🇮🇳 GATE Civil Engineering · flashcards
GATE Civil Engineering Environmental Engineering Flashcards
50 question-and-answer cards covering Environmental Engineering as it is examined in GATE Civil Engineering. 24 of them are printed below, taken from across the deck — no signup, no paywall on the preview.
24 sample cards from the Environmental Engineering deck
Sampled from the end of the deck, so these are different cards from the ones shown on the syllabus page.
Compare slow sand filters and rapid sand filters on filtration rate and pretreatment.
Slow sand filter: rate $\approx 100$–$200\ \text{L/m}^2/\text{h}$, no coagulation needed, removes bacteria via schmutzdecke. Rapid sand filter: rate $\approx 3000$–$6000\ \text{L/m}^2/\text{h}$, requires prior coagulation–sedimentation, cleaned by backwashing.
What is breakpoint chlorination?
It is the point at which enough chlorine has been added to satisfy all demand (oxidizing ammonia and organics); beyond it, added chlorine appears as free available residual chlorine. The dip-and-rise of the residual curve defines the breakpoint.
What forms of chlorine residual exist and which is the stronger disinfectant?
Free residual ($\ce{HOCl}$ and $\ce{OCl-}$) and combined residual (chloramines). $\ce{HOCl}$ (hypochlorous acid) is the strongest disinfectant; free chlorine is far more effective and faster than combined chloramines.
Why does chlorine disinfection efficiency decrease at higher pH?
Chlorine in water forms $\ce{HOCl <=> H+ + OCl-}$. At higher pH the equilibrium shifts toward the weaker disinfectant $\ce{OCl-}$; the strong germicidal $\ce{HOCl}$ dominates below pH $\approx 7.5$, so low pH gives better disinfection.
Estimate the quantity of domestic wastewater from water supply, and give typical infiltration allowance.
Wastewater (dry weather flow) $\approx 70$–$80\%$ of the water supplied. Additional infiltration/inflow of groundwater into sewers is allowed at about $5000$–$50000$ L/ha/day depending on sewer condition and water table.
What is the difference between dry weather flow (DWF) and the maximum sewer design flow?
DWF is the average daily sanitary sewage flow. Sewers are designed for peak flow $\approx 3 \times \text{DWF}$ (and checked for minimum flow $\approx \tfrac{1}{2}\,\text{DWF}$ for self-cleansing).
What is the self-cleansing velocity in sewers and the typical design value?
It is the minimum velocity that prevents deposition of solids, typically $0.6$ m/s for sewage; design velocities are kept between about $0.6$ and $3.0$ m/s to avoid both silting and scouring.
Which unit operations constitute primary treatment of wastewater?
Screening, grit removal (grit chamber), and primary sedimentation. Primary treatment is mainly physical, removing floating and settleable solids and reducing BOD by about $30$–$40\%$.
Typical BOD and suspended solids removal efficiency of primary sedimentation?
Primary sedimentation removes about $30$–$40\%$ of BOD and $50$–$70\%$ of suspended solids.
What is the purpose of a grit chamber and the velocity maintained in it?
A grit chamber removes inorganic heavy particles (sand, gravel) while keeping organic matter in suspension. A horizontal velocity of about $0.3$ m/s is maintained so that grit settles but organics do not.
Name the two main types of biological secondary treatment processes.
Attached-growth (fixed-film) processes such as trickling filters and RBCs, and suspended-growth processes such as the activated sludge process (ASP). Both use microbes to oxidize dissolved/colloidal organic matter.
Define F/M ratio (food-to-microorganism ratio) in the activated sludge process.
$$\frac{F}{M} = \frac{Q\,S_0}{V\,X}$$ where $Q$ = flow, $S_0$ = influent BOD, $V$ = aeration tank volume, $X$ = MLSS. Typical conventional ASP: $0.2$–$0.5\ \text{kg BOD/kg MLSS/day}$.
Define the sludge volume index (SVI) and a good operating value.
$$\text{SVI} = \frac{\text{settled sludge volume (mL/L) after 30 min}\times 1000}{\text{MLSS (mg/L)}}$$ Good settling sludge has SVI between $50$ and $150$ mL/g; values $>150$ indicate bulking.
What is sludge age (mean cell residence time) in the activated sludge process?
$$\theta_c = \frac{V\,X}{Q_w X_r + Q_e X_e} \approx \frac{\text{mass of MLSS in tank}}{\text{mass of SS wasted per day}}$$ Typical conventional ASP: $5$–$15$ days.
