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America’s electricity demand increase is now a reality, not just a projection.  After nearly 20 years of minimal annual growth of around 0.1 percent, demand surged to about 1.7 percent per year between 2020 and 2025.  In 2025, U.S. electricity generation hit a record 4,430 terawatt-hours.  Meanwhile, data-center electricity consumption increased from roughly 58 terawatt-hours in 2014 to 176 terawatt-hours in 2023, now accounting for approximately 4.4 percent of the country’s total power use.

>>>READ: Will the Ratepayer Protection Pledge Work?

The country clearly needs more reliable and affordable electricity.  While artificial intelligence is increasing this demand, it is not the sole factor. Manufacturing, electrification, population shifts, reliability standards, and the decommissioning of old power plants all strain a power system largely designed and built in the 1960s and 1970s.  In fact, over 70 percent of the core electrical grid infrastructure, including major transmission lines and large transformers, is over 50 years old.

The rising demand, combined with aging, capital-heavy infrastructure, poses both engineering and capital-allocation challenges. Markets have faced similar situations before, such as with shale, where resource opportunities drew investment before the economics could be established. This leads to a key question: could power be the next shale?

The answer isn’t straightforward.  Shale was a major technological and geopolitical achievement. U.S. crude production rose from about 5.5 million barrels per day in 2010 to more than 12.2 million in 2019.  Advances in horizontal drilling and hydraulic fracturing enhanced energy security, reshaped global trade dynamics, and lowered costs for American industries, yet many investors still lost money.

The issue was not the resource itself but the capital cycle associated with it.  Companies amassed land, increased leverage, prioritized production growth, and often spent beyond their internal cash flow.  Although technology advanced, it also exposed weaker acreage and outdated assumptions.  Ultimately, commodity prices forced the sector to confront the gap between increasing production and achieving a satisfactory return.

Power could repeat the capital-allocation mistake without facing shale’s synchronized crash.  Today’s acreage encompasses interconnection points, turbine slots, transformers, transmission access, natural gas transport, water supplies, permits, skilled labor, and long-term power contracts, assets that are genuinely scarce.  This scarcity motivates developers and customers to act promptly, yet it also risks investing capital before details about the location, timing, usage, and economics of future loads are fully understood.

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Power lacks a straightforward clearing mechanism like shale.  Instead, oil and gas benchmark prices and regional differentials often serve as quick indicators of deteriorating economic conditions.  Losses in power can be absorbed, deferred, renegotiated, or passed on through regulated rate bases, long-term contracts, private-credit deals, utility tariffs, and company balance sheets.  This creates a “non-consensus” risk, meaning that the absence of a crash doesn’t necessarily indicate wise capital allocation.

A physically advantageous power asset can remain financially unprofitable over many years.  The system may appear stable, even as investors, ratepayers, lenders, suppliers, and customers silently absorb the costs of inaccurate forecasts.  These errors can appear in various ways or lead to lower-than-expected utilization. This highlights the need to advance both permitting reform and market discipline simultaneously.

America needs faster, more predictable permitting for generation, transmission, pipelines, and other vital infrastructure. Delays raise financing costs, reduce competition, and raise the value of scarce opportunities.  Energy abundance benefits the country only if projects are approved swiftly, costs are clear, and consumers are protected from unexpected obligations.  Reforms should aim to accelerate financially sound projects, rather than bailing out poorly underwritten ones or assuming all announced megawatts will be built.

The primary policy and commercial issue is straightforward: who is responsible for the cost if the forecast is wrong?  Markets are already developing solutions like minimum bills, customer deposits, take-or-pay clauses, exit obligations, parent guarantees, milestone criteria, and large-load tariffs to protect utilities and existing customers from stranded costs.  These measures do not suggest that the boom is artificial.  Instead, they demonstrate that informed parties understand the risks.

>>>READ: FERC to Grid Operators: Protect Your Customers Better

The strongest projects will not merely secure power.  They will allocate uncertainty.  They will inquire whether demand is real or merely announced.  They will assess whether the asset can be used by another customer or for a different load class.  They will set aside capital against clear milestones.  They will maintain flexibility in fuel choice, location, design, and expansion options.  Additionally, they will identify who assumes risks related to cancellation, underutilization, grid upgrades, and regulations before making a fixed commitment based on a forecast.

America must pragmatically increase its power capacity while keeping in mind the lessons from shale play, most importantly, knowing about the resource doesn’t mean all investments to develop it will succeed.  Announced megawatts are like leased acres, but energized, used, and profitable megawatts are like productive wells.  The boom is genuine, and success will depend on precision, discipline, and pragmatism.

A shortage of plutonium could hold back a new generation of nuclear projects, with start-ups battling to secure the radioactive material given the limited supplies available to civilian projects.

