GEOLOGY, PETROLOGY AND CHROMITE MINERALIZATION OF THE BULQIZA ULTRAMAFIC MASSIF

Similar documents
Magmatic Ore Deposits:

FROM THE MINERAL TO THE COMMODITY: AN INNOVATIVE TECHNIQUE (DM + IFS) FOR THE PRODUCTION OF REFRACTORY CHROMITE

Petrography and mineralogy of ultamafic rocks in Nain Ophiolite (Central Iran)

Age and correlation of basement geology of Aurora, Rizal and Zambales areas, Luzon, Philippines

Appendix 11. Geology. of the. I60 area

Sphene (Titanite) Plane polarized light. Honey brown/orange Wedge-shaped crystals

Advances in Environmental Biology

Listvenites as targets for Au-Hg mineralization in Central Iran ophiolites

Platinum potential of the Pacific Rim of Ural-Alaskan type intrusions Yulia Nazimova & Greg Ryan. NZ Exploration Ltd

Advanced Igneous petrology EOSC 530 Laboratory 1: Mantle Xenoliths

Chromite Deposits Introduction Classification Stratiform deposits


Page 1. Name: 1) Which diagram best shows the grain size of some common sedimentary rocks?

Deep subsurface geological phenomena and related processes in the Elbasani-Tirana region, Albania

Mineral Deposit Report Page 1 OF Geological Survey of Finland

Name Class Date STUDY GUIDE FOR CONTENT MASTERY

Geology of Quesnel and Stikine terranes and associated porphyry deposits. Jim Logan Paul Schiarizza

Name Class Date. In your textbook, read about the nature of igneous rocks. Use each of the terms below just once to complete the following statements.

Bulletin of the Geological Society of Greece

Occurrence of mafic-ultramafic rocks

Understanding Earth Fifth Edition

Investigation of Usability as Industrial Raw Material of Olivine Occurrences: A Case Study from Gelendost - Isparta, Southwestern Turkey

Igneous and Metamorphic Rock Forming Minerals. Department of Geology Mr. Victor Tibane SGM 210_2013

Chapter 4 Rocks & Igneous Rocks

GY 112 Lecture Notes Rock Review

CEE 437 Lecture 10 Rock Classification. Thomas Doe

Chapter 10. Chapter Rocks and the Rock Cycle. Rocks. Section 1 Rocks and the Rock Cycle

GS-17. Summary. Previous work. Regional setting. Introduction. Geology

Topic Page: Peridotite

BALOCHISTAN FOLDBELT BASIN

As compaction and cementation of these sediments eventually occur, which area will become siltstone? A) A B) B C) C D) D

IGNEOUS ROCKS. SECTION 5.1 What are igneous rocks?

Mineral Deposit Report Page 1 OF Geological Survey of Finland

Introduction to Prospecting. Session Four Ore Deposits

Ultramafic rocks. Types of Ultramafic Rocks. Spinel lherzolite xenolith

Name Class Date STUDY GUIDE FOR CONTENT MASTERY

Introduction to Geology Spring 2008

1. are most likely to study the images sent back from Mars. A. Astronomers B. Geologists C. Doctors D. Engineers

Landslides susceptibility in central part of Albanian coast

The Geochemistry of the Whole Rock and Platinum-group Elements in Pyroxenites of Sorkhband Ultramafic Complex, Southern Iran

Chapter 3. Geology & Tectonics

GEOLOGY OF THE NICOLA GROUP BETWEEN MISSEZULA LAKE AND ALLISON LAKE

1. What is the most important agent of chemical weathering on Earth? a. oxygen b. salt c. carbon dioxide d. carbonic acid e. water

RELATIONSHIP BETWEEN OPHIOLITES AND GOLD-QUARTZ VEINS IN THE NORTH AMERICAN CORDILLERA

twd$ yqsi+hca

454/01 GEOLOGY GL4 EXTENSION GEOLOGY. P.M. FRIDAY, 14 June (2 Hours)

1. Base your answer to the following question on on the photographs and news article below. Old Man s Loss Felt in New Hampshire

RR#7 - Multiple Choice

Unit 2 Exam: Rocks & Minerals

GEOLOGY AND GEOCHRONOLOGY OF THE ISLAND LAKE GREENSTONE BELT, NORTHWESTERN SUPERIOR PROVINCE by J. Parks 1, S. Lin 1, M.T. Corkery and D.W.

