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US Data Centers' Power Demand Surges to 46,000 MW: What's Driving the Growth?

United States data centers are consuming more electricity than ever before. In the third quarter of 2024, their power demand reached 46,000 megawatts (MW), a huge increase driven by artificial intelligence (AI) and cryptocurrency mining.

According to forecasts, this demand will grow to 59,000 MW by 2029. Digital services, cloud computing, and AI apps make data centers grow quickly.

Texas leads in data center power consumption, supplying 8,796 MW to these facilities. Virginia follows closely with 6,967 MW, mainly powering cloud providers like Amazon, Microsoft, and Google. These states host the biggest hyperscale data centers. They need a lot of energy to run servers and cooling systems.

US utility power demand from data centers 2029
Source: S&P Global Commodity Insights

The Power-Hungry Digital Boom: What Fuels the Surge?

Three main culprits drive the energy demand of data centers in the U.S.

AI’s Insatiable Energy Appetite

The rapid development of AI is a major factor behind the increasing energy use. AI models require vast computing power for training and operations. OpenAI, Meta, and Google use powerful GPUs and servers, which require constant electricity. AI’s energy use will likely rise as more companies embrace machine learning and automation.

Training large AI models like GPT-4 requires thousands of GPUs, consuming up to 1 gigawatt-hour (GWh) per model. AI chatbots, image generators, and automation tools are increasing electricity demand.

Goldman Sachs Research projects that AI-driven data centers will consume an additional 200 terawatt-hours of electricity annually from 2023 to 2030.

data center power demand by GS

  • By 2030, AI-driven data centers could account for 30% of all global data center power consumption.

RELATED: The Carbon Countdown: AI and Its 10 Billion Rise in Power Use

Cryptocurrency Mining’s Energy Drain 

Bitcoin and other cryptocurrencies require massive computational power to validate transactions through mining. In Texas alone, crypto miners contribute heavily to electricity demand. Despite price fluctuations, mining operations continue to expand, pushing energy grids to their limits.

Bitcoin mining uses over 120 terawatt-hours (TWh) of electricity each year. This amount is more than what entire countries, like Argentina, consume.

cryptocurrency environmental cost and energy consumption
Image from GREENMATCH

The U.S. accounts for 37% of the world’s Bitcoin mining operations. Texas is emerging as a key hub due to its deregulated electricity market and lower energy costs.

Also, as crypto mining hardware gets better, miners are using liquid-cooled servers. This needs an extra cooling setup, which raises energy use even more. While some mining operations are adopting renewable energy, the majority still rely on traditional electricity sources.

Cloud Computing’s Growing Footprint

Businesses and individuals store massive amounts of data online. Cloud computing providers such as Amazon Web Services (AWS), Microsoft Azure, and Google Cloud operate huge data centers that run 24/7. The rising demand for remote storage, streaming services, and real-time apps means these facilities must use more power.

By 2026, cloud computing workloads are expected to triple. This growth comes from enterprise applications, video streaming, and online gaming. 5G networks and edge computing are increasing the number of smaller data centers. These distributed centers add to the overall electricity demand.

Streaming platforms alone—such as Netflix, YouTube, and Disney+—consume over 200 TWh annually, with a large portion of this electricity coming from data centers. As demand for high-resolution video content, including 8K streaming, grows, the energy needs of these platforms will continue to rise.

Can the Grid Keep Up?

With data center energy needs skyrocketing, utility companies are adjusting their infrastructure and investments. Dominion Energy Virginia, for example, has 40.2 gigawatts (GW) of contracted capacity waiting for connection to the grid—almost double its 21.4 GW in July 2024. This reflects the growing interest in expanding data center operations in key states.

Southern Co., a major utility provider, raised its five-year capital plan by $14 billion. The new total is $63 billion. This increase will help enhance electricity generation and transmission. The company expects over 50,000 MW of additional power demand by the mid-2030s, with data centers accounting for 80% of this increase.

While energy companies prepare for rising demand, some experts warn of potential grid instability. The PJM Interconnection is the biggest electricity market in the US, serving 65 million customers. It expects data center power demand to rise to 26.7 GW by 2029. That’s a fourfold increase. Meeting this demand will require major infrastructure upgrades.

Despite concerns, industry leaders do not see an immediate energy crisis. Some experts argue that increased efficiency in AI and computing could balance demand. However, if data center growth continues at this pace, power shortages could become a real challenge in the coming years.

The Renewable Energy Race

To meet sustainability goals, many tech companies are investing in renewable energy sources. Microsoft and Google have committed to operating 100% carbon-free data centers by 2030. However, the speed at which renewables can replace traditional power sources remains uncertain.

renewable energy capacity additions, retirements in US
Source: S&P Global Commodity Insights

Energy providers are also stepping up. Exelon Corp. plans to invest $38 billion over four years in grid enhancements, including renewable energy projects. However, some experts believe renewables alone cannot sustain the rapid growth of data center power needs.

Hyperscale data centers are increasingly signing long-term power purchase agreements (PPAs) with wind and solar farms. Google, for example, signed a 1.6-gigawatt PPA in 2023 to power its new AI-driven cloud regions. Amazon and Microsoft are also investing heavily in wind and solar projects to offset their growing data center footprints.

The surge in U.S. data center power demand is driven by AI, cloud computing, and cryptocurrency mining. AI training models, high-res video streaming, and global Bitcoin mining are stressing the power grid like never before. Utility companies are spending a lot on expanding the grid. However, it’s unclear if this growth will be sustainable in the long run.

Renewable energy solutions are in development. However, it’s unclear if they can fully meet the growing demand. In the next few years, we’ll see if upgrades to infrastructure and clean energy can meet the rising demand for digital services. If not, power shortages and environmental concerns could reshape the future of data center expansion in the U.S.

