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FE section 16 of 16 · free theory

Environmental Engineering

The FE Civil environmental breadth: mass balance in reactors, the oxygen sag curve, water quality parameters, air quality, solid waste, and noise — with the treatment-plant detail living on its own pages.

FE foundationEnvironmental (10–15)

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Mass balance: the account book of environmental engineering

Nearly every environmental question is a mass balance in disguise: what enters a system either leaves, accumulates, or is created/destroyed by reaction. At steady state the accumulation term is zero, but the reaction term is not — that is the whole game.

Accumulation = In − Out + Generation − Consumption

Steady stateaccumulation = 0, so In + Generation = Out + Consumption

Q·C0 = Q·C + k·V·C   ⇒   C = C01 + k·td

C0, Cinfluent and effluent concentration of a completely mixed reactor
kfirst-order decay rate constant (time−1, base e)
td = V/Qdetention time — volume divided by flow
The k·V·C termfirst-order loss spread over the whole mixed volume — it survives at steady state

kT = k20 θT−20    k = 2.303 K

θtemperature coefficient: ≈ 1.047 for deoxygenation (k1), ≈ 1.024 for reaeration (k2)
k = 2.303Kconverts a base-10 rate constant K into the base-e k the equations expect

The mixed-reactor result C = C0/(1 + k·td) is not the plug-flow result C = C0e−kt. A completely mixed tank dilutes the influent instantly into the whole volume, so it removes less than a plug-flow reactor with the same detention time. The exam loves swapping them.

BOD, COD, TOC — what “oxygen demand” really means

Three different lab tests answer three different questions about the organics in water. Keep them straight and half the conceptual questions answer themselves:

COD ≥ BOD    BOD5 ≈ 0.68 × L0   (k = 0.23 day−1, base e, 20°C)

BODbiochemical oxygen demand — oxygen microbes consume breaking down the waste; BOD5 is the 5-day test, L0 the ultimate (total biodegradable) demand
CODchemical oxygen demand — oxygen needed to chemically oxidise everything oxidisable, biodegradable or not; always ≥ BOD
TOCtotal organic carbon — a direct carbon count, no oxygen chemistry involved

The BOD exertion curve itself, y = L0(1 − e−kt), lives on the Wastewater Treatment page — this page takes that result and drops it into a stream, which is where the oxygen sag begins.

The Streeter–Phelps oxygen sag

When organic waste enters a stream, two processes fight over the dissolved oxygen. Deoxygenation (rate k1) pulls oxygen out as microbes consume the BOD; reaeration (rate k2) pulls oxygen back in from the atmosphere. The oxygen deficit D = (saturation DO) − (actual DO) first grows, reaches a worst point, then recovers — the sag curve. The exam's favourite question is the worst point: the critical time tc and the critical deficit Dc.

D(t) = k1L0k2 − k1(e−k1t − e−k2t) + D0e−k2t

D(t)oxygen deficit at time t downstream of the discharge
L0ultimate BOD of the mixture just below the outfall
D0initial deficit at the mixing point (often small, rarely zero in real streams)
k1, k2deoxygenation and reaeration constants, same time base (day−1), base e

tc = 1k2 − k1 · ln [k2k1(1 − D0(k2 − k1)k1L0)]

tctime of maximum deficit — set dD/dt = 0 and solve; the logarithm is the natural log
Requires k2 > k1reaeration must outpace deoxygenation or the sag never recovers

DOmin = DOsat − Dc   where   Dc = D(tc)

DOsatsaturation DO at stream temperature (≈ 9.1 mg/L at 20°C)
Dcthe critical deficit — not the answer; subtract it from saturation to get the minimum DO

If the initial deficit is zero, the critical-time formula collapses to tc = ln(k2/k1)/(k2 − k1). And a useful check: with D0 = 0, Dc = (k1/k2)·L0·e−k1tc — the same number the full formula gives, from one line of arithmetic.

Water quality parameters at a glance

The exam tests whether you know what each parameter means and roughly what healthy looks like — not lab procedure. The short list:

Treatment trains: the 30-second version

The process-level calculations — detention times, overflow rates, F/M, MCRT, CT — live on their own pages. What the environmental section wants is the order of operations:

Air quality: criteria pollutants and dispersion

The Clean Air Act directs the EPA to set National Ambient Air Quality Standards (NAAQS) for six criteria pollutants: carbon monoxide (CO), lead (Pb), nitrogen dioxide (NO2), ozone (O3), particulate matter (PM10 and PM2.5), and sulfur dioxide (SO2). Primary standards protect public health. Note what is not on the list: carbon dioxide and methane are greenhouse gases, and benzene is a hazardous air pollutant — none has a NAAQS.

For dispersion, the exam works conceptually with the Gaussian plume: a stack emits at rate Q into wind of speed u, and the plume spreads downwind. Ground-level concentration rises with emission rate, falls as wind speed increases (more dilution), and falls with distance as the plume spreads and mixes. The controlling height is the effective stack height H = physical stack height + plume rise — a taller effective stack pushes the maximum ground-level concentration farther downwind and lowers it.

C(x, 0, 0) = Qπ u σyσz · e−H²/2σz²

Cground-level concentration on the plume centreline at downwind distance x
Qemission rate (mass/time)
umean wind speed at stack height — in the denominator: more wind, more dilution
σy, σzplume spread coefficients — grow with downwind distance and with atmospheric instability (class A, very unstable, spreads fastest; class F, very stable, spreads slowest)
Heffective stack height = physical height + plume rise

Know the shape of this equation, not its arithmetic: the exam gives you σ values from stability-class curves or tables and asks what happens when a variable changes, far more often than it asks you to evaluate the exponential.