Introduction. Introduction. Chapter 7. Important Points: Metamorphism is driven by Earth s s internal heat

2- GEOLOGY & CHROMITE RESOURCES OF THE INGESSANA HILLS AREA

Lab 2: Rocks Page 1 of 8

Version 1 Page 1 Barnard/George/Ward

Name. GEOL.5220 Structural Geology Faults, Folds, Outcrop Patterns and Geologic Maps. I. Properties of Earth Materials

Structural geology and gold metallogeny of the New Britannia mine area, Snow Lake, Manitoba

Metamorphism (means changed form

Interaction between Mid-Ocean Ridge and Subduction Magmatism in Albanian Ophiolites

CHAPTER VI CONCLUSIONS

R.Suhasini., Assistant Professor Page 1

GLY 155 Introduction to Physical Geology, W. Altermann. Grotzinger Jordan. Understanding Earth. Sixth Edition

Rocks. Rocks are composed of 1 or more minerals. Rocks are classified based on how they formed (origin). 3 classes of rocks:

GEOLOGY OF THE DO27 PIPE: A PYROCLASTIC KIMBERLITE IN THE LAC DE GRAS PROVINCE, NWT, CANADA

Geology and Petrography of Peridotites (Mantle Section) from Bela Ophiolite, Balochistan, Pakistan

Chapter - IV PETROGRAPHY. Petrographic studies are an integral part of any structural or petrological studies in

Block: Igneous Rocks. From this list, select the terms which answer the following questions.

Ore deposits related to mafic igneous rocks Diamonds - GLY 361 Lecture 3

EXISTING GEOLOGICAL INFORMATION

STRENGTH AND DEFORMABILITY OF SPECIFIC SEDIMENTARY AND OPHIOLITHIC ROCKS

Crystallization of Podiform Chromitites from Silicate Magmas and the Formation of Nodular Textures

NAME HOMEWORK ASSIGNMENT #3 MATERIAL COVERS CHAPTERS 8, 9, 10, 11

Evolution of the Earth

MAGMATIC-HYDROTHERMAL Cu-Au-(Mo-Pb-ZN-Ag) SYSTEMS IN THE SW-PART OF THE CARPATHO-BALKANIDES

Course Name: Petrology Lab

LAB 6: COMMON MINERALS IN IGNEOUS ROCKS

INTRODUCTION. Basalt, the widespread igneous rock on the earth sur-face. today appear to have been equally important

Igneous Rocks. Igneous Rocks. Genetic Classification of

EVOLUTION OF ULTRAMAFIC ROCKS DURING THE REGIONAL METAMORPHISM IN SOUTH CARPATHIANS, ROMANIA

Metamorphism: Alteration of Rocks by Temperature and Pressure

Which rock is shown? A) slate B) dunite C) gneiss D) quartzite

GENERALIZED GEOPHYSICAL OVERVIEW ON SHKODËR-PEJË DEEP TRANSVERSAL FRACTURE

The Kanuti Ophiolite, Alaska

Review - Unit 2 - Rocks and Minerals

BLURTON CREEK NICKEL PROPERTY. (Minfile # 082LNW-039)

Copper and Zinc Production, Disciplined Growth. S I T E V I S I T O C T O B E R % Owned Projects

Igneous, Metamorphic & Sedimentary. Chapter 5 & Chapter 6

Ore deposits related to mafic igneous rocks PGE s - GLY 361 Lecture 2

COMPOSITIONAL TERMS: FELSIC : light colored INTERMEDIATE : medium shades MAFIC : dark colored ULTRAMAFIC : rare (composition of the mantle)

Structural Geology Lab. The Objectives are to gain experience

Indian Statistical Institute Junior Research Fellowship in Geology, Entrance Examination 2015

Rocks and the Rock Cycle notes from the textbook, integrated with original contributions

Page 1. Name:

Geochemical Soil Survey for Au Exploration in the Kenieba District in Mali, Africa

POTENTIAL FOR SIGNIFICANT UNDISCOVERED METALLIC ORE DEPOSITS IN MAINE. John F. Slack U.S. Geological Survey (Emeritus), Farmington, ME 04938

entered a rapid development phase. Annual increased proven reserves are above 500 billion cubic meters (bcm) from 2003, and annual natural gas product

GY111 Earth Materials Practice Final Exam

Chromite and tourmaline chemical composition as a guide to mineral exploration

3. GEOLOGY. 3.1 Introduction. 3.2 Results and Discussion Regional Geology Surficial Geology Mine Study Area

Practice Test Rocks and Minerals. Name. Page 1

40-50 Minutes, 3 minutes per station, 13 Stations, samples provided by UWM and Pierre Couture

Transcription:

