The water balance and water sources of a Eucalyptus plantation over shallow saline groundwater

2010 ◽  
Vol 332 (1-2) ◽  
pp. 429-449 ◽  
Author(s):  
Paul M. Feikema ◽  
Jim D. Morris ◽  
Luke D. Connell
2010 ◽  
Vol 388 (3-4) ◽  
pp. 208-216 ◽  
Author(s):  
Osvaldo M.R. Cabral ◽  
Humberto R. Rocha ◽  
John H.C. Gash ◽  
Marcos A.V. Ligo ◽  
Helber C. Freitas ◽  
...  

2011 ◽  
Vol 63 (9) ◽  
pp. 1873-1879 ◽  
Author(s):  
John Hunt ◽  
Martin Anda ◽  
Goen Ho

Alternate water sources are being implemented in urban areas to augment scheme water supplied by a water utility to homes. These sources include residential wells, rainwater tanks and greywater systems. Greater water efficiency can be achieved when these systems are designed to match a water source to a given demand based on both water quantity and quality parameters. In this way the use of an alternate water source can be maximised and the use of the high quality scheme water minimised. This paper examines the use of multiple alternate water sources sequentially to supply the same demand point potentially optimising the use of all available water sources. It also allows correct sizing of such water systems and their components to reduce scheme water demand. A decision support tool based on water balance modelling was developed that considers such water options at the household scale. Application of this tool to eight scenarios for both large and small house lots shows that using alternate water sources individually can result in significant scheme water savings. However by integrating these sources additional scheme water saving can be made.


Data in Brief ◽  
2021 ◽  
Vol 34 ◽  
pp. 106723
Author(s):  
J.J. Gibson ◽  
P. Eby ◽  
T.A. Stadnyk ◽  
T. Holmes ◽  
S.J. Birks ◽  
...  

2020 ◽  
Author(s):  
Kevin J Devito ◽  
Lindsay M James ◽  
Daniel S Alessi ◽  
Kelly Hokanson ◽  
Nick Kettridge ◽  
...  

<p>Peatlands are integral to sustaining landscape eco-hydrological function in water-limited boreal landscapes and serve as important water sources for headwater streams and surrounding forests, and recently for mega-scale watershed construction associated with resource extraction. Despite the regional moisture deficit of the Boreal plains, peatlands and margin swamps exist on topographic highs where low permeability (clogging) layers occur proximal to the surface and are apparently isolated from surface water and local and regional groundwater inputs. The <span>water generating mechanisms (</span>external water sources, internal feedback mechanisms) that<span> enable peatland formation with such </span>delicate water balances<span> in these </span>unique hydrogeologic settings are not well known, and have large implications for understanding the eco-hydrologic role of natural peatlands as well as direct peatland construction in drier boreal landscapes.</p><p>A multi-year sampling campaign was conducted to collect hydrometric, geochemical (DOC, pH, major cations and anions), and isotopic (D/H, <sup>18</sup>O/<sup>16</sup>O) data from a small isolated peatland-margin swamp complex. We explored the relative roles of margin swamps in buffering water loss and generating perched groundwater, shading and wind protection from adjacent forests, snow redistribution in and around the peatland, and wetland feedbacks on maintenance of peatland moisture and ecosystem function. Long-term (18 year) records of water table gradients between the peatland and an adjacent forest combined with 3 year high intensity <!-- Not sure if you mean to separate the long term data from the high intensity data from Lindsey’s project -->water balance calculations show the peatland to be a source of water to adjacent forests during this period and illustrate the dominance of autogenic wetland feedbacks over allogenic controls (external sources) in peatland development at this location. Contrasts in water storage due to the morphometry <!-- Morphometry? -->of the clogging layer appear to the dominant determinants of peatland and swamp form and function. Layers of decomposed peat and fine textured mineral soils in margin swamps with low water storage potential promoted frequent soil saturation and anoxia, limiting forest vegetation growth and water uptake, further enhancing wetland vegetation, water conservation and generation within the wetland complex. Shading and wind protection from adjacent forests appear to influence soil frost duration and atmospheric demand to further reduce evapotranspiration losses contributing to a slight moisture surplus in the wetland complex relative to the adjacent forest. Understanding the water balance and moisture surplus controls in isolated peatlands sheds light on the relative role of allogenic and autogenic controls on peatlands with implications for: 1) assessing regional eco-hydrological roles of peatland and forestland covers, 2) predicting landscape-scale response to environmental change and land use, and 3) directing landscape scale reclamation or large reconstruction projects over a range of geologic settings in water-limited boreal regions.</p>


