Specialist solar panels for schools in Rugby
Rugby has 47 state-funded schools and colleges, and most of them are buying electricity in exactly the hours their own roofs could be making it. We start with the roof build up and the age of the covering, because across a school estate that is usually what decides which block goes first.
25.7% of the modelled year lands in July and August, on a roof that returns 882 kWh per kWp a year. The worked example below runs at 460 kWp, the size applied for at the nearest school scheme on record. Source: EU PVGIS v5.2, SARAH3, 10 degree pitch, 14 percent system loss.
Book a roof survey in Rugby- 1 teaching block
- 2 hall and kitchen
- 3 sports hall
- 4 1960s block, no array
- first phase
- later phase
Illustrative layout for an estate of this size. The array is drawn at about 345 kWp, roughly 53 percent of the 650 kWp these three roofs would hold, because a school sizes to the load it can use in term time rather than to the roof it has: generation it cannot use is exported at a much lower rate than it pays to import. The hatched block carries no array because its structure has not been assessed, which on a school of that era is the usual starting point rather than an exception. Your own figures, and which of your blocks can take an array, come from the roof survey.
Solar for education buildings across Warwickshire
A one kilowatt-peak array on a shallow pitched roof in Rugby models at 882 kWh a year, from modelled irradiation of 1,126 kWh per square metre in the plane of the array (EU PVGIS v5.2, SARAH3, 10 degree pitch, 14 percent system loss). That is within a few percent of our mean. Latitude is not the variable here. When the building is occupied is.
Scaled up, a 460 kWp array, sized to what the nearest school scheme on record applied for, 11 miles away at Coventry, models at about 405,700 kWh a year before shading, and needs roughly 1,366 square metres of clear roof. We take the size from the nearest real application rather than a round number, so the example is anchored to something a planning officer has already seen.
Spread across the year that is about 104,300 kWh landing in July and August and roughly 19,900 kWh across December and January. National Grid Electricity Distribution sets what may go back onto the network here, so the July figure is the one worth putting in front of a governing body first.
Rugby ranks 2 of 7 towns we cover in Warwickshire on modelled yield, against a national mean of 886 kWh per kWp. The county runs from 866 to 893, a spread of 27 kWh per kWp. Within Warwickshire that difference is small enough to ignore: where the building sits is not what decides this scheme, your consumption pattern is.
School solar on record near CV21
The Renewable Energy Planning Database holds no school scheme for the CV21 postcode district. Read that as a gap in the record, not a gap in the roofs: the database is reliable above one megawatt and thin below it, and a school array is typically a fifth of a megawatt.
Look 11 miles out and there is one: City College, Swanswell Street in Coventry, 460 kWp, applied for by EON Control Solutions Limited, which holds consent and is awaiting construction. None of our doing. It is a public planning record, and the nearest evidence available of how an application like yours is treated around here. Source: Renewable Energy Planning Database, Q1 2026.
Term dates against the Rugby generation curve
A Rugby school roof generates most in the weeks its buildings are closed. 25.7 percent of the modelled year lands in July and August alone (EU PVGIS v5.2), and the summer holiday takes roughly six of those nine weeks out of the timetable. July is the single strongest month here at 13.9 percent of the annual total, and it falls almost entirely inside the holiday.
Winter reverses it. December and January between them return 4.9 percent of the modelled year, and that is when the heating, the lighting and a full register are all drawing at the same time. The roof makes 6.2 times as much in July as it does in December, and August alone outproduces December by about 5.2 to one. 74 percent of the year arrives between April and September, and the point of that figure is not that the summer half goes unused, because April, May and June are full teaching months that draw hard. It is that the concentration peaks in the few weeks at the end of it when the building is shut.
Put the two calendars together and roughly 49 percent of a school's generation nationally lands on a session day, against about 71 percent for a business open every weekday. That gap is the whole difference between appraising a school roof and appraising any other commercial one, and it barely moves from town to town.
Daily shape compounds it. A school's load climbs from breakfast club, holds through the teaching day and falls away from about three in the afternoon, while generation is still strong until six in high summer. That is why we size against half hourly meter data rather than against annual consumption: the annual figure hides both problems.
None of that makes a Rugby scheme a bad one. It changes what the scheme should be: sized against the base load that runs whether or not the school is open, which on most sites is servers, comms, catering refrigeration, ventilation and hot water, with lettings, holiday clubs and summer works added on top. Where that base load is thin, the choices are storage, an export arrangement through National Grid Electricity Distribution, or a smaller array that consumes nearly everything it makes.