Plutonium, which cannot be mined, is a byproduct of spent uranium-based fuel used in reactors. Its huge explosive capacity makes it ideal for nuclear warheads, meaning its usage and extraction have been highly restricted for decades.

Some designs for a new crop of nuclear projects require the material to help power their systems, with companies trying to find an adequate supply to carry out testing as well as eventually running the reactors.

Read more in the Financial Times here.

Geothermal company Fervo Energy has signed a major deal to sell power to Alphabet’s Google from a Utah project that it plans to turn into the world’s largest enhanced geothermal facility.

The agreement for nearly 400 megawatts of electricity is enough to power a midsize city and would be Fervo’s largest-ever power deal. Fervo plans to begin selling power to Google in 2028 from its Cape Station project in southwestern Utah.

Read more in the Wall Street Journal here.

SLB agreed to acquire thermal management company Kelvion from private-equity funds for $4.1 billion.

The oil drilling and production company said Monday that the acquisition is meant to strengthen its growing data center business.

“This transaction accelerates our ambition to become an industrial technology partner to the data center industry and help customers address the growing infrastructure complexity required to scale AI,” SLB Chief Executive Olivier Le Peuch said.

Read more in the Wall Street Journal here.

A Houston-based company has received funding that can help make world’s first superhot geothermal power plant.

Quaise Energy, a leading developer of utility-scale superhot geothermal energy, today announced the final close of its Series B, raising a total of $180 million in equity financing, including a $35 million investment from Nabors Industries (NYSE: NBR), one of the world’s largest land drilling contractors and a long-standing partner to Quaise.

Nabors has also entered into a strategic framework agreement that supports Quaise’s mission to make superhot geothermal a commercial reality, beginning with the development of Project Obsidian, the world’s first superhot geothermal power plant. The Series B brings Quaise’s total funding to date to $280 million.

Read more in Interesting Engineering here.

A four-month test of enhanced geothermal systems performance, aimed at derisking the technology to ensure its commercial viability, began in Utah earlier this month, according to the Frontier Observatory for Research in Geothermal Energy.

The test is an “extended circulation” which will allow the FORGE team to “evaluate reservoir performance under continuous flow” over the course of 90 days, potentially extended to 120 days, FORGE said in an Aug. 12 release. FORGE is managed by the University of Utah and funded by the U.S. Department of Energy.

Read more in Utility Dive here.

President Donald Trump on Wednesday signed an executive order preparing to block utilities from connecting some foreign-made equipment to the bulk power system, including transformers, batteries, inverters and associated software and digital products.

The order also contemplates the replacement of already-installed equipment, allowing the Secretary of Energy to “impose conditions on the continued use, operation, maintenance, servicing, or updating of foreign manufactured or operated bulk-power system electric equipment acquired or installed before the date of this order.”

Read more in Utility Dive here.

Europe’s increasingly hot summers come with a worrying trend. The air conditioning that the continent long eschewed as an American indulgence is becoming a necessity, and some of the nuclear reactors needed to run those cooling units are tapping out right as thermometers spike. This summer was especially bad: The series of extreme heat waves that roasted Europe, killing thousands and fueling historic wildfires, also severely impacted the rivers that provide water to cool thermal power plants such as nuclear stations.

In France and Switzerland, nuclear plants went offline as river temperatures rose, to prevent the discharge of warm water into sensitive aquatic ecosystems. In Romania, Hungary, and Bulgaria, nuclear plants built along the Danube River either shut down or reduced output as drought dropped the water levels below intake pumps.

Read more in Canary Media here.

Nevada utility regulators cleared the way earlier this month for NV Energy to develop two performance-based credit programs for distributed energy resources that provide energy or capacity services during load flexibility events.

Under the Energy Grid Services and Capacity Grid Services riders, customer-sited resources would be eligible to receive payments for dispatched energy based on hourly market pricing in NV Energy territory and for load reduction based on an avoided cost of generation and transmission calculation, the Public Utilities Commission of Nevada said in an Aug. 11 order.

But by limiting participation of third-party resource aggregators, the commission “misses an opportunity to establish a broader market that could have expanded customer choice, encouraged innovation, and helped lower energy costs,” one of the intervenors in the proceeding said earlier this month.

Read more in Utility Dive here.

Californians could soon put solar panel kits on balconies and in backyards to lower their electric bills — without utility approval.

On Wednesday, state lawmakers passed the Plug and Play Solar Act (Senate Bill 868) to legalize balcony solar, a form of DIY clean energy that’s taken off in Germany. The bill, which garnered bipartisan support, now heads to the desk of Democratic Gov. Gavin Newsom. His office declined to say if he’ll sign or veto it within the 30-day deadline; if he does neither, it would still become law and take effect Jan. 1, 2027.

Read more in Canary Media here.

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