This is the 2D plan-view companion to the 3D Combined Sewer Overflow simulator: the same rational-method hydraulics, viewed from directly above the pipe network instead of in perspective. A combined sewer carries sanitary sewage and street stormwater in the same pipe. In dry weather an interceptor easily carries the flow to the treatment plant. During a storm, runoff is added on top — and if the combined flow exceeds the interceptor's fixed capacity, a regulator structure spills the excess, untreated, straight into the river through a CSO outfall.
Q_storm = C_eff · i · A / 360 (rational method, m³/s)
C_eff = C_base · (1 − retention/100)
Q = Q_dry + Q_storm (combined flow)
CSO = max(0, Q − Q_cap) (overflow, m³/s)
Load = CSO · 150 mg/L ≈ CSO · 0.15 kg BOD/s
- i — rainfall intensity (mm/hr); A = 25 ha fixed catchment; C_base = 0.65 typical urban runoff coefficient.
- Retention slider — permeable pavement, bioswales and rain gardens that intercept rain before it reaches the pipe, lowering C_eff.
- Interceptor capacity — the fixed conveyance rating of the trunk sewer to the treatment plant; historically undersized in older combined systems.
- Once Q exceeds Q_cap, the regulator diverts the excess — drawn as the reddish-brown stream leaving the outfall into the river, distinct from the blue treated-flow branch.
- Drag the plan to pan, scroll (or pinch) to zoom — the schematic is drawn at true relative scale, so the catchment, interceptor chamber, treatment plant and river outfall keep their positions as you move around.
Real-world relevance: this is the same rational-method sizing and overflow-triggering logic used by cities (e.g. under the US EPA's CSO Control Policy) to plan interceptor upsizing, storage tunnels and green infrastructure to cut annual overflow events.