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Taiwan to Build Large-Scale Municipal Desalination Plant

Smart Water Magazine | Water & Sanitation

Taiwan to Build Large-Scale Municipal Desalination Plant

“Designed to produce 100,000 cubic meters of quality drinking water per day, the Hsinchu SWRO desalination plant will enhance the stability of the water supply and alleviate water scarcity, benefiting around 1.6 million inhabitants and the semiconductor manufacturing industry in Hsinchu City. Construction is scheduled to begin in July 2024 and is expected to be completed by 2028.

By implementing a compact design, energy-efficient solutions for the treatment process1, and the installation of solar panels, the project will save construction space, minimise material consumption and carbon footprint. In addition, the use of the pigging system for offshore pipe cleaning will help reduce the treatments required and generate less wastewater.”

From Smart Water Magazine.

Blog Post | Water Use

The AI Land and Water Panic Is Wrong

Bill Maher and Erin Brockovich think we are running out. We are not.

Summary: Concerns that AI data centers are exhausting America’s land and water are largely overstated. Data centers occupy relatively little land compared with agriculture and other established uses, while their water consumption reflects temporary displacement rather than permanent loss. New cooling technologies and alternative water sources are also reducing local demand, suggesting that engineering—not scarcity—will shape AI’s environmental impact.


The American consumer advocate Erin Brockovich went on Real Time with Bill Maher Friday night to talk about what she has spent the year mapping: American towns that found out a data center was coming only after the bulldozers arrived. She has collected thousands of such reports from all fifty states. A big facility, she says, can consume millions of gallons of water a day. The audience was meant to conclude that artificial intelligence is swallowing the country’s water and land.

Start with the land, because that part is easy to settle. Cushman and Wakefield, the commercial real estate firm that tracks these deals, reports that the average parcel bought for a data center in 2024 ran to a couple hundred acres. Scale that up by the computing capacity the industry expects to have running by 2030, and by my reckoning every data center in America, plus all the ground around the buildings, comes to roughly the area of Rhode Island. The buildings themselves would fit inside a mid-sized city.

Now compare that with how we already use land. The federal government requires refiners to blend corn ethanol into gasoline and growing that corn takes an area about the size of New York State, for a fuel that a 2022 study in the Proceedings of the National Academy of Sciences found is probably dirtier than the gasoline it replaces. The Agriculture Department pays farmers to leave a Kentucky-sized area unplanted. Since 2000, American farmland has shrunk by an area larger than Colorado, and output went up anyway. None of this made the evening news.

Water is the harder argument, and it is where the case goes wrong at the level of chemistry. A data center does not destroy water. Cooling moves heat but does not burn anything. Hydrogen and oxygen do not come apart in a cooling tower. The water molecules leave as vapor, and hydrologists have long put their average stay in the atmosphere at about nine days before they fall again as rain. The word often used, “consumption,” does not mean the water is gone. It means the water left the neighborhood. That is a genuine cost to a neighborhood. It is not a subtraction from the world’s supply, and no amount of AI will make it one.

The problem of local water displacement is one that engineers have been fixing for two years. The scary numbers come from old evaporative towers, but the newer Nvidia chips run at 113 degrees Fahrenheit. That is hotter than the air outside on most summer days. Heat moves from hot to cold on its own, so the liquid sheds its warmth into the open air through a radiator, like the one in a car. Those radiators need fans, and fans need power, so the better chips turn a water problem into an electricity problem. That is a good trade, because building power is something this country knows how to do.

Similarly, Microsoft has announced designs that circle the same fluid through a sealed loop past the chip and back. Google, Amazon, and Microsoft already run some sites on treated city wastewater rather than anything anyone would drink.

Brockovich anticipated this answer. In an essay published two days before the broadcast, she argued that a sealed loop does not remove the water use but only moves it to the power plant that supplies the electricity. She is right that this second, hidden figure is bigger than the water used at the site itself. But the two together still amount to less than one percent of all the water Americans consume. The figures behind it come from the Lawrence Berkeley National Laboratory, in a study Congress ordered and the Energy Department published. Its lead author, the staff scientist Arman Shehabi, supplies the numbers that both sides of this argument quote.

The comparison with national consumption is drawn by Robin Gaster of the Information Technology and Innovation Foundation, who reviewed the same evidence in July and drew two conclusions. The technology to bring on-site water use near zero already exists. And the upstream share depends on which power plants get built, which means it is not fixed either. A forecast of disaster must assume that nobody will ever build anything different.

For scale, the EPA’s WaterSense program reports that outdoor household water use runs to about nine billion gallons a day, most of it landscape irrigation: suburban sprinklers use more water in two days than all data centers in the country uses directly in a year.

