Great Artesian Basin
World's largest and deepest artesian basin, vital for inland Australia.
The Great Artesian Basin (GAB) in Australia is the planet's largest and deepest artesian basin, covering more than 1.7 million square kilometres. It is the only freshwater source across vast stretches of inland Australia, lying beneath 22% of the continent. This area includes most of Queensland, the southeastern corner of the Northern Territory, northeastern South Australia, and northern New South Wales. In places, the basin reaches 3,000 metres deep and holds an estimated 64,900 cubic kilometres of groundwater. Water temperatures here range from 30°C to 100°C. The Great Artesian Basin Coordinating Committee (GABCC) works to coordinate efforts among federal, state, territory, and local governments, as well as community groups.
Physiographically, this basin is part of the larger East Australian Basins division and includes a smaller section called the Wilcannia Threshold.
Geologically, the water is stored in a sandstone layer formed from continental erosion during the Triassic, Jurassic, and early Cretaceous periods. Much of what is now inland Australia was once under the Eromanga Sea, and the sandstone was capped by marine sedimentary rock, creating a confining layer that traps water in the aquifer. The basin’s eastern edge rose when the Great Dividing Range formed, while the western side was shaped by the Central Eastern Lowlands and the Great Western Plateau. Most recharge happens on higher ground near the eastern edge, in Queensland and New South Wales, where water slowly moves south and west at a rate of one to five metres per year. A smaller amount enters along the western margin in arid central Australia, flowing south and east. Water eventually leaves through springs and seeps, mostly in the southern part of the basin. Measurements using carbon-14 and chlorine-36, along with hydraulic models, show that groundwater ages range from a few thousand years in northern recharge areas to nearly 2 million years in southwestern discharge zones.
Before Europeans arrived, the basin’s water emerged naturally through mound springs, especially in arid South Australia, such as Witjira-Dalhousie Springs. These springs supported unique invertebrates like molluscs and sustained extensive Aboriginal communities and trade routes. After European settlement, the springs aided exploration and enabled faster communication between southeastern Australia and Europe via the Australian Overland Telegraph Line. The basin became a crucial water supply for cattle stations, irrigation, livestock, and domestic use, serving as a vital lifeline for rural Australia. To access the water, boreholes are drilled into suitable rock layers, and natural pressure often brings water to the surface without pumps. The discovery of the basin’s water allowed settlement of thousands of square kilometres of inland New South Wales, Queensland, and South Australia that would otherwise have been unsuitable for pastoral activities. Europeans first discovered the basin in 1878 when a shallow bore near Bourke produced flowing water, followed by similar finds in 1886 at Back Creek east of Barcaldine and in 1887 near Cunnamulla.
Water extraction from the GAB is essentially a mining operation, with recharge rates far below current extraction. In 1915, 1,500 bores supplied 2,000 megalitres of water per day; today, total output has dropped to 1,500 megalitres per day. This includes nearly 2,000 freely flowing bores and more than 9,000 that require mechanical pumps. Many bores are unregulated or abandoned, leading to significant water waste. These issues have persisted for decades, and in January 2007, the Australian Commonwealth Government announced additional funding to address them. However, many mound springs have dried up due to falling water pressure, likely causing the extinction of several invertebrate species. The Olympic Dam mine in South Australia is allowed to extract up to 42 megalitres of water daily from the basin under the Roxby Downs (Indenture Ratification) Act 1982; the underground copper and uranium mine began operations in 1988 and is expected to continue until about 2060. Additionally, the basin supplies water for a geothermal power station at Birdsville via a 1.2-kilometre-deep bore. Water emerges at 98°C and provides 25% of the town’s electricity, and after cooling, it also serves as the town’s drinking water.
The Great Artesian Basin spans parts of Queensland, New South Wales, South Australia, and the Northern Territory, each with different legislative frameworks, policies, and management approaches. In 2020, the Australian government’s Department of Climate Change, Energy, the Environment and Water published the Great Artesian Basin Strategic Management Plan, developed with the individual governments, the GABCC, stakeholders, and public input. The GABCC advises state, territory, and federal ministers on efficient, effective, and sustainable whole-of-basin resource management.