GEOLOGY, PETROLOGY AND CHROMITE MINERALIZATION OF THE BULQIZA ULTRAMAFIC MASSIF H. BESHKU 1, A. DOBI 1, V. GJONI 1 and A. PIRDENI 2 1 Geological Survey of Albania, Rr. Kavajes, Nr. 153, Tirana, Albania 2 Institute of Geological Research, Blloku Vasil Shanto, Tirana, Albania Abstract. The Bulqiza ultramafic massif belongs to the eastern belt of the ultramafic massifs of the eastern ophiolites of Albania. This paper provides the data on the geological position and structure of the Bulqiza ultramafic massif, petrology and its chrome-bearing potential. The particular morpho-structural features of this massif are given in this paper. The chromite mineralization mainly of the metallurgic type occur, while the refractory type occur in the southwestern part. Key words: Geology, petrology, structural features, chromite mineralization, Bulqiza region, Albania. Geology. The ultramafic massif of Bulqiza is a component part of the eastern belt ultramafic rocks of the eastern ophiolites of Albania. It occupies about 352 km 2 surface, with tectonic relationships with the Triassic-Jurassic carbonate rocks in the northeastern and southwestern parts and with the Upper Tithonian-Lower Cretaceous marly-sandy flysch in southeast, covering by the Neogene molasses in northwest (fig. 1). The carbonate periphery of the ultramafic massif of Bulqiza consists of the carbonate rocks of the Upper Triassic-Lower Jurassic age, on which by the hard grounds, the pelagic limestones of the Upper Liassic, Dogger-Malm and radiolaritic cherts of Malm are followed. In parts, as in Stavec, Peshk, Ballenje, Kacni and Qaf Helmi, they are normally covered by the ophiolitic melange and/or marly-sandy flysch of the Upper Tithonian-Neocomian age (fig. 2, a, b). Petrology. The generalized sequence of the ultramafic rocks of the Bulqiza massif, from bottom to top, is as follows: a. mantle serie (m),! ultramafic tectonites, mainly fresh harzburgites (m 1 ),! intercalation of harzburgite tectonites with the thin dunite tectonite bands, composing about 15-20 % of the sequence (m 2 ),

! intercalation of harzburgites with frequent dunite one, about 25-50 % of the sequence (m 3 ). b. Cumulate serie (k), transitory zone,! cumulate dunites (k 1 ),! Cumulates of the plagioclase and clinopyroxene dunites, lherzolite-wehrlites and pyroxenites (k 2 ),! olivine gabbros, troctolites and gabbros, separating the mantle section from the cumulate one (k 3 ). The characteristic of the rocks of the ultramafic massif of Bulqiza are the facial changes, being more evident at the upper levels of the mantle sequence and ultramafic cumulates. The veiny-dyke rocks as enstatites and gabbro pegmatites, while the microgabbros, diabase porphyries, leucocrate micro-plagiogranites up to granites occur in the uppermost part of the mantle and cumulate sequence. The tectonite harzburgites has banded to gneissy texture showing the foliation elements derived from the plastic deformation, with the typical cataclastic and porphyro-clastic texture with neoblasts. They consist of magnesial olivine Fo = 90-94 and enstatite with ex-solutional needles of pyroxene with the chrome spinel disseminations. Structural features. The Bulqiza massif represents a big asymmetric anticline complicated by the foldings of different ranks and Vajkali flexure showing by the plunging of the ore stratification of Bulqiza with 70-80º dipping angle (fig. 4). In the northern margin the stucture of the massif is complicated by the transversal inclination, having in its nucleus the gabbro rocks, interrupting the north continuation of the massif. Chromitite mineralization. The metallogeny of the Bulqiza ultramafic massif is characterized by the wide spreading of the chromitite mineralization, represented by the unical deposits regarding the dimensions, morpho-structural features and the highest chrome bearing potential in the eastern belt of Albanides. The chromitite mineralization is mainly of the metallurgic type. The refractory type mineralization occur in the southwestern part, localized within the mantle sequence and the transitory zone. Chromitite mineralization of the mantle section. It is localized throughout the ultramafic tectonite sequence, within which, some morpho-structural types are distinguished: folded concordant pseudo tabular ore bodies and/or subconcordant ones as in Lugu Gjate, Qafe Buall, Ternove and other deposits and discordant pipe type ores as in Shkalla deposit.

