Sociogencia · Case 10 · The power constraint

The Cost of
a Megawatt

Nobody is refusing to build generation. Almost nobody can connect it.

The brief
Five routes to power that do not depend on the queue: geothermal, batteries, on-site gas, small modular reactors and the contracted renewable. Where each is deployed, what it costs, and when it arrives. Each is sold on a different number, and no route wins on all five.
Entelligencia·October 2026·Sociogencia
The desk read

Five answers to one question

The power problem is not a shortage of generation. It is a shortage of connection, and every solution in this case is priced against that fact.

Generation gets built. What does not happen is the connecting: 77 per cent of everything that entered a United States interconnection queue between 2000 and 2019 was withdrawn, and the median project that did connect waited nearly five years. The five routes that follow are each a way of buying a megawatt without joining that line, and each is sold on a different number.

The map

Where each route is actually being built.

Named sites only, drawn from the route files below. The clustering is the finding: geothermal follows the rock, gas follows the absence of a queue, and small modular reactors follow the regulator. Switch the view for the United States and Europe close up, filter by route, and select any node to open its file.

The routes, plotted · live
ENT-C10-MAP-2026.08 · 18 clusters plotted
Route
Overlays
Verified only
Announced only
Contested only
Verified · live or in build
Announced
Contested · pause or dispute
Cape StationCorsac StationSage and XGSColossus 1Colossus 2AbileneCascadeHermes 1SeadriftOhio microgridCAISO fleetRoPowerUK volumeIberiaGermany
Verified
Select a cluster
Tap any node to open its file
Sites in view
18
Routes examined
5
Binding constraint
Not the queue

Eight numbers that discount the rest.

Every capacity figure in this case, and in the chapters around it, should be read against these. Seven are measured. One is contested, and it is marked as contested rather than dropped.

Filter
Desk file · the constraint
Verifiedline 01 · Lawrence Berkeley National Laboratory, Queued Up 2025
2,300 GW in United States interconnection queues at the end of 2024, against a peak national demand a fraction of that.
Verifiedline 02 · Lawrence Berkeley National Laboratory
13 per cent of capacity that requested interconnection between 2000 and 2019 was operating by the end of 2024. Seventy-seven per cent was withdrawn.
Verifiedline 03 · Lawrence Berkeley National Laboratory
55 months median from interconnection request to commercial operation for the 2018–2024 cohort, up from under two years for 2000–2007.
Verifiedline 04 · Tier-one manufacturer quotes, 2026
100–160+ weeks lead time on large power transformers and still lengthening, with some extra-high-voltage units quoted at 48 to 60 months.
Verifiedline 05 · GE Vernova Q2 2026 earnings
116 GW GE Vernova gas turbine backlog including slot reservations, against roughly 10 GW of annual production capacity. New orders are booking 2031.
Verifiedline 06 · Georgia Power filings, April 2024
$36.8bn Plant Vogtle’s final cost against a $14bn approval, seven years late. A realised $15,600 per kW against SMR vendor estimates of $3,000 to $6,000.
Verifiedline 07 · Sovacool et al., seven-country dataset
97 per cent of nuclear projects in a 175-reactor dataset overran on cost. Median overrun 65 per cent; the top quartile above 179 per cent.
Contestedline 08 · Sightline Climate · contested by SemiAnalysis
30–50 per cent of announced 2026 data centre capacity expected to slip or cancel. Disputed as overstated on the grounds that it tracks speculative projects from inexperienced developers.
Eight lines · seven verified · one contested · method: each figure carried with its source and grade
Analysis · Entelligencia read

Five ways to buy a megawatt.

Each is a different answer to the same question, and each is sold on a different number. Take any one.

Firm power at a capacity factor no intermittent source matches, sited where the rock allows it. The drilling curve is real and transferring from shale. The binding constraint is grid size, not heat.

