (Allen, Reference Allen1988; McPhie et al. Reference McPhie, Doyle and Allen1993, p. 22, their Fig. 15). The former vitrophyre shows large, embayed quartz phenocrysts in a glassy matrix traversed by a network of perlitic cracks. Alteration along the cracks has left polygonal to rounded areas between the cracks that produce a false impression of blocky to cuspate glass shards in a vitric tuff (Fig. 16a). The latter vitrophyre has been altered along a very close-spaced network of perlitic cracks, and this has produced an impression of vitroclasts including the classical dark pumice fiamme in a eutaxitic ignimbrite (Fig. 16b). As with the rheomorphic rhyolites and dacites, vitroclasts are absent in all glasses examined.
3.c. Tuffs and ignimbrites
Rhyolitic tuff underlying lithophysae-rich rheomorphic rhyolite near Ghanshyamnagar (Fig. 9c) shows a dark microcrystalline matrix full of fine iron oxide grains and stretched and devitrified-recrystallized vitroclasts (Fig. 16c). Excellent vitroclastic textures are seen in the lapilli tuff overlying basalt in the Moti Kherali Ridge at Barbtana (Fig. 16d, e). This tuff shows an abundance of glass shards, pumice fragments and quartz crystals and can be described a crystal-vitric tuff. The glass shards are blocky, platy or cuspate bubble-wall shards (including Y-shaped shards). The pumice is fibrous or woody, owing to highly stretched vesicles, but pumice clasts do not show flattening. The eutaxitic ignimbrite of Bhaguda Hill shows pumice fiamme and quartz phenocrysts in a glassy matrix. The fiamme and matrix glass are pseudomorphed by clusters of dozens of tiny spherulites owing to devitrification (Fig. 16f).
4. Discussion
4.a. Effusive silicic volcanism
4.a.1. Rheomorphic rhyolites and dacites
The rheomorphic rhyolites and dacites always overlie basaltic lava flows without palaeosols or basalt-derived conglomerates in between, suggesting a conformable relationship and rapid volcanism without hiatuses. The absence of sedimentary interbeds and peperites indicates a subaerial setting for the eruptions.
Silicic lavas, and high-grade to extremely high-grade, lava-like ignimbrites both commonly contain rheomorphic deformation features (e.g., Christiansen & Lipman, Reference Christiansen and Lipman1966; Benson & Kittleman, Reference Benson and Kittleman1968; Smith & Houston, Reference Smith and Houston1994; Andrews & Branney, Reference Andrews and Branney2011; Bullock et al. Reference Bullock, Gertisser and O’Driscoll2018; Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020a, b; Naik et al. Reference Naik, Sheth, Sheikh and Kumar2021). Thus, rheomorphic deformation, while widespread in the area, is not origin-diagnostic.
Basal autobreccias, and abrupt and steep lava flow fronts fringed by crumble breccias, are common features of rhyolite lavas (e.g. Christiansen & Lipman, Reference Christiansen and Lipman1966; Bonnichsen & Kauffman, Reference Bonnichsen, Kauffman and Fink1987; Manley & Fink, Reference Manley and Fink1987; Henry & Wolff, Reference Henry and Wolff1992; Ellis et al. Reference Ellis, Wolff, Boroughs, Mark, Starkel and Bonnichsen2013). They are atypical of lava-like ignimbrites, which are sheet-like and thin gradually away from their vent (Andrews & Branney, Reference Andrews and Branney2011). The criterion of steep breccia-fringed fronts only works for young, uneroded lavas, whereas the original geometries of the rheomorphic silicic volcanics of the area and their eruptive vents are both unknown. Crumble breccias characteristically contain an assortment of lava types including vesicular, pumiceous, massive, flow-banded and folded. The dacite at the northern end of the Khalsa Kanthariya Ridge shows an excellent basal autobreccia with vesicular clasts (Fig. 7a–d), and the nearby 71 m hillock is entirely composed of this probable autobreccia as well (Fig. 7e). In fact, possible autobreccias are also exposed on the Hindorna Hill (also 71 m, Fig. 7g) and the nearby 41 m and 51 m hillocks, which are composed of intensely rheomorphic rhyolite (Figs. 5f, i, 7h, i). These hillocks may constitute southwestward extensions of the Rajula Ridge.
