Every municipal discharge permit rests on one assumption — that someone inside the fence line understands what happens between the influent and the outfall well enough to keep the numbers in compliance. When that understanding is shallow, the consequences are not academic: permit violations, consent-decree fines, failed processes during wet weather, and capital projects sized on guesswork instead of calculations.
The gap is not a shortage of information. Textbooks cover the theory. Manuals of practice cover the procedures. Vendor literature covers the equipment. What practicing engineers and advanced students often lack is a single volume that connects the science to the sizing, follows the math through every step with real units, and covers the full treatment train — liquids, solids, support systems, and regulatory framework — in one coordinated reference.
This handbook closes that gap. Sixteen chapters follow the path municipal effluent takes from raw characterization through preliminary screening, primary clarification, biological treatment, nutrient removal, disinfection, solids processing, and advanced treatment for reuse — then extend into the supporting disciplines that determine whether the constructed facility actually works: hydraulics and layout, instrumentation and controls, energy management, permitting, and project delivery.
What this book helps you do:
- Size unit processes from first principles — clarifiers, aeration systems, digesters, filters, and chemical feed systems — using derivations you can follow and audit.
- Trace every worked example through full unit-tracked calculations in US customary units with SI equivalents, so the numbers are transparent and reproducible.
- Apply biological kinetics and oxygen-transfer theory to real reactor configurations rather than memorizing textbook equations disconnected from practice.
- Navigate the complete solids-processing train, from thickening through stabilization, dewatering, and land-application requirements.
- Evaluate disinfection alternatives, advanced filtration, and water-reuse treatment trains against current discharge and reuse requirements.
- Understand the hydraulic profile, energy balance, and instrumentation architecture that tie individual processes into a functioning facility.
Key topics: characterization and loading analysis; screening, grit removal, and flow equalization; primary clarification and chemically enhanced settling; suspended-growth and attached-growth biological processes; biological and chemical nitrogen and phosphorus removal; chlorine, ultraviolet, and ozone disinfection; sludge thickening, digestion, dewatering, and biosolids management; tertiary filtration, membrane processes, and potable reuse treatment trains; plant hydraulics; supervisory controls and data acquisition; energy auditing and biogas recovery; permitting, safety, and project delivery.
Who it is for: upper-level undergraduate and graduate students in civil and environmental programs, practicing engineers responsible for facility sizing, process troubleshooting, or permit compliance, and plant managers and operators seeking the engineering rationale behind the processes they oversee every day.
Open the book at the chapter that matches the process on your desk, follow the derivation to the worked example, and start building the quantitative confidence that separates a defensible calculation from a borrowed assumption.