Colorado basins supplying 70% of Lake Powell's water face major midcentury shortages

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Jul 23, 2026, 6:06:24 PM (14 hours ago) Jul 23
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Colorado basins supplying 70% of Lake Powell's water face major midcentury shortages

by David Nutt, Cornell University
edited by Lisa Lock, reviewed by Robert Egan

July 23, 2026

Colorado West Slope water shortages require careful coordination
Overall methodology of the study. Credit: Earth's Future (2026). DOI: 10.1029/2026ef008137

If the Colorado River Basin is the lifeblood of the American Southwest, keeping the region's agricultural, ecological and economic systems thriving, Colorado's West Slope River basins could be considered the heart. Together, they contribute about 70% of the water delivered to Lake Powell, the second-largest reservoir in the nation.

A new Cornell study, the most extensive of its kind, shows how drivers of water shortages, from melting snowpack to growing population demands, may affect this collective of six basins and Lake Powell—a major source of energy and water supply for 40 million people that has been in the grip of severe drought for the past 20 years.

One of the region's most significant challenges, the study finds, is a potential 50% drop in the West Slope basins' inflows to Lake Powell over the next several decades. The findings are published in Earth's Future. The lead author is postdoctoral researcher Sai Veena Sunkara.

Modeling a wider range of futures

The new study builds on a 2024 modeling analysis of drought vulnerability that determined the Colorado West Slope basins face a potential tipping point, with traditional water delivery levels to Lake Powell and other critical areas becoming unsustainable.

"In this system, we're talking about the potential for decadal or multidecadal droughts," said Patrick Reed, the Joseph C. Ford Professor of Engineering in the Cornell Duffield College of Engineering and the study's senior author.

"These are rare, hard-to-model events, and historical streamflow observations don't provide a large statistical sample. You have to account for the uncertain effects of future precipitation and temperature on streamflows. The basins are also very different in their current and future demands. As a consequence, we're asking what factors are controlling water shortage risks in the West Slope basins?"

For the expanded analysis, Sunkara sought to capture a greater range of conditions, from extreme dryness to extreme wetness, and plausible changes in streamflow, snowmelt timing and drought persistence, combined with the future demands of agricultural, municipal and industrial users and their related water rights. This resulted in 20,000 possible midcentury scenarios representing 2.1 million simulated years.

To understand the uncertainties in future demand, Sunkara mined individual reports from the six basins—the Upper Colorado, Gunnison, Yampa, White, San Juan and Dolores—in Colorado state planning documents. She then incorporated those projections into the model.

"We explore increases as well as decreases in demands," Sunkara said. "Sometimes agricultural demands change due to multiple factors such as land conversion, improved water efficiency or changing cropping patterns. But all of them were indirectly incorporated as reductions or increases in demands."

By also incorporating water rights, the modeling captures the "human institutional management" side, Reed said, resulting in a complex portrait of "what's going to be important, when, for who, as you're starting to think about, OK, I want to improve the situation, where should I focus?"

Snowmelt timing drives shortages

Despite the differences across the West Slope basins, the researchers saw a consistent midcentury signal that their major reservoirs are 40%–55% below their historical medians in terms of storage, depriving them of an effective means of mitigating water shortages. Similarly, the researchers found that a shift in the timing of snowmelt is a dominant factor contributing to these systematic shortages. After all, snow is a form of storage, Reed said. If it melts too early, less is available to offset dry periods.

The result is not a prediction of future demands so much as an exploration of the potential ranges for change in different sectors and uses in each basin.

The researchers found that each basin is grappling with a variety of issues, and no single management strategy will be able to address all future water shortages.

"If you're starting to distinguish what's driving water shortage, you need a careful map because it's complex and it changes," Reed said. "It changes by basin, changes by sector, changes by user. You have to account for water rights. You have to account for the natural drivers as well as the human drivers. It was more complex than we initially thought. We do give results that highlight where actions such as demand management are going to be more effective."

Publication details

Sai Veena Sunkara et al, Unraveling the Drivers of Water Shortage Across Spatial Scales and Sectors in Colorado's West Slope River Basins, Earth's Future (2026). DOI: 10.1029/2026ef008137

Who's behind this story?

Lisa Lock

Lisa Lock

BA art history, MA material culture. Former museum editor, paramedic, and transplant coordinator. Editing for Science X since 2021. Full profile →

Robert Egan

Robert Egan

Bachelor's in mathematical biology, Master's in creative writing. Well-traveled with unique perspectives on science and language. Full profile →

Citation: Colorado basins supplying 70% of Lake Powell's water face major midcentury shortages (2026, July 23) retrieved 23 July 2026 from https://phys.org/news/2026-07-colorado-basins-lake-powell-major.html

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