Solid and hazardous waste

Municipal solid waste (MSW) generation in the US runs roughly 4–5 lb per person per day (≈ 2 kg/person/day) — the exam's favourite per-capita rate for “size the landfill cell” arithmetic. A modern sanitary landfill is an engineered containment system, not a hole in the ground:

Noise: adding what you cannot add arithmetically

Sound level in decibels is logarithmic, so 85 dB + 85 dB is not 170 dB. Combine sources in energy space (10L/10), add, then convert back. Two rules of thumb carry most questions:

Ltotal = 10 log10(Σ10Li/10)

Two equal sourcesadd 3 dB — doubling the energy is 10 log10(2) ≈ 3.01 dB
10 dB differencethe quieter source barely matters — combined level rises only ≈ 0.4 dB
Distance, point source−6 dB per doubling of distance (spherical spreading)
Distance, line source−3 dB per doubling of distance (cylindrical spreading, e.g. a highway)

Levels quoted in dBA are A-weighted to match human hearing — the weighting the exam uses for community and occupational noise questions.

Worked example Oxygen sag: does the stream violate the DO standard?

Given:

  • A waste discharge mixes into a stream. Just below the outfall: ultimate BOD L0 = 40 mg/L, initial deficit D0 = 1.5 mg/L.
  • Deoxygenation k1 = 0.30 day−1, reaeration k2 = 0.90 day−1 (both base e).
  • Saturation DO at stream temperature = 9.1 mg/L; the state standard requires minimum DO ≥ 4.0 mg/L.

Solution:

  1. Critical time: tc = [1/(0.90 − 0.30)] · ln[(0.90/0.30)(1 − 1.5(0.90 − 0.30)/(0.30 · 40))] = (1/0.60) · ln[3(1 − 0.075)] = 1.667 · ln(2.775) = 1.70 days.
  2. Critical deficit: Dc = [0.30 · 40/(0.90 − 0.30)](e−0.30·1.70 − e−0.90·1.70) + 1.5e−0.90·1.70 = 20(0.6005 − 0.2164) + 1.5(0.2164) = 7.68 + 0.32 = 8.00 mg/L.
  3. Minimum DO = 9.1 − 8.00 = 1.10 mg/L.
  4. 1.1 mg/L is far below the 4.0 mg/L standard — the discharge as modelled would violate it, and the worst point arrives about 1.7 days of travel time downstream.

Answer: tc ≈ 1.70 days, Dc ≈ 8.00 mg/L, minimum DO ≈ 1.1 mg/L — violates the 4.0 mg/L standard.

Worked example Completely mixed lagoon with first-order decay

Given:

  • A completely mixed lagoon: volume V = 50,000 m³, flow Q = 2,500 m³/day.
  • A pollutant decays by first-order kinetics with k = 0.10 day−1 (base e).
  • Influent concentration C0 = 180 mg/L. Steady state.

Solution:

  1. Detention time: td = V/Q = 50,000/2,500 = 20 days.
  2. Steady-state balance: accumulation is zero, so what enters (Q·C0) equals what leaves (Q·C) plus what reacts away (k·V·C).
  3. Solve: C = C0/(1 + k·td) = 180/(1 + 0.10 · 20) = 180/3 = 60 mg/L.
  4. Removal efficiency = (180 − 60)/180 = 67%.

Answer: Effluent concentration ≈ 60 mg/L (about 67% removal).

Worked example Combining noise sources, then moving away

Given:

  • Two machines at a property line produce 80 dB and 74 dB respectively (point sources).
  • The receptor then moves to twice the distance from both.

Solution:

  1. Combine in energy space: L = 10 log10(1080/10 + 1074/10) = 10 log10(108(1 + 10−0.6)) = 80 + 10 log10(1.2512) = 80 + 0.97 = 80.97 ≈ 81 dB.
  2. Sanity check: the 74 dB source is 6 dB quieter, so it contributes roughly 1 dB — 81 dB is consistent.
  3. Doubling the distance from a point source subtracts 6 dB: 81 − 6 = 75 dB at the new receptor.

Answer: ≈ 81 dB at the property line, ≈ 75 dB at twice the distance.

Free 5-question mini-quiz

Environmental Engineering

Choose your answer, then check it to see the result and explanation. SI units are used unless stated otherwise.

1. Just below a waste outfall, the ultimate BOD of the mixture is L0 = 25 mg/L with zero initial deficit. The deoxygenation constant is k1 = 0.30 day−1 and the reaeration constant is k2 = 1.20 day−1 (both base e). Saturation DO is 9.0 mg/L. What is the minimum dissolved oxygen in the sag?

2. A deoxygenation rate constant is reported as K = 0.10 day−1 (base 10). What is the equivalent base-e rate constant k for use in the Streeter–Phelps equations?

3. A completely mixed equalisation tank (V = 400 m³) receives Q = 100 m³/day of wastewater carrying a pollutant at 150 mg/L. The pollutant decays by first-order kinetics with k = 0.20 day−1. What is the steady-state effluent concentration?

4. Two identical machines each produce 85 dB at a property line. What is the combined sound level?

5. Which of the following is a criteria air pollutant with a National Ambient Air Quality Standard (NAAQS) under the Clean Air Act?

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