IB ESS SL Topic 7 — Natural Resources Paper 1 & 2 Core idea ~12 min read

Storing and Saving Energy

Solar panels produce most of their electricity in the middle of the day. People use most of their electricity in the evening. Nothing is wrong with either fact, but together they create the single biggest problem in renewable energy — and storage is how we solve it.

📘 What you need to know

Why storage is needed at all

Some renewable sources produce energy intermittently, meaning they only generate power when conditions allow.

So there will be times when supply does not meet demand — and, just as awkward, times when supply is far greater than demand and the extra electricity has nowhere to go. Storage systems fix both halves of that problem: they store the excess when production is high and release it when demand exceeds supply.

One day of supply and demand The sun peaks at midday. People peak at dinner time. midnight midday midnight solar output surplus: charge the store evening demand peak discharge peak-shaving demand Storage moves the yellow surplus across to the blue peak
The gap between the two peaks is roughly six hours. Bridging it is what batteries, pumped hydro and thermal storage are all for.

How energy is stored

Batteries

Batteries store electricity as chemical energy, which is released when needed.

Pumped hydroelectricity storage (PHS)

PHS is a battery made of water and a hill. When there is surplus electricity, it is used to pump water uphill to a higher reservoir. When demand rises, that water is released back down through turbines to a lower reservoir, generating electricity on the way.

Pumped hydroelectricity storage Surplus electricity becomes water at a height, and waits there upper reservoir lower reservoir turbine and pump SURPLUS ELECTRICITY: PUMP UP windy nights, sunny middays HIGH DEMAND: LET IT FALL cold winter evenings water pumped uphill water falls, generating power Energy is stored as height, which is why you need the right landscape Dinorwig in Wales is one of the largest schemes of this kind
Nothing is created here. Some energy is lost in pumping, but a store that can be switched on in seconds is worth that loss.
PHS advantagesPHS disadvantages
Large capacity — stores huge amounts of surplus electricity from periods of high renewable outputGeographic limits — needs mountains, valleys and space for large reservoirs
Reliable — responds quickly to sudden demand increases, which is peak-shavingEnvironmental impact — dams and reservoirs damage ecosystems and disturb wildlife
Long lifespan — plants run for decades with low maintenanceEconomic cost — very high initial cost to build

Fuel cells

Fuel cells convert stored chemical energy, often hydrogen, directly into electricity.

Thermal storage

Thermal storage saves heat, which can later generate electricity or provide heating directly.

🧩

Four stores, four forms of energy

Batteries store it as chemical energy, pumped hydro as gravitational potential energy, fuel cells as chemical energy in hydrogen, and thermal storage as heat. If you can name the form, you can explain how the store works.

Peak-shaving

Storage systems are used for peak-shaving: levelling out periods of high demand so that supply can meet them. When electricity use spikes — a cold winter evening, for example — stored energy is released to cover the extra. That avoids blackouts and removes the need to fire up additional power stations just for a couple of hours.

Conservation and efficiency: two different things

The distinction examiners test Conservation = changing behaviour to use less energy
Efficiency = using technology and design that need less energy for the same task
Energy conservation (behaviour)Energy efficiency (technology)
Turning off lights when they are not in useInstalling low-energy LED lighting
Wearing warmer clothing or using natural ventilation instead of heating and air conditioningBuying energy-efficient appliances with high efficiency ratings
Walking, cycling or taking public transport instead of drivingDeveloping fuel-efficient transport, such as electric vehicles
Running machinery less often or at lower levelsDesigning buildings to conserve heat through better insulation and double glazing

The two work together. Efficient technology makes conservation easier, and efficiency measures are how conservation targets are usually achieved in practice.

Why it matters

Four examples worth learning

StrategyHow it worksHow effective it is
Smart lightingLED bulbs plus motion sensors, so lights are only on when a space is being usedLEDs use up to 80% less energy than traditional bulbs, and sensors cut waste in public buildings
Passive solar designLarge windows facing the sun and materials that store and release heat, so buildings warm themselvesEffective in regions with consistent sunlight; lowers bills and reduces the need for artificial heating
Designing goods to be recycledThe circular economy approach: longer-lasting products made from recyclable materials that can be reused or repairedCuts the energy needed to produce new materials, lowering industrial energy demand
Wind-assisted shippingLarge automated rotor sails or kite sails capture wind energy to help drive cargo shipsReduces fuel use by 10 to 30% depending on wind conditions, cutting greenhouse gas emissions
Why shipping is a clever example. Cargo ships are almost impossible to run on batteries — the crossing is too long and the load too heavy. Sails do not replace the engine, they just reduce how hard it has to work. When a source cannot be swapped out, using less of it is the realistic answer, and that is efficiency doing the job renewables cannot.

Worked examples

WE 1

Explain why energy storage is needed for renewable energy

Explain why energy storage systems are important for countries using large amounts of wind and solar power. (3 marks)

Point 1: the problem Wind and solar are intermittent, generating only when the wind blows or the sun shines, so supply does not always match demand. Point 2: what storage does Storage saves surplus energy when production is high and releases it when demand exceeds supply. Point 3: the result This gives a reliable supply and allows peak-shaving, so blackouts and extra power stations are avoided. Storage moves energy through time, from when it is made to when it is wanted use the word “intermittent” — it is the term the mark scheme is built around
WE 2

Evaluate pumped hydroelectricity storage

Outline how pumped hydroelectricity storage works and evaluate its use. (4 marks)

How it works Surplus electricity pumps water to a higher reservoir; when demand rises the water is released back down through turbines, generating electricity. For Very large capacity, quick response for peak-shaving, and plants last decades with low maintenance. Against: siting It needs specific landforms — mountains, valleys and space for reservoirs — so it can only be built in certain places. Against: impact and cost Dams and reservoirs damage ecosystems and disturb wildlife, and initial construction costs are very high. Excellent where the landscape allows it, impossible where it does not an evaluation needs a judgement; “it depends on geography” is a perfectly good one here
WE 3

Distinguish between energy conservation and energy efficiency

Distinguish between energy conservation and energy efficiency, giving one example of each. (3 marks)

Point 1: conservation Conservation means changing behaviour to use less energy, for example turning off lights or cycling instead of driving. Point 2: efficiency Efficiency means using technology and design that need less energy for the same task, such as LED bulbs or double glazing. Point 3: the link They are not opposites — efficient technologies are often how conservation is achieved in practice. Behaviour reduces the task; efficiency reduces the energy each task needs “distinguish” means write the contrast explicitly, not two separate definitions side by side

💡 Exam tips

⚠ Common mix-ups

That completes 7.2 Energy Sources: Uses & Management. The three pages run in one line: every source has a cost somewhere in its life, demand keeps rising and some industries cannot switch yet, so the practical answers are storing what we generate and needing less of it in the first place. Up next: What Counts as Waste, which turns to what happens at the other end of resource use — everything we throw away.

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