| name | relief-valve |
| description | Pressure relief valve sizing — API 520/521, required relief area (vapor/liquid/two-phase), overpressure scenarios, set pressure, back-pressure correction (K_b), balanced bellows, PRV vs. rupture disk. |
| metadata | {"priority":7,"promptSignals":{"phrases":["relief valve","pressure relief valve","PRV sizing","API 520","API 521","overpressure protection","safety relief valve"],"minScore":3}} |
Pressure Relief Valve Sizing — Complete Skill
Standards
API 520 Part I: sizing; calculation of required relief area
API 520 Part II: installation; inlet/outlet piping, balanced bellows, pilot-operated
API 521: pressure-relieving and depressuring systems; overpressure scenario analysis
ASME VIII Div. 1 Appendix 11: mandatory appendix; PRV design and marking
ASME PTC 25: testing and performance
PRV Terminology
Set pressure (P_set): pressure at which PRV starts to open [barg]
Maximum allowable working pressure (MAWP): highest pressure at design temperature
Accumulation: pressure above MAWP during relief; typically 10% MAWP
Overpressure: pressure above set pressure during relief; typically 10% P_set for fire, 10% for others
Back pressure: pressure at PRV outlet; affects flow capacity
Blowdown: difference between set and reseat pressure; typically 7–10% of set pressure
MAWP relationship:
P_set ≤ MAWP (or ≤ 1.03 × MAWP for multiple valves with one primary + one supplemental)
P_set for fire case: ≤ 1.10 × MAWP (single valve)
Overpressure Scenarios (API 521)
- Blocked outlet — control valve failure closed; most common governing case
- Fire (pool fire / jet fire) — heat input to vessel from external fire
- Utility failure — cooling water or power loss; controlled equipment fails unsafe
- Tube failure (heat exchangers) — high-pressure side ruptures into low-pressure side
- Thermal expansion — blocked liquid expands due to heat; small thermal relief valve
- Runaway reaction — exothermic; rate exceeds cooling capacity
- Vapor depressurization — rapid blowdown from adjacent vessel/system
- Reflux failure — distillation tower flooding on loss of reflux
Relief scenario selection: most onerous (largest relief area required) governs PRV size
Required Relief Area — Vapor/Gas (API 520)
For critical flow (P_back/P_1 < P_critical):
A = W / (C × K_d × P_1 × K_b × K_c) × √(TZ/M)
A = required area [in²]
W = required flow rate [lb/hr]
C = gas constant function = 520 × √(γ × (2/(γ+1))^((γ+1)/(γ-1))) [515–550 for most gases]
K_d = discharge coefficient (0.975 for vapor PRV; 0.65 for rupture disk)
P_1 = relieving pressure = P_set × (1 + accumulation fraction) + 14.7 [psia]
K_b = back-pressure correction factor
K_c = combination correction (1.0 without rupture disk; 0.9 with rupture disk)
T = relieving temperature [°R = °F + 460]
Z = compressibility factor; M = molecular weight [lb/lbmol]
C constant:
C = 520 √(γ × (2/(γ+1))^((γ+1)/(γ-1)))
For γ = 1.4: C = 356; γ = 1.3: C = 349; γ = 1.2: C = 340; γ = 1.0: C = 315
SI equivalent (metric):
A [cm²] = W[kg/hr] / (0.2883 × C_metric × K_d × P_1[kPa,abs] × K_b × K_c) × √(TZ/M)
Required Relief Area — Liquid (API 520)
Liquid relief (incompressible):
A = Q / (38 × K_d × K_w × K_c × K_v) × √(G / (P_1 - P_2))
Q = flow rate [US gpm]
K_w = back-pressure correction for balanced bellows (= 1.0 for conventional PRV)
K_v = viscosity correction (1.0 if Re > 20,000; from chart otherwise)
G = specific gravity (water = 1.0)
P_1, P_2 = inlet, outlet pressure [psia]
Viscosity correction (Re < 20,000):