The post U.S. Data Centers’ Power Demand Surges to 46,000 MW: What’s Driving the Growth? appeared first on Carbon Credits.

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Climate-Linked Supply Chain Risk Is Already in Your P&L

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The earnings calls that quietly reframed climate from sustainability question to operating risk.

Three earnings calls in the last 18 months tell the story without any help from a press release.

Hershey, May 2024: cocoa price exposure compresses margin, and the company attributes part of the cost shock to West African weather. Olam, July 2024: coffee climate exposure quantified in the annual report. JBS, January 2025: supply chain climate disclosures expanded materially in response to investor pressure and regulatory expectation. None of these companies issued the announcement as climate news. They issued it as financial news. The climate-linked supply chain risk did not arrive with a sustainability framing; it arrived as a P&L line.

You are probably reading this article because you suspect the same thing is happening to your business. This piece walks through what is showing up on which earnings calls, how procurement and finance leaders are quantifying the exposure, and what serious corporates are doing about it before the regulator asks.

Where climate risk has already appeared in earnings

The pattern is consistent across resource-intensive sectors. A weather event compresses supply, the price spikes, the cost flows through the income statement, and the analyst on the call asks whether the event is anomalous or structural. Increasingly, the honest answer is the second one.

Cocoa is the cleanest example. The 2023 to 2024 West African harvest fell sharply on the back of erratic rainfall and disease. Cocoa futures more than tripled. Companies with concentrated West African sourcing absorbed the cost; companies with diversified sourcing absorbed less. The exposure was not climate as ESG topic. It was climate as cost of goods.

Coffee follows the same pattern. Brazilian and Vietnamese harvests have moved on weather more sharply across the last several seasons. Roasters with long-tenor supplier relationships and origin diversification have managed the volatility; roasters with spot-market exposure have not. Wheat, sugar, palm oil, beef: the same dynamic in different commodities, a pattern the IPCC AR6 Working Group II report projects will intensify across agricultural systems through mid-century.

What this means: climate risk is no longer a footnote in the 10-K. It is a line item the CFO has to explain on the call.

The three commodity exposures that hit margin first

For most companies with material Scope 3 exposure, three exposures dominate the near-term P&L risk.

  • Concentrated single-origin sourcing in a climate-vulnerable region. If your tier-one supply for any material commodity sits in one geography, you have a concentration risk that climate amplifies. Diversification across origins is the obvious hedge, but it takes years to build and requires relationships you cannot acquire by tender.
  • Supplier financial fragility under climate stress. Smallholder farmers, who supply a large share of the global cocoa, coffee, and palm oil market, do not carry the balance sheets to absorb yield shocks. When yields collapse, they exit. When they exit, your supply base shrinks, and the surviving suppliers raise prices. The risk is structural, not cyclical.
  • Logistics and storage exposure to extreme weather. Hurricane disruptions to Gulf shipping, drought-driven Panama Canal restrictions, flooding in European inland waterways: each of these has moved input costs in the last three years, a pattern documented in Munich Re’s natural catastrophe data. The exposure shows up as a one-quarter event in the financial press but accumulates over time on the cost line.

TCFD and ISSB disclosure changes

The disclosure architecture has now caught up with the risk. The Task Force on Climate-related Financial Disclosures, whose recommendations are now embedded in the ISSB’s IFRS S2 climate standard, requires companies to disclose climate-related risks across physical and transition categories, with quantification where possible.

For physical risk specifically (the climate-linked supply chain risk you are reading about), the disclosure must address both acute exposures (extreme weather events) and chronic exposures (gradual changes in temperature, precipitation, and growing seasons). The disclosure must address the time horizon over which the risk is material, the parts of the value chain exposed, and the financial impact under different scenarios.

The CSRD imposes similar requirements under European law, with double materiality (both financial and impact materiality) embedded in the assessment. The practical effect: your auditors and your investor relations team now need a defensible answer to the climate-linked supply chain risk question, and the answer needs to be quantified.

What procurement and finance can do now

Three actions matter near-term.

Map your exposure. Most companies do not have a clear view of which tier-one and tier-two suppliers sit in which climate-vulnerable geographies. Without the map, you cannot quantify the risk, and without the quantification, you cannot disclose it credibly. The map is the foundation, and World Resources Institute climate risk research provides useful public tooling to start.

Diversify and deepen, in that order. Diversification across origins reduces concentration risk, but the deeper move is to invest in the resilience of the suppliers you already have. Regenerative practices, agroforestry, soil health interventions: these reduce yield volatility under climate stress and protect your input cost trajectory.

Embed the climate spend inside procurement, not outside it. Treating climate risk as a sustainability cost line subordinates it to the ESG budget. Treating it as a procurement and resilience investment puts it in the budget that matters, which is the cost-of-goods budget that the CFO defends quarterly.

Nature-based supply chain investments are the asset class designed for exactly this purpose. They sit inside the value chain, they reduce climate-linked supply risk, they generate verifiable Scope 3 reductions, and they produce the documentation an auditor and a regulator can both test.

If you are quantifying climate-linked supply chain risk in advance of the next earnings cycle or the next disclosure period, the carbon and sustainability experts at Carbon Credit Capital can help you map your exposure and structure a Dual-Value Model response that addresses reduction, resilience, and disclosure-readiness in a single program. Schedule a consultation.

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Where should an SME start with a carbon action plan?

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More and more small and medium-sized businesses are hearing the same question from their larger customers: What is your carbon footprint? That question now travels down entire supply chains, and it arrives next to tender requirements, certification criteria, and rising customer expectations.

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