Showing posts with label tillite. Show all posts
Showing posts with label tillite. Show all posts

Saturday, September 14, 2013

Geological evidences of ancient glaciation in Jharkhand State of India.



Permo-Carboniferous time, about 300 million years ago, was a period of great glaciation.
By
Dr. Nitish Priyadarshi
Geologist






The Earth has a history of climate change. There have been ice ages and super-volcanoes and with them came evolutionary changes in many of the Earth’s inhabitants;

A glacial period (or alternatively glacial or glaciation) is an interval of time (thousands of years) within an ice age that is marked by colder temperatures and glacier advances. There have been five known ice ages  in the Earth's history, with the Earth experiencing the Quaternary Ice Age during the present time. Within ice ages, there exist periods of more severe glacial conditions and more temperate referred to as glacial periods and interglacial periods, respectively. The Earth is currently in an interglacial period of the Quaternary Ice Age, with the last glacial period of the Quaternary having ended approximately 10,000 years ago with the start of the Holocene epoch.

The Permo-Carboniferous refers to the time period including the latter parts of the Carboniferous and early part of the Permian period. Permo-Carboniferous rocks are in places not differentiated because of the presence of transitional fossils, and also where no conspicuous stratigraphic break is present.

Permo-Carboniferous time, about 300 million years ago, was a period of great glaciation. The widespread distribution of Permo-Carboniferous glacial sediments in South America, Africa, Madagascar, Arabia, India, Antarctica and Australia was one of the major pieces of evidence for the theory of continental drift and led ultimately to the concept of a super-continent, Pangaea. Glacial activity spanned virtually the whole of Carboniferous and Early Permian time . Toward the end of the Carboniferous, around 290 million years ago, Gondwana, the southern part of Pangaea, was located near the south pole. Glacial centres expanded across the continents, producing glacial tillites and striations in pre-existing rocks.

The Late Carboniferous and Early Permian period was an exceptional phase in the earth’s history when the precursors of the modern continents were assembled in the form of two big landmasses (Gondwana and Laurasia) which were connected to form a supercontinent (Pangaea) such that the major part of the land area was in the southern hemisphere. Since the Earth’s climate is dependent on land and ocean distribution, the global air circulation and climate were radically different from the present.



Past Glaciation evidence in Jharkhand State.


Rocks of glacial derivation are limited to the Talchir Formation at the base of Gondwana supergroup. The Talchir, all over Peninsular India comprises a variety of rock types including diamictite (tillite), conglomerate, sandstone, laminated varve-like shale-siltstone (rhythmite facies), and locally turbide deposits. The maximum known thickness is seldom in excess of 300 m.

The sediments comprising the Talchir Formation contain records of a chain of events caused by the climatic evolution during the Carboniferous–Permian boundary period in India. The occurrence of a boulder bed derived from a glacial moraine at the base of the Talchir Formation indicates presence of glacier ice near the basin periphery. Subsequent occurrence of sandstone–siltstone beds and their sedimentary features signify evolution of a large water body. Different research work suggests that the water of this basin was supplied by melting of the glacier. The glacier later retreated far from the lake margin when sediments were carried by melt-water streams.

This development marks a relatively rapid warming episode, which reached a climax when waves generated by intense storms created hummocky cross-stratification in the sedimentary layers. Several Gondwana basins in east-central India recorded this climatic transition in the basal part of their sedimentary sequence typified by the Talchir Formation. The warming initiated during late Talchir continued for a geologically long time with substantial melting of ice in various regions leading to increase in sea level as evidenced by signature of marine transgressions (at Umaria, Manendragarh and Daltonganj). This chain of events finally culminated in occurrence of widespread vegetation and swampy land, which formed the massive Permian coal deposits of eastern India.

Damodar Valley basin in Jharkhand State contains a chain of sub-basins containing a complete stratigraphic sequence of Talchir sediments(Ghosh and Mitra,1975). An excellent exposure occurs near the confluence of Dudhi Nala, Dube Nala, and Silai Nala about 0.5 km south of the village Jarwa  in the western part of the Bokaro sub-basin.

