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BackLos Angeles Deep Groundwater Remained Depleted Despite Historic 2023 Storms
Los Angeles Deep Groundwater Remained Depleted Despite Historic 2023 Storms
NEWS
TOI World2 hours agoEnvironment3 min readIndia

Los Angeles Deep Groundwater Remained Depleted Despite Historic 2023 Storms

A study found that while surface water and shallow aquifers recovered, only about 25% of deep groundwater lost since 2006 was restored.

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A Science study reveals that historic 2023 storms in Los Angeles restored surface water and shallow aquifers, but only about 25% of deep groundwater lost since 2006.

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Why It Matters

Historic atmospheric-river storms in early 2023 brought heavy precipitation to California, temporarily easing long-term drought conditions.

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Los Angeles was drenched by historic storms, yet much of its lost groundwater stayed missing. Record-breaking rainfall in 2023 brought dramatic relief to drought-stricken Southern California, nearly restoring water stored in Los Angeles-area reservoirs and shallow aquifers. But the recovery was far less complete underground. A study published in Science found that aquifers deeper than about 50 metres remained substantially depleted. Researchers estimated that only about 25% of the groundwater lost from these deeper aquifers since 2006 was restored after the exceptionally wet year.

Extreme rain brought rapid relief

The 2023 storms were remarkable in both intensity and duration. A series of intense atmospheric-river storms brought exceptionally heavy precipitation to California in early 2023, rapidly improving surface-water conditions after years of drought, according to Stanford researchers. The enormous volume of water rapidly improved surface conditions, filling reservoirs and allowing shallow groundwater systems to recover substantially. For a region that had experienced years of drought and extensive groundwater extraction, the turnaround appeared dramatic. But the researchers found that the apparent recovery at the surface did not extend equally into deeper underground water reserves.

Deep aquifers remained depleted

Groundwater does not respond to rainfall as quickly or uniformly as reservoirs and shallow aquifers. Water reaching the ground must move through layers of soil and rock before it can replenish deeper groundwater. The study found a clear difference with depth. Near-surface groundwater storage almost completely recovered following the wet 2023 season, while aquifers below roughly 50 metres remained substantially depleted. Only about one-quarter of the groundwater lost from these deeper systems since 2006 had been restored. The researchers tracked groundwater changes across the Greater Los Angeles region over roughly two decades. Their analysis showed that deeper aquifers had experienced a continuing depletion trend, in contrast to shallow groundwater, which fluctuated more closely with changes in weather and precipitation. That distinction is important because a wet year can create the impression that a drought has been completely reversed when substantial water losses remain hidden underground.

Seismic waves reveal hidden water

One of the unusual aspects of the research was how scientists measured changes in groundwater. Alongside conventional groundwater observations, the team used seismic ambient-field interferometry to track changes across the region, analysing seismic waves recorded by the region's earthquake-monitoring network. Seismic waves travel differently through underground materials depending partly on their physical properties. Changes in groundwater levels can therefore alter the way seismic waves move through the subsurface. By examining decades of seismic observations, researchers were able to develop what they described as seismic hydrographs, records that reveal changes in groundwater storage over time. This provided a way to examine groundwater recovery across different depths and over a much broader area than would be possible using individual wells alone.

Why deeper water recovered slowly

The contrasting response between shallow and deep aquifers reflects how difficult it is for stormwater to reach deeper underground layers. Heavy rainfall can quickly increase surface-water storage and replenish shallow groundwater. But reaching deeper aquifers requires water to move through substantial thicknesses of soil and rock. In an urbanised region such as Los Angeles, much of the rainfall can also become runoff rather than infiltrating deeply into the ground. As a result, a single exceptionally wet season cannot necessarily compensate for years of groundwater extraction. The researchers concluded that the enormous storms of 2023 were not enough to reverse the groundwater depletion that had accumulated during previous droughts. According to the lead study author and researcher Shujuan Mao, many more wet years would be needed for the deeper aquifers to fully recover.

A warning beneath the wet year

The findings highlight an important difference between surface-water recovery and groundwater recovery. Reservoir levels can rise rapidly after major storms, while underground reserves may take much longer to rebuild. This matters for the Greater Los Angeles region, where groundwater is an important water resource for millions of people. The study suggests that assessing drought recovery solely by looking at rainfall, reservoirs or shallow groundwater can give an incomplete picture of the region's water situation. The 2023 storms therefore delivered substantial relief, but they did not erase the legacy of prolonged drought and groundwater extraction. Beneath a landscape that appeared dramatically wetter, deeper aquifers continued to carry much of the deficit accumulated since 2006.

Open Questions

  • How many wet years are required to fully replenish deep aquifers?
  • Can artificial recharge accelerate deep groundwater recovery?

Related Topics

This article was originally published by TOI World.

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