A modelling approach to improving water security in a drought-prone area, West Coast, South Africa

2019 ◽  
Vol 114 ◽  
pp. 102797 ◽  
Author(s):  
Heng Zhang ◽  
Yongxin Xu ◽  
Thokozani Kanyerere
Water ◽  
2019 ◽  
Vol 11 (8) ◽  
pp. 1646 ◽  
Author(s):  
Heng Zhang ◽  
Yongxin Xu ◽  
Thokozani Kanyerere

Towns along the West Coast of South Africa are facing water shortages due to climate change and increasing water demand. Managed aquifer recharge (MAR) is considered as a solution to improve water security. This paper presents a two-step method of combining geographic information system (GIS) based analysis with numerical modeling to select suitable sites for implementing MAR in the West Coast area. Many factors were taken into account to generate the initial map for suitable sites through GIS based analysis. Subsequently, groundwater flow modeling was adopted to verify and optimize the suitable sites selected by GIS based analysis. The result showed that the map for suitable sites produced by the GIS based analysis was reasonable from a spatial aspect, but due to the lack of groundwater seepage information, the most suitable sites developed are not necessarily the optimal choices in practice. With the aid of both the spatial analysis in GIS and seepage simulation, this two-step analysis approach provides a reliable solution to identify suitable sites for implementing MAR. This approach provides a much better reference to the study of suitable sites and possible impacts of implementing MAR in an aquifer in similar areas with water stress.


2018 ◽  
Vol 2 ◽  
pp. S17 ◽  
Author(s):  
Richard Meissner ◽  
Nikki Funke ◽  
Karen Nortje ◽  
Inga Jacobs-Mata ◽  
Elliot Moyo ◽  
...  

2021 ◽  
Author(s):  
Graham Jewitt ◽  
Catherine Sutherland ◽  
Sabine Stuart-Hill ◽  
Jim Taylor ◽  
Susan Risko ◽  
...  

<p>The uMngeni River Basin supports over six million people, providing water to South Africa’s third largest regional economy. A critical question facing stakeholders is how to sustain and enhance water security in the catchment for its inhabitants. The role of Ecological Infrastructure (EI) (the South African term for a suite of Nature Based Solutions and Green Infrastructure projects) in enhancing and sustaining water and sanitation delivery in the catchment has been the focus of a project that has explored the conceptual and philosophical basis for investing in EI over the past five years.</p><p>The overall aim of this project was to identify where and how investment into the protection and/or restoration of EI can be made to produce long-term and sustainable returns in terms of water security assurance. In short, the project aimed to guide catchment managers when deciding “what to do” in the catchment to secure a more sustainable water supply, and where it should be done. This seemingly simple question encompasses complexity in time and space, and reveals the connections between different biophysical, social, political, economic and governance systems in the catchment.</p><p>Through the study, we highlight that there is an interdependent and co-constitutive relationship between EI, society, and water security. In particular, by working in spaces where EI investment is taking place, it is evident that socio-economic, environmental and political relations in the catchment play a critical role in making EI investment possible, or not possible.</p><p>The study inherently addresses aspects of water quantity and quality, economics, societal interactions, and the governance of natural resources. It highlights that ensuring the availability and sustainable management of water resources requires both transdisciplinary and detailed biophysical, economic, social and development studies of both formal and informal socio-ecological systems, and that investing in human resources capacity to support these studies, is critical. In contrast to many projects which have identified this complexity, here, we move beyond identification and actively explore and explain these interactions and have synthesised these into ten lessons based on these experiences and analyses.</p><ul><li>1 - People (human capital), the societies in which they live (societal capital), the constructed environment (built capital), and natural capital interact with, and shape each other</li> <li>2 - Investing in Ecological Infrastructure enhances catchment water security</li> <li>3 - Investing in Ecological Infrastructure or BuiIt/Grey infrastructure is not a binary choice</li> <li>4 - Investing in Ecological Infrastructure is financially beneficial</li> <li>5 - Understanding history, legacy and path dependencies is critical to shift thinking</li> <li>6 - Understanding the governance system is fundamental</li> <li>7 - Meaningful participatory processes are the key to transformation</li> <li>8 - To be sustainable, investments in infrastructure need a concomitant investment in social and human capital</li> <li>9 - Social learning, building transdisciplinarity and transformation takes time and effort</li> <li>10 - Students provide new insights, bring energy and are multipliers</li> </ul>


2019 ◽  
Vol 190 ◽  
pp. 25-39 ◽  
Author(s):  
Fannie W. Shabangu ◽  
Ken P. Findlay ◽  
Dawit Yemane ◽  
Kathleen M. Stafford ◽  
Marcel van den Berg ◽  
...  

2014 ◽  
Vol 4 (4) ◽  
pp. 287-293 ◽  
Author(s):  
G. O. Schreiner ◽  
R. C. van Ballegooyen ◽  
W. Osman

In the last decade, seawater reverse osmosis (SWRO) has come to be seen by policy-makers as a novel technology that will significantly advance water security in South African coastal regions. Water purveyors, from the private sector, local/district municipalities and provincial authorities, are undertaking studies to explore the feasibility of SWRO to meet growing demand and relieve mounting pressure on current bulk water supply infrastructure. With this in mind, it is suggested that national strategic planning should be introduced to present the opportunities and constraints of the desalination option within the national water and energy policy. In absence of this, piece-meal decisions will be made at local authority levels and the construction of SWRO plants will be determined by regional circumstances (e.g. drought) as opposed to national water policy agenda. This paper explores the value of such a strategy by considering the drivers of SWRO in South Africa, the risk of unplanned large-scale SWRO implementation (with a focus on environmental impacts) and the initial steps that could be taken toward a Strategic Environmental Assessment for SWRO in South Africa.


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