[Geography Notes] on Drainage Systems of India Pdf for Exam

India is rich and prosperous in a lot of things, and for the same reason, India is one of the most popular countries today and will continue to be so in the future. A lot of things are unique and perfect in India, and one of them is the prosperous drainage system. India’s drainage system is very transparent and solid that informs a lot of things about the drainage process. Numerous small and big rivers flow from all directions and states in India, and some of them also combine at a particular place. This place may also be known as the rivers’ merging place, and such connecting sites improvise India’s drainage. 

Special Features about the Drainage System of India

There exists a lot of unique and crucial features about the drainage system of India, and some important ones among them can be listed as follows-

Unique Catchment Places Drainage System of India 

The peninsular rivers of India and the other river basins have a particular catchment area or section attached to its corner that prevents the overflow and mixing of the water’s toxic substances. This maintains a good pace with the drainage water and does not bother the whole river at all. 

These catchment areas also have some space for future infrastructure and development. The design does not remain outdated and incapable of handling future troubles that may be unavoidable at some points in time. 

Therefore, these catchments have facilitated giving a solid pace to the people in the first place for sure. 

The Perfection of the Peninsular Drainage System 

India has a vibrant river heritage and offers excellent, and the peninsular drainage system is the world-famous one among the other methods. India’s peninsular drainage system has a lot of various aspects and is distributed evenly throughout the coast and middle of Indian states. 

The peninsular rivers of India map show all the locations and peninsular spots in the country and describe the importance of the same. The primary and most essential rivers included in the peninsular drainage system are the Mahanadi, the Krishna, the Godavari, and the Kaveri. All these rivers are the base of the whole peninsular system, and for the development of the same, the infrastructure is also required to be impactful and creative in their ways. 

Vast Drainage Basins of India

Another fantastic speciality of India’s drainage system is the vast drainage basins present in it and the properties and advantages that they offer to the people in the first place. These basins also have prominent infrastructural and exponential places and are innovative and creative in their ways and manners. 

Therefore, having a vast and elaborated drainage basin is also the most important and prosperous aspect of India’s drainage system, and it is the responsibility of every individual to create an impressive and out-of-the-box infrastructural layout for the new generations to come and take advantage of the same. 

Some of the states in India always face the flood every year, which causes a lot of damage to people and properties. A proper drainage system will help in wiping out that danger. To conclude, India’s drainage system has evolved to a great extent in previous years. For the same reason, many new and innovative plans and policies have come into existence. The different types of drainage systems in India have connected many states in it with each other and have maintained good relations between them in the first place. 

For the betterment of a country’s good infrastructure, learning how the water divide in India is crucial and essential, and people should take this into proper consideration. Building an appropriate drainage system is the strength of every country, and cherishing it is the respective government’s sole responsibility.

[Geography Notes] on Feldspar Uses Pdf for Exam

Feldspar is a common raw material that is used in the process of glassmaking, ceramics, and to an extent as a filler and as an extender in the paint, plastics, and rubber industries. In glassmaking, alumina from feldspar actually improves the product’s hardness, durability, and resistance against chemical corrosion. In ceramics, the alkalis in feldspar are calcium oxide, potassium oxide, and sodium oxide. All of these act as a flux that eventually lowers the melting temperature of the mixture. In the process of firing, fluxes melt at an early stage. After which it forms a glassy matrix that bonds the other components of the system together. In the United States, roughly around 66% of feldspar are being consumed while in glassmaking, this includes glass containers and glass fiber as well. Ceramics (which are included in electrical insulators, sanitary ware, pottery, tableware, and tile) and other uses, like fillers.

Mnemonic

A mnemonic device, also known as a memory device, is literally any learning technique that aids information retrieval in human memory.

Suppose facing a geography memorization task, a way to make the learning simple is by employing a mnemonic device. Mnemonics are the memory aids which are in the form of easily recalled rhymes, phrases, or even acronyms that serve as a reference for the place names (or other information) that one is trying to study.

One example – the common mnemonic device that helps people memorize the names of the Great Lakes. Suppose the word “HOMES,” the five lake names will fall into place and in mind, that is Huron, Ontario, Michigan, Erie, Superior.

Sunstone

Sunstone is a kind of plagioclase feldspar that is when viewed from certain directions exhibits an appearance of spangled beads. Sunstone is found in Sweden, Southern Norway, and other state localities. They are also found on some beaches and along the mid-coast of South Australia. 

