| name | lng-systems |
| description | LNG (liquefied natural gas) systems — liquefaction cycles (SMR, C3MR, DMR, AP-X), cryogenic equipment, BOG (boil-off gas) management, storage tank design (full containment), rollover prevention, NFPA 59A, ISO 28460, regasification, cold flow properties, marine LNG (IGF code), ASME VIII cryogenic vessels. |
| metadata | {"priority":7,"promptSignals":{"phrases":["LNG","liquefied natural gas","LNG liquefaction","LNG storage","LNG regasification","boil-off gas"],"minScore":3}} |
LNG Systems Engineering — Complete Skill
LNG Properties
LNG composition: primarily methane (85–99% CH₄) + ethane, propane, nitrogen
Boiling point (at 1 atm): −161.5°C (−259°F) for pure methane
Density (liquid): ρ_LNG ≈ 450–500 kg/m³ (varies with composition; vs. natural gas at 0.7 kg/m³ → 600× volume reduction)
Lower heating value (LHV): 50 MJ/kg; 22.5 MJ/L (versus gasoline: 32 MJ/L → LNG ~70% of gasoline energy density by volume)
Vapor pressure: 1–2 bar at storage temperature (slight overpressure in closed tank)
Joule-Thomson inversion temperature (methane): 650 K → at storage conditions (165 K), methane can be throttled without temperature rise issue (below inversion temperature → cools on expansion → enables liquefaction)
Latent heat of vaporization: 510 kJ/kg (methane at −161°C)
Flash fraction on pressure drop:
x_flash = c_p × (T_ambient - T_boil) / L_vap [x = kg vapor per kg liquid; c_p ≈ 3.5 kJ/(kg·K); T_ambient=20°C; T_boil=−162°C; L=510 kJ/kg → x ≈ 250% → can't flash to ambient without extensive vapor generation]
Liquefaction Cycles
SMR (Single Mixed Refrigerant) — LNG Canada, Shell
Working fluid: mixed refrigerant (N₂, CH₄, C₂H₄, C₃H₈, i-C₄H₁₀) composition optimized
Cycle: mixed refrigerant compressed → cooled (air/water) → phase-separated → throttled → cold refrigerant cools natural gas feed in MCHE (Main Cryogenic Heat Exchanger)
Efficiency: COP_SMR ≈ 0.4–0.5 (kJ of cooling per kJ of work)
Specific power: 0.35–0.45 kWh/kg LNG produced
Application: small-to-medium scale (1–5 mtpa); flexible; single main compressor → high reliability
C3MR (Propane Pre-Cooled Mixed Refrigerant) — Air Products (APCI)
Dominant technology: 60%+ of world LNG production (Qatar, Australia, Indonesia plants)
Two circuits:
- Propane pre-cooling (multi-stage): feed gas cooled to −35°C; high COP for warm range
- Mixed refrigerant main cycle: completes cooling from −35°C to −161°C in MCHE (aluminum plate-fin heat exchanger)
Efficiency: specific power 0.30–0.38 kWh/kg LNG (most efficient at large scale)
Scale: up to 10 mtpa per train (RasGas Q-Flex trains)
MCHE (Main Cryogenic Heat Exchanger):
Aluminum wound-coil; 50–65 m tall; 5–7 m diameter; tubes in shell; spiral wound
Differential thermal expansion: all aluminum → compatible CTEs; designed for Δ500°C thermal gradient
DMR (Dual Mixed Refrigerant) — Shell
Two separate MR circuits: warm MR (propane-equivalent pre-cooling) + cold MR
Advantage over C3MR: avoids propane (safety/cost); tunable; slightly better efficiency at partial loads
Used: Shell Pearl GTL, Prelude FLNG (floating LNG)
AP-X and Nitrogen Expander Cycles
AP-X (Air Products): C3MR + nitrogen expansion as third stage → extends above 8 mtpa limit
Nitrogen expander: simple; safe (no hydrocarbons in refrigerant); lower efficiency; used for peak-shaving plants and ship reliquefaction (lower volume, simpler)
Liquefaction Thermodynamics
Minimum work of liquefaction (Carnot):
W_min = ΔH_cool - T₀ × (s₁ - s₂) [kJ/kg; T₀ = ambient temperature; s₁, s₂ = specific entropy at ambient gas and LNG conditions]
W_min ≈ 700–900 kJ/kg (thermodynamic limit; from −160°C cooling)
Real cycles: W_actual = 1,000–1,600 kJ/kg → efficiency = W_min/W_actual = 55–70%
LNG Storage Tanks
Tank Types
Single containment:
Inner tank (9% Ni steel or Al) contains LNG; outer carbon steel/concrete for wind/snow only
No secondary barrier; berm or dike around tank; regulatory approval limited now
Ni steel: 9% Ni (ASTM A553): σ_y = 520 MPa at -196°C; Charpy impact V-notch ≥ 27 J at -196°C
Double containment:
Inner tank + outer concrete wall; outer wall stops liquid but not vapor
Gas dispersion from vapor release still possible
Full containment (standard for new construction — NFPA 59A, EN 1473):
Inner 9% Ni steel tank + prestressed concrete outer tank
Outer tank contains both liquid (on inner tank failure) and vapor (sealed)
Annular space filled with perlite or rockwool insulation
Design pressure: inner tank 20–30 mbar (slight overpressure for BOG management); outer concrete design for liquid fill of annular space
Membrane tanks (LNG ships and some land):
Primary membrane (Invar 36 — 36% Ni; or SS corrugated): thin (1–2 mm); connected to ship hull via thick insulation (Perlite/PUF)
GTT NO96 system: plywood + perlite + Invar membrane
GTT Mark III: corrugated SS 304L membrane
Membrane is not structural → all loads carried by hull or concrete
Cryogenic Insulation
Perlite (expanded volcanic glass): k ≈ 0.025–0.04 W/(m·K) at cryogenic T; dry nitrogen purge; inexpensive; loose-fill
