Economic Model of Ancillary Services in Real Time for Frequency Control
Abstract
:1. Introduction and Literature Review to the Ancillary Services Market
1.1. State of the Art Economic Models for Real-Time Frequency Control
1.1.1. Bidding and Auction Market for Frequency Control Power Reserves
1.1.2. Mechanisms and Economic Models to Reallocate Power Reserves in Real Time
1.1.3. Model of Monopolistic Structure of Power Reserves for Frequency Control
1.1.4. Efficient Real-Time Power Reserve Reallocation Model
2. Theoretical Framework and Methodology of a Real-Time Reserve Allocation Model for Frequency Control
2.1. Secondary Frequency Control Symmetrical Reserves
2.2. Asymmetrical Tertiary Frequency Control Reserves
2.3. Methodology of a Real-Time Reserve Allocation Model for Frequency Control
2.4. Mathematical Method for Reallocation Secondary Frequency Control Reserves
2.5. Mathematical Method for Reallocation Tertiary Frequency Control Reserves
3. Simulation of Real-Time Scenarios
3.1. Gas Depletion in Combined Cycle Plants Implies Reallocation Reserves to Increase Generation in Secondary Frequency Control
3.1.1. Economic Merit List Method for Calculating the Cost of Raising the Generation in SFC
- Plant G-1 (PV):
- Plant G-2 (PV):
- Plant G-3 (Wind):
- Plant G-4 (Gas):
3.1.2. Technical Minimum Method to Calculate the Cost of Raising Generation in SFC
- Plant G-16 (Hydro):
- Plant G-17 (Coal):
- Plant G-18 (Hydro):
- Plant G-19 (Gas):
3.1.3. Methodology with Inframarginal Plants to Calculate the Cost of Increasing Generation in SFC
- Plant G-2 (PV):
- Plant G-3 (Wind):
- Plant G-5 (Coal):
- Plant G-6 (Coal):
- Plant G-7 (Coal):
- The G-7 power plant can perform SFC(+) of 28 MW in replacement of the G-4 power plant;
- Total cost of the reserve to be replaced: USD 0.
3.1.4. Methodology with Supramarginal Plants to Calculate the Cost of Increasing Generation in SFC
- Plant G-9 (Coal):
- Plant G-10 (Coal):
- Plant G-11 (Coal):
- Plant G-12 (Coal):
- Plant G-13 (Gas):
- The G-9 plant can perform eight MW SFC(+) in replacement of the G-4 plant;
- The G-10 power plant can perform 20 MW SFC(+) in replacement of the G-4 power plant;
- Total cost of reserve to be replaced: .
3.2. Severe Frequency Variations Involve Activating the Power Reserves of the TFC
3.2.1. Method for Activating Power Reserves to Raise TFC Generation
3.2.2. Method to Activate Power Reserves to Decrease Generation in TFC
3.3. Bidding and Auction Market for Frequency Control Power Reserves
3.3.1. Economic Merit List Method for Calculating the Cost of Raising Generation in TFC
- Plant G-1 (PV):
- Plant G-2 (PV):
- Plant G-3 (Wind):
- Plant G-4 (Gas):
3.3.2. Technical Minimum Method to Calculate the Cost of Raising the Generation in TFC
- Plant G-16 (Hydro):
- Plant G-17 (Coal):
- Plant G-18 (Hydro):
- Plant G-19 (Gas):
3.3.3. Methodology with Inframarginal Plants to Calculate the Cost of Increasing Generation in TFC
- Plant G-7 (Coal):
- Plant G-6 (Coal):
- Plant G-5 (Coal):
- Plant G-4 (Gas):
- Plant G-3 (Wind), G-2 (Solar) and G-1 (Solar):
- G-7, G-6, G-5, and G-4 power plants can perform a TFC(+) of 100 MW to replace the G-18 power plant;
- Total cost of the reserve to be replaced: = USD 160.
3.3.4. Methodology with Supramarginal Power Plants to Calculate the Cost of Increasing the Generation in TFC
- Plant G-13 (Gas):
- Plant G-14 (Gas):
- Plant G-15 (Gas):
- Plant G-16 (Hydro):
- The G-13 plant can perform 60 MW TFC(+) in replacement of the G-18 plant;
- The G-14 power plant can perform a TFC(+) of 40 MW to replace the G-18 power plant;
- Total cost of the reserve to be replaced .
