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What Is Geothermal Energy?

Environment · August 6, 2023 · Elena Marsh · 5 min

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Geothermal energy is heat drawn from inside the Earth, used to warm buildings and generate electricity. Here is how it works, why it offers steady round-the-clock power, and what its prospects are in the UK.

Most renewable energy comes from above: sunlight on a panel, wind across a turbine. Geothermal energy is the exception. It comes from below, tapping the immense heat stored inside the planet itself. That heat never stops, never depends on the weather, and is available day and night, which gives geothermal a quiet advantage over its better-known cousins. Here is what geothermal energy is, how it is harnessed, where it works best, and why it might matter more in the UK than you would expect.

What it is

Geothermal energy is heat extracted from beneath the Earth's surface and used either directly for warmth or to generate electricity. The word comes from the Greek geo (earth) and therme (heat), and the resource is enormous: the Earth's interior is hot enough to melt rock, kept that way by heat left over from the planet's formation and by the slow decay of radioactive elements deep inside.

That heat radiates outward, so temperatures generally rise the deeper you dig. Crucially, this supply is effectively endless on any human timescale and does not depend on the sun shining or the wind blowing, which is why geothermal sits alongside solar, wind and tidal energy in the family of renewable sources.

How it is harnessed

There are two broad ways to use the Earth's heat, working at very different depths and temperatures.

Deep geothermal for power and heat

To generate electricity, engineers drill deep wells, sometimes several kilometres down, to reach very hot rock or naturally heated underground water. There are a few main approaches:

  1. Dry steam and flash plants bring up hot water or steam from underground reservoirs and use it to spin a turbine connected to a generator.
  2. Binary cycle plants pass moderately hot geothermal water past a second fluid with a low boiling point; that fluid vaporises, drives a turbine, and the geothermal water is returned underground.

In all cases the cooled water is typically pumped back down to be reheated, helping sustain the resource. Deep geothermal can also supply heat directly to homes and businesses through district heating networks, without generating electricity at all.

Ground source heat pumps

The second, far more widespread approach does not need deep heat at all. Just a few metres below the surface, the ground stays at a steady, mild temperature year-round, warmer than the air in winter and cooler in summer. A ground source heat pump circulates fluid through buried pipes to absorb that warmth, then concentrates it to heat a building.

A heat pump is not generating energy from scratch; it is moving and upgrading heat that is already there, using some electricity to do so. Because it delivers several units of heat for each unit of electricity it consumes, it is highly efficient, which is why heat pumps are central to plans for low-carbon heating.

Why geothermal stands out

Geothermal's defining strength is reliability. Where solar and wind are intermittent, rising and falling with the weather, geothermal is constant. A geothermal plant can run around the clock, in any season, regardless of conditions above ground.

Solar and wind give you energy when nature allows; geothermal gives it to you on demand, which makes it a valuable steadying force in a renewable system.

This makes geothermal what engineers call baseload or dispatchable power, the kind that can run continuously and help balance an electricity grid leaning on variable sources. It also has a small physical footprint compared with the land needed for wind or solar farms of similar output, and it produces very low emissions in operation. Once a plant is built, it can run for decades.

The limits

If geothermal is so reliable, why is it not everywhere? The honest answer comes down to geology and cost.

Ground source heat pumps avoid most of these problems, since they rely on shallow, mild temperatures rather than deep heat. Their main drawback is the upfront cost of installation, including the ground works to lay the pipes.

Geothermal in the UK

Britain is not a volcanic country, so it lacks the dramatic high-temperature resources of Iceland. That has long kept large-scale geothermal power off the agenda. But the picture is more promising than that suggests.

For heat, the opportunity is real. Ground source heat pumps work anywhere in the UK, because the shallow ground temperature is stable nationwide, and they are part of the toolkit for cutting emissions from home heating. Meanwhile, deep geothermal heat is being explored where conditions allow: granite in Cornwall, for example, holds heat that projects there aim to bring up for power and district heating, and warm water in disused, flooded coal mines is being investigated as a source of low-carbon heat for nearby communities. The British Geological Survey maps where these resources lie.

So while geothermal is unlikely to dominate UK electricity, it has a genuine role in low-carbon heating, an area that is harder to decarbonise than power generation and where steady, weather-independent heat is especially valuable.

The bottom line

Geothermal energy taps the heat stored inside the Earth, using it directly for warmth or to generate electricity. Its great advantage is that it is constant and weather-independent, providing reliable round-the-clock power and efficient heating in a way that solar and wind cannot. Its limits are geological and financial: deep power generation needs hot rock near the surface and costly drilling, which restricts it to favourable locations. But ground source heat pumps work almost anywhere, including across the UK, making geothermal a quietly important part of the move to low-carbon heat, even in a country with no volcanoes.

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