Among petrographic criteria, broken crystals are not a diagnostic indicator of pyroclastic origin (Henry & Wolff, Reference Henry and Wolff1992; Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020b). An important criterion, that vitroclasts (glass shards and pumice fragments) must occur in ignimbrites but are absent in lavas, is not always straightforward to apply. This is because the lava-like flow, intense welding and devitrification and recrystallization of extremely high-grade ignimbrites often obscure the original vitroclastic textures, and extremely compacted, stretched and recrystallized vitroclasts can mimic flow bands in rhyolite lavas (e.g. Schmincke & Swanson, Reference Schmincke and Swanson1967; Wolff & Wright, Reference Wolff and Wright1981; Smith, Reference Smith2002; Andrews & Branney, Reference Andrews and Branney2011; Ellis et al. Reference Ellis, Wolff, Boroughs, Mark, Starkel and Bonnichsen2013; Naik et al. Reference Naik, Sheth, Sheikh and Kumar2021).
Rather than depending on a single criterion, therefore, we use the above criteria in combination. We note that the confirmed and probable basal autobreccias of the rheomorphic rhyolites and dacites (Fig. 7), their unbroken phenocrysts (Fig. 14) and their microcrystalline, lithoidal groundmasses and lack of vitroclasts or pyroclasts (Fig. 14) all suggest lavas. As argued by Cassidy et al. (Reference Cassidy, Manga, Cashman and Bachmann2018) and Popa et al. (Reference Popa, Bachmann and Huber2021), silicic magmas have a tendency to erupt effusively rather than explosively when they are crystal-rich (>30 vol.% crystals) and ascend slowly in their conduits and thus degas extensively, both these conditions leading to high viscosities. This may well explain why the rheomorphic rhyolites and dacites of the area, all notably crystal-rich (Fig. 14), erupted as lavas.
Christiansen and Lipman (Reference Christiansen and Lipman1966) and Smith and Houston (Reference Smith and Houston1994) ascribed asymmetrical isoclinal recumbent folds in rhyolite lavas, found particularly near flow bases, to shearing associated with the lateral movement of lava away from the vent, and the upright folds found particularly in the upper parts of the lavas to lateral shortening during flow. The asymmetrical folds (Figs. 5f, 6g) indicate that simple shear was a significant component of the rheomorphic deformation. The F1 folds are in fact polyclinal, with varying orientations of their axial planes (Fig. 6g). This may be a consequence of the heterogeneous, unconfined nature of the F1 folding in an open and unconfined surface environment, or modification of the F1 folds by F2 folding with the same characteristics in the same environment. Modification and reorientation of early-formed folds during progressive shear, involving stretching and amplification of pre-existing curvilinear folds, formed the sheath folds (Fig. 6e) (e.g. Reber et al. Reference Reber, Dabrowski, Galland and Schmid2013; Bullock et al. Reference Bullock, Gertisser and O’Driscoll2018), whereas ductile necking due to layer-parallel stretching during rheomorphic flow produced boudins (Fig. 6f) (Smith, Reference Smith2002). The development of F1 tight-isoclinal folds (Figs. 5h, 6b–d), outcrop-scale sheath folds (Fig. 6e) as well as F1 tight-isoclinal folds superimposed by F2 folds producing Type-3 interference patterns (Ramsay, Reference Ramsay1967, Fig. 5h, 6b, g), all without the formation of penetrative axial planar cleavage, indicate dynamic and heterogeneous non-coaxial progressive ductile deformation (Flinn, Reference Flinn1962; Ramsay, Reference Ramsay1979) during rheomorphic flow of the lava.
Columnar joints in the rheomorphic rhyolites and dacites (Fig. 4f) cross-cut flow bands and folds, and thus formed at a late stage, by cooling and contraction of the lavas after they had stopped moving. The continuous columnar joints from bottom to top indicate the lavas to be single cooling units and require the timescales of emplacement to have been much shorter than the timescales of cooling. The centimetre-thick vertical rhyolitic dykelet with sharp margins cutting the basal autobreccia of the Khalsa Kanthariya dacite (Fig. 7d) is interpreted as an auto-intrusion of left-over melt into a brittle, solid host.
