Abstract

Managed aquifer recharge operations are often conducted in near-bank areas to regulate water resources or reduce seawater intrusion. Yet little is known about the influence of surface water level fluctuations at different temporal scales on MAR performance. A generalized conceptual model was developed based on an investigation site in Western China as a basis to simulate the response surface water level fluctuations on the water table, artificially recharged water lens (formed by the artificially recharged water), groundwater flow paths and average travel times (which is an important control on how quickly contaminants are flushed out of aquifers), and the discharge of the artificially recharged aquifer during the surface water level fluctuation. The results showed a fluctuating groundwater table in the artificially recharged near-bank aquifer under the influence of surface water level fluctuations. The peak values of the increment of the groundwater table induced by artificial recharge decreased with the increase of the period and amplitude of surface water level fluctuation, but the trough values of the increment of water table increases with that. The penetration depth of surface water into the aquifer with a fluctuating surface water level leads to a decreasing increment of the groundwater table which follows a power law. The fluctuating surface water level leads to dynamic changes of artificially recharged water lens morphology and a thinner artificially recharged water lens. A mixing zone of recharged water and ambient water could be found in the artificially recharged near-bank area, which is expected to lead to modifications in the geochemical conditions in the artificially recharged near-bank aquifer. A longer period of surface water level fluctuation leads to a longer average travel time, but the larger penetration depth of surface water and amplitude lead to a shorter average travel time. The peak discharge of the near-bank aquifer was found to decrease with the period of surface water level fluctuation, but it increases with penetration depth and amplitude. This study is important in providing insights into the performance of near-bank managed aquifer recharge with respect to surface water level fluctuation.

Highlights

  • Managed aquifer recharge (MAR) is an effective method of increasing the quantities of groundwater resources by capturing seasonally or intermittently available excess surface water artificially [1,2], which has been implemented in many regions around the word, such as the United States [3], Australia [4,5], Europe [6], China [1] and elsewhere

  • Our results showed that longer period and higher amplitude of surface water level fluctuations lead to larger increments of water table trough values, but smaller increments of peak values, indicating a good performance of MAR because more attention is always paid to the water table trough values

  • MARs are often conducted in near-river regions to enhance groundwater resources, or in near-shore areas to reduce sea water intrusion, where the influences induced by surface water level fluctuations are poorly understood

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Summary

Introduction

Managed aquifer recharge (MAR) is an effective method of increasing the quantities of groundwater resources by capturing seasonally or intermittently available excess surface water artificially [1,2], which has been implemented in many regions around the word, such as the United States [3], Australia [4,5], Europe [6], China [1] and elsewhere. MARs are often constructed in rivers’ near-bank areas [10,11,12,13] to enhance groundwater quantity where they can reduce the diversion cost of source water that is used for artificial recharge. MAR systems have been constructed in near-shore areas in order to reduce sea-water intrusion. Surface water levels (SWLs) are typically subject to large temporal variations on different timescales due to natural drivers and anthropogenic interference [14,15,16,17], and the performance of near-bank MARs subject to surface water level fluctuations has received little attention

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