Laceby sewage treatment works, run by Anglian Water, has 1 monitored storm overflow discharging to The Laceby Beck. In 2025 it recorded 50 spills totalling 366 hours, against 113 spills and 1,199 hours in 2024. By hours spilling, it ranks 60 of 419 Anglian Water works, where 1 spilled longest.
Works size: 3,203 population equivalent (LACEBY STW, UWWTD 2018). Used for the spill volume estimate.
Every spill in 2025
Each blue mark is one spill, placed by when it started and sized by how long it lasted. Hover over a mark for the date and duration.
Estimated spill volume by month, 2025
Hours spilling each month × the estimated spill rate for a works of this size. The bars are central estimates and the whiskers show the low–high range. Method.
Cubic metres (m³), estimate. Hours are measured by the event duration monitor.
Longest single spills
Started (GMT)
Overflow
Duration
Estimated volume
6 Jan 2025, 00:00
Laceby Water Recycling Centre
1.0 days
525 – 3,307 m³
30 Nov 2025, 00:00
Laceby Water Recycling Centre
21.0 h
459 – 2,893 m³
7 Jan 2025, 00:00
Laceby Water Recycling Centre
12.3 h
268 – 1,688 m³
15 Nov 2025, 00:00
Laceby Water Recycling Centre
11.0 h
240 – 1,516 m³
14 Nov 2025, 09:30
Laceby Water Recycling Centre
9.3 h
202 – 1,274 m³
Estimated 2025 spill volume and pollution
Estimate, not a measurement. Monitors record how long an overflow spills, not how much. This calculator back-calculates a spill rate from the size of the works, using the Environment Agency's permit formulae, and multiplies it by published storm-sewage concentrations. How it works.
Volume, central estimate20,059 m³range 7,990 – 50,359 m³
In litres20.1 millionrange 8.0 million – 50.4 million L
Olympic swimming pools8.0at 2,500 m³ each
Organic load, as people's raw sewage30,089person-days of untreated BOD
Assumed spill rate while spilling: 6.1 – 38.3 L/s (central 15.2 L/s), from a dry-weather flow of 6.1 L/s.
1.9 / 6.3 / 9.3 mg/L Low: Germany, Brombach 2005; typical/high: Paris range 3.3–9.3 midpoint and top, Gasperi 2012 (via botturi); no UK value found
Total phosphorus
9.6 kg
52 kg
272 kg
1.2 / 2.6 / 5.4 mg/L Low/high: Paris, Gasperi 2012; typical: Slovakia (via botturi). UK figure of 10 mg/L treated as an outlier
E. coli
799.0 billion organisms
20.1 trillion organisms
503.6 trillion organisms
10,000 / 100,000 / 1.0 million per 100 mL Median range at CSO and retention-tank outlets, Stott et al. 2018 (via botturi); typical = log midpoint
Low combines the low spill rate with low concentrations, and high combines high with high, so the true figure is very likely inside the range. Long spills become more diluted as they go on, so the central figure tends to overstate the load of long events. The calculator does not estimate the effect on the receiving water, which depends on river flow or tide at the time of the spill.
Laceby Water Recycling Centre
Storm tank at sewage works · discharges to The Laceby Beck
Spills 2025
50 (366 hours) · down 56% on 2024
Spills 2024
113 (1,199 hours)
Long-term average
89.2 spills a year (monitored since 2021)
Monitor uptime
93% of the year
High-spill reason (company)
Performance - Other maintenance / capital works (e.g. jetting)
Dry-weather flow (DWF) = population × water use per person × (1 + infiltration). Water use is 136.5 L per person per day, England's per-capita consumption for 2024–25 [EA]. Infiltration of groundwater into sewers is taken as 0–40% of that flow [Escritt, via HBF]. The Environment Agency defines DWF as PG + I + E [EA].
Population. The size of each works comes from the load entering it as reported under the Urban Waste Water Treatment Directive, in population equivalents (1 p.e. = 60 g of BOD a day) [UWWTD]. We treat population equivalent as population. That overstates flow where trade effluent adds load, and no official source links the two. Works serving fewer than 2,000 p.e. are not reported, so their size has to be entered by hand.
Low spill rate = DWF. This is the method used by Giakoumis & Voulvoulis (2026), which they note likely underestimates storm loads [G&V].
High spill rate = Formula A − flow to full treatment = (DWF + 1360P) − 3DWF. This is the largest flow the permit expects the storm tanks to handle before it passes on to treatment or overflows [EA]. The central rate is the geometric mean of the low and high rates.
Volume = spill rate × hours spilling, with hours taken from the event duration monitor.
Pollution = volume × published storm-sewage concentrations [Botturi et al.][US EPA]. Organic load is also shown as person-days of untreated sewage at 60 g of BOD per person per day [UWWTD].
What this cannot tell you. It gives no real flow for any single spill, and no effect on the river or sea, which depends on the flow, tide and the other pressures on the water at the time. It gives no figure for spills from overflows on the sewer network, which serve catchments of unknown size. It is a way to put hours into rough physical terms, not a substitute for flow monitoring.