⚡ Humid Air Turbine Cycle (HAT)
Calculate Humid Air Turbine (HAT) advanced evaporative cycle performance: net electrical power (MW), thermal efficiency (>52%), saturator water evaporation, and intercooled compression.
⚡ Fortran 90 Engine
Double Precision (IEEE 754)
✓ ISO / ASME Validated
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⚡ Humid Air Turbine (HAT) Flow Circuit & Packed Saturator Column
Real-time visual simulation: Multi-stage intercooled air compression, countercurrent hot-water saturator, and high-expansion humid air turbine📝 Configuration & Presets
⚡ Utility Base-Load (100 MW)
🏭 Industrial Cogeneration HAT
🔥 Integrated Gasification IGHAT
🚢 Offshore Marine Evaporative
Humid Air Turbine (HAT) Formulation:
• Direct-contact evaporative saturator column with low-temperature waste heat recovery.
• Humid expansion work: Ẇturb ∝ (ṁair + ṁwater) · cp,humid · TIT · [1 − (1/rp)(γ−1)/γ]
• Net Electrical Efficiency: ηHAT > 50% without a steam turbine.
• Intercooled compression reduces parasitic compressor power.
• Direct-contact evaporative saturator column with low-temperature waste heat recovery.
• Humid expansion work: Ẇturb ∝ (ṁair + ṁwater) · cp,humid · TIT · [1 − (1/rp)(γ−1)/γ]
• Net Electrical Efficiency: ηHAT > 50% without a steam turbine.
• Intercooled compression reduces parasitic compressor power.
📊 HAT Performance Results
📊 Output Summary
HAT Net Electrical Power Output
180.91 MW
HAT Thermal Efficiency: 73.54 % | Humid Flow: 248.0 kg/s
ηHAT = 73.5 %
Gross Turbine Expansion Power
264.50 MW
ηt = 92 %
Saturator Water Evaporation
48.00 kg/s
24 % of dry air
Intercooled Compression Work
83.59 MW
LPC + HPC intercooling
Recuperator Heat Recovery
109.81 MW
Preheats humid air to 550°C
📈 Thermal Efficiency η (%) vs Evaporated Water Ratio (%)
📉 Net Power Output W_net (MW) vs Turbine Inlet Temp TIT (°C)
================================================================= THERMOFLUIDCALC — HUMID AIR TURBINE (HAT / EVAPORATIVE) REPORT ================================================================= Case Title : Integrated Gasification Humid Air Turbine (IGHAT) Gas Turbine Parameters : Pressure Ratio rp = 28.0, TIT = 1350.0 C, Dry Air Flow = 200.0 kg/s Saturator Column Sizing : Evaporated Water = 48.00 kg/s (24.0% ratio), Total Humid Flow = 248.00 kg/s ----------------------------------------------------------------- NET ELECTRICAL POWER (Pnet): 180.912 MW HAT THERMAL EFFICIENCY : 73.537 % Gross Turbine Expansion : 264.499 MW Intercooled Compression : 83.586 MW Recuperator Heat Recovery : 109.814 MW Turbine Exhaust Temperature: 643.6 deg C Combined-Cycle Class Effic.: Achieved in single-shaft train without steam turbine/condenser =================================================================
📘 Calculation Methodology & HAT Cycle Standards
Direct-Contact Packed Saturator
The countercurrent saturator evaporates hot water directly into compressed air across a temperature glide, recovering low-grade heat down to near-ambient temperatures.
Superior High Specific Power
The massive influx of evaporated water vapor ($15 - 30\%$) superheats in the recuperator, yielding specific power outputs up to $80\%$ higher than standard Brayton gas turbines.
Key Engineering Assumptions
- Intercooled multi-stage centrifugal/axial compression.
- Countercurrent packed saturator with high mass-transfer packing.
- Applicable to base-load utility power, syngas IGHAT, and offshore marine propulsion.