Compare a high-rate trickling filter with a standard-rate trickling filter.
Standard-rate: hydraulic loading $1$–$4\ \text{m}^3/\text{m}^2/\text{day}$, no recirculation, higher efficiency (~$80$–$85\%$ BOD). High-rate: hydraulic loading $10$–$40\ \text{m}^3/\text{m}^2/\text{day}$, uses recirculation, lower per-pass efficiency but handles higher loads.
State the NSF/Velz efficiency formula for a single-stage trickling filter (without recirculation).
$$E = \frac{100}{1 + 0.4432\sqrt{\dfrac{u}{V\,F}}}$$ where $u$ = BOD load (kg/day), $V$ = filter volume ($\text{m}^3$), and $F$ = recirculation factor (= 1 if no recirculation).
What are the CPCB general effluent discharge standards for BOD into inland surface water?
For discharge into inland surface waters: $\text{BOD}_5 \leq 30$ mg/L, suspended solids $\leq 100$ mg/L, pH $5.5$–$9.0$, and COD $\leq 250$ mg/L (CPCB general standards).
What is the prescribed effluent BOD limit for discharge onto land for irrigation and into public sewers (CPCB)?
Discharge on land for irrigation: $\text{BOD}_5 \leq 100$ mg/L. Discharge into public sewers: $\text{BOD}_5 \leq 350$ mg/L.
Name the common methods of ultimate sludge disposal.
Sludge thickening, anaerobic digestion, dewatering (drying beds/centrifuge/filter press), followed by ultimate disposal: land application, sanitary landfilling, incineration, or use as soil conditioner/fertilizer.
What gas is produced in anaerobic sludge digestion and what is its main use?
Anaerobic digestion produces biogas, mainly methane ($\ce{CH4}$, ~$65$–$70\%$) and $\ce{CO2}$ (~$30\%$). The methane is combustible and used as fuel for heating digesters and power generation.
List common applications for reuse of treated sewage.
Agricultural and landscape irrigation, industrial cooling and process water, groundwater recharge, toilet flushing/dual plumbing, construction, and creation of recreational/ornamental water bodies. Higher-contact reuse requires higher treatment (tertiary/disinfection).
Classify air pollutants into primary and secondary, with examples.
Primary pollutants are emitted directly: $\ce{CO}$, $\ce{SO2}$, $\ce{NO}$, particulates, hydrocarbons. Secondary pollutants form by reaction in the atmosphere: ozone ($\ce{O3}$), PAN, and photochemical smog (from $\ce{NOx}$ + hydrocarbons + sunlight).
Name the main sources and a key impact for $\ce{SO2}$ air pollution.
Sources: combustion of sulphur-bearing fossil fuels (coal, oil), smelting. Impact: respiratory irritation and acid rain via $$\ce{SO2 + H2O -> H2SO3},\quad \ce{2SO2 + O2 + 2H2O -> 2H2SO4}$$ damaging vegetation, materials and aquatic life.
Which air pollution control devices are best for fine particulates, and on what principle does an ESP work?
For fine particulates: electrostatic precipitators (ESP) and fabric (bag) filters are most efficient ($>99\%$). An ESP charges particles with a high-voltage corona and collects them on oppositely charged plates by electrostatic attraction; settling chambers/cyclones only handle coarse particles.
What this deck covers
The Environmental Engineering deck follows the GATE Civil Engineering Environmental Engineering syllabus — 4 chapters and 21 topics — so questions land on material that is genuinely examinable rather than trivia around it. That works out to roughly 12.5 cards per chapter.
Answers are written to be recallable, not just readable — averaging about 208 characters, which is long enough to carry the reasoning and short enough to say out loud.
A deck like this earns its keep on the second and third pass. Read the syllabus first so you know the shape of the subject, then use the cards to find the specific facts that have not stuck.
Environmental Engineering flashcards FAQ
How many Environmental Engineering flashcards are in this GATE Civil Engineering deck?
50 cards. This page previews 24 of them, sampled evenly across the deck so you can judge the difficulty before installing anything.
Are these GATE Civil Engineering flashcards free?
Yes. The preview here is free to read with no signup, and the full 50-card deck is free inside the Examius app.
What do the Environmental Engineering cards cover?
They follow the GATE Civil Engineering Environmental Engineering syllabus — 4 chapters and 21 topics — so the questions track what is actually examinable.
How should I use these flashcards?
Read the syllabus first so you know the shape of the subject, then drill the deck. Examius schedules each card with spaced repetition, so cards you keep missing come back sooner and ones you know drift further apart.