Storm overflow register · Anglian Water

Bozeat sewage works: storm overflow spills 2025

Bozeat sewage treatment works, run by Anglian Water, has 1 monitored storm overflow discharging to Grendon Brook River Nene. In 2025 it recorded 60 spills totalling 720 hours, against 98 spills and 1,494 hours in 2024. By hours spilling, it ranks 21 of 419 Anglian Water works, where 1 spilled longest.

Works size: 2,116 population equivalent (BOZEAT 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.

JanFebMarAprMayJunJulAugSepOctNovDecBozeat STW1 Jan 2025 10:00 GMT, 14 h3 Jan 2025 00:00 GMT, 22 min3 Jan 2025 00:24 GMT, 36 min8 Jan 2025 00:00 GMT, 52 min8 Jan 2025 00:52 GMT, 9.5 h8 Jan 2025 15:24 GMT, 8.6 h9 Jan 2025 00:00 GMT, 7 h9 Jan 2025 07:00 GMT, 8 min9 Jan 2025 07:08 GMT, 20 min9 Jan 2025 07:28 GMT, 18 min9 Jan 2025 07:46 GMT, 2 min9 Jan 2025 08:00 GMT, 8 min9 Jan 2025 08:10 GMT, 52 min9 Jan 2025 09:04 GMT, 6 min9 Jan 2025 09:12 GMT, 3.3 h9 Jan 2025 12:44 GMT, 16 min9 Jan 2025 17:28 GMT, 6.5 h10 Jan 2025 00:00 GMT, 15.8 h10 Jan 2025 20:16 GMT, 2.2 h11 Jan 2025 19:06 GMT, 2 min11 Jan 2025 21:36 GMT, 2 min12 Jan 2025 12:50 GMT, 2 min12 Jan 2025 14:08 GMT, 2 min12 Jan 2025 17:16 GMT, 2 min26 Jan 2025 00:00 GMT, 24 h27 Jan 2025 00:00 GMT, 24 h28 Jan 2025 00:00 GMT, 24 h29 Jan 2025 00:00 GMT, 24 h30 Jan 2025 00:00 GMT, 24 h31 Jan 2025 00:00 GMT, 24 h6 Feb 2025 15:44 GMT, 8.3 h7 Feb 2025 00:00 GMT, 6.5 h7 Feb 2025 10:14 GMT, 4 min8 Feb 2025 00:00 GMT, 24 h9 Feb 2025 00:00 GMT, 24 h10 Feb 2025 00:00 GMT, 24 h11 Feb 2025 00:00 GMT, 24 h15 Feb 2025 00:00 GMT, 5.5 h15 Feb 2025 05:30 GMT, 18.5 h16 Feb 2025 00:00 GMT, 24 h17 Feb 2025 00:00 GMT, 12.3 h24 Feb 2025 00:48 GMT, 12.9 h24 Feb 2025 14:10 GMT, 2.3 h24 Feb 2025 16:48 GMT, 7.2 h25 Feb 2025 00:00 GMT, 13.1 h25 Feb 2025 18:54 GMT, 5.1 h26 Feb 2025 00:00 GMT, 24 h27 Feb 2025 00:00 GMT, 24 h28 Feb 2025 00:00 GMT, 24 h21 Apr 2025 18:54 GMT, 2 min21 Apr 2025 18:58 GMT, 2 min21 Apr 2025 19:02 GMT, 100 min21 Apr 2025 20:42 GMT, 12 min21 Apr 2025 20:54 GMT, 16 min22 Apr 2025 20:34 GMT, 2 min23 Apr 2025 02:08 GMT, 2 min23 Apr 2025 02:10 GMT, 2 min23 Apr 2025 02:18 GMT, 2 min23 Apr 2025 02:20 GMT, 32 min23 Apr 2025 03:46 GMT, 6.9 h3 Jun 2025 11:40 GMT, 116 min5 Jun 2025 14:58 GMT, 9 h6 Jun 2025 00:00 GMT, 8.3 h6 Jun 2025 21:48 GMT, 2.2 h7 Jun 2025 00:00 GMT, 4 min7 Jun 2025 00:36 GMT, 4.1 h7 Jun 2025 16:42 GMT, 7.3 h8 Jun 2025 00:00 GMT, 7.8 h6 Jul 2025 09:52 GMT, 4.1 h7 Jul 2025 03:58 GMT, 3.4 h8 Jul 2025 12:14 GMT, 11.8 h29 Aug 2025 07:52 GMT, 3.3 h14 Sep 2025 16:08 GMT, 7 h1 Nov 2025 02:06 GMT, 5.6 h1 Nov 2025 17:28 GMT, 5.3 h12 Nov 2025 07:42 GMT, 110 min13 Nov 2025 21:42 GMT, 2.3 h14 Nov 2025 00:00 GMT, 24 h15 Nov 2025 00:00 GMT, 24 h16 Nov 2025 00:00 GMT, 2.8 h19 Nov 2025 07:10 GMT, 4 h22 Nov 2025 15:36 GMT, 8.4 h23 Nov 2025 00:00 GMT, 4 h23 Nov 2025 06:30 GMT, 4.3 h29 Nov 2025 10:58 GMT, 18 min29 Nov 2025 12:00 GMT, 44 min9 Dec 2025 06:44 GMT, 5.4 h18 Dec 2025 12:16 GMT, 11.7 h19 Dec 2025 00:00 GMT, 24 h20 Dec 2025 00:00 GMT, 12 h

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.