For the reflections from the inclusions of red copper, we have an optical effect. They are in the form of minute scales, that are hexagonal, rhombic, or found in irregular shapes. They are disposed parallel to the cleavage-plan principle.  The inclusions give an effect to the stone of an appearance similar to aventurine. For this feature sunstone is also known as “aventurine-feldspar”. The optical effect is called schiller and Oregon being the color of the Sunstone is due to the presence of copper. The mid-section of this crystal sparkles, and usually this color is darkest in the middle and fades toward the outer edges.

Oligoclase

Oligoclase is a mineral that is formed by a rock that belongs to the plagioclase feldspar.

Oligoclase is characterized by a high sodium feldspar crystallizing quality in the triclinic system. It is 6 to 6.5 as per the Mohs hardness and it has a specific gravity of 2.64 to 2.66. While, its refractive indices being nα=1.533–1.543, nβ=1.537–1.548, and nγ=1.542–1.552. In color texture, this is usually white in shade, with other shades of grey, red and green.

Oligoclase also occurs, often accompanying the orthoclase, which is a constituent of the plutonic igneous rocks like granite, syenite and diorite. This occurs in porphyry and in diabetic dikes and in sills as well. They are found in the volcanic rock andesite and in trachyte, where the presence is a defining feature. They also occur in gneiss. The developed and the most-largest crystals are the ones found with orthoclase, epidote, quartz, and calcite. The distinct texture of rapakivi granite is because of the oligoclase phenocrysts. Oligoclase is even found in the metamorphic rocks that are formed under transitional greenschist to amphibolite facies type conditions.  

 

Granulite Facies

Granulite facies are one of the major divisions of the mineral facies which are the types of metamorphic rocks, the rocks that are formed under the most intense temperature-pressure conditions are usually found in the regional metamorphism at the upper limit. At the uppermost limit of the facies, migmatite formation can occur. The temperature is 650–1,100 °C (1,200–2,000 °F) and a pressure of 3 to 10 kilobars (where 1 kilobar equals about 15,000 pounds per square inch) may be reached on. Under conditions of less intensified metamorphism, the rocks of the amphibolite facies occur. 

[Geography Notes] on Garnet Pdf for Exam

Garnet is the name used for a huge group of rock-producing minerals. These minerals share a familiar crystal composition and a generalized chemical structure of X3Y2 (SiO4)3. In that chemical composition, “X” can be Ca, Mg, Fe2+ or Mn2+, and “Y” can be Al, Fe3+, Mn3+, V3+ or Cr3+. Although garnet is often linked with the colour red. The red garnet gemstones can be encountered in almost any colour present and are well- recognized choices for jewellery of all types. That’s wonderful news if you’re in the market for this January garnet birthstone.

              

    

Occurrence of Garnet

These minerals are extensively found across the world in igneous, metamorphic, and sedimentary rocks. Most garnet stones are found near Earth’s surface when a sedimentary rock with greater aluminium content, such as shale, is put through heat and pressure intense enough to form schist or gneiss. Garnet is also found in the rocks of contact metamorphism, lava flows, deep-source volcanic outbreaks, subsurface magma chambers, and the soils and sediments formed when garnet-carrying rocks are eroded.

Chemical Properties of Garnet Stone

The commonly encountered minerals in the garnet group are inclusive of almandine, andradite, grossular, pyrope, spessartine, and uvarovite. They all possess a vitreous luster, a brittle tenacity, a transparent-to-translucent diaphaneity, and a shortage of cleavage. They can be found as solitary crystals, stream-tattered pebbles, granular aggregates, and gigantic occurrences. Their chemical structure, hardness, colours and specific gravity are listed below.

Garnet Mineral

Mineral

Composition

Hardness

Colours

Specific Gravity

Almandine

Fe3Al2(SiO4)3

7 – 7.5

red, brown

4.20

Andradite

Ca3Fe2(SiO4)3

6.5 – 7

Black, yellow, green

3.90

Grossular

Ca3Al2(SiO4)3

6.5 – 7.5

red, pink, green, yellow, clear

3.57

Pyrope

Mg3Al2(SiO4)3

7 – 7.5

red to purple

3.56

Spessartine

Mn3Al2(SiO4)3

6.5 – 7.5

orange to red to brown

4.18

U20733431

Ca3Cr2(SiO4)3

6.5 – 7

green

3.85

Physical Properties of Garnet

Chemical Classification

Silicate

Chemical formula

X3Y2(SiO4)3

Luster

Vitreous

Diaphaneity

Transparent to translucent

colour

Essentially red, but can be orange, yellow, green, purple, brown or black. Blue garnets are there but extremely rare

