System Performance and Pollutant Emissions of Micro Gas Turbine Combined Cycle in Variable Fuel Type Cases
Abstract
:1. Introduction
2. The System and Modeling
2.1. The Combined Cycle Systems
2.2. System Performance Index
2.3. Pollutant Generation Calculation
2.4. Fuel Analysis
2.5. Assumptions and Study Cases
- The ambient temperature was set at 15 °C and the atmospheric pressure was set to 101.325 kPa. The compressor operated at its working point with the steady air mass flow rate and the unchanged compressor pressure ratio.
- The power output of MGT changed with the fuel mass flow rate, accordingly, the other important parameters had their values at different power load cases.
- The types of fuel studied included natural gas, biogas, straw gas, and pine gas, which have different heating values. The power output should be kept as 100 kW, 90 kW, 70 kW, and 50 kW. The operation performance and combustion emissions of both gas turbine combined cycle systems at different cases will be studied in the following sections.
3. Results and Analysis
3.1. Validating the Model
3.2. Influence of Biomass Gas Types on Combined Cycle Performance
3.3. Performance Analysis under Partial Load Conditions
3.4. Pollutant Emission
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
Symbol | Significance |
The heat of fuel entering the gas turbine system (kJ/s) | |
Fuel mass flow rate (kg/s) | |
The lower heating value of fuel (kJ/kg) | |
Gas turbine output power (kW) | |
Turbine output power (kW) | |
Compressor loss power(kW) | |
The power generation efficiency of gas turbine (%) | |
The heat of waste heat recovery and utilization (kJ/s) | |
Mass flow of water supply (kg/s) | |
The enthalpy of cold-water inlet (kJ/kg) | |
The enthalpy of hot-water outlet (kJ/kg) | |
MGT | Micro gas turbine |
GSCC | Gas-steam combined cycle |
The thermal efficiency of waste heat utilization (%) | |
The combined cycle efficiency of recuperative cycle (%) | |
The electric efficiency of gas-steam combined cycle (%) | |
The output power of steam turbine (kW) | |
The concentration of NO in dry flue gas at turbine outlet (ppm) | |
The measured volume content of NO in dry flue gas (%) | |
The measured oxygen content in dry flue gas (%) | |
The concentration of NO2 in the dry flue gas at the turbine outlet (ppm) | |
The measured NO2 volume content in dry flue gas (%) | |
The concentration of SO2 in the dry flue gas at the turbine outlet (ppm) | |
The measured volume content of SO2 in dry flue gas (%) | |
EHE | Exhaust heat exchanger |
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The Module | Instructions | Purpose | Function |
---|---|---|---|
Compr | Compressor or turbine | Compressor or turbine. The logistics pressure can be changed when the pressure, power demand or performance curve is known | Compressor, gas-steam turbine |
RGibbs | Balance balancing reactor | Gibbs minimum free energy is used to calculate chemical equilibrium and phase equilibrium | Fuel and air combustion reaction generating module |
Heater | Heater or cooler | Determine the thermal and phase conditions | Heat exchanger, heating the inlet air of the combustor |
MHeatX | Multi-flow heat exchanger | Any number of logistics of heat exchanger | Recycle waste heat from flue gas to heat water supply or produce steam |
Pumb | Pump or hydraulic turbine | The logistics pressure can be changed when the pressure, power demand or performance curve is known | Feed water to exhaust heat exchanger |