Water ◽  
2020 ◽  
Vol 12 (2) ◽  
pp. 512
Author(s):  
Xiaopeng Li ◽  
Bin Ma ◽  
Bonnie Drozdowski ◽  
Francis Salifu ◽  
Scott X. Chang

The success of oil sands reclamation can be impacted by soil salinity depending on the materials used for soil reconstruction and the capping strategies applied. Using both a greenhouse-based column experiment and numerical modeling, we examined the potential pathways of salt migration from saline groundwater into the rooting zone under different capping strategies (the type and the thickness of the barrier layer) and water balance scenarios. The experimental results showed that there would be salinity issues in the cover soil within several growing seasons if there was a shallow saline groundwater table and if the soil was not properly reconstructed. The thickness of the barrier layer was the most significant factor affecting the upward movement of saline groundwater and salt accumulation in the cover soil. The suitable thickness of the barrier layer for preventing the upward movement of saline groundwater and salt accumulation in the cover soil for each material varied. A numerical simulation for a 15-year period further indicates that, when the cover soil was 50 cm of peat-mineral soil mix and when wet, dry, or normal climatic conditions were considered, the minimum barrier thickness to restrain salt intrusion into the cover soil in the long term was about 75 or 200 cm for coarse tailings sand or overburden barrier material, respectively. In view of the above, to minimize salt migration into the rooting zone and ensure normal plant growth, oil sands reclamation should consider salt migration when designing soil capping strategies.


2006 ◽  
Vol 54 (2) ◽  
pp. 193 ◽  
Author(s):  
K. L. Holland ◽  
S. D. Tyerman ◽  
L. J. Mensforth ◽  
G. R. Walker

The decline of riparian vegetation in the lower River Murray, south-eastern Australia, is associated with a reduction in flooding frequency, extent and duration, and increased salt accumulation. The plant water sources of healthy Eucalyptus largiflorens trees growing over highly saline (>40 dS m–1) groundwater were investigated during summer when water deficit is greatest. The study found low-salinity soil water overlying highly saline groundwater at most sites. This deep soil water, rather than the saline groundwater, was identified as the plant water source at most sites. Stable isotopes of water and water potential measurements were used to infer how the deep soil water was recharged. The low-salinity, deep soil water was recharged in the following two ways: (1) vertically through the soil profile or via preferential flow paths by rainfall or flood waters or (2) horizontally by bank recharge from surface water on top of the saline groundwater. Vertical infiltration of rainfall and floodwaters through cracking clays was important for trees growing in small depressions, whereas infiltration of rainfall through sandy soils was important for trees growing at the break of slope. Bank recharge was important for trees growing within ∼50 m of permanent and ephemeral water bodies. The study has provided a better understanding of the spatial patterns of recharge at a scale relevant to riparian vegetation. This understanding is important for the management of floodplain vegetation growing in a saline, semi-arid environment.


2020 ◽  
Vol 466 ◽  
pp. 118149 ◽  
Author(s):  
Rodrigo Eiji Hakamada ◽  
Robert M. Hubbard ◽  
Jose Luiz Stape ◽  
Walter de Paula Lima ◽  
Gabriela Gonçalves Moreira ◽  
...  

Water ◽  
2020 ◽  
Vol 12 (7) ◽  
pp. 1911
Author(s):  
Rosa Mediavilla ◽  
Juan I. Santisteban ◽  
Ignacio López-Cilla ◽  
Luis Galán de Frutos ◽  
África de la Hera-Portillo

Wetlands are environments whose water balance is highly sensitive to climate change and human action. This sensitivity has allowed us to explore the relationships between surface water and groundwater in the long term as their sediments record all these changes and go beyond the instrumental/observational period. The Lagunas Reales, in central Spain, is a semi-arid inland wetland endangered by both climate and human activity. The reconstruction of the hydroclimate and water levels from sedimentary facies, as well as the changes in the position of the surface water and groundwater via the record of their geochemical fingerprint in the sediments, has allowed us to establish a conceptual model for the response of the hydrological system (surface water and groundwater) to climate. Arid periods are characterized by low levels of the deeper saline groundwater and by a greater influence of the surface freshwater. A positive water balance during wet periods allows the discharge of the deeper saline groundwater into the wetland, causing an increase in salinity. These results contrast with the classical model where salinity increases were related to greater evaporation rates and this opens up a new way of understanding the evolution of the hydrology of wetlands and their resilience to natural and anthropogenic changes.


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