Identifying characteristics

 

Hardness

Specific Gravity

Isometric crystal formation

Lack of cleavage

Streak

colourless

Cleavage

None

Mohs Hardness

6.5 to 7.5

Specific Gravity

3.5 to 4.3

Uses of Garnet Mineral

Following are the uses of garnet stone:-

  • abrasive blasting granules

  • abrasive grits and powders

  • Filtration granules

  • Waterjet cutting granules

  • Gemstones (such as garnet birthstone, garnet earrings).

Garnets Gemstones

Garnet as gemstones has been in use for over 5000 years. It has been encountered in the jewellery of different Egyptian burials and was the most prominent gemstone of Ancient Rome. It is an alluring gem which is generally sold without treatment or enhancement of any kind. It is also durable and common that it can be used in jewellery as garnet earrings, garnet rings etc at a relatively low cost.

Even until now, garnet continues to be a popular gemstone of contemporary times. It caters to as a birthstone for the month of January and is a long-established gem given on a second anniversary.

 

Garnet Varieties

1. Almandine

A frequently found gemstone in the garnet family, almandines come in a huge array of colours. The mix of almandine-pyrope is the dark red variety customarily linked with garnets.

2. Andradite

One of the rarest garnets, these have the highest dispersion of all garnets, even greater fire than diamond. Demantoids, a variant of andradite, are particularly treasured.

3. Grossular

In contrast to other garnets in the family, grossulars are rarely red or even dark. However, they do form in every colour, even colourless, only other than blue. Their vibrant colours make them remarkable jewellery stones. Tsavorites contain an emerald-like green colour and can be a directive of high prices.

4. Hydrogrossular

Never transparent, these are often blueish green in colour. However, Hydrogrossular garnets are sometimes also found in white, pink, and grey.

5. Pyrope

Chrome pyropes display a red that can rival rubies. However,  pyrope garnet stones have a very dark tone.

Fun Facts

  • The garnet family is one of the most in the gemological world.

  • Although garnet is frequently linked with the colour red, these gemstones can be found in almost any colour and are preferred choices for jewellery of all types.

  • Garnet is believed to be a red gemstone; however, it occurs in a variety of colours.

  • Gem-quality garnets precipitate in every colour – with red being the most common and blue garnets being particularly rare.

[Geography Notes] on Halite Pdf for Exam

Halite, also known as common rock salt, is a naturally occurring sodium chloride (NaCl) compound. Halite can be found in beds ranging in thickness from a few metres to over 300 metres (1,000 feet) thick on all continents. Evaporite deposits, so named because they are formed by the evaporation of salt water in partially enclosed basins, are typically found with limestone, dolomite, and shale beds. Halite can also be used as a sublimation product in volcanic areas, as an efflorescence in arid areas, and as an evaporation product near salt springs. As in salt domes and diapirs, deformation of halite beds may result in the extrusion of salt plugs through the overlying sediment. To put it another way, Halite is the mineral term for the substance we all know as “salt.” Its chemical name is sodium chloride, and “rock salt” refers to a rock that is mainly composed of halite.

How Does Halite Mineral Form?

Halite is primarily a sedimentary mineral that occurs in arid environments where ocean water evaporates. However, several freshwater lakes, such as North America’s Great Salt Lake and the Dead Sea between Jordan and Israel, are currently forming halite. Several massive salt deposits have accumulated over geologic time as a result of regular episodes of seawater evaporation in constrained basins. These deposits can be tens of thousands of feet deep. Salt domes can develop when they are buried deeply.

Halite can also be found in non-arid areas, in the form of underground deposits that can reach great depths. Drilling wells into the salt layer and taking in hot water to easily dissolve the salt into a brine is a popular method of mining underground Halite deposits. The brine is drained out after it has been coated with dissolved salt. The brine evaporates, leaving behind crystallised salt that can be harvested. The majority of commercially available Rock Salt is regrown from evaporated salt brine, not natural crystals. Evaporation at salt springs, where salty water falls out of the ground in a salt deposit and precipitates as rounded globular masses, also produces halite.