East Bokaro coalfield:

The East Bokaro coalfield ranks third amongst Indian coalfields in the respect of coal potentiality. The name of the Bokaro field was given by D.H. Williams in 1846-47 as the Bokaro river flows through the field for nearly 40 km.

The Talchir formation crops out only in the north-eastern periphery around Chapri. The Talchir formation has its base the typical tillite, which crops out in the nala (rivulet) south east of Lakarkatwatoli village. The tillite is practically unstratified and devoid of sandy interbands. It usually attains a thickness of 2m to 3m. the till favbric study in the Chapri area indicates that the inflow at the dawn of Gondwana sedimentation was from WNW to ESE. It is therefore evident that the Precambrian upland lying to the north of East Bokaro coalfield was the main gathering ground of ice.

Because of the restricted distribution of Talchir beds in the vicinity of Chapri it is surmised that only one major lobe of ice advanced into the eastern periphery of the coalfield.

West Bokaro coalfield :

The base of Gondwana sequence is marked by a thick pile of glacial and periglacial deposits of Talchir Formation. The Talchir beds are well exposed in the western part of the coalfield to the east and northwest of Mandu in Hazaribag district and also occur as a lenticular patch north of Tapin. The Talchir formation comprises diamictites, sandstones, shales, turbidites and rhythmites, which are all typified by a khaki green colour. This section lies at a distance of 68 km, from Ranchi. The area of study lies at a distance of nearly 3 km from Mandu, off the west side of the Dudhi bridge.

Characteristic features of glacial transport are observed in the forms of polished and striated boulders. Unsorted nature of the deposit also suggests their glacial origin.

Ramgarh Coalfield:

The Talchir rocks are best developed in the northern part of the basin around the Barki Punu. A narrow strip of such rocks is also exposed all along the eastern periphery of the basin where good exposures are present in the Bhera river near famous Rajrappa temple.

Till fabric analysis of the basal tillites in the Barki Punu area has indicates glacial transport from WNW to ESE which is compatible with ice flow directions from equivalent horizons in the adjoining Karanpura and Bokaro basins (Ghosh and Mitra,1975).

North Karanpura Coalfield:

The North Karanpura coalfield which is the western most member in the east-west chain of the Damodar valley basins forms a large expanse of coal bearing sediments spread over Hazaribag, Ranchi and Palamau districts.
Talchir formation is exposed along the fringes of the basin in the north, east and south. Tillite which is dumped type deposit comprises out sized clasts, which vary in size from a few centimeters to a few meters.

The different occurrences of the tillites indicate that they were laid down by different lobes of valley glaciers as abalation till or lodgment till rather than by a continuous ice sheet (De, !980).

Glacial pavements with undisputed glacial striae indicating ice transport from north and NW has been reported from the north of Pakri Barwadih at the northern margin of the basin ( Chakraborty and Bhattacharya, 1973).

Auranga Coalfield:

Auranga coalfield is the easternmost of the North Koel valley Gondwana basins. It is only 8 km away from the North Karanpura basin, the westernmost of the Damodar Valley coalfields.

The Talchir formation in Auranga basin has a maximum thickness of 30 m to 35 m. It is evident the ice had moved from the southern uplands and deposited the morainic material in bedrock depression. From the distribution pattern and their facies organization, it can be concluded that several lobes of ice had reached this basin and deposited glacial and fluvioglacial sediments in the bedrock depressions.

Hutar coalfield:

The Hutar coalfield is the westernmost of the Damodar-Koel valley Gondwana basins. It is one of the four coal bearing areas in Palamau district of Jharkhand.