(a) | ||
Components | Input Parameters | Values |
Inlet | Air temperature (°C) | 15 |
Air pressure (atm) | 0.99 | |
Pressure loss (%) | 1 | |
Compressor | Pressure ratio | 4.5 |
Mechanical efficiency (%) | 98 | |
Isentropic efficiency (%) | 76.8 | |
Recuperator (Air side) | Pressure loss (%) | 2 |
Combustor | Pressure loss (%) | 3 |
Heat loss (%) | 2 | |
Gas Turbine | Turbine exhaust pressure (atm) | 1.06259 |
Mechanical efficiency (%) | 98 | |
Isentropic efficiency (%) | 80.5 | |
Recuperator (Gas side) | Pressure loss (%) | 2 |
Recuperator effectiveness | 0.9 | |
EHE | Pressure loss (%) | 3 |
Heat loss (%) | 10 | |
(b) | ||
Components | Input Parameters | Values |
Gas Turbine | Turbine exhaust pressure (atm) | 1.0412 |
Mechanical efficiency (%) | 98 | |
Isentropic efficiency (%) | 80.5 | |
Steam Turbine | Steam pressure (MPa) | 0.06 |
Mechanical efficiency (%) | 98 | |
Isentropic efficiency (%) | 80.5 |
Fuel Type | Mole Fraction/% | Lower Heating Value/(kJ/kg) | ||||||||
---|---|---|---|---|---|---|---|---|---|---|
N2 | H2 | CO | CO2 | CH4 | C2H6 | C3H8 | C4H10 | S | ||
Natural gas | 1.92 | - | - | 2.73 | 94.70 | 0.55 | 0.08 | 0.02 | - | 44,871.69 |
Biogas | - | - | - | 38.00 | 62.00 | - | - | - | - | 18,679.59 |
Pine gas | 42.06 | 24.80 | 23.88 | 8.46 | 0.65 | - | - | - | 1.60 × 10−3 | 5794.64 |
Straw gas | 42.10 | 22.46 | 26.50 | 8.42 | 0.48 | - | - | - | 4.98 × 10−4 | 5665.12 |
Compare the Project | Design Value | Simulation Value | Relative Error/% |
---|---|---|---|
Compressor pressure ratio | 4.5 | 4.5 | 0 |
Combustor outlet temperature/K | 1223.15 | 1234.67 | 0.94 |
Gas mass flow rate/kg/s | 0.79 | 0.79 | 0 |
Output power/kW | 100 | 100 | 0 |
Power generation efficiency/% | 30.00 | 30.21 | 0.7 |
System | Fuel Type | Fuel Mass Flow Rate | Combustor Temperature /(K) | Gas Mass Flow Rate /(kg/s) | Turbine Outlet Temperature /(K) |
---|---|---|---|---|---|
Recuperative cycle system | natural gas | 0.0074 | 1233.7 | 0.7908 | 949.84 |
biogas | 0.0179 | 1222.6 | 0.8013 | 942.23 | |
straw gas | 0.0609 | 1169.3 | 0.8442 | 899.94 | |
pine gas | 0.0595 | 1169.1 | 0.8429 | 899.64 | |
Combined gas-steam cycle system | natural gas | 0.0148 | 1183.8 | 0.7982 | 906.54 |
biogas | 0.0357 | 1163.0 | 0.8191 | 892.21 | |
straw gas | 0.1127 | 1078.9 | 0.8961 | 824.72 | |
pine gas | 0.1101 | 1078.7 | 0.8935 | 824.33 |
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Zhang, X.; Wu, Y.; Zhang, W.; Wang, Q.; Wang, A. System Performance and Pollutant Emissions of Micro Gas Turbine Combined Cycle in Variable Fuel Type Cases. Energies 2022, 15, 9113. https://doi.org/10.3390/en15239113
Zhang X, Wu Y, Zhang W, Wang Q, Wang A. System Performance and Pollutant Emissions of Micro Gas Turbine Combined Cycle in Variable Fuel Type Cases. Energies. 2022; 15(23):9113. https://doi.org/10.3390/en15239113
Chicago/Turabian StyleZhang, Xiaotao, Yichao Wu, Wenxian Zhang, Qixian Wang, and Aijun Wang. 2022. "System Performance and Pollutant Emissions of Micro Gas Turbine Combined Cycle in Variable Fuel Type Cases" Energies 15, no. 23: 9113. https://doi.org/10.3390/en15239113
APA StyleZhang, X., Wu, Y., Zhang, W., Wang, Q., & Wang, A. (2022). System Performance and Pollutant Emissions of Micro Gas Turbine Combined Cycle in Variable Fuel Type Cases. Energies, 15(23), 9113. https://doi.org/10.3390/en15239113