4. Discussion and Analysis of the Results Obtained
4.1. Analysis of the Calculation Methods and the Results of the Reallocation of Reserves for SFC
4.2. Analysis of the Results of the Activation of Reserves for TFC
4.3. Analysis of the Calculation Methods and the Result of the Reallocation of Reserve for TFC
5. Conclusions and Future Work
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Abbreviation | Definition |
---|---|
AGC | Automatic generation control |
AS | Ancillary services |
Dx | Demand curve |
EML | Economic merit list |
IMg | Inframarginal |
MgC | Marginal cost |
OC | Operation cost |
PFC | Primary frequency control |
RTO | Real-time operation |
SFC | Secondary frequency control |
SMg | Supramarginal |
TFC | Tertiary frequency control |
TM | Technical minimum |
TSO | Transmission system operators |
VC | Variable cost of generation |
Variables | Definition |
Start-up cost | |
Operating hours | |
Power reserve | |
Total cost of the power reserve for secondary frequency control | |
Costs of power reserves for secondary frequency control of Supramarginal | |
Costs of power reserves for secondary frequency control of Inframarginal | |
Total cost of the power reserve reallocations for up generation of the tertiary frequency control | |
Cost of power reserves for up generation Supramarginal of tertiary frequency control | |
Cost of power reserves for up generation Inframarginal of tertiary frequency control | |
Total cost of the power reserve reallocations for down generation of the tertiary frequency control | |
Cost of power reserves for down generation Supramarginal of tertiary frequency control | |
Cost of power reserves for down generation Inframarginal of tertiary frequency control |
Gx-n | SFC(±) (MW) | TFC(±) (MW) | Type | CMg (USD/MWh) | TFC(+) Ranking | TFC(−) (USD/MW) |
---|---|---|---|---|---|---|
G-1 | 100 | 140 | Solar | 0 | - | 43.4 |
G-2 | 90 | 90 | Solar | 0 | - | 43.4 |
G-3 | 60 | 80 | Wind | 0 | - | 43.4 |
G-4 | 28 | 45 | Gas | 28.6 | - | 49.0 |
G-5 | 14 | 20 | Coal | 28.7 | - | - |
G-6 | 14 | 20 | Coal | 28.7 | - | - |
G-7 | 35 | 15 | Coal | 29.2 | - | - |
G-8 | 8 | 15 | Coal | 29.2 | - | - |
G-9 | 8 | 0 | Coal | 29.8 | - | - |
G-10 | 30 | 0 | Coal | 30.2 | - | - |
G-11 | 8 | 0 | Coal | 31.4 | - | - |
G-12 | 8 | 0 | Coal | 31.7 | - | - |
G-13 | 35 | 60 | Gas | 32.4 | - | - |
G-14 | 30 | 40 | Gas | 35.2 | - | 41.4 |
G-15 | 30 | 40 | Gas | 38.7 | - | 41.6 |
G-16 | 100 | 100 | Hydro | 40.9 | 1° | - |
G-17 | 5 | 20 | Coal | 44.5 | - | - |
G-18 | 100 | 100 | Hydro | 47.2 | 2° | - |
G-19 | 40 | 40 | Gas | 77.0 | 3° | - |
Method | Symb. | State | Marginal Cost | Operation Cost |
---|---|---|---|---|
Economic merit list | EML | Inefficient | High | High |
Technical minimum | TM | Inefficient | Down | High |
Inframarginal methodology | IMg | Proposal | Optimum | Optimum |
Supramarginal methodology | SMg | Proposal | Optimum | Optimum |
Plant | Type | Method | (USD) | Reserve SFC(+) (MW) | Reallocation SFC(+) |
---|---|---|---|---|---|
G-1 | Solar | EML | 817 | 28 | Non-optimal |
G-2 | Solar | EML | 817 | 28 | Non-optimal |
G-3 | Wind | EML | 817 | 28 | Non-optimal |
G-4 | Gas | EML | 817 | 28 | No reserve |
G-5 | Coal | IMg | 14 | 14 | Candidate 1 |
G-6 | Coal | IMg | 14 | 14 | Candidate 2 |
G-7 | Coal | IMg | 0 | 28 | Optimal |
G-9 | Coal | SMg | 17 | 8 | Candidate 3 |
G-10 | Coal | SMg | 28 | 20 | Candidate 4 |
G-11 | Coal | SMg | 62 | 8 | Non-optimal |
G-12 | Coal | SMg | 70 | 8 | Non-optimal |
G-13 | Gas | SMg | 90 | 35 | Non-optimal |
G-16 | Hydro | TM | 338 | 28 | Non-optimal |
G-17 | Coal | TM | 428 | 5 | Non-optimal |
G-18 | Hydro | TM | 504 | 28 | Non-optimal |
G-19 | Gas | TM | 1.338 | 28 | Non-optimal |
Plant | Type | Method | / (USD) | Reserve TFC(+) (MW) | Reallocation TFC(+) |
---|---|---|---|---|---|
G-1 | Solar | EML | 2920 | 14 | Non-optimal |
G-2 | Solar | EML | 2920 | 14 | Non-optimal |
G-3 | Wind | EML | 2920 | 14 | Non-optimal |
G-4 | Gas | IMg | 60 | 45 | Optimum |
G-5 | Coal | IMg | 50 | 20 | Optimum |
G-6 | Coal | IMg | 50 | 20 | Optimum |
G-7 | Coal | IMg | 0 | 15 | Optimum |
G-13 | Gas | SMg | 320 | 60 | Candidate 1 |
G-14 | Gas | SMg | 600 | 40 | Candidate 2 |
G-15 | Gas | SMg | 950 | 40 | Non-optimal |
G-16 | Hydro | TM | 1170 | 100 | Non-optimal |
G-17 | Coal | TM | 1530 | 20 | Non-optimal |
G-18 | Hydro | TM | 1800 | 100 | No reserve |
G-19 | Gas | TM | 4780 | 40 | Non-optimal |
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Balzer, K.; Lazo, J.; Watts, D. Economic Model of Ancillary Services in Real Time for Frequency Control. Energies 2023, 16, 6378. https://doi.org/10.3390/en16176378
Balzer K, Lazo J, Watts D. Economic Model of Ancillary Services in Real Time for Frequency Control. Energies. 2023; 16(17):6378. https://doi.org/10.3390/en16176378
Chicago/Turabian StyleBalzer, Kristian, Joaquín Lazo, and David Watts. 2023. "Economic Model of Ancillary Services in Real Time for Frequency Control" Energies 16, no. 17: 6378. https://doi.org/10.3390/en16176378
APA StyleBalzer, K., Lazo, J., & Watts, D. (2023). Economic Model of Ancillary Services in Real Time for Frequency Control. Energies, 16(17), 6378. https://doi.org/10.3390/en16176378