The host pushed back against Brockovich’s more alarmist claims, but he soon went back to his old assumption that there are simply too many of us and that we are using too many resources. In an April 2019 monologue, Maher cheered the falling birth rate, called fewer humans the best gift we could give the planet, and named our numbers as the great unspoken cause of the climate crisis. Last Friday, he repeated those concerns. He was wrong to do so.

In 1980, the economist Julian Simon bet the biologist Paul Ehrlich, author of The Population Bomb, that a basket of metals would grow cheaper as the population grew. Ehrlich sent the check ten years later. The economist Gale Pooley and I are keeping the score. The Simon Abundance Index we published this April found that the Earth was 536 percent more resource-abundant in 2025 than in 1980, a period in which humanity added nearly four billion people. Every commodity we track is more plentiful per person than it was, because each additional person arrives with a mind as well as a mouth.

Maher has spent three decades treating every new demand on the earth as a bite out of a fixed inheritance. Data centers are only the latest one. The land is plentiful. The water is not leaving the planet, and the engineers cooling these AI machines are already several product cycles into solving the thing he is sure cannot be solved.

Yale Environment 360 | Water Use

After Decades of Drought, Water Is Rising in the African Sahel

“Near-extinct oryx are returning. Farms are prospering as irrigation water reaches fields for the first time in decades. Farmers are even nurturing new trees on their land. Once a byword for drought and famine, the African Sahel region on the southern flank of the Sahara Desert now has more water than it has for decades. Wells are filling as water tables have risen by 13 feet or more in places. Lake Chad, which was one of Africa’s largest expanses of water before shriveling during the droughts, is recovering.

Over years of drought in the late 20th century, the sun hard baked the soils of the Sahel. Now, erratic but extreme rains are returning to this semi-arid region, causing lethal floods but also replenishing rivers, filling desert depressions, restoring water to dried riverbeds known as wadis, and sluicing rainwater off impermeable soils directly into aquifers. The process began in the 1990s but has accelerated in the past five years…

But increased rainfall since the drought years of the 1970s and 1980s explains only some of the rewetting of the Sahel. It cannot fully account for the transformation, say researchers. Also driving the rewetting, they posit, are changes to the land surface, ranging from the internationally funded Great Green Wall project to the revival of traditional water harvesting methods and the chaos caused by jihadist militants, which has led to the abandonment of irrigation projects that once emptied rivers of their flows.

Much remains unclear in these remote lands on the edge of the Sahara Desert, but the trend seems set to be long-term, with climate scientists saying more — and more extreme — rainfall is on the way in the 21st century. As underground water reserves revive, some are forecasting an agricultural renaissance.”

From Yale Environment 360.

Amazon News | Water Use

Amazon Data Centers 7X More Water-Efficient than Average

“When data centers use water for cooling, one of the most important metrics is how efficiently they use that water—meaning how little water they use for each unit of compute. Amazon announced that its global data center operations used just 0.12 liters of water per kilowatt-hour (L/kWh) in 2025, a rate that’s over 7x more efficient than the industry average of 0.84 L/kWh.

In other words, we use far less water per unit of compute than others in the global data center industry, which as a whole accounts for less than 0.5% of all industrial water use globally. 

And we’re continuing to get even more efficient year over year. These efficiency gains are the result of years of investment in custom cooling technology, smarter systems, and a commitment to minimize water use wherever possible.”

From Amazon News.

Bloomberg | Water Use

A Startup Pulls Water Out of the Air to Confront Shortages

“The large metallic white box sits in a Southern California parking lot, looking unremarkable until water starts flowing from a hose attached to it. Peer inside, though, and it’s nearly empty but for some wires, tubes and a container of light-colored material.

The water isn’t being conjured out of thin air by magic but by MOFs— metallic organic frameworks. MOFs are nanocrystalline structures engineered at an atomic level to attract specific molecules. In this case that’s H2O and the machine made by startup Atoco is silently harvesting molecules from the surrounding air and storing them in the material’s porous cavities that serve as microscopic water tanks.

Atoco founder Omar Yaghi shared the 2025 Nobel Prize in chemistry for pioneering MOFs and on an April morning he gave Bloomberg News an exclusive demonstration of the commercial prototype of its atmospheric water harvester in the lot outside the company’s Orange County laboratory…

Set to go into production later this year, the shipping container-sized machine will produce up to 4,000 liters (1,057 gallons) of water daily and can be installed at data centers, hospitals and other critical infrastructure. An off-the-grid model that operates on ambient sunlight and produces less water can be deployed to communities where water must now be trucked in.”

From Bloomberg.