National Groundwater Systems
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<div>As part of the Exploring for the Future (EFTF) programme, the groundwater team undertook an in-depth investigation into characterising surface water -- groundwater interaction in the Cooper Creek floodplain using airborne electromagnetics (AEM). This work is to be released as part of the Lake Eyre Basin detailed inventory and as an EFTF extended abstract. As part of Geoscience Australia's commitment to transparent science, the scientific workflows that underpinned a large component of this investigation are to be released as a jupyter notebook. This notebook contains python code, figures and explanatory text that the reader can use to understand how the AEM data were processed, visualised, integrated with other data and interpreted.</div>
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A compilation of thematic summaries of 42 Australian Groundwater Provinces. These consistently compiled 42 summaries comprise the National Hydrogeological Inventory. The layer provides the polygons for each groundwater province in the inventory and thematic information for each province, including location and administration information, demographics, physical geography, surface water, geology, hydrogeology, groundwater, groundwater management and use, environment, land use and industry types and scientific stimulus.
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<div><strong>Output Type:</strong> Exploring for the Future Extended Abstract</div><div><br></div><div><strong>Short abstract: </strong>Australia is the driest inhabited continent on Earth and relies heavily on groundwater to support communities, industries, ecosystems and cultural values. Despite groundwater resources transcending state and territory boundaries, each jurisdiction operates under different legislative frameworks, policies and water management approaches, and accordingly coordination between jurisdictions is crucial to achieving the common goal of water security. Improving the alignment of water strategies between states and territories requires a national coordination of data collation with common standards and integration of subsurface geology, using a consistent and up-to-date 3D hydrogeological framework for better understanding of groundwater systems and flow pathways at regional to national scales. Despite ever increasing data availability in each jurisdiction there is a lack of comprehensive knowledge regarding cross-jurisdictional sedimentary architecture, aquifer extents and hydraulic connections. Geoscience Australia, through the Exploring for the Future program, is developing a consistent national chronostratigraphic framework to underpin the development of 3D (hydro)geological models which can be used to standardise hydrogeological classifications, update borehole stratigraphy and provide a basis for integrating diverse geoscientific datasets. By collaborating with jurisdictions to harmonise 3D geology nationally through correlation with the geological time scale, aquifer boundaries can be updated and shared with other collaborators such as the Bureau of Meteorology to ensure that national groundwater datasets are updated with the latest geological knowledge. This chronostratigraphic method is suitable for sedimentary basins and provides a consistent platform to support effective resource assessment and management, infrastructure planning, and environmental impact assessment at regional and national scales.</div><div><br></div><div><strong>Citation: </strong>Rollet, N., Vizy, J., Norton, C.J., Hannaford, C., McPherson, A., Symington, N., Evans, T., Nation, E., Peljo, M., Bishop, C., Boronkay, A., Ahmad, Z., Szczepaniak, M., Bradshaw, B., Wilford, J., Wong, S., Bonnardot, M.A. & Hope, J., 2024. Developing a 3D hydrogeological framework for Australia. In: Czarnota, K. (ed.) Exploring for the Future: Extended Abstracts, Geoscience Australia, Canberra, https://doi.org/10.26186/149418 </div>
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This was the first of five presentations held on 31 July 2023 as part of the National Groundwater Systems Workshop - A clear and consistent inventory of knowledge about Australia’s major hydrogeological provinces.