We set out the full treatment of the school year against the generation curve on the home page, and what it does to a payback figure under costs.
- generated while the school is open
- generated at a weekend or in the holidays
The same figures as a table
| Month | Session days | Output, kWh per kWp | School open | School closed |
|---|---|---|---|---|
| Jan | 20 | 23 | 15 | 8 |
| Feb | 15 | 38 | 20 | 18 |
| Mar | 21 | 72 | 49 | 23 |
| Apr | 12 | 102 | 41 | 61 |
| May | 17 | 119 | 65 | 54 |
| Jun | 21 | 121 | 85 | 36 |
| Jul | 11 | 123 | 44 | 79 |
| Aug | 0 | 104 | 0 | 104 |
| Sep | 20 | 81 | 54 | 27 |
| Oct | 17 | 50 | 27 | 23 |
| Nov | 21 | 29 | 20 | 9 |
| Dec | 15 | 20 | 10 | 10 |
| Year | 190 | 882 | 430 | 452 |
Grid connection through National Grid Electricity Distribution
National Grid Electricity Distribution is the network operator here, and their answer on export capacity shapes the design. Any commercial array above 3.68 kW per phase connects under G99 rather than G98, and the application fixes what you are allowed to push back onto the network. If the local network is tight, limiting export rarely breaks the case here: most of the generation is consumed on site while the building is working.
Across Warwickshire the planning database records 94 solar schemes totalling 1201 MW, of which 18 are operational (REPD Q1 2026).
Rugby schools, phase by phase
Rugby has 47 open state-funded schools and colleges on the DfE register teaching 18,945 pupils between them. Source: DfE Get Information About Schools.
The split is 37 primary, 8 secondary and 2 special, at an average of 403 pupils a site. That is 4.6 primaries for every secondary, which is the ratio that matters for a roof: a primary of a few hundred pupils usually offers a hall roof and one teaching block, while a secondary site carries a sports hall, a dining block and several flat roofs.
If your trust holds several of them, the sequencing question comes before the sizing question. Roof age, covering type and the state of the incoming supply vary block by block across an estate, and that is normally what sets the order of works.
Book a roof survey at your Rugby school
Lenzie Consulting Ltd arranges roof surveys for schools across Warwickshire. Send the school postcode and a rough idea of the roof area, and the last twelve months of half hourly meter data if the school holds it. We come back with what the roofs can carry, what they would generate against your own consumption, and the funding routes open to a school.
Lenzie Consulting Ltd arranges the survey and passes your details to an MCS-certified installation partner so they can quote. We do not carry out the installation ourselves.
Rugby school solar, answered
- How much would a school roof near Rugby generate?
- Modelled at 882 kWh per kWp a year, a 460 kWp array on a Rugby school models at about 405,700 kWh. What decides whether that is worth doing is how much of it the school uses itself, not the total. Source: EU PVGIS v5.2, SARAH3, 10 degree pitch, 14 percent system loss.
- How does the school year affect a solar scheme in Rugby?
- It goes somewhere, just not into the timetable. 25.7 percent of the Rugby generating year lands in July and August (EU PVGIS v5.2), and a closed school still runs servers, comms, refrigeration and ventilation. What that base load does not absorb is either stored, exported under an agreement with National Grid Electricity Distribution, or a sign the array is too big. We test which before sizing anything.
- Which network operator handles the connection at a Rugby school?
- Applications go to National Grid Electricity Distribution, who run the network across Warwickshire. An export-limited offer usually still works for a school, because the summer surplus is the part you were least likely to be paid much for anyway.
- What does Rugby require for solar on a school building?
- Roof-mounted solar on a non-domestic building often falls within permitted development under Part 14 of the General Permitted Development Order, subject to limits on how far the panels stand proud of the roof plane and, above a threshold, to prior approval from Rugby on siting and design. Listed buildings and conservation areas are the usual exceptions. We put the position to Rugby before a design is finalised.
- How many schools are there around Rugby?
- Rugby has 47 open state-funded schools and colleges on the DfE register, with 18,945 pupils on roll. Source: DfE Get Information About Schools. We survey across the whole of that area, and where a trust holds several sites we look at them in one pass.