Salt is pushed upwards by an underground force through the soft ground in some underground salt deposits, forming arched structures known as salt domes. These deposits, which are very special geological formations, are also significant sources of salt mining operations.

Physical Properties of Halite Rock

  1. Halide is a chemical classification.

  2. Color, When pure, colorless or white; impurities contain a variety of colours, including yellow, green, black, brown, and red.

  3. Vitreous lustre.

  4. Transparent to transparent diaphaneity. 

  5. Cleavage is Perfect, cubic, three right-angle directions

  6. Diagnostic Characteristics: Cleavage, solubility, and salty taste (Taste testing is not recommended.) Some minerals are poisonous or tainted as a result of other people’s consumption.)

  7. Chemical Composition is NaCl.

  8. The Crystal System is Isometric.

  9. Winter road treatment, a source of sodium and chlorine for chemical processes, food processing, and seasoning are only a few of the applications. In the section below, we’ll go through each use in detail. 

Uses of Halite Rock

Salt is widely used in cooking as a taste enhancer and in the curing of a number of foods, including bacon and fish. Various cultures use it in food storage processes. Larger bits may be ground in a salt mill or dusted over food as finishing salt with a shaker.

Halite is also commonly used to manage ice in both residential and public conditions. Since brine (a mixture of water and salt) has a lower freezing point than pure water, placing salt or saltwater on ice that is below 0 degrees Celsius (32 degrees Fahrenheit) can cause it to melt — this is known as the freezing point depression. After a snowstorm, it’s normal for homeowners in colder climates to spread salt on their sidewalks and driveways to melt the ice. It is not necessary to use so much salt that the ice melts completely; instead, a small amount of salt can soften the ice, allowing it to be easily extracted using other methods. Several cities will spray a mixture of sand and salt on roads before and after a snowstorm to improve traction. Salt brine is more effective than dry salt because moisture is needed for the freezing-point depression to work, and wet salt sticks to the roads better. Otherwise, the salt would be washed away by traffic.

Rock salt is occasionally used in cultivation in addition to de-icing. Inducing salt stress to suppress the growth of annual meadow grass in turf development is an example of this. Other methods include submerging weeds in salt water to dehydrate and destroy them, preventing them from harming other plants. Salt is also used as a cleaning agent in the home. Its coarse design enables it to be used in a variety of cleaning situations, including grease/oil removal, stain removal, and drying and hardening sticky spills for easier cleanup.

For different dishes, some cultures, especially in Africa and Brazil, prefer a wide variety of different rock salts. Pure salt should be avoided because different shades of salt signify the presence of various impurities. Many recipes call for specific types of rock salt, and imported pure salt is often tainted to suit local tastes. Salt was once used as a source of currency in barter systems, and it was solely under the control of authorities and their appointees. The practice of salting the earth was used by some ancient civilizations to make captured enemy land infertile and inhospitable as a form of dominance.

Distribution of Halite Rock

  • Hallstatt, Salzburg, and Hall, near Innsbruck, Tirol, Austria. From the Swiss town of Bex in the canton of Vaud.

  • In Saxony-Anhalt, Germany, from Stassfurt-Leopold Hall, 34 kilometres south of Magdeburg.

  • Big crystal deposits at Wieliczka (Galicia) and Bochnia, Poland. Sicily, Italy, Girgenti and Racalmuto

  • In Punjab, India, on the Salt Range.

  • In the United States, large crystals at the Potash Corporation of America mine, Carlsbad potash district, Eddy County, New Mexico; various salt domes along the Gulf Coast; and the Permian Basin of Texas and New Mexico; large crystals at the Potash Corporation of America mine, Carlsbad potash district, Eddy County, New Mexico.

Pink Halite

Pink Halite is a type of Halite that has had bacteria from various algae species taint its colour. Halite is a common mineral found near oceans and salt lakes and is regarded as the “natural type of salt.” The masses and tubular crystal structure of this stone can be found.

