Worked solution
Renewable energy sources such as wind, wave, solar and tidal power all depend directly on natural, variable environmental conditions — wind speed, the amount of sunlight, and the state of waves or tides — which are not constant and cannot be controlled or increased on demand in the way the fuel supply to a fossil fuel power station can. This creates two related problems: reliability, since these conditions cannot be guaranteed to occur exactly when electricity is needed (for example, calm, cloudy days may produce very little wind or solar output at a time of high electricity demand); and intermittency, since output from these sources frequently starts, stops, or varies continuously over short timescales, rather than providing a steady, predictable supply. Because electricity demand on the grid also varies throughout the day and does not necessarily match the pattern of renewable output, this creates a fundamental mismatch between when renewable electricity is generated and when it is actually needed, exactly the challenge described by the grid operator.
Energy storage technologies directly address this mismatch by storing surplus electricity at times when renewable generation exceeds demand, and releasing that stored energy back to the grid at times when demand exceeds renewable generation, effectively smoothing out the variability of renewable supply relative to demand. Compressed Air Energy Storage (CAES) achieves this by using surplus electricity to power compressors that force air into a sealed underground storage space (commonly a suitable underground cavern), storing it under high pressure. When electricity is needed, this compressed air is released and expanded through a turbine, which is coupled to a generator, converting the stored pressure energy back into electricity. Pumped hydro storage operates on a related principle but stores energy as gravitational potential energy rather than compressed air: surplus electricity powers pumps that move water from a lower reservoir up to a higher reservoir; when electricity is needed, this water is released to flow back downhill through turbines connected to generators, converting the stored gravitational potential energy back into electrical energy on demand.
The suitability of a location for either technology depends heavily on natural geology and topography. CAES requires access to suitable underground storage space, such as naturally occurring caverns or geological formations capable of safely holding compressed air at high pressure. Pumped hydro storage requires hilly or mountainous terrain with a significant height difference between two water reservoirs (existing or newly constructed), since the amount of energy that can be stored and later recovered depends directly on both the volume of water moved and the height it is raised and lowered through. Both technologies are generally most cost-effective when built at a large scale, and are most beneficial when sited close to significant sources of variable renewable generation and to existing grid infrastructure, so that surplus electricity can be captured and later returned to the grid efficiently, without excessive transmission losses or additional infrastructure costs. Together, by matching the pattern of storage and release to local geography and to the pattern of renewable generation and grid demand, technologies like CAES and pumped hydro storage provide a practical engineering response to the fundamental reliability and intermittency challenge posed by an electricity grid increasingly reliant on wind, solar and tidal generation.
Final answer: renewable sources such as wind, wave, solar and tidal power are reliant on natural conditions (wind speed, sunlight, wave/tidal state) that are not constant and cannot be controlled to match electricity demand, and their output is intermittent (frequently starting and stopping, or varying continuously), unlike a fossil fuel power station whose output can be increased or decreased on demand; energy storage addresses this mismatch between variable supply and variable demand by storing surplus electricity generated at times of high renewable output/low demand, for release back to the grid at times of low renewable output/high demand; CAES compresses air using surplus electricity and stores it (often in underground caverns) under high pressure, later releasing it through a turbine to generate electricity when needed; pumped hydro storage uses surplus electricity to pump water from a lower reservoir up to a higher reservoir, later releasing this water back downhill through turbines to generate electricity on demand; both systems are best suited to locations with the right natural geology/topography (e.g. underground caverns/geological formations for CAES; hilly or mountainous terrain with a large height difference between two reservoirs for pumped hydro) and are most cost-effective at a large scale, sited near existing grid infrastructure and close to large sources of variable renewable generation, so that the electricity produced can be stored and released efficiently without excessive transmission losses or costs
Marking scheme
Level 3 (11-15 marks): very good understanding across all three bullet points — clear, accurate explanation of reliability/intermittency problems for renewable sources; a full, accurate account of the operational systems for BOTH CAES and pumped hydro storage; and a clear, well-reasoned discussion of the types of locations best suited to energy storage (geology/topography, scale, proximity to generation and grid infrastructure). Very good knowledge of technical principles and energy changes; appropriate use of specialist terms throughout; excellent QWC/SPaG.
Level 2 (6-10 marks): good understanding covering most of the three bullet points, but with some imbalance (e.g. one storage technology covered in less detail than the other, or location discussion underdeveloped); some accurate use of specialist terms; good standard of QWC.
Level 1 (1-5 marks): limited understanding; basic, generalised knowledge of energy storage with little accurate detail on CAES/pumped hydro operation; little specialist terminology; basic grammar/organisation.
[0] marks: response not worthy of credit.