Calculate Re = 2.8 × Q × G / (μ × √A) [iterative; μ in cP]
K_v from API 520 Figure 30
Required Relief Area — Fire Case (API 520 / API 521)
Heat input from pool fire (API 521 Table 5):
Q_fire = C × F × A_wetted^0.82 [BTU/hr]
F = environmental factor (F = 1.0 for bare vessel; F = 0.1 for adequate drainage + fire fighting)
A_wetted = wetted surface area (up to 25 ft above grade for ground-level fire)
Two-phase fire relief:
If liquid inside, relief is vapor (flashing) — use vapor equation with latent heat:
W = Q_fire / H_v [lb/hr; H_v = latent heat at relieving conditions BTU/lb]
Back-Pressure Correction Factor K_b
Conventional PRV (spring-loaded)
Back pressure reduces effective relieving pressure
10% rule: if P_back < 10% P_set → K_b = 1.0 (negligible effect)
For higher back pressure: K_b < 1.0 (from API 520 chart for critical flow)
Balanced Bellows PRV
Back-pressure effect on spring force eliminated by bellows
K_b = 1.0 for back pressure up to rated limit of bellows (typically 40–50% P_set)
Advantage: higher back pressure tolerance
Pilot-Operated PRV
Back pressure has no effect on set pressure (sensing line not affected)
K_b = 1.0 for all back pressures < 100% P_set
Advantage: can set close to MAWP; good for high back-pressure systems
PRV Types
| Type | Advantages | Disadvantages |
|---|
| Conventional spring | Simple; low cost | Back pressure affects set; chattering risk |
| Balanced bellows | Tolerates back pressure; corrosion protection | Bellows can fail; cannot be in flammable gas without secondary containment |
| Pilot-operated | Very tight shutoff; large Cv available | Complex; potential for pilot fouling; slower response |
| Rupture disk | No leakage; simple; handles viscous | One-time use; uncertainty on burst pressure |
Inlet and Outlet Piping (API 520 Part II)
Inlet pressure drop: ≤ 3% of set pressure (non-chattering requirement)
ΔP_inlet = f × L/D × ρV² / 2 ≤ 0.03 × P_set
Outlet (tailpipe) back pressure: must stay within K_b limits
Size tailpipe for all concurrent relief scenarios discharging simultaneously
Reactive force on PRV during discharge:
F = W × v_exit / g_c + (P_exit - P_atm) × A_exit [lbf]
Must be considered for pipe flexibility and support design
Rupture Disk vs. PRV
Rupture disk alone: allowed for non-toxic, non-flammable services (ASME VIII, NB-18)
PRV alone: standard; must have monthly/annual leak check
Rupture disk upstream of PRV: prevents PRV seat corrosion; combination factor K_c = 0.9; NB mark required
PRV upstream of rupture disk (backpressure isolation): permitted; must account for back pressure
PRV Selection Sizing Procedure
- List all credible overpressure scenarios
- Calculate required relief rate W or Q for each
- Calculate required relief area A for each
- Select largest A → governs PRV size
- Select next standard API orifice area (D through T per API 526)
- Check inlet ΔP ≤ 3% P_set
- Check outlet K_b within PRV tolerance
- Specify P_set, MAWP, temperature, connections, material, code stamp
Standard API 526 orifice designations (area in²):
D = 0.110; E = 0.196; F = 0.307; G = 0.503; H = 0.785; J = 1.287; K = 1.838; L = 2.853; M = 3.60; N = 4.34; P = 6.38; Q = 11.05; R = 16.0; T = 26.0
Output
Provide: governing overpressure scenario, required relief flow W [lb/hr] or Q [gpm], required area A [in²], selected API orifice letter and actual area, set pressure P_set [barg], PRV type (conventional/balanced bellows/pilot), K_b and K_d used, inlet ΔP check [% of P_set], back-pressure limit [% of P_set], applicable standard (API 520/521, ASME VIII).