Enhanced geothermal against solar and windMid-case levelised cost. The target is to meet intermittent renewables by 2035; the gap today is roughly four to one.
04590135180202220242026202820302035EGS midUtility solarOnshore wind
DOE Enhanced Geothermal Shot, NREL · dollars per MWh Estimated · projection

Contributor seat open on this route

The cheapest unit on the board and still falling, 78 per cent off since 2015. It defers the queue rather than avoiding it, and the merchant arbitrage that pays for it compressed 48 per cent in a year.

Grid-scale storage, turnkey costFour-hour systems, US dollars per kWh. A 78 per cent decline since 2015, and the curve is still falling.
01302603905202015201920212023202520302035Turnkey $/kWh
BNEF, Modo Energy · dollars per kWh installed Verified to 2025 · projected after

Contributor seat open on this route

The fastest route to first power and the only one with a mature supply chain. It is also the only one getting harder: the backlog now exceeds a decade of production, and near population the permitting risk has reached a federal court.

GE Vernova gas turbine backlogContracted volume plus slot reservations against roughly 10 GW of annual production capacity. New orders are booking 2031 slots.
0326598130202320242025Q1 26Q2 26Backlog GW
GE Vernova earnings · gigawatts, includes slot reservations Verified

Contributor seat open on this route

The largest gap on the board between what has been ordered and what exists. Eleven gigawatts of backlog against a single 320 MW phase in permitting, priced against a forty-year record of overruns.

Announced against actually placedMegawatts. The gap is largest in raw terms at X-energy, and total at Oklo, which holds no combined licence.
03,0006,0009,00012,000X-energyKairosOkloNuScaleAnnouncedIn construction
Company filings, NRC, DOE · megawatts Verified

Contributor seat open on this route

Cheapest per megawatt-hour and mature everywhere. It solves the price of power and does nothing for its arrival, which is the reason the other four exist.

The five routes are answers to the question of where the next megawatt comes from. This is the question underneath it: how many of them are actually needed. The installed base runs at a power usage effectiveness of about 1.52 while the best sites run at 1.02, and closing even part of that gap across a fleet drawing tens of gigawatts frees load for compute rather than overhead. It is the cheapest capacity in this case and it does not enter the interconnection queue.

Two things are true at once and the argument usually picks one. Per unit of work, this industry is getting radically more efficient: ten times the tokens per watt in a single hardware generation, a thousandfold collapse in the price of a fixed capability. In aggregate, it is drawing more power every year, because each efficiency gain lowers the price of compute and a lower price buys more of it. Between 2010 and 2018 efficiency absorbed the growth entirely. Since 2024 it has not come close.

Which is why this section sits beside the readiness index rather than on it. Efficiency is not a route to power and it should not be scored as one. It is the only lever on this board that is already installed, already connected and already paid for, and the reason it stays unpulled is that nobody is paid to pull it. The routes have vendors. The megawatt you do not need has nobody selling it.

The claim that the AI buildout is unprecedented is doing a lot of work in this industry, and it is not quite true. Grids have been built this fast before, more than once, on a larger relative scale. What is unprecedented is the conditions under which it is being attempted.

Score the five against the three conditions that made them possible and the pattern is not subtle. Every fast buildout had at least two. The two fastest had all three.

Buildout
Single buyer
Standardised design
State direction
France, Messmer Plan
Yes · EDF
Yes · PWR fleet
Yes · by decree
US gas, 1998–2005
No · merchant
Partial · turbines
No · deregulated
Rural electrification
No · cooperatives
Partial · REA specs
Yes · federal loans
China UHV
Yes · State Grid
Yes · converter design
Yes · Five-Year Plans
Solar PV
No · global market
No · many makers
Partial · subsidy
The AI buildout
No
No
No
Conditions present at each buildout · Entelligencia analysis of the historical record

The AI buildout has none of them. There is no single buyer: there are five hyperscalers bidding against each other and against every other large load on the same grid. There is no standardised design: each campus is bespoke, and the rack inside it changes generation every eighteen months. There is no state direction: in the United States the state is currently moving in the opposite direction, with the first statewide permitting moratorium signed in July 2026 and at least fifteen more states weighing one.