Because of the wide occurrence of the chrome-bearing sequences (m 2, m 3 ) within this massif, the further peropective of prospection is open. Chromitite mineralization of the transitory zone. This mineralization consists of the lensystratified, banded and disseminated bodies, concordant to subconcordant and more seldom, lensy-massive ores. The banded chromitite mineralization is associated with the pentlandite disseminations and the PGE mineralizations. Based on the petrological, geochemical and metallogenic features, the Bulqiza massif belongs totally to the eastern ophiolites (of the harzburgitic type) of the second type ophiolites with the ortho and pyroxene sequence, formed in the close relationships with the formation of the ophiolites of the eastern type, during the Middle-Upper Jurassic, with the Kimmeridgian- Tithonian uppermost levels. Conclusions:! The Bulqiza ultramafic massif, as a component part of the Mediterranean- Alpine belt is distinguished by an unical geological, petrological and metallogenic features, characterized by the high chrome bearing potential.! This massif and some of its deposits (Bulqiza, Batra etc.) are characterized by the intensive foldings both, in longitudinal and transversal plane.! The chrome-bearing perspective of this massif is open, mainly within the middle-upper part of the mantle sequence.! References Alliu I., Beccaluva L., Cina A., Coltorti M., Dobi A., Gjata K., Gjoni V., et al. (1994) The Skanderberg and Bulqiza mafic-ultramafic ophiolitic complexes and their relationships with chromititic ore deposits (Working Group Meeting of IGCP Project nr. 256) Dobi A. (1983) Petrology of the Bulqiza ultramafic massif. Bull. Shk. Gjeol., nr. 2, Tirana, Albania. Beshku H. & Goskolli E. (2000) Study on the unification on the Albania classification of reserves with the International one. Bul. Shk. Gjeol., nr. 2, Tirana, Albania. Beshku H. & Gjoni V. (2002) Chrome-bearing perspective of Mali Lopes-10 Korriku-Theken-Ternove region (Bulqiza ultramafic massif) (in press). Dobi A., Premti I., et al. (1998) Petrological and geochemical features of the Bulqiza ultramafic massif and related chromite mineralization. Workshop on Albanian ophiolites and related mineralization. IUGS/UNESCO MODELING PROGRAMME, 10-17 Octobre 1995, p. 66. BRGM Edition, France. Gjata K., Kodra A., Pirdeni A. (1980) Geology of some peripheral parts of the Mirdita ophiolitic zone. Permbl. Stud., nr. 3, Tirana, Albania. Gjoni V. (1991) Mali i Lopes-10 Korriku-Theken-Ternove chromite deposits and their potential, 9 th International Congress, Athens, Greece. Gjoni V. (1995) Petrology and chromite deposit of the Bulqiza ultramafic massif. Ph. D., Thesis, 231p, Tirana, Albania. Kodra A., Gjata K., Pirdeni A. & Jahja B. (1977) Doger-Malm levels in Martanesh region, western flank of the Bulqiza ultramafic massif. Permbl. Stud., nr. 4, Tirana, Albania. Premti I., Brace A. & Gjoni V. (1996) Petrological modeling of Bulqiza and Shebenik ultramafic with metallogenic implications. Convegno Italo-Albanese, Tirana, Albania.

Fig. 1. Geological Map of the Bulqiza ultramafic massif. 1:50 000 scale (According to Shallo M., Dobi A. et. al) 1.Pliocene-Quaternary: conglomerates, sandstones and clays (N 2 -Q 1 ); 2. Neogene molasses m (N 2 ); 3. Lower Cretaceous terrigene formations (Cr 1 ); 4. Maastrichtian-Paleogene flysch (Cr 2 Pg 1-2 ); 5. Upper Tithonian-Lower Cretaceous marly-sandy flysch deposits (J 3 -Cr 1 ); 6. t Ophiolite conglobreccias (J 3 -Cr 1 ); 7. Ophiolitic mélange (J 3 Cr 1 ); 8. Carbonate-cherty formations (J2-3); 9. Shallow water limestones (T 3 -J 1 ); 10. Carbonate-cherty limestones (T2- J); 11. Metamorphic rocks: amphibolites, amphibolite and quartz-micaceous-garnet schists; 12. Basic volcanics (B J2-3 ); 13. Gabbros; 14. Pyroxenites; 15. Cumulate peridotites (lherzolites, wehrlites etc.); 16. Cumulate dunites; 17. Upper level of the mantle duniteharzburgite sequence; 18. Middle level of the mantle harzburgite-dunite sequence; 19. Lower level of the mantle harzburgite sequence; 20. Normal geological boundary within the ophiolites; 21. Normal geological boundary; 22. Faults: a. verified, b. supposed; 24. Chromite ore deposits; 25. Horizontal section of Bulqiza-Batra deposit. Fig. 2.a. The tectonic contact of the transitory zone pyroxene dunites of the Bulqiza massif with the thick bedded neritic Triassic-Jurassic limestones in Prroi i Lenes (Martanesh). Fig. 2.b. The western contact of the Bulqiza ultramafic massif in Gjonaj (Martanesh). 1. Gabbro-troctolites; 2. Pyroxenites; 3. Plagioclase dunites; 4. Conglomeratic-sandy ophiolitic deposits (J 3 -Cr 1 ); 5. Shallow water limestones (T 3 -J 1 ). Fig. 3.a. Generalized schematical column of the Bulqiza ultramafic massif. Fig. 3.b. Correlation of different sequences of the Bulqiza Ultramafic massif. Fig. 4. Ultramafic massif of Bulqiza. A. Transversal section. B. Longitudinal section. 1.Harzburgite; 2. Harzburgite-dunite; 3. Dunite-harzburgite; 4. Dunites; 5. Pyroxenites; 6. Lherzolites; 7. Wehrlites; 8. Mineralization levels.