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Seawater Intrusion in Coastal Aquifers

Seawater Intrusion in Coastal Aquifers
Author: Jacob Bear
Publisher: Springer Science & Business Media
Total Pages: 652
Release: 2013-03-09
Genre: Science
ISBN: 9401729697

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Coastal aquifers serve as major sources for freshwater supply in many countries around the world, especially in arid and semi-arid zones. Many coastal areas are also heavily urbanized, a fact that makes the need for freshwater even more acute. Coastal aquifers are highly sensitive to disturbances. Inappropriate management of a coastal aquifer may lead to its destruction as a source for freshwater much earlier than other aquifers which are not connected to the sea. The reason is the threat of seawater intrusion. In many coastal aquifers, intrusion of seawater has become one of the major constraints imposed on groundwater utilization. As sea water intrusion progresses, existing pumping wells, especially those close to the coast, become saline and have to be abandoned. Also, the area above the intruding seawater wedge is lost as a source of natural replenishment to the aquifer. Despite the importance of this subject, so far there does not exist a book that integrates our present knowledge of seawater intrusion, its occurrences, physical mechanism, chemistry, exploration by geo physical and geochemical techniques, conceptual and mathematical modeling, analytical and numerical solution methods, engineering measures of combating seawater intrusion, management strategies, and experience learned from case studies. By presenting this fairly comprehensive volume on the state-of-the-art of knowledge and ex perience on saltwater intrusion, we hoped to transfer this body of knowledge to the geologists, hydrologists, hydraulic engineers, water resources planners, managers, and governmental policy makers, who are engaged in the sustainable development of coastal fresh ground water resources.


Saltwater Upconing and Decay Beneath a Well Pumping Above an Interface Zone

Saltwater Upconing and Decay Beneath a Well Pumping Above an Interface Zone
Author:
Publisher:
Total Pages: 5
Release: 2004
Genre:
ISBN:

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Saltwater, or brine, underlies fresh water in many aquifers, with a transition zone separating them. Pumping fresh water by wells located above the transition zone produces upconing of the latter, eventually salinizing the pumped water, forcing shut-off. The salinity of the pumped water depends on the pumping rate, on the location of the well's screen, on the fresh water flow regime, and on the difference in density between fresh and salt water, expressed as a dimensionless factor called density difference factor (DDF). Following the well's shut-off, the upconed saltwater mound undergoes decay, tending to return to the pre-pumping regime. In this paper, the upconing-decay processes in an axially symmetrical system are investigated to discover how they are affected by the DDF and by the dispersivities. The code FEAS-Brine, developed for the simulation of coupled density-dependent flow and salt transport, is used. In this code, the flow equation is solved by the Galer:wqkin finite element method (FEM), while the advective-dispersive salt transport equation is solved in the Eulerian-Lagrangian framework. This code does not suffer from the instability constraint on the Peclet number in the vicinity of the pumping well, where advection dominates the salt transport. Simulation results show that upconing is very sensitive to the DDF, which, in our work, is in the range from 0 (for ideal tracer) to 0.2 (for brine). It is shown that for the DDF of 0.025 (for seawater), local upconing occurs only for low iso-salinity surfaces, while those of high salt concentration, practically, do not shift toward the pumping well. For an ideal tracer, all iso-salinity surfaces rise toward the pumping well. For brine, however, only iso-salinity surfaces of very low salinity upcone towards the pumping well. The decay process is lengthy; it takes a long time for the upconed saltwater to migrate back to the original horizontal transition zone prior to pumping. However, the wider transition zone caused by hydrodynamic dispersion can never return to the initial one. This indicates that once a pumping well is abandoned because of high salinity, it can be reused for groundwater utilization only after a long time.


Simulation of Salt Water Intrusion by Analytic Elements

Simulation of Salt Water Intrusion by Analytic Elements
Author: Thomas Gray Curtis
Publisher:
Total Pages: 168
Release: 1983
Genre: Saltwater encroachment
ISBN:

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A computer model is presented that simulates the movement of an interface separating two incompressible fluids: fresh and salt groundwater. The technique is a modification of the method of modeling interface movement by the use of distributed singularities originally presented by De Josselin de Jong. The modifications consist of: 1. formulating the problem in terms of potentials rather than velocities (applicable only for piecewise constant densities), 2. using complex variable methods to implement boundary conditions. The problem is solved by treating the flow as quasi-steady. A boundary value problem is solved at selected times and the convection of the interface is determined by interpolation of the velocities, which are determined by analytic differentiation of the complex potential function. A Hele-Shaw model was constructed to verify the shape of the interface and movement with time as predicted by the computer model.