Rhyolitic lavas, while highly viscous, can flow kilometres or tens of kilometres if the erupted volume is large and the lava effectively retains heat due to a thick solidified crust. Bonnichsen (Reference Bonnichsen, Bonnichsen and Breckenridge1982) mentions that the Bruneau-Jarbidge eruptive centre in the Snake River Plain contains about a dozen large rhyolite flows, several of which are ∼100 m thick with minimum volumes of 10 km3 each. The largest, Sheep Creek rhyolite is 42 km long, >250 m thick and has a minimum volume of 200 km3. The rheomorphic rhyolites and dacites of the study area were evidently large-volume lava flows, though the volumes are difficult to estimate due to subsequent tectonic faulting, erosion and infilling of the structurally depressed areas by alluvium. Sheet-like rhyolitic lava flows (termed flood rhyolites by Henry & Wolff, Reference Henry and Wolff1992) are comparatively uncommon in the world. However, the numerous examples in the study area (Figs. 4–7), and others described from Mount Pavagadh (Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020b) and the Alech Hills caldera (Sheth et al. Reference Sheth, Naik, Sheikh and Kumar2022a), imply that a significant number of flood rhyolite (and dacite) lavas are present in the northern-northwestern Deccan Traps.
4.a.2. Pitchstones and vitrophyres
We noted that the vitrophyres found in the area commonly underlie rheomorphic rhyolite lavas. We also note that vitroclasts are absent in all the glassy rocks as they are in the rhyolitic rocks (Figs. 14, 15), and that individual rhyolite lavas and underlying vitrophyres have essentially the same mineral assemblages and crystal sizes (Figs. 14, 15). Thus, there are striking petrographic similarities between the rhyolite-vitrophyre pairs exposed 3 km north of Mandal (Figs. 14h, 15c), in the Moti Kherali Ridge at Barbtana (Figs. 14e, 16a) and in the Bhaguda Hill (Figs. 14i, 15h). These observations suggest that most vitrophyres are the chilled bases of the overlying rhyolite lavas. Basal glassy bands chilled against a cold substrate are common in rhyolitic lavas, such as those of the Bruneau-Jarbidge eruptive centre in the Snake River Plain (Bonnichsen, Reference Bonnichsen, Bonnichsen and Breckenridge1982); a Deccan analogue has been described at Mount Pavagadh (Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020b).
The vitrophyre overlying rhyolite near Kundaliyala (Fig. 8f) may represent the chilled upper margin of that rhyolite, or the preserved chilled base of a younger rhyolite subsequently eroded. Vitrophyric portions along the southern margin of the Navagam-Meriyana rhyolitic dyke (Fig. 15i) may mark the parts where the rhyolite magma was chilled in contact with cold country rock. Similar situations have been described in silicic dykes at Chhapariyali (Cucciniello et al. Reference Cucciniello, Sheth, Duraiswami, Wegner, Koeberl, Das and Ghule2020; Sheikh et al. Reference Sheikh, Cucciniello, Naik, Sheth and Duraiswami2023) and Osham Hill (Naik et al. Reference Naik, Sheth, Sheikh and Kumar2021).
The common perlitic cracks in the pitchstones and vitrophyres (Fig. 15) attest to their low-temperature, hydration-assisted devitrification (Ross & Smith, Reference Ross and Smith1955). It is possible that the cracks themselves reflect strain due to rapid cooling and provided the pathways for subsequent hydration (Marshall, Reference Marshall1961; Davis & McPhie, Reference Davis and McPhie1996).
4.a.3. Embayed quartz and crystal cargoes of mafic composition
Quartz phenocrysts in silicic volcanic rocks often show prominent embayments, as seen in several rhyolites and vitrophyres of this study (Figs. 14f, g, 16a). The embayments have been considered by some (e.g. Foster, Reference Foster1960) as indicating crystal dissolution in surrounding melt. However, these phenocrysts have sharp and smooth boundaries and show no evidence for magmatic corrosion (such as irregular boundaries or trails of melt inclusions). We agree with Vernon (Reference Vernon2018) that embayments in quartz may not reflect dissolution (resorption) but rapid cooling, i.e., the embayed quartz grains should be viewed as a kind of skeletal crystals (see also Donaldson & Henderson, Reference Donaldson and Henderson1988).