Conclusion

Halite can be found in beds ranging in thickness from a few metres to over 300 metres (1,000 feet) thick. Halite is primarily a sedimentary mineral that occurs in arid environments where ocean water evaporates. Several freshwater lakes, such as North America’s Great Salt Lake and the Dead Sea between Jordan and Israel, are currently forming halite. Drilling wells into the salt layer and taking in hot water easily dissolves the salt into a brine. The brine is drained out after it has been coated with dissolved salt. The majority of commercially available Rock Salt is regrown from evaporated salt brine, not natural crystals. Evaporation at salt springs, where salty water falls out of the ground in a salt deposit and precipitates as rounded globular masses, also produces Halite. Halite is also commonly used to manage ice in both residential and public conditions. Salt brine is more effective than dry salt because moisture is needed for the freezing-point depression to work. Rock salt is occasionally used in cultivation in addition to de-icing. Pure salt should be avoided because different shades of salt signify the presence of various impurities. The practice of salting the earth was used by some ancient civilizations to make captured enemy land infertile and inhospitable as a form of dominance.  Many recipes call for specific types of rock salt, and imported pure salt is often tainted to suit local tastes. For different dishes, some cultures, especially in Africa and Brazil, prefer a wide variety of different rock salts.

[Geography Notes] on Igneous Rocks Pdf for Exam

We have all seen the eruption of volcanoes on television or computers. With the eruption of the volcanoes, lava starts flowing on the surface. Magma is usually a molten rock liquid that is found below the surface when the crust of the earth melts. The formation of igneous rocks starts taking place when the molten lava or magma begins to cool down and solidify. Igneous rock meaning relates to the solidification process that leads to the creation of rocks. The features of the igneous rock can be identified by its texture, mineral composition, density, and colour. These rocks are formed either with or without crystallization. 

Cooling Process of Igneous Rock

In the intrusive igneous rock, the process of cooling is usually slow that allows the growth of large mineral crystals within the rocks. The feature of igneous rocks having coarse minerals is due to the crystals of the intrusive rocks. Examples of igneous rocks include granite, peridotite, diorite, and gabbro. 

Next comes the extrusive type of igneous rocks that don’t allow crystallisation to take place. Thus, the final appearance is the fine-grained, glassy and vesicular rock formation. Examples of igneous rocks in the extrusive category include basalt, andesite, and rhyolite. 

Types of Igneous Rocks

The igneous rocks definition includes two categories of rock formation. These two types are discussed below in detail. 

Intrusive Igneous Rocks: When the molten lava cools slowly below the earth’s surface, the crystallization results in the formation of large crystals. These typically have a large amount of silica content within them and based on it they are known as diorite, gabbro, pegmatite, and granite. Actually, most of the magma available in the crust is never able to reach the earth’s surface. 

Extrusive Igneous Rocks: The extrusive igneous rocks are also known as volcanic rocks due to their formation from volcanoes. During the volcanic eruption when the magma reaches the earth’s surface, these are known as lava or volcanic rocks. The features of the igneous rocks in the extrusive category also have a silica content in a higher amount. Some of these rocks cool down so instantly that these form an amorphous glass. Examples of extrusive igneous rocks are basalt, pumice, tuff, etc. 

Types of Magma and Formation of Igneous Rocks

There are types of magma and these igneous rocks meaning comes from the type of magma they originate from. We will see the classification and properties of igneous rocks based on the magma. 

Intermediate Igneous Rocks: The composition of magma between felsic and mafic leads to the formation of intermediate igneous rocks. These are typically formed in the subduction zones that also include the oceanic plates. The structure of the rock includes examples like feldspar, pyroxene, biotite, quartz, and amphibole. 

Ultramafic Igneous Rocks: The characteristics of igneous rocks are mainly ferromagnesian and olivine in nature. For example, a slow cooking rock peridotite is a perfect example in this category. These igneous rocks cool down very slowly and are rare in nature. 

Mafic Igneous Rocks: When magma cools down, the ferromagnetic minerals dominate this type of rock formation. Typically, it is found prevalent in oceanic divergent zones. It contains minerals such as magnesium and iron silicate. Moreover, these rocks also have other minerals like olivine, pyroxene and others.

Felsic Igneous Rocks: This rock formation by magma contains aluminium and silicon. The formation takes place in the continental crust having high gas content. Besides, it also has mineral contents like biotite, quartz, potassium, and more. Examples of rock in this category include rhyolite and granite. 

Identification Process of Igneous Rocks

What we generally understand by the meaning of igneous rocks is that it is formed from the cooling and solidification of molten rocks or magma. When the molten lava starts to cool a new layer of minerals and textures are formed with the addition of new chemical components surrounding the rocks. The pressure and temperature at which the lava begins to cool and the time is taken depends on several factors. Due to this, we can see every igneous rock vary in its texture and composition. However, it is the textural and compositional properties that help us to identify the igneous rocks and determine the cooling process and magma formation. 

