Supercritical Organic Rankine Cycle (sORC)

Size supercritical Organic Rankine Cycles (sORC): continuous glide vapor generation without pinch point, net electrical power output (kW), thermal efficiency, and recuperator duty.

⚡ Fortran 90 Engine Double Precision (IEEE 754) ✓ ISO / ASME Validated
📊 Solver Telemetry ● ACTIVE
👁️ Consultations 43
⚡ Calculs faits 37
💾 Téléchargements 348 📦 Code Fortran 11.4 KB
📅 Mise en service Jun 2026
⏱️ Latence < 1 ms
⚡ Outils & Rapports :
💾 Télécharger Fortran 90

⚡ Supercritical ORC Cycle Flow Diagram & Supercritical Heating Glide

Real-time visual simulation: Continuous glide supercritical vapor generator without pinch-point limitation

📝 Configuration & Presets

🌋 Geothermal Brine (R1233zd) 🏭 Steel Waste Heat (n-Pentane) ☀️ Solar Thermal CSP (Toluene) 🚢 Marine Diesel sORC (R245fa)
🧪 Working Fluid & Operating Pressures
Supercritical: Phigh > Pcrit
❄️ Condensing State & Mass Flow
⚙️ Component Efficiencies & Recuperation
sORC Thermodynamic Formulation:
• Net Cycle Work: wnet = wturb − wpump [kJ/kg]
• Thermal Efficiency: ηth = wnet / (hTIT − hheater,in) [%]
• Power Output: Ẇnet = ṁ · wnet [kW]
• Eliminates isothermal evaporation pinch-point bottleneck.

📊 sORC Cycle Results

📊 Output Summary
💾 Fortran Source

Net Electrical Power Output (Ẇnet)
2773.21 kW (2.773 MW)
Thermal Efficiency: 22.53 % | Heat Input: 12310.4 kW
Phigh = 42 bar (> Pc)
Gross Turbine Power (Ẇt) 2873.7 kW ηt = 86 %
Feed Pump Power Consumption 100.5 kW 3.5 % of gross power
Recuperator Heat Duty (Q̇recup) 50.6 kW εrecup = 75 %
Turbine Discharge Temp (Tout) 35.0 °C Superheated dry expansion

📈 Thermal Efficiency η_th (%) vs Supercritical Pressure P_high (bar)

📉 Net Power Output W_net (kW) vs Turbine Inlet Temp TIT (°C)

=================================================================
 THERMOFLUIDCALC — SUPERCRITICAL ORGANIC RANKINE CYCLE REPORT
=================================================================
Case Title                 : Geothermal Medium-Enthalpy Brine Supercritical ORC
Organic Working Fluid      : R1233zd(E) (Low-GWP Eco)
Operating State Points     : P_high = 42.00 bar (P_crit = 35.70 bar), TIT = 175.0 C, T_cond = 30.0 C
Fluid Flow & Efficiencies  : m_dot = 25.00 kg/s, eta_turb = 0.86, eta_pump = 0.78, eps_rec = 0.75
-----------------------------------------------------------------
NET ELECTRICAL POWER (Wnet): 2773.21 kW (2.7732 MW)
CYCLE THERMAL EFFICIENCY   : 22.527 %
Gross Turbine Power Output : 2873.69 kW
Feed Pump Power Input      : 100.48 kW
Supercritical Heater Duty  : 12310.40 kW
Internal Recuperator Duty  : 50.62 kW
Turbine Exhaust Temperature: 35.00 deg C
=================================================================

📘 Calculation Methodology & Supercritical ORC Standards

Supercritical Heat Addition Advantage

Heating above the critical pressure ($P > P_{crit}$) eliminates the isothermal phase change plateau, allowing the working fluid temperature to glide continuously with the heat source profile.

Internal Recuperation (IHX)

Dry organic vapors exit the expander with significant superheat. The recuperator transfers this waste heat to preheat the high-pressure liquid before entering the vapor generator.

Key Engineering Assumptions

  • Supercritical heating without boiling pinch-point limitations.
  • Dry expansion avoiding liquid droplet erosion in turbine blades.
  • Applicable to geothermal brine, biomass, solar thermal CSP, and engine waste heat.