The large and abundant aggregates of plagioclase and orthopyroxene (with some clinopyroxene and olivine) that are common in the rhyolites and vitrophyres (Figs. 14h, i, 15b, c, e–i) constitute a mafic rock assemblage, namely a norite or an evolved gabbro. They are possible evidence for origin of the silicic magmas by fractional crystallization, i.e., the aggregates are part of the cumulus crystals fractionated from parental mafic melts and were brought up as a crystal cargo by the residual rhyolitic melts. Bending of plagioclase twin lamellae (Fig. 14i) and breakage of individual crystals (Fig. 15e) are features consistent with forceful uprise of the residual rhyolitic melts, arguably aided by volatile enrichment. Broadly similar crystal aggregates have been described in ignimbrites of the Snake River Plain (Ellis et al. Reference Ellis, Bachmann and Wolff2014) and in the Mount Pavagadh rhyolite lava (Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020b). Szymanowski et al. (Reference Szymanowski, Ellis, Bachmann, Guillong and Phillips2015) find evidence for intermediate to mafic (dioritic-gabbroic) mushes stored in mid-crustal reservoirs under the Yellowstone-Snake River Plain province, including a geophysically imaged, 10 km thick, high-density body. We note that the area of the present study is situated over one of several large, circular to ellipsoidal, high gravity anomalies mapped over the Saurashtra region (Chandrasekhar et al. Reference Chandrasekhar, Mishra, Poornachandra Rao and Mallikharjuna Rao2002).
4.b. Explosive silicic volcanism
4.b.1. Tuffs and ignimbrites
The crystal-vitric tuff of the Moti Kherali Ridge at Barbtana (Fig. 16d, e) is composed dominantly of glass shards, pumice clasts and quartz crystals, with a few alkali feldspar crystals. The cuspate and Y-shaped glass shards represent broken melt films originally separating adjacent gas bubbles and indicate magmatic volatile-driven explosive fragmentation of rising magma experiencing decompression (e.g. Heiken, Reference Heiken1974; Klug & Cashman, Reference Klug and Cashman1996; Mader, Reference Mader, Gibert and Sparks1998). In its petrographic features, this tuff closely resembles the nonwelded, crystal-bearing, glass- and pumice-rich ash beds of Mount Pavagadh 260 km to the northeast, with the difference that the dominant crystals in the Barbtana tuff are quartz (Fig. 16d, e) but in the Pavagadh ash beds they are alkali feldspar (Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020b). The Pavagadh ash beds were interpreted by Sheikh et al. (Reference Sheikh, Sheth, Naik and Keluskar2020b) as a thick fallout ash succession derived from many distal Plinian eruptions, possibly in Saurashtra. We similarly interpret the Barbtana tuff (Fig. 16d, e) as a nonwelded crystal-vitric tuff, representing Plinian fallout ash, from a yet unknown vent. Testing for any potential correlations between this tuff and the Pavagadh ash beds with geochronological and geochemical data would be interesting future work.
The extraordinary development of lithophysae in the Longdi-Bhaguda green tuff (Fig. 9g–i) suggests that the magma was exceptionally volatile-rich, and a substantial amount of volatiles was retained in the ash on deposition, causing widespread alteration of the tuff. This requires very rapid deposition which, along with the lack of bedding, suggests deposition from turbulent pyroclastic density currents. Both features are inconsistent with a fallout origin.
The eutaxitic ignimbrites overlying tuffs in the Moti Kherali Ridge at Barbtana (Fig. 8g) and at Bhaguda Hill (Fig. 8h, i) are the products of moderate degrees of welding of vitroclasts. They represent deposition from relatively hot pyroclastic density currents (e.g. Ross & Smith, Reference Ross and Smith1961; Bull & McPhie, Reference Bull and McPhie2007). The pumice fragments in them became highly compacted vertically and stretched horizontally (Fig. 16f) due to loading (and additional heating) by younger units: a rheomorphic rhyolite lava, with a chilled basal vitrophyre, is found above the eutaxitic ignimbrite in each case.
Early and recent observations (e.g. Wakhaloo, Reference Wakhaloo1967; Chatterjee, Reference Chatterjee1969; Krishnamacharlu, Reference Krishnamacharlu1974; Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020a, b; Naik et al. Reference Naik, Sheth, Sheikh and Kumar2021; Sheth et al. Reference Sheth, Naik, Sheikh and Kumar2022a) and those made in the present study together imply that a range of ignimbrite types is present, along with numerous flood rhyolite and dacite lavas, in the northern and northwestern Deccan Traps. As discussed in detail in these recent studies, many striking similarities exist between the effusive-explosive northern-northwestern Deccan silicic volcanism and the much younger (ca. 13–8 Ma) silicic volcanism in the Snake River Plain (e.g. Bonnichsen, Reference Bonnichsen, Bonnichsen and Breckenridge1982; Andrews & Branney, Reference Andrews and Branney2011; Ellis et al. Reference Ellis, Wolff, Boroughs, Mark, Starkel and Bonnichsen2013).
