| name | rankine-cycle-advanced |
| description | Advanced Rankine cycle — reheat, regeneration, feedwater heaters (open/closed), supercritical steam, cycle efficiency analysis, T-s diagram, turbine stage design. |
| metadata | {"priority":7,"promptSignals":{"phrases":["Rankine cycle","steam cycle","reheat Rankine","regenerative cycle","feedwater heater","supercritical steam","steam turbine efficiency"],"minScore":3}} |
Advanced Rankine Cycle — Complete Skill
Basic Rankine Cycle
States: 1-pump inlet (saturated liquid), 2-pump exit, 3-boiler exit (superheated), 4-turbine exit (wet or superheated)
Efficiency:
η_th = w_net / q_in = (w_turbine - w_pump) / q_boiler
w_turbine = h₃ - h₄ (ideal)
w_pump = v₁(P₂-P₁) ≈ h₂ - h₁ (incompressible, v₁ ≈ specific volume at inlet)
q_in = h₃ - h₂
For actual turbine: η_turbine = (h₃-h₄)/(h₃-h₄s) [isentropic efficiency, typically 0.80–0.90]
For actual pump: η_pump = (h₂s-h₁)/(h₂-h₁) [typically 0.75–0.85]
Reheat Cycle
After high-pressure turbine → reheated in boiler → low-pressure turbine
Benefits:
- Increases moisture content at LP turbine exit (prevents blade erosion)
- Slightly increases cycle efficiency (typically +2–4%)
- Enables higher boiler pressure
Analysis:
w_net = (h₃-h₄) + (h₅-h₆) - w_pump
q_in = (h₃-h₂) + (h₅-h₄) [boiler + reheater]
η = w_net / q_in
Reheat pressure: typically 20–25% of initial pressure
Reheat temperature: typically = initial steam temperature
Regenerative Cycle (Feedwater Heaters)
Bleed steam from turbine stages → heat feedwater → reduce heat rejection
Open (Direct Contact) Feedwater Heater
Extracted steam mixes directly with feedwater
Mass balance at heater:
y × h_bleed + (1-y) × h_condensate = h_fwh,exit
Solve for bleed fraction y: y = (h_fwh - h_condensate) / (h_bleed - h_condensate)
Efficiency gain: reduces fuel input for same output (condensate enters boiler at higher T)
Closed Feedwater Heater
Shell-and-tube; no direct mixing; requires drain cascade or pump
More complex but allows pressurized condensate return
Multi-Stage Regeneration
Modern power plants: 6–10 feedwater heaters
Optimum bleed pressure for n heaters: extractions equally spaced in T-s space
Each heater raises feedwater temperature incrementally from condenser to boiler
Cycle efficiency with regeneration:
η_regenerative > η_basic Rankine by 5–15% depending on stages
Steam Conditions and Turbine Stages
Subcritical
P₀ < 22.1 MPa (critical point of water)
Typical utility: 16–18 MPa, 560–580°C → η ≈ 40–43%
Supercritical
P₀ > 22.1 MPa; single phase throughout heating
Typical: 24–28 MPa, 600°C → η ≈ 44–46%
Ultra-supercritical (USC): 30+ MPa, 620–640°C → η ≈ 46–48%
Advanced USC: 35 MPa, 700°C → η ≈ 50%+ (Ni-alloy headers/turbines needed)
Combined Cycle (CCGT)
Gas turbine Brayton cycle topping + Rankine steam cycle bottoming
GT exhaust → HRSG → steam turbine
Overall η ≈ 58–62% (LHV basis)
Turbine Stage Design (Impulse/Reaction)
Velocity triangles:
Stage work: W_stage = U(C_θ1 + C_θ2) [per unit mass]
C_θ = tangential velocity; U = blade speed
Degree of reaction:
R = h_drop_rotor / h_drop_stage
R = 0: impulse stage (all drop in nozzle)
R = 0.5: 50% reaction (equal drop in nozzle and rotor) — most common for HP/LP turbines
Stage loading coefficient:
ψ = W_stage / U² = ΔC_θ / U [typically 1.0–2.0]
Flow coefficient:
φ = C_a / U [axial velocity / blade speed; typically 0.5–1.0]
Condenser Design
Surface condenser: shell-and-tube; steam on shell side; cooling water in tubes
Condensing pressure: 5–15 kPa (0.05–0.15 bar absolute) → T_sat = 33–55°C
Lower pressure → higher efficiency; requires larger condenser
Cooling water: typically 20–30°C supply; 8–12°C rise
Heat load: Q_condenser = ṁ_steam × h_fg (at condenser pressure)
Steam Properties Reference Points
At 560°C, 16 MPa: h₃ ≈ 3450 kJ/kg; s₃ ≈ 6.6 kJ/kg·K
At condenser (0.1 bar): h₁ ≈ 191 kJ/kg (liquid); h_fg ≈ 2392 kJ/kg; T_sat = 45°C
Steam tables from IAPWS-IF97 standard
Output
Provide: cycle configuration (basic/reheat/regenerative), η_thermal [%], w_net [kJ/kg], q_in [kJ/kg], steam states (h, T, P, x at each point), bleed fraction y for each heater, turbine/pump actual efficiencies, heat rate [kJ/kWh], back work ratio.