010k20k30kJan 2025: 215 h spilling ≈ 7,795 m³ (range 3,105–19,570 m³)JanFeb 2025: 284 h spilling ≈ 10,290 m³ (range 4,099–25,832 m³)FebMar 2025: 0.0 h spilling ≈ 0.0 m³ (range 0.0–0.0 m³)MarApr 2025: 9.8 h spilling ≈ 355 m³ (range 142–892 m³)AprMay 2025: 0.0 h spilling ≈ 0.0 m³ (range 0.0–0.0 m³)MayJun 2025: 41 h spilling ≈ 1,479 m³ (range 589–3,714 m³)JunJul 2025: 19 h spilling ≈ 700 m³ (range 279–1,757 m³)JulAug 2025: 3.3 h spilling ≈ 120 m³ (range 48–300 m³)AugSep 2025: 7.0 h spilling ≈ 254 m³ (range 101–637 m³)SepOct 2025: 0.0 h spilling ≈ 0.0 m³ (range 0.0–0.0 m³)OctNov 2025: 88 h spilling ≈ 3,176 m³ (range 1,265–7,974 m³)NovDec 2025: 53 h spilling ≈ 1,925 m³ (range 767–4,833 m³)Dec
Cubic metres (m³), estimate. Hours are measured by the event duration monitor.

Longest single spills

Started (GMT)OverflowDurationEstimated volume
19 Dec 2025, 00:00Bozeat STW1.0 days347 – 2,185 m³
15 Nov 2025, 00:00Bozeat STW1.0 days347 – 2,185 m³
14 Nov 2025, 00:00Bozeat STW1.0 days347 – 2,185 m³
28 Feb 2025, 00:00Bozeat STW1.0 days347 – 2,185 m³
27 Feb 2025, 00:00Bozeat STW1.0 days347 – 2,185 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 estimate26,090 m³range 10,392 – 65,500 m³
In litres26.1 millionrange 10.4 million – 65.5 million L
Olympic swimming pools10at 2,500 m³ each
Organic load, as people's raw sewage39,135person-days of untreated BOD

Assumed spill rate while spilling: 4.0 – 25.3 L/s (central 10.1 L/s), from a dry-weather flow of 4.0 L/s.

Pollutant releasedLowCentralHighConcentration used (low / typical / high)
BOD₅ (organic load) 416 kg2,348 kg13,100 kg 40 / 90 / 200 mg/L
Low/high: Europe range, Ellis & Jenkins 2005; typical: UK, Ellis & Jenkins 2005 (both via botturi)
Suspended solids 1,091 kg11,088 kg47,226 kg 105 / 425 / 721 mg/L
Low/high: Europe range; typical: UK, Ellis & Jenkins 2005 (via botturi)
Ammonium-N 20 kg164 kg609 kg 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 12 kg68 kg354 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 1.0 trillion organisms26.1 trillion organisms655.0 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.

Bozeat STW

Storm tank at sewage works · discharges to Grendon Brook River Nene

Spills 2025
60 (720 hours) · down 39% on 2024
Spills 2024
98 (1,494 hours)
Long-term average
60.2 spills a year (monitored since 2021)
Monitor uptime
94% of the year
High-spill reason (company)
Not Applicable - Ongoing investigation
Investigation
Env Act (SODRP) investigation ongoing
Improvement
No improvement action in reporting period
WFD catchment
Grendon Brook (GB105032045040)
Outlet location
SP9020759231 (OS grid reference) · View on Apple Maps
EA ID / permit
AWS00110 · AW5NF421

How the estimate works

  1. 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].
  2. 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.
  3. Low spill rate = DWF. This is the method used by Giakoumis & Voulvoulis (2026), which they note likely underestimates storm loads [G&V].
  4. 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.
  5. Volume = spill rate × hours spilling, with hours taken from the event duration monitor.
  6. 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.

Sources

  1. EA: Water companies – environmental permits for storm overflows and emergency overflows
  2. EA: Water resources 2024 to 2025 – per capita consumption
  3. HBF: Foul sewer design – historic conventions (citing Escritt 1984 on infiltration)
  4. Giakoumis & Voulvoulis (2026), Environ. Sci.: Water Res. Technol., doi:10.1039/D5EW00860C
  5. Botturi et al. (2021), Crit. Rev. Environ. Sci. Technol. 51:1585 – CSO quality review, Table 2
  6. US EPA (2004) Report to Congress on CSOs and SSOs, chapter 4
  7. Urban Waste Water Treatment Directive, Article 2(6): 1 p.e. = 60 g BOD5/day
  8. Olympic-size swimming pool: 2,500 m³ at the nominal 2 m depth

← All Anglian Water works · Contains Environment Agency data licensed under the Open Government Licence v3.0. Spill start and stop times: © Environment Agency copyright and/or database right 2026. All rights reserved. They are water-company data and have not been verified by the Environment Agency. Works size: EEA Waterbase UWWTD. How to read the data.