4.b.2. Tuff breccias
Tuff breccias found in the southwestern part of the area form the 4 km long, E-W-trending Barman Nana Ridge and the largely alluvium-covered, E-W-trending Mahadev ni Dhar mound (Figs. 3, 12a). Both these ridges are interpreted here as pyroclastic eruptive fissures apparently in an en echelon configuration (Fig. 3). The northwestern tuff breccia ridges, namely the Sakhpur and Bovadi ridges (Fig. 2), are also interpreted here as huge en echelon pyroclastic eruptive fissures with minimum original lengths of 14 km and 22 km, respectively. These ridges cannot simply be erosional remnants of an originally widespread tuff breccia blanket: not only are they linear, but exposed contacts of the Sakhpur Ridge with the host basaltic lava flows at Nana Rajkot are subvertical, confirming that the ridges represent linear vents or vent alignments.
Sethna et al. (Reference Sethna, Kothare, Sethna and Javeri2001) have suggested that ridges of silicic breccia in this area (some likely the ones described here) are fault-bounded ridges, as indicated by slickensides and silicification. We consider these ridges as primary eruptive fissures, now standing in relief over the basalts and alluvium, owing to the greater erosional resistance of the rhyolitic (and extensively silicified) tuff breccias. Any slickensides observed we consider to be secondary and small-scale features. The extensive secondary silicification (and ferruginization) observed throughout these ridges (Figs. 10–12) is as expected, noting that when fluid-rich, silicic magmas are more likely to erupt explosively than effusively (e.g. Cassidy et al. Reference Cassidy, Manga, Cashman and Bachmann2018; Popa et al. Reference Popa, Bachmann and Huber2021).
At Talaja Hill (Fig. 11a–f), the stratigraphic and structural relationships of the pumice with the tuff breccias are not clear, and the volcanological features are exceedingly complex. We broadly view the hill as a Plinian eruptive fissure (possibly a central-type vent) with an exposed core of pumice blocks, overlain by tuff breccias.
The N-S-trending Devgana Ridge (Fig.11g, h) lies near the ENE-WSW-trending Eastern Saurashtra mafic dyke swarm and was considered by Sheth et al. (Reference Sheth, Zellmer, Kshirsagar and Cucciniello2013) to be an altered silicic dyke in the swarm. We interpret this ridge as a pyroclastic eruptive fissure comparable to the others described, and a part of the Shihor-Rajpara and Chogat-Chamardi rhyolite-granophyre cluster nearby (Misra, Reference Misra and Subbarao1999; Chatterjee & Bhattacharji, Reference Chatterjee and Bhattacharji2001, Reference Chatterjee, Bhattacharji, Sheth and Pande2004; Sheth et al. Reference Sheth, Choudhary, Bhattacharyya, Cucciniello, Laishram and Gurav2011, Fig. 1).
4.c. Spherulites and lithophysae
As noted, spherulites form due to heterogeneous nucleation in highly supercooled silicic melts or by devitrification of glass. Good evidence for the former mechanism is provided by the many spherulites in the rheomorphic rhyolite of Moti Kherali Ridge, which have nucleated on corners of quartz crystals (Fig. 14e). Spherulites are also present in the groundmass between crystals, however. The spherulites, which are prolific in the altered bands of pitchstone at Kagvadar (Fig. 8a, c, d), may be products of devitrification. As regards the coarse banding of this pitchstone with fresh and spherulitic bands, Kshirsagar et al. (Reference Kshirsagar, Sheth, Seaman, Shaikh, Mohite, Gurav and Chandrasekharam2012) noted that spherulites may nucleate preferentially along certain zones in a rock body as dictated by the thermal profile (Manley & Fink, Reference Manley and Fink1987), depth and cooling rate or even post-eruption, structure-controlled hydration (Davis & McPhie, Reference Davis and McPhie1996). The fact that spherulites grew across the textural elements of the Kagvadar pitchstone without displacing them (Fig. 15a) suggests that they grew (or continued to grow) at a late stage below the glass transition temperature (Vernon, Reference Vernon2018).
