| name | separator-design |
| description | Gas-liquid separator design — two-phase and three-phase separators, Souders-Brown coefficient (K-factor), vertical vs. horizontal separator sizing, retention time, mist eliminator (wire mesh, vane pack, cyclonic), inlet devices (half-pipe, diverter plate), nozzle sizing, ASME VIII vessel design, API 12J, degassing and sour service requirements, and offshore production separator train. |
| metadata | {"priority":7,"promptSignals":{"phrases":["separator design","gas liquid separator","Souders-Brown","mist eliminator","production separator","three-phase separator"],"minScore":3}} |
Gas-Liquid Separator Design — Complete Skill
Separator Types and Selection
Two-Phase Separator (Gas-Liquid)
Applications: wellhead, compressor suction knockout, flash vessels, process separators
Orientations:
- Vertical: good for high gas-to-liquid ratios; less slug capacity; smaller footprint; preferred for offshore
- Horizontal: handles slugging; large liquid surge volumes; easier to control; preferred onshore/high GOR inversion
Three-Phase Separator (Gas-Liquid-Liquid)
Added oil-water separation:
Oil pad floats between water boot and gas; interface level controlled by weir or level transmitter
Water retention time: 3–5 min (light oil); 5–20 min (heavy oil, emulsions)
Oil retention time: 3–5 min for preliminary; 10–20 min for stable emulsion
Horizontal configuration preferred: provides more interface area for coalescing
Gas Capacity (Souders-Brown / K-Factor Method)
Vertical Separator
Superficial gas velocity at liquid surface:
u_g = K × √[(ρ_L - ρ_G) / ρ_G] [m/s; K = Souders-Brown coefficient]
K-factor by separator type (Svrcek and Monnery):
K = 0.107 m/s (without mist eliminator; conservative)
K = 0.122 m/s (with wire mesh mist eliminator at 690 kPa; reduces to 0.085 at 7 MPa)
K = 0.15–0.18 m/s (vane-type mist eliminator, high-efficiency)
K_demisted = K_bare × pressure correction (K decreases at high pressure due to density ratio change)
Pressure correction for K (API 12J correlation):
K_P = K_atm × (P_design / 689)^(-0.5) [P in kPa; K_atm ≈ 0.107 m/s]
Required gas flow area:
A_G = Q_G / u_g [m²; Q_G = actual volumetric gas flow at separator T, P]
Q_G = ṁ_G / ρ_G [m³/s; ṁ_G = mass flow gas [kg/s]]
Vessel internal diameter:
D_i = √(4 × A_G / π) [m; round up to nearest standard size: 0.5, 0.6, 0.75, 0.9, 1.0, 1.2, 1.4, 1.6 m]
Example:
ṁ_G = 20 kg/s; ρ_G = 25 kg/m³; ρ_L = 800 kg/m³; P = 3 MPa; wire mesh
K = 0.107 × (3000/689)^(-0.5) = 0.107 × 0.479 = 0.051 m/s (high pressure; correct)
Alternatively, use API 12J table for specific conditions
u_g = 0.051 × √((800 - 25)/25) = 0.051 × 5.57 = 0.284 m/s (if no pressure correction), or apply correction
With K = 0.085 (7 MPa correction): u_g = 0.085 × 5.57 = 0.473 m/s
Q_G = 20/25 = 0.80 m³/s; A_G = 0.80/0.473 = 1.69 m²; D_i = √(4×1.69/π) = 1.47 m → select 1.5 m ID
Horizontal Separator Gas Capacity
Gas occupies upper portion; liquid lower:
A_G = (1 - f_L) × π × D²/4 [f_L = fraction of cross-section occupied by liquid; typically 0.5 for 50% liquid fill]
u_g = Q_G / A_G ≤ u_g,allow = K × √[(ρ_L - ρ_G)/ρ_G]
Effective length for gas:
L_eff = L_TT - (L_inlet_device) - (mist eliminator space) [L_TT = tangent-to-tangent length]
Typically L_TT = 3× to 4× D for two-phase; 4× to 5× D for three-phase
Liquid Capacity (Retention Time)
Liquid volume required:
V_liquid = Q_L × t_retention [m³; Q_L = liquid volumetric flow [m³/s]; t_retention = residence time [s]]
Retention times (Svrcek & Monnery guidelines):
Gas-liquid: t_L = 1–3 min (API 12J: minimum 1 min; typical 2–5 min)
Oil-water separation: t_oil = 3–5 min (clean fluids); t_water = 3–5 min
Crude oil (16–25°API, T = 40–60°C): t_oil = 10–20 min; t_water = 10–20 min (emulsion treatment)
Vertical separator liquid volume:
V_L = π/4 × D² × H_L [H_L = liquid height; typically 50% of D ≤ H_L ≤ D]
Surge volume: additional H_surge for slug handling (API 12J: 15% of total volume or slug volume, whichever greater)
Mist Eliminator Sizing
Wire Mesh Pad (Knitted Wire Mesh)
Standard 6" (150 mm) thick × full vessel diameter
K_mesh = 0.107–0.122 m/s (at atmospheric; reduce for high P)
ΔP across mesh pad = 25–75 Pa (clean); up to 250 Pa at design velocity