Which leaves one honest historical analogue, and it is the uncomfortable one. US gas from 1998 to 2005 is the only case on this board built at speed, by a market, with none of the three conditions, and it ended with $150bn to $200bn of stranded value and plants handed to lenders. That is not a prediction. It is the base rate for building this fast without a buyer, a standard or a plan, and it is the only base rate available.

Everything in this file is graded Contested or Estimated, and the reason is uniform: none of these technologies has reached commercial operation, so every number is a company or investor disclosure rather than an audited outcome. They are here because three of the four already have signed offtake contracts against them, which means capital is being allocated on these numbers whether or not they hold.

Sort them by how far the demonstration is from the claim and the order is clear. Long-duration storage is not really frontier any more: it is in production in West Virginia, deployed for Georgia Power, and priced within a factor of two of its target. Superhot rock has a physics claim, a field site and a fiftyfold gap between what has been drilled and what the resource needs. Fusion has two contracts, neither of which pays out until a plant that does not exist is connected. Space-based solar has a genuine first, power beamed from orbit and measured on a rooftop, attached to an efficiency chain that delivers about an eighth of what it collects.

The discipline this section is trying to enforce is simple. A signed offtake is not a megawatt. Google has contracted 200 MW of fusion and Microsoft 50, and the combined delivered total to any grid, from any fusion device, anywhere, remains zero. That is not an argument against the technology. It is an argument against putting any of it in a 2030 capacity plan, which is the decision this case exists to inform.

When each one gets cheaper and faster.

A cost curve says where a technology is. It does not say when it arrives. These are the three crossings that matter to a buyer, projected at three rates, each anchored to a buildout that actually happened rather than an assumed pace. No route improves on all three axes at once, and one gets harder on two of them.

When each route crossesThree milestones per route: cheaper than the alternative, faster to first power than the queue, and accessible outside its current siting constraint. Each range is a high, medium and low scenario anchored to a named historical buildout rather than an assumed rate.
202620302035204020452050TODAYMEDIANGeothermalCheaper2032Faster2031Accessible2035BatteriesCheaper2027Faster2026Accessible2027On-site gasCheaper2026Faster2029Accessible2032Small modular reactorsCheaper2040Faster2037Accessible2039Renewables and the PPACheaper2026Faster2036Accessible2034HighMediumLowBar spans the high to low range
Entelligencia scenarios · each anchored to a measured historical analogue, stated per route below Estimated · scenario
GeothermalAnchored to US shale gasBecause the drilling learning curve is the same mechanism, transferring between basins.Cheaper means reaching the $60–70 per MWh band where it competes with firmed renewables. Accessible means viable outside proven resource areas.
BatteriesAnchored to Solar PVBecause the same cell manufacturing curve, the same Chinese cost base.Already past every crossover on cost and speed. The open question is duration economics beyond four hours, not price.
On-site gasAnchored to US CCGTBecause a mature turbine supply chain and an existing fuel network, exactly as in the dash for gas.Cheapest and fastest today. Faster gets worse before it gets better: the backlog runs to 2031. Accessible is falling, not rising, as permitting tightens.
Small modular reactorsAnchored to French nuclearBecause the only precedent for building a reactor fleet at pace, and it took fifteen years with state direction.Even the high case sits outside this decade. The low case assumes the historical overrun base rate holds, which it has for forty years.
Renewables and the PPAAnchored to Onshore windBecause the constraint is not the technology, which is mature, but the interconnection queue.Already cheapest per MWh. Faster and accessible are both queue-bound, which is why the other four exist.
The five against the demand they have to meetGlobal data centre load in gigawatts, against the plausible medium-case contribution of each route. The gap is the finding. Even with all five running to their medium scenario, the shortfall widens through 2030 before it narrows.
07515022530020252027203020332035GeothermalBatteriesOn-site gasSmall modular reactorsRenewables and the PPADemand
Demand: McKinsey data centre demand model · route contribution: Entelligencia medium scenario, gigawatts Estimated · projection

Read the demand chart carefully. It is drawn on the medium case for every route simultaneously, which is already an optimistic reading, and the combined contribution still runs behind demand until the early 2030s. That gap is filled today by the existing grid, which is what the queue figures at the top of this case describe. The routes here do not remove the grid from the equation; they change how much of the gap has to pass through it.