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<div>Groundwater systems hosted within Cenozoic rocks and sediments are vitally important for supporting communities, industries and the environment throughout central Australia's Kati Thanda – Lake Eyre Basin (KT–LEB). Through the Exploring for the Future Program, Geoscience Australia has completed the first regional hydrogeological assessment across this vast inland-draining catchment. Working across jurisdictional boundaries in SA, NSW, NT and Queensland has enabled us to generate significant new hydrogeological insights and develop enhanced knowledge of fundamental groundwater systems and processes, particularly within the KT–LEB's major depositional centres of the Callabonna and Tirari sub-basins, and the Cooper Creek Palaeovalley. New geological modelling has improved our understanding of the extent, depth and thickness of the Cenozoic sediment packages which host the basin's major hydrostratigraphic units, such as the Eyre Formation (regional aquifer) and Namba Formation (regional aquitard). Other investigation highlights include the development of the first whole-of-basin regional watertable trend and depth to groundwater maps and a major increase in the proportion of groundwater bores updated with information on hydrogeological province and/or source aquifer attribution. The key findings and outcomes of this study have illustrated the value of Geoscience Australia's approach to regional hydrogeological assessments, delivering consistent frameworks and enhancing the availability and quality of data and information to improve management and decision-making of Australia's major groundwater systems.</div><div><br></div><div>Citation: Lewis SJ, Evans TJ, Bishop C and Halas L (2024) Regional hydrogeological assessment of the Kati Thanda - Lake Eyre Basin, central Australia. In: Czarnota K (ed) Exploring for the Future: Extended Abstracts, Geoscience Australia, Canberra. </div>
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This was the fourth of five presentations held on 31 July 2023 as part of the National Groundwater Systems Workshop - Detailed Groundwater Science Inventory Geology, hydrogeology and groundwater systems in the Kati Thanda-Lake Eyre Basin.
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The Exploring for the Future program Showcase 2023 was held on 15-17 August 2023. Day 1 - 15th August talks included: Resourcing net zero – Dr Andrew Heap Our Geoscience Journey – Dr Karol Czarnota You can access the recording of the talks from YouTube here: <a href="https://youtu.be/uWMZBg4IK3g">2023 Showcase Day 1</a>
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Groundwater supports many communities and industries and provides water for environmental assets around Australia, including rivers, springs, wetlands and groundwater-dependent ecosystems (GDEs). Groundwater, accounts for over 30% of Australia’s total water consumption (NWC 2008) with uses including drinking, irrigation, stock supply and bottling. The demand for groundwater is steadily growing, as Australia’s industrial and agricultural development increases. Knowledge of aquifers and fundamental groundwater processes are important for managing the quantity, quality and sustainability of this resource. Monitoring groundwater by analysing its chemical constituents is integral to understanding groundwater systems and aids effective management. Sampling and analysing groundwater on a regular basis provides a useful tool to understand and monitor changes to groundwater systems. Depending on the purpose of monitoring, a comprehensive, fit-for-purpose, suite of parameters should be collected and tested. Groundwater sampling requires specialised methods and approaches to acquire samples for analysis that represent the in-situ groundwater hydrogeochemical and hydrogeological conditions. Multiple government agencies have produced guidelines to address specific groundwater issues, including: groundwater sampling (Jiwan & Gates, 1992; Rayment & Poplawski, 1992; Hill, 2007; EPA Victoria, 2022; ANSTO; and NMI); groundwater quality sampling in the Murray-Darling Basin (MDBC 1997); groundwater monitoring for community groups (Waterwatch 2005); and sampling for contaminated sites (AWRC, 1991). Groundwater sampling and analysis is a tool that can be used for multiple geoscientific purposes, including: groundwater resource assessment; management and monitoring; carbon capture and storage; mineral exploration; geothermal energy; and energy and resource industries. This document provides a comprehensive guide, applicable to a range of geoscientific disciplines, that draws together information on drilling methods, bore construction, sampling equipment and sampling methods for groundwater analysis. This guide contains standard groundwater sampling protocols, also known as standard operating procedures (SOPs), commonly used by Geoscience Australia (GA) over the last decade. These protocols aim to provide consistency for the acquisition of accurate, repeatable and comparable groundwater datasets and provides confidence in their analysis and interpretation.
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This was the third of five presentations held on 31 July 2023 as part of the National Groundwater Systems Workshop - WaMSTeC: Water Monitoring and Standardisation Technical Committee National Industry Guidelines for hydrometric monitoring WaMSTeC GUIDELINE REVISIONS UPDATE FOR GROUNDWATER COMPONENTS: GROUNDWATER SUBCOMMITTEE
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<div>This was the last of five presentations held on 31 July 2023 as part of the National Groundwater Systems Workshop. Towards developing a 3D hydrogeological framework for Australia: A common chronostratigraphic framework for aquifers </div><div><br></div>