| name | flue-gas-desulfurization |
| description | Flue gas desulfurization (FGD) — wet limestone scrubbing, SO2 removal efficiency, L/G ratio, spray tower sizing, gypsum byproduct, dry/semi-dry FGD, EPA MATS limits, forced oxidation. |
| metadata | {"priority":7,"promptSignals":{"phrases":["flue gas desulfurization","FGD","SO2 scrubbing","limestone scrubbing","SO2 removal","wet scrubber SO2","gypsum byproduct"],"minScore":3}} |
Flue Gas Desulfurization — Complete Skill
SO₂ Chemistry — Wet Limestone Process
Absorption reaction:
SO₂(g) + H₂O → H₂SO₃ → H⁺ + HSO₃⁻
HSO₃⁻ → H⁺ + SO₃²⁻
Limestone neutralization:
CaCO₃ + SO₂ + ½H₂O → CaSO₃ · ½H₂O + CO₂
Forced oxidation (air injection — modern standard):
CaSO₃ · ½H₂O + ½O₂ → CaSO₄ · 2H₂O (gypsum)
Full reaction: CaCO₃ + SO₂ + ½O₂ + 2H₂O → CaSO₄ · 2H₂O + CO₂
pH control:
Optimal pH: 5.5–6.0 (below → calcium sulfate precipitation risk; above → limestone dissolves slower)
Limestone quality: > 95% CaCO₃; d50 < 30 μm (fine grinding improves reaction rate)
Overall stoichiometry:
Limestone consumption rate: L_CaCO₃ = ṁ_SO₂ × M_CaCO₃ / (M_SO₂ × η × stoich_excess)
Stoich excess: typically 1.03–1.10 (3–10% excess limestone)
Gypsum production:
ṁ_gypsum = ṁ_SO₂ × M_CaSO₄·2H₂O / M_SO₂ = ṁ_SO₂ × 172/64 = 2.69 × ṁ_SO₂ [kg/kg SO₂]
Process Description — Wet Limestone FGD
Flue gas path:
Boiler → ESP/baghouse (remove fly ash) → FGD absorber tower → mist eliminators → clean stack
Optional: flue gas reheater (GGH) to prevent condensation in stack
Absorber types:
- Open spray tower: most common; vertical; countercurrent spray
- Jet bubbling reactor: submerged gas injection through liquid pool
- Packed tower: structured packing; higher efficiency; fouling risk with high solids
- Venturi scrubber: high-velocity contact; high ΔP; less common for FGD
Spray Tower Design
Gas-liquid contact:
Countercurrent: gas up; slurry spray down; maximum driving force
Cross-flow: gas through; spray perpendicular; lower pressure drop
L/G ratio (liquid to gas):
L/G = (liquid flow [L/hr]) / (gas flow [m³/hr NTP]) = 10–25 L/m³
Higher L/G → more contact → higher removal; more pump energy
Number of transfer units (NTU):
NTU = ln[(y_in - y_out)/(y_out - y_in)] / LMTD [for dilute systems]
or NTU = ∫ dy/(y - y*) [general form; y = SO₂ mole fraction]
Height of transfer unit (HTU):
HTU = G / (K_ya × A_tower) [m; K_ya = overall volumetric mass transfer coefficient]
K_ya ≈ 0.05–0.5 s⁻¹ depending on spray density and droplet size
Tower height:
Z = NTU × HTU [m]
Tower diameter:
Gas velocity: V_gas = 2–5 m/s in absorber (low to prevent mist entrainment)
A_tower = Q_gas / V_gas → D = √(4A/π)
SO₂ removal efficiency:
η = (y_in - y_out) / y_in × 100% = 95–99% achievable
Forced Oxidation System
Air injection: compressed air to the absorber sump
Agitators: mix slurry; prevent settling; distribute oxidation air
Oxidation completion: 96–99% conversion of CaSO₃ → CaSO₄ required for dewatering
Incomplete oxidation → CaSO₃ slurry (hard to dewater; not marketable)
Air flow requirement:
Q_air = ṁ_CaSO₃ × (M_air/M_SO₂) × (1/0.21) × 1.2 [stoichiometric + 20% excess]
Dewatering — Gypsum Product
Primary dewatering: hydrocyclones; reduce solids to 40–60% moisture
Secondary dewatering: vacuum belt filter or centrifuge; 90% dry solid (10% moisture)
Gypsum quality: > 90% CaSO₄ · 2H₂O for wallboard market; < 1% chloride; < 50 ppm MgO
Gypsum market: can be sold for wallboard (calcium gypsum plasterboard) if specification met
Or: landfill disposal (zero-value)
Reagent Preparation
Limestone grinding:
Wet ball mill → limestone slurry 20–30% solids; d50 < 30 μm (fine = better reactivity)
Ball mill motor: P = f(throughput, grindability index)
Fresh water:
To makeup for gypsum moisture + water vapor in flue gas + leakage
Water balance: Q_makeup = Q_gypsum_moisture + Q_vapor_exit - Q_vapor_inlet
Chloride buildup:
Chlorides (from coal HCl) accumulate in slurry → corrosion; gypsum contamination
Blowdown required: Cl⁻ ≤ 20,000 ppm in slurry (typical control point)
Dry / Semi-Dry FGD
Dry Lime Injection
CaO or Ca(OH)₂ powder injected into hot flue gas
No liquid handling; simpler; lower removal efficiency (50–70%)
Used for smaller boilers; distillate fuels; low sulfur applications
Spray Dry Absorber (SDA / SDS)
Slaked lime slurry atomized into flue gas; evaporation cools gas + reacts SO₂
60–90% removal; produces dry powder waste (CaSO₃ + CaSO₄ + excess lime)
Requires downstream baghouse for product capture
Operating temperature: 20–40°C above adiabatic saturation temperature to maintain dry product
Circulating Dry Scrubbing (CDAS)
Recirculate spent absorbent; high cake-to-fresh reagent ratio; efficiency up to 95%
EPA / Regulatory Limits (MATS — Mercury and Air Toxics Standards, 40 CFR Part 63)
New Source Performance Standards (NSPS 40 CFR Part 60 Subpart Da):
New coal boilers: SO₂ ≤ 1.4 lbs/MMBtu OR 90% removal (whichever is less stringent)
Best Achievable Control Technology (BACT): site-specific
MATS (2012, existing sources):
SO₂: addressed separately as acid gas surrogate; 0.20 lb/MMBtu
PM: 0.03 lb/MMBtu
EU IED (Industrial Emissions Directive 2010/75/EU):
For coal plants > 300 MW: SO₂ ≤ 150 mg/Nm³ (new BAT conclusions 2017)
Existing: 200 mg/Nm³ with derogations
Liquid Waste Treatment
FGD wastewater:
Contains: heavy metals (Hg, Se, As, Pb), chlorides, suspended solids
Treatment: neutralization → precipitation → clarification → chemical oxidation (selenium) → filtration
Discharge to surface water: permit-based (EPA ELG effluent limits for steam electric)
Output
Provide: SO₂ removal efficiency [%], L/G ratio [L/m³], tower diameter D [m] and height Z [m], limestone consumption [kg/hr], gypsum production [tonne/day], oxidation air flow [Nm³/hr], absorber gas velocity [m/s], pressure drop through absorber [Pa], reagent slurry concentration [% solids], chloride control blowdown rate [m³/hr], applicable regulatory limit (MATS or EU IED), and annual reagent + disposal cost [$].