The extraordinary development of lithophysae in the Longdi-Bhaguda green tuff (Fig. 9g–i) was first described by Misra (Reference Misra1976, Reference Misra, Subbarao and Sukheswala1981, Reference Misra and Subbarao1999); he correctly noted that these objects lacking a radial internal structure were not spherulites. He interpreted them as ‘rhyolitic lava bombs’ produced by pyroclastic activity, and the twins-triplets-quadruplets as ‘fused lava bombs’, and cited Bhaguda-Longdi as the best locality to study explosive volcanism in the Deccan Traps. Kshirsagar et al. (Reference Kshirsagar, Sheth, Seaman, Shaikh, Mohite, Gurav and Chandrasekharam2012) recognized these features as thundereggs (i.e. lithophysae filled with secondary minerals) because of the absence of a radial fibrous structure observed in hand specimen (corroborated by their thin section observations), and secondary silica fills in their central cavities and fractures. The twins, triplets and quadruplets were interpreted as lithophysae which started growing on nearby nuclei and coalesced upon enlargement. In contrast to Misra (Reference Misra1976, Reference Misra, Subbarao and Sukheswala1981, Reference Misra and Subbarao1999), Kshirsagar et al. (Reference Kshirsagar, Sheth, Seaman, Shaikh, Mohite, Gurav and Chandrasekharam2012) interpreted the host rocks of the lithophysae as subvolcanic intrusions. Subsequent and better field observations (Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020a and this study) leave no doubt that the host rocks of the lithophysae are volcanic and pyroclastic, namely the eutaxitic ignimbrite (Fig. 8h, i) and the pale green tuff (Fig. 9g, h). These observations corroborate Misra (Reference Misra1976, Reference Misra, Subbarao and Sukheswala1981, Reference Misra and Subbarao1999), except for the misidentification of volcanic bombs, and we consider that the area is indeed one of the best localities to study pyroclastic volcanism in the Deccan Traps (see Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020a, b; Naik et al. Reference Naik, Sheth, Sheikh and Kumar2021; Sheth et al. Reference Sheth, Naik, Sheikh and Kumar2022a).
4.d. Mafic enclaves
Mafic enclaves are common in silicic dykes in the area (Fig. 13g, see also Cucciniello et al. Reference Cucciniello, Sheth, Duraiswami, Wegner, Koeberl, Das and Ghule2020; Sheikh et al. Reference Sheikh, Cucciniello, Naik, Sheth and Duraiswami2023). These indicate the phenomenon of composite intrusion and magma mingling, expected to occur when a relatively hot mafic magma gets injected into cooler but rheologically essentially liquid silicic magma in a chamber or conduit (e.g. Yoder, Reference Yoder1973; Snyder, Reference Snyder2000). The resultant gravitational and fluid dynamical instabilities break up the mafic magma into blobs and clots. The two magmas do not mix owing to their temperature, composition and rheology contrasts, and mafic enclaves are left within the silicic host as heat is finally lost from the system. If eruption occurs before this, a volcanic unit containing the mingled enclaves forms, for example, the Moti Kherali Ridge rheomorphic rhyolite at Barbtana (Fig. 13h). In fact, mafic magma recharge may itself have been responsible for the silicic magma being expelled from its chamber and even erupting (e.g. Snyder, Reference Snyder2000). Progressively advanced disruption of the intruding mafic magmas injected within rhyolitic magmas is evident from the outcrop-scale (Fig. 13h) to microscopic-scale (Fig. 15b) enclaves observed within the Moti Kherali Ridge rheomorphic rhyolite and the vitrophyre patches in it.
The widespread occurrences of mafic enclaves in the area show that mafic and silicic magmatism overlapped both in time and in space. The crystal cargoes of mafic composition common in the rhyolites and vitrophyres of the area (Figs. 14h, i, 15b, c, e–i) are comparable to those in the Mount Pavagadh rhyolite lava and the Chhapariyali rhyolite dyke; they were similarly derived from disaggregation of gabbroic cumulate mushes in magma chambers (see Sheikh et al. Reference Sheikh, Sheth, Naik and Keluskar2020b, Reference Sheikh, Cucciniello, Naik, Sheth and Duraiswami2023).