PUF (polyurethane foam): k ≈ 0.022 W/(m·K); foam-in-place; used in membrane tanks
Aerogel blanket: k ≈ 0.012 W/(m·K); most effective per thickness; expensive; selective use
Vacuum insulation (MLI — multilayer insulation): k_effective ≈ 0.001 W/(m·K) at < 10⁻³ mbar; used in cryogenic transport vessels
Heat ingress calculation:
Q_ingress = U_overall × A_tank × (T_ambient - T_LNG) [W]
U_overall = 1 / (R_insulation + R_walls + R_film)
For 0.3 m perlite: R_ins = 0.3 / 0.025 = 12 m²·K/W → good for land tank
BOG rate: ṁ_BOG = Q_ingress / L_vap [kg/s]; typically 0.05–0.10% of tank capacity per day for well-insulated full-containment tank
Rollover Prevention
Rollover: LNG layers of different density (composition) stratify; if denser layer below less dense → unstable → sudden mixing → large BOG generation → overpressure
Cause: loading higher-density LNG on top of existing inventory; density inversion as lower layer warms and lightens; nitrogen-rich heel left from previous load
Detection: temperature sensors at multiple heights; density difference > 5 kg/m³ → rollover risk
Prevention:
Fill from bottom for high-density LNG (mixing during filling)
Fill from top for low-density LNG (stratification maintained)
Install mixing pump; circulate periodically
Monitor supercooling indicator (SCIs — rollover prediction algorithm)
Post-rollover BOG rate: 10–100× normal → pressure rise → PSV opening → vapor release → safety incident
BOG (Boil-Off Gas) Management
BOG rate: 0.05–0.15% of cargo per day for ship tanks; 0.025–0.08% for land tanks
Causes: heat ingress (dominant); loading/unloading (mechanical energy + warm LNG); pressure drop (flash BOG)
BOG handling options:
- Reliquefaction: compress BOG → cool → return to LNG; most common on modern ships (LNG carrier reliquefaction units)
- Burn as fuel: LNG carriers historically used steam boilers burning BOG; modern DFDE (dual-fuel diesel electric) or MEGI engines burn BOG + pilot fuel
- Compression + send to grid: land terminal BOG compressors → gas pipeline
BOG compressor: dry screw or reciprocating; cryogenic inlet (−100 to −150°C after partial condensation); ASME VIII Div.1 / API 619; piston rings: PTFE-based (no lubrication at cryogenic T)
Regasification
Process: pump LNG to high pressure → heat against ambient (open rack vaporizer: seawater) or glycol/water (submerged combustion vaporizer) → superheat to pipeline temperature → export at 50–80 bar
Open Rack Vaporizer (ORV): seawater at 10–25°C flows over aluminum panels; LNG vaporizes inside; environmental: seawater cooled 3–5°C → plume; FERC permits needed
Submerged Combustion Vaporizer (SCV): burn gas underwater; reliable in cold seawater climates; lower energy efficiency; CO₂ emissions
Ambient Air Vaporizers (AAV): no utilities; fans; very low capacity; peak-shaving plants
Pump selection:
LNG cryogenic pump: submersed centrifugal (vertical, inside tank); cavitation-free (NPSH well above P_vapor due to submersion depth)
High-pressure pump: 5–15 MPa discharge; typically reciprocating (plunger) or centrifugal cascade
Marine LNG (IGF Code)
IGF Code (IMO — International Code of Safety for Ships Using Gases or Other Low-Flashpoint Fuels):
Required for LNG-fueled ships post-2017; fuel tank location (cofferdams, void spaces), gas detection, emergency shutdown, ventilation
LNG bunkering: ship-to-ship (STS), truck-to-ship (TTS), terminal-to-ship
Arm or hose connection; emergency release coupling (ERC); rapid shutdown (10 s) to < 10% normal flow; dry connect for loading
LNG fuel tanks (ship):
Type C pressure vessel (0.7 bar design pressure): cylindrical, bilobe, or spherical; IMO type C: ASME VIII Div.1 or EN 13458-3
BTT (Bi-lobe cylindrical): space-efficient; 300–3,000 m³; used on ferries and container feeders
Standards
| Standard | Scope |
|---|
| NFPA 59A | Standard for production, storage, and handling of LNG |
| ISO 28460 | LNG ship-shore interface |
| EN 1473 | Installation and equipment for LNG — onshore |
| IGF Code (IMO MSC.391(95)) | LNG fueled ships |
| ASTM A553 | 9% Ni steel for cryogenic storage |
| ASME VIII Div.1 (ULT) | Pressure vessels for lethal service and cryogenic |
| API 620 | Large welded low-pressure storage tanks (LNG) |
Output
Provide: LNG system type (liquefaction/storage/regasification/marine), liquefaction cycle selected (SMR/C3MR/DMR) with justification (scale [mtpa], refrigerant, compressor type), specific power [kWh/kg LNG] and thermodynamic efficiency [%], storage tank type (single/double/full containment, membrane), inner tank material (9% Ni steel grade, ASTM A553), insulation type and thickness [mm] with k [W/(m·K)], heat ingress Q [W] and BOG rate [%/day], rollover risk assessment and prevention method, BOG handling strategy (reliquefaction/combustion/compression), regasification vaporizer type (ORV/SCV/AAV) and capacity [MW], marine compliance (IGF Code, tank type, ERC), and applicable standard (NFPA 59A, ISO 28460, EN 1473, ASTM A553).