Tech-Economic Assessment of Power Transmission Options for Large-Scale Offshore Wind Farms in China
Abstract
:1. Introduction
- (1)
- The evaluation models for different wind power integration technologies are investigated, and the techno-economic costs can be calculated according to the proposed method for different technologies.
- (2)
- The economic characteristics of each technology are clarified based on the proposed analysis model, and the compositions of these various transmission solutions are studied and compared.
- (3)
- The influence factors for the investment of different technologies are also investigated, and the suitable application situations are proposed for different wind power output solutions.
2. Study Area and Methodology
2.1. Study Area
2.2. Technical Evaluation of the Transmission Solutions
3. Methodology
3.1. Costs Calculation of HVAC Cables Transmission
3.1.1. Capital Costs
- 1.
- Substation foundation cost
- 2.
- Cable foundation and installation cost
- 3.
- Reactive power compensation foundation cost
3.1.2. Operation and Maintenance Costs
3.1.3. Costs of Loss
3.2. Costs Calculation of VSC-HVDC Transmission
3.2.1. Capital Costs
- 1.
- Converter station foundation cost
- 2.
- Cable foundation and installation cost
3.2.2. Operation and Maintenance Costs
3.2.3. Costs of Loss
3.3. Costs Calculation of GIL Transmission Concept
3.3.1. Capital Costs
3.3.2. Operation and Maintenance Costs
3.3.3. Costs of Loss
3.4. Costs Calculation of Hybrid HVDC Transmission
3.4.1. Capital Costs
3.4.2. Operation and Maintenance Costs
3.4.3. Costs of Loss
4. Results and Discussion
4.1. Essential Evaluation Data
4.1.1. Capital Costs Evaluation
4.1.2. Operation and Maintenance Costs Evaluation
4.1.3. Costs of Loss Evaluation
4.2. Evaluation Results
4.3. Comparisons of Economic Evaluation
4.3.1. Total Costs Comparisons with Different L
4.3.2. Costs Components Comparisons with Different L
4.3.3. Total Costs Comparisons with Different P
4.3.4. Costs Components Comparisons with Different P
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Methods | Advantage | Restrictions | Potential |
---|---|---|---|
HVAC | Easy layout, High reliability, Rich experience | Large distributed capacitance, Additional reactive power compensation, Multi lines for larger capacity, Synchronous fault propagation | Popular for near sea OWFs |
VSC-HVDC | Better stability, Low line cost and loss, Restrain fault propagation, Easy for construction and capacity expansion | Layout of converter station, Additional offshore platform | Developing rapidly Large-capacity transmission, and long-distance transmission |
GIL | Best operation reliability, High ampacity, Large transmission capacity of single line and less loss | High cost, High technical requirements, Long project period | Limited application for large-capacity transmission |
Hybrid HVDC | Better performance than VSC-HVDC or LCC-HVDC, Lower cost than VSC-HVDC | The available transmission power is determined by VSC side, Hard to power flow reversal, Lack research | New trend of transmission, Worth developing |
Components | Cost | HVAC | VSC-HVDC | GIL | Hybrid HVDC |
---|---|---|---|---|---|
220 kV, 1200 mm2 Singlecore Underwater AC Cable | ±200 kV, 500 mm2 Core Optical DC Cable | 220 kV GIL Line | ±200 kV, 500 mm2 Core Optical DC Cable | ||
Capital costs | Foundation costs of substation (converter station) | CNY 0.45 million/MVA [a] | CNY 1.1 million/MW [36] | CNY 0.45 million/MVA [a] | CNY 0.9621 million/MW [b] |
Expense for P1 | CNY 3.732 million/km [c] | CNY 1.077 million/km [b] | CNY 20 million/km [37] | CNY 1.077 million/km [b] | |
Installation cost P2(P3) | CNY 0.30533 million/km [a,d] | CNY 0.3 million/km [a] | CNY 0.3 million/km [a] | CNY 0.3 million/km [b] | |
OPEX | Annual percentage A | 1.2% [36] | 0.5% [36] | 0.5% [36] | 0.5% [b] |
Loss costs | Power loss of substation (converter station) | 0.4% [36] | 1.75% [36] | 0.4% [36] | 1.275% [b] |
Loss costs of cables | CNY 0.6145 million/km | CNY 0.0876 million/km [38] | CNY 0.077 million/km [37] | CNY 0.0876 million/km [b] |
P (MW) | L (km) | HVAC (CNY Million) | VSC-HVDC (CNY Million) | GIL (CNY Million) | Hybrid HVDC (CNY Million) |
---|---|---|---|---|---|
25 | 471.624 | 745.839 | 1686.1 | 659.657 | |
300 | 50 | 796.791 | 817.222 | 3218.2 | 731.04 |
75 | 1121.96 | 888.605 | 4750.2 | 802.423 | |
25 | 943.247 | 1491.68 | 1840.2 | 1250.12 | |
600 | 50 | 1593.58 | 1634.45 | 3372.2 | 1323.69 |
75 | 2243.93 | 1777.21 | 4904.3 | 1397.26 | |
25 | 1414.47 | 2237.52 | 1993.8 | 1840.58 | |
900 | 50 | 2389.99 | 2451.67 | 3525.9 | 1916.34 |
75 | 3365.48 | 2665.82 | 5057.9 | 1992.1 |
Options | L (km) | Ccap (CNY Million) | Copex (CNY Million) | Closs (CNY Million) | Ctotal (CNY Million) |
---|---|---|---|---|---|
25 | 448.33 | 5.38 | 17.914 | 471.624 | |
HVAC | 50 | 754.46 | 9.054 | 33.278 | 796.791 |
75 | 1060.59 | 12.727 | 48.641 | 1121.958 | |
25 | 728.85 | 3.644 | 13.345 | 745.839 | |
VSC | 50 | 797.7 | 3.989 | 15.534 | 817.222 |
75 | 866.55 | 4.332 | 17.723 | 888.605 | |
25 | 1664.7 | 8.323 | 13.083 | 1686.11 | |
GIL | 50 | 3187.2 | 15.936 | 15.009 | 3218.15 |
75 | 4709.7 | 23.549 | 16.935 | 4750.18 | |
25 | 646.11 | 3.231 | 10.317 | 659.657 | |
Hybrid | 50 | 714.96 | 3.575 | 12.506 | 731.04 |
75 | 783.81 | 3.919 | 14.694 | 802.423 |
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Jiang, Q.; Li, B.; Liu, T. Tech-Economic Assessment of Power Transmission Options for Large-Scale Offshore Wind Farms in China. Processes 2022, 10, 979. https://doi.org/10.3390/pr10050979
Jiang Q, Li B, Liu T. Tech-Economic Assessment of Power Transmission Options for Large-Scale Offshore Wind Farms in China. Processes. 2022; 10(5):979. https://doi.org/10.3390/pr10050979
Chicago/Turabian StyleJiang, Qin, Baohong Li, and Tianqi Liu. 2022. "Tech-Economic Assessment of Power Transmission Options for Large-Scale Offshore Wind Farms in China" Processes 10, no. 5: 979. https://doi.org/10.3390/pr10050979
APA StyleJiang, Q., Li, B., & Liu, T. (2022). Tech-Economic Assessment of Power Transmission Options for Large-Scale Offshore Wind Farms in China. Processes, 10(5), 979. https://doi.org/10.3390/pr10050979