Five routes, five dimensions, one shape each.

Every route scored 0–10 on the five things a buyer weighs when choosing between them. Pick a route to read its shape against the field; switch the dimension to re-rank the bars; filter by type. No route fills the shape, and the two that come closest do so from opposite ends of the risk.

Overall
Tier
Scoring is the desk’s, derived from the sourced figures in each route file above rather than from vendor material. Speed reads months against years; cost certainty reads the width of the published range and the historical overrun record; queue independence reads how much interconnection the route avoids; siting freedom reads how many locations suit it; proven at scale reads whether a commercial fleet exists today.

The same five routes, on one screen.

Darker is weaker, brighter is stronger. Click any column to sort by it, click a route to open its read, and switch the lens to re-weight the overall. A buyer optimising for speed and a buyer optimising for certainty do not choose the same route.

Tier
Lens (re-weights the overall)
The read

The power, the grid, and the future

Adam Roberts
Entelligencia · Adam Roberts

The most useful finding in this case is not on the readiness board. It is that a problem of exactly this shape has been solved five times in the last hundred years, and every time it looked impossible until it was routine.

France took nuclear from 8 per cent of its electricity to nearly 80 in sixteen years, on 58 reactors built to one design. Rural America went from one farm in ten with power to nine in ten inside two decades, and the binding constraint was never the technology, which had existed since the 1880s. It was capital and organisation. China moved 340 gigawatts from where it is generated to where it is used. Solar fell from $6.36 a watt to under 40 cents on a cost curve that held for twenty years. None of those were easier problems than this one. They were differently organised ones, and organisation is a choice rather than a piece of luck.

The routes on this board are further along than the debate usually allows. Two of them have already crossed on cost, today. Batteries are 78 per cent cheaper than they were in 2015 and are the most siteable thing here by a distance. Geothermal's drilling curve is transferring out of shale and the evidence is measured rather than promised: the same operator cut 70 days to total depth down to 21, then held those 21 days while drilling five thousand feet deeper and sixty degrees hotter. That is a productivity gain, not a one-off. The frontier is closer than its reputation too, and the clearest case is the least glamorous: long-duration iron-air storage is in production at a former steel mill in West Virginia and priced within a factor of two of its target.

And the number all of this is measured against may not hold either. The installed fleet runs at a power usage effectiveness near 1.52 while the best sites run at 1.02, a liquid retrofit costs about $2m per MW against $11m for the same capacity built new, and silicon is delivering something close to ten times the tokens per watt in a single hardware generation. Closing even part of that gap frees real capacity on connections that already exist, which is the cheapest and fastest megawatt available anywhere in this case. The demand line is a projection, and projections of this kind have been wrong in both directions before.

In conclusion

A mix, not a winner

Nothing here suggests one route takes the load. The honest reading of the crossover chart is that the grid that already exists does the heavy lifting into the early 2030s, while gas and batteries carry the near term, renewables and geothermal come up behind them, and the reactors and the frontier arrive late enough to matter for the decade after. Old sources and new ones, running together, is not a failure of the new ones. It is what every buildout in the precedent file above actually looked like from the inside.

The one caution the record insists on is that the fast buildouts had at least two of a single buyer, a standardised design and state direction, and this one currently has none of the three. That is worth holding, because it is the difference between the French programme and the American gas bust. But it describes a set of conditions, and conditions can be assembled. A standard can be adopted. A queue can be reformed, as Great Britain has already shown by replacing first-come with first-ready. Coordination is the missing input, not capability.

So the question this case leaves is not whether the power arrives. On the evidence above, most of it probably does. It is whether it arrives in the order and at the cost the people paying for it were told to expect, and that is decided less by the technology than by who is willing to organise it.

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