4.e. Potential environmental impact and geochronological aspects
The rheomorphic rhyolites and dacites (Figs. 2–4) are mere remnants of what were evidently large-volume flood lavas. Similarly, the silicic tuff breccia ridges represent large-scale explosive volcanism: the combined Sakhpur and Bovadi ridges (Fig. 2) constitute a huge en echelon pyroclastic eruptive fissure at least 35 km long, and probably extending further both to the north and south under the Quaternary alluvium. The massive effusive and explosive silicic eruptions in the study area are thus important not only for understanding the physical volcanology of the Deccan Traps and CFB provinces but also for their probable environmental impact.
Sheikh et al. (Reference Sheikh, Sheth, Naik and Keluskar2020a, b) suggested that the northern-northwestern Deccan silicic volcanism, both effusive and explosive, may have played a significant role in the K/Pg boundary mass extinction, and a single CA-ID-TIMS 206Pb/238U date of 65.765 ± 0.018 Ma (2σ, Basu et al. Reference Basu, Chakrabarty, Szymanowski, Ibanez-Mejia, Schoene, Ghosh and Georg2020) available for the granophyre ring dyke of the Alech Hills caldera supports this possibility. Geochronological work on the silicic rocks of the present study area is scarce and with limited interpretative value. Chatterjee & Bhattacharji (Reference Chatterjee and Bhattacharji2001) provided K-Ar ages on mafic and silicic dykes around Rajula that range from 72.6 ± 2.2 Ma to 63.0 ± 1.0 Ma (2σ errors). Basu et al. (Reference Basu, Chakrabarty, Szymanowski, Ibanez-Mejia, Schoene, Ghosh and Georg2020) dated a rock sample (R7 in their map in Fig. S5C) and provided a maximum emplacement age of 65.784 ± 0.031 Ma (2σ) (CA-ID-TIMS 206Pb/238U date on the youngest zircon). It is unclear what geological unit and rock type this sample represents. The distances shown in their map, with an incorrect scale bar, are five to six times the actual distances, and the Chogat-Chamardi complex does not exist at the location shown. There is thus a great scope and need for extensive geochronological and geochemical work on the mafic and particularly the silicic rock units of the area, which must, however, be based on accurate geological maps constructed from ground truth.
4.f. Volcanotectonic aspects
The map pattern of the numerous cuestas of rheomorphic rhyolites and dacites (Fig. 3), and the basaltic cuestas which mimic them, reveals a gradual and systematic shift in their structural trends. The volcanic units in the southwestern part of the area strike NNE-SSW, those in the broad central part strike NE-SW and those in the northeastern part strike ENE-WSW. Considered together the strike ridges define a gentle arc, convex to the north, in which all volcanic units consistently dip towards the east-southeast (at ∼15°). Kshirsagar et al. (Reference Kshirsagar, Sheth, Seaman, Shaikh, Mohite, Gurav and Chandrasekharam2012) suggested that the silicic units were cone sheets fed by a plutonic centre. This centre is believed to be now submerged beneath the Arabian Sea, an area known to have experienced major post-Deccan downfaulting and subsidence (e.g. Yatheesh, Reference Yatheesh2020). We note that the silicic units are too thick to be cone sheets, and they conformably overlie basaltic lava flows in exposed stratigraphic sections of the ridges. They also have all the features of eruptive units including rheomorphic deformation and, notably, basal autobreccias. These volcanic units are excellent examples of flood rhyolite and dacite lavas, and detailed structural mapping of their rheomorphic deformation features as a guide to their emplacement dynamics should be exciting future work.
The structural-homoclinal ridges of dipping basaltic and silicic volcanics (Figs. 2, 3) were correctly identified as such by Misra (Reference Misra1976, Reference Misra, Subbarao and Sukheswala1981, Reference Misra and Subbarao1999). Because of their linearity and great lengths, these ridges have often been erroneously interpreted as dykes, both in early work (e.g. Auden, Reference Auden1949) and in recent work (Mittal et al. Reference Mittal, Richards and Fendley2021). There are indeed many ridges formed by dykes, and those formed by the silicic tuff breccias (Figs. 2, 3). The structural ridges of the basalts, rhyolites and dacites which consistently dip southeast provide evidence for extensive block-faulting at this classical rifted volcanic margin. Direct evidence for faulting is not easy to find, however, because of the extensive erosion and infilling of the structurally depressed areas by alluvium.