- type
- Artesian basin
- location
- Australia (Queensland, New South Wales, South Australia, Northern Territory)
- area
- 1,700,000 square kilometres (660,000 sq mi)
- depth
- Up to 3,000 metres (9,800 feet)
- water_volume
- 64,900 cubic kilometres (15,600 cubic miles)
- water_temperature_range
- 30 to 100 °C (86 to 212 °F)
- known_for
- Largest and deepest artesian basin in the world; sole freshwater source for much
Verified Timeline
Lore & Background
The water of the Great Artesian Basin is held in a sandstone layer laid down by continental erosion of higher ground during the Triassic, Jurassic, and early Cretaceous periods. During a time when much of what is now inland Australia was below sea level in what is now known as the Eromanga Sea, the sandstone was covered by a layer of marine sedimentary rock, which formed a confining layer that trapped water in the sandstone aquifer. The eastern edge of the basin was uplifted when the Great Dividing Range formed. The other side was created from the landforms of the Central Eastern Lowlands and the Great Western Plateau to the west. Most recharge water enters the rock formations from relatively high ground near the eastern edge of the basin (in Queensland and New South Wales) and very gradually flows toward the south and west. A much smaller amount enters along the western margin in arid central Australia, flowing to the south and east through the permeable sandstone, at a rate of one to five metres per year. Discharge water eventually exits through a number of springs and seeps, mostly in the southern part of the basin. The age of the groundwater, determined by carbon-14 and chlorine-36 measurements combined with hydraulic modelling, ranges from several thousand years for the recharge areas in the north to nearly 2 million years in the south-western discharge zones.
Reader's Guide
The Great Artesian Basin is a critical water source for rural Australia, supporting cattle stations, irrigation, livestock, and domestic purposes. Prior to European arrival, its waters discharged through mound springs that sustained endemic invertebrates and supported extensive Aboriginal communities and trade routes. After European arrival, the springs facilitated exploration and the Australian Overland Telegraph Line. European discovery of the basin dates from 1878 when a shallow bore near Bourke produced flowing water. Water extraction from the GAB is essentially a mining operation, with recharge much less than current extraction rates. In 1915, there were 1,500 bores providing 2,000 megalitres per day; today total output has dropped to 1,500 megalitres per day, with many bores unregulated or abandoned, causing water wastage. Many mound springs have dried up due to a drop in water pressure, likely causing extinction of several invertebrate species. The basin also supplies water for the Olympic Dam mine and a geothermal power station at Birdsville. In 2020, the Australian government published the Great Artesian Basin Strategic Management Plan. Environmental concerns include depletion and chemical damage from coal seam gas extraction, with incidents of hydraulic fracturing chemicals entering the aquifer. In May 2024, the Queensland Government rejected a proposal to inject carbon dioxide into the basin and subsequently banned carbon capture and storage using it.
Did You Know?
- The Great Artesian Basin underlies 22% of the Australian continent.
- Groundwater age ranges from several thousand years in the north to nearly 2 million years in the south-western discharge zones.
- In 1915, there were 1,500 bores providing 2,000 megalitres per day; today total output has dropped to 1,500 megalitres per day.
- A 1.2-kilometre-deep bore at Birdsville provides 25% of the town's electricity from geothermal power.
- The Queensland Government rejected a proposal to inject up to 110,000 tonnes of carbon dioxide per year into the basin in May 2024.
Geological Architecture and Water Dynamics
The Great Artesian Basin is one of Earth's most remarkable hydrogeological structures, spanning 1,700,000 square kilometres — roughly 22% of the Australian continent. Its water is locked within a thick sandstone aquifer deposited as continental erosion carried sediment from higher ground during the Triassic, Jurassic, and early Cretaceous periods. A subsequent blanket of marine sedimentary rock sealed the sandstone beneath, forming a natural pressure trap. The eastern boundary was shaped by the tectonic uplift that raised the Great Dividing Range, while the western limits follow the Central Eastern Lowlands and Great Western Plateau. In its deepest reaches the formation plunges to 3,000 metres and holds an estimated 64,900 cubic kilometres of groundwater. Recharge predominantly enters from elevated terrain along the Queensland and New South Wales margins, then creeps southward and westward at one to five metres per year. A smaller fraction seeps in along the arid western edge, travelling south and east. Carbon-14 and chlorine-36 dating, cross-referenced with hydraulic models, reveals that water near the northern recharge zones is only a few thousand years old, whereas water emerging in the south-western discharge springs has been underground for nearly 2 million years.