The Talchir sediments in this area exposed along the northern, south eastern and southern boundaries of the Hutar basin and they crop out as narrow strips. Good exposure of Talchir rocks are observed in the section of nalas (rivulets) like the Saphi nala near Unkamanr, the Deori nala west of Barwadih and near Paisartanr, the Baheradhora nala, the Thongwa nala, tributaries of the Saphi nala around Nawadih, the Jamtipani nala and its tributaries and a tributary of the Jharna nala.

An analysis of till fabric, primary directional structures and lithofacial distribution indicates that the direction of glacial transport was mostly towards  north and north-east. Though no sub-surface information is available, total thickness of the Talchir formation is estimated to exist 50 m.

Deoghar Basins:

Extensive exposures of Talchir rocks are noted all along the southern margin of Jainti basin. The formation also covers a large area along the northern boundary of the Saharjuri and Kundit Kuraiah basins. In addition, more detached outliers of sediments have been recorded in the vicinity of Makranda, Alaura, Alakbera, Darabandh, Satuabad and Burhai. These occurrences of Talchir outliers testify to widespread glaciation in the Deoghar area, the detached outliers being erosional remnants.

Reference:

Chakraborti, S.K. and Bhattacharya, B.P. 1973: A note on the occurrence of glacial movements along the northern boundary of North Karanpura coalfield, Hazaribagh district, Bihar, Jour. Geol. Soc. Ind. 14(3).

Coal Resources of Bihar, 1987.  in Bulletins of the Geological Survey of India, Vol IV (part -1).

De, A.K. 1980: Lithology and conditions of deposition of Talchir Formation in North Karanpura Basin. Jour. Geol. Soc. Ind., Vol.21, 593-602.

Ghosh, P.K. & Mitra,  N.D. (1975): History of Talchir sedimentation in Damodar Valley Basins, Mem. Geol. Surv. Ind.,105.


Thursday, March 6, 2008

WHY STYDY PALAEOCLIMATIC CHANGES?

WHY STYDY PALAEOCLIMATIC CHANGES?
Study of sediments reveal ancient climatic changes.
By
DR. NITISH PRIYADARSHI