The uniformly seaward-dipping, structurally disturbed, basaltic and silicic Deccan volcanic sequence in the area (Figs. 2, 3) constitutes a regional-scale coastal flexure zone, here termed the Southeastern Saurashtra flexure. This is comparable to the Panvel flexure of the western Deccan Traps and flexures in other CFB provinces located on rifted continental margins (e.g. Dessai & Bertrand, Reference Dessai and Bertrand1995; Klausen & Larsen, Reference Klausen, Larsen, Menzies, Klemperer, Ebinger and Baker2002; Klausen, Reference Klausen2009). The Southeastern Saurashtra flexure zone is large: cuestas with seaward dip slopes are found everywhere from Barman Mota to Jesar to the northeast, and eastwards up to Talaja, a strike distance of 80 km (Figs. 1, 2). The flexure zone extends west and southwest of our study area in Fig. 2 into the Gir forest and Asiatic lion sanctuary (Fig. 1), where geological studies are necessarily limited and quite dated (Chatterjee, Reference Chatterjee1932; Auden, Reference Auden1949; Krishnaswamy, Reference Krishnaswamy1966).
5. Conclusions
Silicic magmatism, though minor overall in the ∼65.5 Ma Deccan Traps CFB province of India, was widespread and voluminous in the Saurashtra peninsula in the northwest. The area of the present study, around the towns of Rajula-Savarkundla-Gariyadhar-Talaja in southeastern Saurashtra, provides excellent insights into the varied styles of silicic volcanism following the flood basalt eruptions. Large-scale effusive silicic eruptions are represented in crystal-rich, strongly rheomorphic rhyolite and dacite lava flows, often with chilled basal vitrophyres. Large-scale explosive eruptions are represented in tuffs and ignimbrites, deposited by ash falls and pyroclastic density currents, and in voluminous tuff breccias, representing pyroclastic eruptive fissures. Spherulites and lithophysae are found in several of the volcanic rocks, and the Bhaguda-Longdi green tuff, in particular, contains extraordinary numbers (tens of thousands) of lithophysae, suggesting an exceptionally volatile-rich silicic magma.
Our results highlight the value of combined field data and textural information obtained with the microscope as a powerful tool in solving volcanological problems. They also highlight the many physical similarities between silicic volcanism (both explosive and effusive) in the northern-northwestern Deccan Traps and in the Snake River Plain, discussed in detail by Sheikh et al. (Reference Sheikh, Sheth, Naik and Keluskar2020a, b), Naik et al. (Reference Naik, Sheth, Sheikh and Kumar2021) and Sheth et al. (Reference Sheth, Naik, Sheikh and Kumar2022a). Mafic and silicic dykes are also common in the area, and mingled mafic enclaves found within several silicic dykes and some volcanic units suggest that mafic and silicic magmas often overlapped both in time and space. The numerous structurally controlled homoclinal ridges of rheomorphic silicic lavas and underlying basalts, with dip slopes towards the Arabian Sea, provide evidence for extensive block faulting at this classical volcanic rifted margin.
Supplementary material
The supplementary material for this article can be found at [https://doi.org/10.1017/S0016756823000432].
Acknowledgements
Fieldwork was supported by an Institution of Eminence (IoE) research grant (No. Dev. Scheme 6031, PFMS Scheme 3254) from the BHU to Alok Kumar (Principal Investigator, Collaborator: H. Sheth). A. Naik was supported by a PhD Research Fellowship of the Council of Scientific and Industrial Research (CSIR), Government of India (File No. 09/087(0908)/2017-EMR-I) and an IIT Bombay Institute Post-Doctoral Fellowship (File No. HR-1 (HRM-1)/Rect/33/2022/20003002). J. M. Sheikh was supported by a Malaviya Postdoctoral Fellowship of the BHU (IoE Scheme, Ref. No.: IoE/MPDF/2020-21/14). We thank K. S. Misra for interesting discussions on Saurashtra field geology, and N. Prabhakar and N. Sequeira for discussing some of the rheomorphic deformation features. Much of the study area, while outside the official Gir forest and Asiatic lion sanctuary, is the home of that magnificent and noble animal. We thank the natives of its many villages, friendly and welcoming both to humans and lions, for their guidance, kindness and incomparable hospitality.
The manuscript was considerably improved by journal reviews from Ciro Cucciniello and an anonymous reviewer, and the editorial work of Eleanor Jennings and Tim Johnson.