Minimum spacing from liquid surface: 0.15 m (gas disengagement zone below mesh)
Maximum loading: K ≤ 0.8 × K_flood (flooding velocity); re-entrainment above K_flood
Material: 304SS or 316SS knitted wire; for sour service: 316L SS or Monel; for FCC: proprietary alloys
Vane-Type (Chevron) Mist Eliminator
Higher liquid loading capacity; better for sticky/fouling service:
K_vane = 0.15–0.18 m/s (inherently better than wire mesh at high pressure)
ΔP across vanes: 100–500 Pa; drainage channels carry liquid away
Applications: high-pressure gas, sour gas, glycol absorbers
Cyclonic / Centrifugal Mist Eliminator
Spin-element bundles (Peerless Centurion, OTP):
G-force separation; efficient at high loadings; lower pressure drop than vanes
K_cyclone = 0.20–0.30 m/s at separator pressure
Applications: compressor suction KO drums, high-throughput
Inlet Devices
Purpose: distribute flow, prevent re-entrainment, reduce turbulence
Half-pipe inlet (schoepentoeter):
Divert flow horizontally or downward; low momentum impact; good for high GOR
ΔP = ρ_mix × u_inlet² / 2 → design u_inlet ≤ 15 m/s gas; ≤ 3 m/s liquid
Inlet diverter plate (impingement baffle):
Simple; effective for slug handling; directs gas up, liquid down
Plate area ≥ 1.2 × inlet nozzle area
Cyclonic inlet device (Peerless FLT, Shell SEPSEP):
Centrifugal pre-separation at inlet; reduces mist eliminator duty significantly
Useful for high liquid loading
Inlet nozzle velocity:
ρ_G × u²_G + ρ_L × u²_L ≤ 1,500 kg/(m·s²) for inlet momentum criterion (prevents re-entrainment)
Typical inlet nozzle velocity: 5–15 m/s gas; 2–5 m/s liquid
Vessel Sizing Summary
Overall Sizing Procedure
- Calculate Q_G, Q_L from process mass balance and densities
- Select K-factor (pressure; mist eliminator type)
- Calculate u_g,allow and A_G → D_i from gas capacity
- Check liquid retention time H_L for selected D → confirm V_L adequate
- Set L_TT: horizontal = 4D to 5D; vertical: L = D + H_L + 0.6 m (gas disengagement) + mist eliminator space + nozzle zones
- Check aspect ratio: H/D (vertical) = 3:1 to 4:1 typical; L/D (horizontal) = 3:1 to 5:1
- Design nozzle sizes (inlet, gas outlet, liquid outlet, drain, manway, instruments)
Standard vessel dimensions:
Heads: ASME 2:1 semi-ellipsoidal (depth = D/4); straight shell + 2 heads = L_TT + D/2
Manway: 18" (450 mm) minimum; 24" (600 mm) for vessels >600 mm ID
Nozzle minimum: DN 50 (2") for small flows; velocity check per API 12J
ASME VIII Vessel Design
Shell thickness:
t = P_d × R / (S_E - 0.6P_d) + C_A [P_d = design pressure; R = inside radius; S = allowable stress; E = joint efficiency; C_A = corrosion allowance]
Minimum: 6 mm (1/4") for shell < 600 mm; 8 mm for larger
MAWP: 110% of operating pressure (API 12J: operating + 20% or operating + 100 kPa, whichever greater)
Corrosion allowance:
C_A = 1.5–3.0 mm for sweet service CS; 3–6 mm for moderate sour; 0 mm for SS/clad
Standards and References
| Standard | Scope |
|---|
| API 12J | Specification for oil and gas separators |
| GPSA Engineering Data Book Section 7 | Gas-liquid separation theory and design |
| Svrcek & Monnery (1993) | Size separators the right way — sizing methodology |
| ASME Sec. VIII Div. 1 | Pressure vessel code |
| NACE MR0175/ISO 15156 | Materials for sour service (H₂S) |
Output
Provide: process conditions (gas and liquid mass flows [kg/s]; densities ρ_G, ρ_L [kg/m³]; P [kPa]; T [°C]; fluid composition; GOR), separator type (two-phase/three-phase; vertical/horizontal; basis for selection), gas capacity (K-factor at design pressure [m/s]; u_g,allow [m/s]; Q_G [m³/s]; A_G required [m²]; D_i selected [mm]), liquid capacity (Q_L [m³/s]; t_retention selected [min]; V_L required [m³]; H_L [mm] in vessel), vessel dimensions (D_i [mm]; L_TT [mm]; L/D ratio; head type), mist eliminator (type: wire mesh/vane/cyclonic; K_demisted; ΔP [Pa]; material), inlet device (type; inlet nozzle velocity [m/s]; momentum check [kg/m·s²]), nozzle summary (inlet/gas outlet/liquid outlet sizes [mm] with velocity check), vessel wall thickness t [mm] (ASME VIII; C_A; MAWP [kPag]), material selection (sweet/sour service; CS or SS; NACE MR0175 if H₂S), and applicable standard (API 12J; GPSA Sec. 7; ASME VIII).