| name | centrifugal-compressor-design |
| description | Centrifugal compressor design — Euler work, impeller geometry, velocity triangles, slip factor, vaneless/vaned diffuser, stage pressure ratio, polytropic efficiency, surge and choke, API 617. |
| metadata | {"priority":7,"promptSignals":{"phrases":["centrifugal compressor","centrifugal compressor design","impeller design","slip factor","compressor diffuser","API 617 compressor"],"minScore":3}} |
Centrifugal Compressor Design — Complete Skill
Euler Work and Stage Performance
Euler work input per stage:
W_stage = U₂ C_θ2 - U₁ C_θ1 [J/kg]
U = blade tip speed [m/s]; C_θ = tangential component of absolute velocity [m/s]
Subscripts: 1 = impeller inlet; 2 = impeller exit
With zero inlet swirl (C_θ1 = 0; axial inlet):
W_stage = U₂ C_θ2 [J/kg]
Slip factor σ_s (Wiesner):
Reduces actual C_θ2 below ideal:
C_θ2_actual = σ_s × U₂
σ_s ≈ 1 - √(sin β₂) / N_b^0.7 [β₂ = backward blade angle; N_b = number of blades; Wiesner]
Typical: σ_s = 0.85–0.95
Actual specific work:
W_act = σ_s × U₂² [J/kg; for radial or backward-swept impeller with axial inlet]
Impeller Geometry
Blade backsweep angle β₂:
β₂ = 0°: radial blades (straight); W_act = U₂²
β₂ = 30°: backward-swept; C_θ2 = U₂ - C_r2/tan(β₂); lower pressure rise per stage → flatter curve; better stability
β₂ = -30°: forward-swept; high head; steep curve; surges easily; rarely used
Design recommendations:
β₂ = 20–55° backward (most modern industrial compressors)
Higher backsweep → lower stage loading → wider stable range but lower pressure ratio
Impeller tip speed U₂:
U₂ = π D₂ N / 60 [m/s; N = RPM; D₂ = tip diameter [m]]
Practical limit: U₂ ≤ 350 m/s (cast Al); U₂ ≤ 500 m/s (forged Ti)
Material yield check: σ_centrifugal = ρ × (U₂/2)² × C_stress ≤ σ_y / SF
Stage loading coefficient ψ:
ψ = W / U₂² = σ_s × (1 - C_r2 tan β₂ / U₂) ≈ σ_s [for radial; 0.5–0.9 typical]
Flow coefficient φ:
φ = C_r2 / U₂ [typical 0.2–0.35; related to impeller width and flow rate]
Velocity Triangles
At impeller exit (rotor station 2):
C_r2 = Q / (π D₂ b₂) [m/s; radial (meridional) velocity; b₂ = impeller width at exit]
C_θ2 = σ_s × U₂ [tangential; from slip factor]
C₂ = √(C_r2² + C_θ2²) [absolute velocity]
W_θ2 = C_θ2 - U₂ = (σ_s - 1)U₂ [relative tangential; negative for backward-swept]
β₂ = atan(C_r2 / (U₂ - C_θ2)) [relative flow angle at exit]
Stage Pressure Ratio
Isentropic stage pressure ratio:
π_s = (1 + η_s × W / c_p T₀₁)^(γ/(γ-1))
η_s = stage isentropic efficiency (0.78–0.88 for single stage)
c_p = 1005 J/(kg·K) for air; γ = 1.4; T₀₁ = inlet stagnation temperature [K]
Polytropic efficiency η_p:
π_s = (T₀₂/T₀₁)^(γ η_p / (γ-1)) [for polytropic process]
η_p relates to η_s via: η_s = (π^((γ-1)/γ) - 1) / (T₀₂/T₀₁ - 1)
Diffuser Design
Vaneless Diffuser
Angular momentum conservation:
r × C_θ = const → C_θ decreases as r increases
Radial velocity: C_r × r × b = const (continuity)
Diffuser length for velocity reduction:
V₂/V₃ = target (typically 0.5–0.6 for kinetic to static conversion)
Vaneless: simple; no choke at high flow; wide range; lower recovery than vaned
Vaned Diffuser
Throat blockage:
A_throat = Q_design / C_sound × (1 + (γ-1)/2 × M²)^(γ+1)/(2(γ-1)) [choked throat area]
Throat must not choke at design flow; add margin ≥ 5%
Diffusion coefficient:
D = 1 - V₃/V₂ + ΔC_θ/(2σ V₂) [similar to axial; D < 0.45 to avoid separation]
Better pressure recovery than vaneless; narrower flow range
Surge and Choke
Surge: flow reversal at low flow; unstable; violent
Choke (stonewall): maximum flow at unit mass flow rate; right side of map
Surge margin:
SM = [(Q_design - Q_surge) / Q_design] × 100% [%]
API 617 requirement: SM ≥ 10% from design point to surge line
Surge line: connects surge points at each speed → operating line must stay to right
Anti-surge valve (ASV): recirculate gas when flow drops toward surge
Stonewall condition:
M = 1 at impeller eye or diffuser throat → choke; flow cannot increase further
Tip Mach M₂ = U₂ / a₂ → high M₂ → moves choke limit to lower flows
Multistage Configuration
Series staging:
Total pressure ratio: π_total = Π π_stage [product of all stage ratios]
Intercooling: reduce temperature between stages → maintain gas density → higher pressure per stage
Intercooled at P_intermediate = √(P_inlet × P_outlet) [equal work split]
Number of stages:
n_stages = log(π_total) / log(π_stage)
API 617 Requirements
Rotor dynamics:
First critical speed: N_c1 > 1.25 × maximum operating speed (rigid rotor preferred)
Or: N_c1 < 0.6 × N_min (operates supercritically with adequate damping)
Vibration limits:
Unfiltered bearing vibration < 25.4 μm p-p (standard)
At trip: 50.8 μm p-p or 2× normal (whichever less)
Performance test:
ASME PTC-10 Type 1 (gas of same molecular weight as process) or Type 2 (substitute gas)
Acceptance: head within ±4%; efficiency within -3%; shaft power within +4%
Material:
Impeller: AISI 4140/4340 forged steel; Ti-6Al-4V for high-speed
Casing: ASTM A216 Gr. WCB (carbon steel); alloy steel for sour gas (API 617 App A)
Output
Provide: impeller tip speed U₂ [m/s], slip factor σ_s, specific work W [J/kg], stage loading ψ, flow coefficient φ, stage pressure ratio π_s, polytropic efficiency η_p [%], diffuser type (vaneless/vaned), surge margin SM [%], number of stages, total pressure ratio, critical speed vs. operating speed (API 617 check), vibration limits [μm p-p], intercooling (if applicable), material selection, and applicable standard (API 617, ASME PTC-10).