Optimization of Steam Pressure Levels in a Total Site Using a Thermoeconomic Method
Abstract
:1. Introduction
2. Model Representation
2.1. Transshipment Model of a Steam Network
2.2. Exergoeonomics
2.2.1. SPECO Method
2.2.2. Auxiliary Equations
3. Optimization of Network
3.1. Constraints
3.2. Decision Variables
4. Case Studies
4.1. Case Study 1
4.1.1. Definition of Problem and Superstructure
Heat Provided (MW) | Heat Required (MW) | Interval (i,j) | Pressure Steam Level (kPa) |
---|---|---|---|
12 | 1 | (1,1) | 5498.7 |
2 | 3 | (1,2) | 4688.6 |
6 | 20 | (1,3) | 3973 |
9 | 8 | (2,1) | 1906.3 |
3 | 0.8 | (2,2) | 1553.8 |
10 | 9 | (2,3) | 1254.4 |
9 | 3 | (3,1) | 270.1 |
5 | 40 | (3,2) | 198.5 |
2 | 7 | (3,3) | 143.3 |
4.1.2. Derivation of Constraints
4.1.2.1. Steam Turbine
4.1.2.2. Boiler
4.1.2.3. Energy Balance of Steam Levels
4.1.2.4. Energy Balance of Temperature Intervals
4.1.2.5. Exergy and Cost Equations
4.1.3. Objective Function
4.1.4. Assumptions
- Exergy costs of entering air and water to the boiler are negligible.
- Exergy losses in all components are negligible.
- Steam has no chemical exergy.
- All condensates are returned to the boiler (no condensate losses and no blow down).
- Maintenance costs of the components are not accounted for.
- Boiler utilizes natural gas with Heat Value (HV) of 13,856 kWh/t as fuel. The price of natural gas and cooling water with ∆T = 20 °C is as 223 USD/t and 0.005 USD/t, respectively. The price of electricity is assumed as 0.12 USD/kWh.
- Investment costs (USD) of the boiler () and steam turbine () are according to Equation (30) and Equation (31) in which and are mass flow rate of steam (kg/s) and power output (kW), respectively:
- Marshall and Swift equipment cost index for the process industries in the first quarter of 2011 is 1549.8 [19].
- Annual system operation time at nominal capacity is 7008 hours.
4.2. Case Study 2
Heat Provided (MW) | Heat Required (MW) | Interval (i,j) | Pressure Steam Level (kPa) |
---|---|---|---|
0.5 | 0.5 | (1,1) | 6411.7 |
0.5 | 12 | (1,2) | 5498.7 |
18 | 1 | (1,3) | 4688.6 |
6 | 1.5 | (1,4) | 3973 |
18 | 2 | (2,1) | 2317.8 |
9 | 12.5 | (2,2) | 1906.3 |
3 | 17.5 | (2,3) | 1553.8 |
3 | 4.5 | (2,4) | 1254.4 |
18 | 5 | (3,1) | 270.1 |
5 | 35 | (3,2) | 198.5 |
2 | 3.5 | (3,3) | 143.3 |
5. Conclusions
Nomenclature:
Cost rate, Cost rate associated with exergy [$/h] | |
Co | Heat flowing out of the temperature interval control volume to heat sink zone |
c | Cost per unit of exergy [$/GJ] |
Exergy flow rate [kW] | |
F | Heat flowing out of the steam level control volume to the steam turbine |
G | Heat flowing out of the steam level control volume to the heat sink |
Hi | Heat provided by process heat source to temperature interval control volume in heat source zone |
Ho | Heat flowing out of the temperature interval control volume in heat source zone |
HP | High Pressure |
LP | Low Pressure |
MP | Medium Pressure |
RCi | Heat flowing into temperature interval control volume from a higher temperature interval into heat sink zone |
RCo | Residual heat flowing out of temperature interval control volume in heat sink zone |
RHi | Heat flowing into temperature interval control volume from a higher temperature interval into heat source zone |
RHo | Residual heat flowing out of temperature interval control volume in heat source zone |
S | Heat flowing into the steam level control volume from steam turbine |
VHP | Very High Pressure |
Subscripts
B | Boiler |
D | Destruction |
e | Exit |
F | Fuel |
i | Inlet |
is | Isentropic |
max | Maximum, refers to capacity |
P | Product |
q | Heat loss |
sat | Saturation |
sys | System |
T | Turbine |
w | Power |
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Shamsi, S.; Omidkhah, M.R. Optimization of Steam Pressure Levels in a Total Site Using a Thermoeconomic Method. Energies 2012, 5, 702-717. https://doi.org/10.3390/en5030702
Shamsi S, Omidkhah MR. Optimization of Steam Pressure Levels in a Total Site Using a Thermoeconomic Method. Energies. 2012; 5(3):702-717. https://doi.org/10.3390/en5030702
Chicago/Turabian StyleShamsi, Shahin, and Mohammad R. Omidkhah. 2012. "Optimization of Steam Pressure Levels in a Total Site Using a Thermoeconomic Method" Energies 5, no. 3: 702-717. https://doi.org/10.3390/en5030702
APA StyleShamsi, S., & Omidkhah, M. R. (2012). Optimization of Steam Pressure Levels in a Total Site Using a Thermoeconomic Method. Energies, 5(3), 702-717. https://doi.org/10.3390/en5030702