Indigenous Springs and the European Water Revolution
Long before European settlement, the basin's natural discharge points — mound springs scattered across arid South Australia, including the Witjira-Dalhousie Springs — sustained diverse ecosystems of endemic invertebrates such as molluscs and anchored extensive Aboriginal communities along vital trade routes. When Europeans arrived, these same springs became critical waypoints for explorers crossing the interior and later enabled the construction of the Australian Overland Telegraph Line, which linked south-eastern Australia to Europe for faster communications. The true water revolution came in 1878, when a shallow bore near Bourke in New South Wales unexpectedly produced flowing water. Similar strikes followed at Back Creek east of Barcaldine in 1886 and near Cunnamulla in 1887. These discoveries transformed thousands of square kilometres of riverless country across inland Queensland, New South Wales, and South Australia into viable pastoral land. Boreholes drilled into the sandstone rely on natural pressure to force water to the surface, often eliminating the need for pumps. The basin became the lifeline for cattle stations, irrigation schemes, and domestic water supply across rural Australia, enabling settlement in regions that would otherwise have remained inaccessible for agricultural use.
Extraction, Depletion, and Environmental Cost
In practical terms, drawing water from the Great Artesian Basin functions as a mining operation: recharge rates fall well short of current extraction. In 1915, roughly 1,500 bores delivered 2,000 megalitres per day; today total output has declined to 1,500 megalitres daily, drawn from just under 2,000 freely flowing bores and more than 9,000 that depend on mechanical pumping. A significant number of these bores remain unregulated or simply abandoned, causing considerable wastage — a problem that has persisted for decades. In January 2007 the Commonwealth Government committed additional funding to bring the situation under control, yet the ecological damage has already been severe: many of the ancient mound springs have dried up as water pressure dropped, likely driving several invertebrate species to extinction. The Olympic Dam copper and uranium mine in South Australia is licensed under the 1982 Roxby Downs Indenture Ratification Act to extract up to 42 megalitres daily, with operations expected to continue until approximately 2060. On a more positive note, a 1.2-kilometre-deep bore at Birdsville taps water at 98 degrees Celsius to power a geothermal station supplying 25 percent of the town's electricity, while the cooled water also serves as its drinking supply.
Multi-Jurisdictional Governance and the 2020 Strategic Plan
Because the basin underlies four separate jurisdictions — Queensland, New South Wales, South Australia, and the Northern Territory — no single authority can manage it in isolation. Each state and territory operates under its own legislative framework, policy regime, and resource-management approach, creating a complex patchwork of regulation. To bridge these gaps, the Great Artesian Basin Coordinating Committee (GABCC) was established to coordinate activity across federal, state, territory, and local government levels as well as community organisations. Its membership encompasses every government agency with management responsibilities for a portion of the basin, community representatives nominated by those agencies, and sector representatives. The Committee advises state, territory, and Commonwealth ministers on achieving efficient, effective, and sustainable whole-of-basin resource management. In 2020 the Department of Climate Change, Energy, the Environment and Water published the Great Artesian Basin Strategic Management Plan, prepared jointly with the individual state and territory governments and developed through consultation with the Coordinating Committee, stakeholders, and public feedback. This document represents the most comprehensive attempt to align the disparate regulatory regimes into a coherent, basin-wide strategy.
Frequently Asked Questions
Who is Great Artesian Basin?
The Great Artesian Basin is a colossal underground aquifer system beneath Australia's interior, stretching across roughly 1.7 million square kilometres. It holds the title of the largest and deepest artesian basin on Earth, with bore depths reaching up to 3,000 metres.
What are Great Artesian Basin's powers/role?
It functions as the primary fresh-water lifeline for much of inland Australia, holding an estimated 64,900 cubic kilometres of water at temperatures between 30 and 100 °C. In practical terms, it keeps the arid interior habitable for people, livestock, and native ecosystems that would otherwise have no reliable water source.
How does Great Artesian Basin's story end?
As a geological formation the GAB has no narrative finale, but its water table has been slowly dropping due to decades of intensive pumping for agriculture and mining. Current management strategies aim to curb extraction rates so the basin can sustain itself for future generations.
Why is Great Artesian Basin important?
It underlies about 22 % of the Australian continent and is the sole dependable source of fresh water across vast stretches of the interior where surface rivers are scarce or purely seasonal. Without it, the pastoral and agricultural industries of Queensland, New South Wales, South Australia, and the Northern Territory would effectively collapse.
Where does Great Artesian Basin live?
The basin spreads beneath most of Queensland, the south-eastern corner of the Northern Territory, north-eastern South Australia, and northern New South Wales. Its total footprint covers roughly two-fifths of Australia's land area.
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