Palaeoclimatology, the study of climates during the geological past, is one of the most topical areas of research in the geosciences at present. The threat of future climate change caused by higher levels of greenhouse gases, which would drastically alter many aspects of our environment, has prompted much research to try to understand how our complex climate system works.
Understanding our climate history in the geological past is also important for climatologists trying to construct accurate numerical computer models of our present climate system to use for predicting future climate change. It is obviously not possible to check the accuracy of models that are predicting the future so climatologists must turn to the past to see if their models can accurately simulate ancient climates. It is therefore the role of the geoscientist to collect as many data as possible from the rocks.
By studying palaeoclimatic changes in the past we are able to evaluate the various causes that led to global cooling or warming and are able to evaluate the full potential of greenhouse gases- a powerful source of climate changes, and compare their effects on the present climate with that of the past. This would enable us to say for sure if the consumption of the present fossil fuel reservoir, the main source of carbon dioxide, is likely to affect climatic changes in the near future or not.
Historic records tell us that abrupt climatic changes have occurred during the last 2000 years. Palaeoclimatic studies would tell us if such abrupt climatic changes are expected to occur in the near future. By scientific study of past climate, it will be possible to anticipate climate surprises in the future.
Detailed study of sedimentary rocks and their enclosed fossils has made possible estimates of such climatic factors as wind directions, rainfall, atmospheric and oceanic temperatures, and the effects of atmospheric changes. The most obvious palaeoclimate determinations are the recognition of ice ages, and the hot dry periods.
Estimates of climatic conditions become less and less reliable as they are projected further and further back in time. Thus, Pleistocene climates are relatively well known whereas climates for Lower Palaeozoic periods are probably little better than intelligent guesswork.
It is becoming increasingly apparent that some ancient environments cannot be found on earth today, such as the presence of warmth-loving vegetation and animals living near the poles. In these cases it is vital to carefully interpret all potential sources of environmental information to reconstruct these unique situations from primary data.
The formation of some rock types is directly influenced by aspects of climate. Some of the most useful are coals, evaporates, glacial deposit and carbonates.
Coal:-
The presence of coal, initially formed from the accumulation of plant material as peat, is generally taken to indicate warm wet humid climates ideal for lush plant growth, and where the rainfall is higher than the rate of evaporation, such as in equatorial regions.
Carbonates:-
In the marine realm, carbonate sediments are often used as indicators of warm ocean waters. Carbonate sediments of Bahamian type (including reef-building hermatypic corals, some algae and ooids) are important indicators of warm marine seas.
A different suite of carbonate also form today in cool temperate waters. These are composed of benthic foraminifera, red algae, mollusks and bryozoa. These carbonate deposits form in much higher latitudes under cooler conditions. Identification of the carbonate constituents is therefore important to distinguish between cool-water and warm-water carbonates for palaeoclimatic interpretation.
Evaporites:-
Evaporites, such as anhydrite, gypsum and halite, are used as guide to aridity in the past. Their formation requires evaporation rates to exceed precipitation, at least seasonally, and to exceed water inflow into the evaporating basin.
Glacial deposits:-
Evidence for glaciation and the presence of thick ice sheets can be obtained from a variety of sources. The most convincing are striated pavements, that is surface of bedrock with grooves scratched by debris frozen into the base of moving ice glaciers.
Glacial tillites can provide information about ice passage but, in the absence of other glacial features, tillites can sometimes be hard to distinguish from other diamictites, such as debris flow deposits, which may have formed under totally different conditions. Ice-rafted dropstones and varves indicate that ice formed, at least seasonally, and produced dumps of ice-carried debris or seasonal lake sediments. In addition, glendonite nodules have also been used as evidence for cold climates.
Aeolian sediments and red beds:-
The distribution of red beds and Aeolian sediments (sediments deposited after transport by wind) can also provide some indication of controlling climatic parameters. Aeolian deposits can provide important on prevailing wind directions. The term aeolianite is used to describe all consolidated sedimentary rocks which have been deposited by wind and are cemented by calcium carbonate. These are widely found in India (Miliolite and Chaya rocks), the Persian Gulf coast, the Arabia, Australia, South Africa, Mediterranean coast and Madagascar.
Red beds were once considered as classic indicators of desert conditions. However, it is now believed that the main factor governing their formation is not solely aridity but the seasonal nature of rainfall. Alternating wet and dry periods govern the mobilization and precipitation of iron minerals. Therefore reddening can occur in a range of environments, from those which are generally arid with a short season of rainfall to those which are seasonally very wet.
There are several other climatically sensitive sediments that have been used to determine climate. For example certain clay minerals tend to form under specific climate settings. Bauxite are limited to tropical and subtropical settings with high rainfalls.
Lake Sediments:-
Lake deposits, especially those laid down in closed lakes (i.e. lakes with inlets but no outlets), are among the most useful source of information about palaeoclimate in many areas of tropics and subtropics. Their sediment rather provide rather continuous stratigraphic sequence, which often contain datable materials and allow chronological determination of climatic changes. Pollen grains in the lake sediments are well preserved and their analysis tell us about the kinds of plants growing at the time the sediments were deposited. Inferences can be made about the climate based on the types of plants found in each layer. The flora present in the lignite, peat and several layers of carbonaceous soil in the Karewa lake of Kashmir (India) has revealed a history of alternating dry glacial and humid interglacial conditions.
Lake level records provide reliable information on climatic oscillations, particularly of the major changes in hydrology. For example lake level records from Central Africa show that its major lakes like Chad, Naivash, Malawi, Chilwa got almost dried up during greater part of the Little Ice Age (1700-1830 A.D.)
All these methods of studying rocks and sediments has been utilized to great advantage in working out the climatic variations in the geological past by different geological organizations and even archaeological organizations.

Dr. Nitish Priyadarshi

Geologist

rch_nitishp@sancharnet.in