| name | cryogenic-storage-tanks |
| description | Cryogenic storage tanks — double-wall vacuum vessels, flat-bottom LNG tanks, spherical LOX/LH2 tanks, ASME Section VIII, EN 13458, hold time, boil-off, inner/outer vessel design, fill ratio, earthquake loads. |
| metadata | {"priority":7,"promptSignals":{"phrases":["cryogenic storage tank","cryogenic tank design","LNG tank","LOX tank","LH2 tank","liquid nitrogen storage"],"minScore":3}} |
Cryogenic Storage Tanks — Complete Skill
Tank Configurations
Double-Wall Vacuum Vessel (Laboratory/Small Industrial)
Construction: inner vessel (process fluid) + outer vessel (ambient temperature); evacuated annular space
Suspension: inner vessel hung from outer by thin-wall SS tubes (G-10 spiders for small dewars)
Insulation: MLI (space quality: 30 layers/cm) or perlite powder
Sizes: 1 L to 100,000 L (100 m³); pressure: ASME Section VIII (0 to 17 bar)
Flat-Bottom Storage Tanks (Large LNG)
Construction: inner 9% Ni or SS tank; outer carbon steel tank; perlite insulation between; concrete bund
Inner tank: designed for full hydrostatic head of cryogen + seismic; 9% Ni steel to ASTM A353/A553
Outer tank: carbon steel; not cold; designed for blast, wind, fire
Bottom insulation: perlite concrete or foam glass blocks (load-bearing at cryogenic T)
Roof: suspended deck; inner suspended deck insulation; outer self-supporting roof
Spherical Tanks (Aerospace, LH₂/LOX)
Geometry: minimum surface-to-volume ratio → minimum heat leak for given volume
Construction: welded SS or Al sphere; vacuum-jacketed with MLI; supported on skirt
Sizes: up to 3800 m³ (NASA LH₂ storage at Kennedy Space Center)
Advantage: lower surface area/volume → lower boil-off; withstands internal pressure uniformly
Structural Design
Inner Vessel Pressure Design (ASME Section VIII Div 1)
Hoop stress:
σ_h = P × D / (2t) → t_min = P × D / (2 × S × E)
S = allowable stress from ASME UG-23 (material at operating T); E = joint efficiency (0.85–1.0)
Material allowable stress at -196°C (LN₂):
304L SS: S = 117 MPa (at -200°C, ASME IID); σ_y increases to ~600 MPa but code uses conservative S
9% Ni steel at -196°C: S = 172 MPa (higher than ambient because cryogenic strengthens)
Hydrostatic head:
Bottom of tall tank: P_total = P_vapor + ρ_L × g × H [Pa; H = liquid depth]
For LN₂ (ρ = 807 kg/m³), 5 m depth: ΔP = 807 × 9.81 × 5 = 39.6 kPa → add to operating pressure
Outer Vessel
Loads: wind (ASCE 7), seismic (local zone), snow, blast (safety distance consideration)
No thermal design needed (ambient temperature)
Carbon steel SA-516-70; designed per ASME Section VIII Div 1 or API 620
Seismic Analysis (Liquid Sloshing)
Sloshing frequency (shallow liquid):
f_slosh = (1/2π) × √(g × tanh(π h / D) × π / D) [Hz; h = liquid depth; D = tank diameter]
For shallow tanks (h/D < 1): significant seismic amplification
Convective and impulsive masses:
Impulsive mass: M_imp = 0.866 × M_L × tanh(√3 × D / (2h)) [moves with tank]
Convective mass: M_conv = M_L - M_imp [participates in sloshing; long period]
API 650 Appendix E / ACI 350.3 for seismic analysis
Freeboard for sloshing:
Freeboard = (α_s × S_a × D) / (2 × ω_s²) × ψ [ψ = factor; α_s = seismic acceleration; ω_s = slosh frequency]
Minimum freeboard: 0.5 m for most applications; more for high seismic zones
Fill Ratio and Ullage
Maximum fill (liquid fill ratio):
FR_max = V_liquid / V_total = 0.95 (typical for LN₂/LO₂); 0.90 for LH₂ (more expansion)
Required ullage: vapor space for pressure control; thermal expansion on warm day
Overfill protection:
High-level alarm at 90–95%; high-high level trip at 97% (OSHA 1910.104 for LOX)
Automatic fill shutoff on high level
Thermal stratification:
Warm liquid at top → higher vapor pressure than bulk → rollover risk
Prevent by: bottom fill inlet; circulation pump; vapor return line
Boil-Off and Hold Time
Steady-state heat leak (double-wall vacuum, perlite):
Q̇ = k_eff × A_mean / Δr × (T_out - T_in) [cylindrical; Δr = annulus thickness]
k_eff_perlite (good vacuum): 0.0015–0.002 W/(m·K)
Boil-off rate:
BOR = Q̇_total / (h_fg × ρ_L) [m³/s; convert to % volume/day]
Hold time (from full to empty at boil-off rate):
t_hold = V_liquid / BOR [s]
Or: t_hold = (FR_max - FR_min) × V / BOR × (1/86400) [days]
Typical hold times:
Small 1000 L LN₂ dewar (vacuum + MLI): 30–60 days
Large 50,000 L LN₂ perlite vessel: 15–30 days
LH₂ (poor insulation): 7–14 days; (excellent MLI): 60–120 days
Pressure Control
Saturated vapor pressure: cryogen maintains T_sat at P_vessel; as heat leaks in → P rises → vapor vents
Economizer (vent/use): vent boil-off gas to process or atmosphere; maintain P_set
Pressurization circuit:
Vaporizer coil in tank (or external) → raise pressure for liquid transfer to point of use
Required ΔP = P_destination + friction loss - P_tank
Safety relief:
Primary: spring-loaded SRV set at MAWP
Secondary: rupture disk set at MAWP + 10% or 110 kPag above MAWP
Both in parallel; vent line to atmosphere (above roof level for lighter-than-air; near ground for heavier)
Material Requirements
ASME material qualification for cryogenic service:
SA-304/316L: listed in ASME UHA-51; no impact test required to -254°C (austenitic exemption)
SA-333 Grade 6: impact tested to -50°C
SA-353 (9% Ni): impact tested to -196°C; used for LNG, LN₂
Weld procedure (PQR/WPS):
ASME Section IX; cryogenic service requires Charpy test of weld metal and HAZ at service T
Standards
| Standard | Scope |
|---|
| ASME Section VIII Div 1 | Pressure vessel design (inner vessel) |
| EN 13458 | Cryogenic vessels — static vacuum-insulated |
| ISO 21009 | Cryogenic vessels — static vacuum-insulated |
| API 620 | Large low-pressure storage tanks (LNG) |
| NFPA 59A | LNG production, storage, handling |
| ACI 376 | Concrete tanks for cryogenic liquids |
| OSHA 1910.104 | Oxygen storage safety |
Output
Provide: cryogen (LN₂/LOX/LH₂/LNG), tank type (double-wall/flat-bottom/spherical), volume [m³], MAWP [kPa], inner vessel wall thickness t [mm] (ASME Section VIII), material and allowable stress at T [MPa], outer vessel design (loads: wind/seismic), fill ratio [%] max, boil-off rate Q̇ [W] and BOR [%/day], hold time [days], sloshing frequency [Hz] and impulsive/convective mass [kg], freeboard [m], relief valve set pressure [kPa] and area [cm²], insulation type and k_eff [mW/(m·K)], and applicable standard (ASME VIII, EN 13458, API 620, NFPA 59A).