Did You Know

The first type of rocks formed on the earth surface was igneous rocks. These are also known as the primary rocks. 

[Geography Notes] on Jadeite Pdf for Exam

Jadeite is a pyroxene mineral with the chemical formula NaAlSi2O6. It has a single axis. Depending on the composition, it has a Mohs hardness of 6.5 to 7.0. The mineral has a specific gravity of about 3.4.

The name jadeite is derived from the Spanish phrase “piedra de ijada,” which means “stone of the side”. The term nephrite is derived from the Latin version of the name, lapis nephriticus, which is a different mineral from the common name jade.

Jadeite Stone Chemistry

Other pyroxene end members that form solid solutions with jadeite include augite and diopside (CaMg-rich endmembers), aegirine (NaFe endmember), and kosmochlor (NaCr endmember). Omphacite is a type of pyroxene that contains both the jadeite and augite endmembers. Jadeite forms in metamorphic rocks under high pressure and relatively low temperature. Albite (NaAlSi3O8) is a common mineral in the Earth’s crust with a specific gravity of about 2.6, which is significantly lower than that of jadeite. Albite degrades under increasing pressure to form the high-pressure assemblage of jadeite and quartz.

Jadeitite refers to rocks that are almost entirely composed of jadeite. Jadeitite appears to have formed from subduction zone fluids in association with serpentinite in all well-documented occurrences. Jadeitite is resistant to weathering, and boulders of jadeitite formed in serpentine-rich environments can be found in a variety of environments.

Jadeite Stone Colour

The colour of jadeite typically ranges from white to pale apple green to deep jade green, but it can also be blue-green (as in the recently rediscovered “Olmec Blue” jade), pink, lavender, and a variety of other rare colours. Chloromelanite is a dark green to black mineral. The presence of trace elements such as chromium and iron has a large impact on colour. Its transparency ranges from opaque to nearly clear. Colour and translucency variations are common even within a single specimen.

Where is Jadeite Found?

Jadeite has been found in California, the United States, Myanmar, New Zealand, Guatemala, and Itoigawa, Japan; other jadeite locations include Kazakhstan, Russia, British Columbia, Canada, Italy, and Turkestan.

What is Imperial Jade?

Originally, it was assumed that all jade objects were made of the same material. However, in 1863, a Frenchman named Alexis Damour discovered that “jade” could be separated into two minerals: jadeite(imperial Jade) and nephrite.

The mineral compositions of jadeite and nephrite are markedly different. Nephrite is a magnesium-rich amphibole, whereas jadeite is aluminium-rich pyroxene. However, in the eyes of the average person, the two minerals have very similar physical properties.

Physical Properties of Jadeite and Nephrite

Jadeite( Imperial Jade)

Nephrite

Chemistry

Silicate – pyroxene

Silicate – amphibole.

Colour

Usually various shades of white to dark green, sometimes grey, pink, lilac, red, blue, yellow, orange, black, coloured by impurities.

Usually ranges in colour between white, cream, and dark green.

Streak

Colourless.

Colourless.

Lustre

Vitreous to sugary.

Vitreous, greasy, silky, waxy.

Diaphaneity

Translucent to opaque. Rarely semi-transparent.

Translucent to opaque. Rarely semi-transparent.

Cleavage

Usually not seen because of small grain size and splintery fracture.

Prismatic but usually not seen because of small grain size and splintery fracture.

Mohs Hardness

6.5 to 7

6 to 6.5

Specific Gravity

3.3 to 3.5

3.0 to 3.3

Crystal System

Monoclinic.

Monoclinic.

Refractive Index

1.66 to 1.68

(1.66 spot)

1.60 to 1.63

(1.61 spot)

What is Jadeite Used for?

Over 180 axe heads made from jadeitite quarried in northern Italy during the Neolithic era have been discovered across the British Isles. Due to the difficulty of working this material, all of the axe heads found are thought to be non-utilitarian and to have represented some form of currency or be the products of gift exchange.

Many jadeite beads and axe heads, as well as the remains of Neolithic jadeite workshops, have been discovered in Itoigawa, Japan. These beads and axes were traded throughout Japan and the Korean Peninsula and were made by the Itoigawa region’s oldest known jadeite-using culture.