The Experimental Evaluation of Energy Efficiency and Carbonic Emission Rates for All Stable Loads of Larger-Scale (+600 MW) Coal-Fired Power Generation Units in Vietnam
Abstract
:1. Introduction
2. Literature Review
3. Methods and Data
3.1. Object
3.2. The Software PG_CAL_VER. 0.0
3.3. Description
4. Results and Discussion
4.1. Calculation
4.2. Curves for All Stable Load
4.3. Curves for Units
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
Nomenclature
ASME | American society of mechanical engineers |
CFB | circulating fluidized bed |
LNG | liquefied natural gas |
IAPWS IF-97 | the international association for the properties of water and steam industrial formulation 1997 |
MATLAB | matrix laboratory (a multi-paradigm numerical computing environment and proprietary programming language developed by MathWorks) |
DH1_1 | Unit #1 of Duyen Hai 1 thermal power plant |
GUI | graphical user interface |
MOIT | Ministry of Industry and Trade of the Socialist Republic of Vietnam |
PTC | performance test code |
PC | pulverized coal |
SCADA | supervisory control and data acquisition |
RO | rate output |
VT1_1 | Unit #1 of Vinh Tan 1 thermal power plant |
VT4_1 | Unit #1 of Vinh Tan 4 thermal power plant |
VT4_2 | Unit #2 of Vinh Tan 4 thermal power plant |
VT4_E | Vinh Tan 4 extension thermal power plant |
VT4_D | Design values of Vinh Tan 4 extension thermal power plant |
References
- Global Coal Plant Tracker|End Coal. Available online: https://endcoal.org/tracker (accessed on 9 February 2020).
- Clark, R.; Zucker, N.; Urpelainen, J. The future of coal-fired power generation in Southeast Asia. Renew. Sustain. Energy Rev. 2020, 121, 109650. [Google Scholar] [CrossRef]
- MOIT. The Report No. 828/BCT-DL Dated 9th February 2021 Concerning About the National Power Development Master Plan for 2021–2030 Period with Vision Towards 2045 Which Issued by Ministry of Industry and Trade of the Socialist Republic of Vietnam (MOIT), February 2021. Available online: http://www.erea.gov.vn/d6/vi-VN/news/Bo-Cong-Thuong-xin-y-kien-gop-y-Du-thao-De-an-Quy-hoach-phat-trien-dien-luc-quoc-gia-thoi-ky-2021-2030-tam-nhin-toi-nam-2045-23-2303-108 (accessed on 9 February 2020).
- Hoang, A.; Nguyen, T.; Nguyen, M. A Research of Acid Gas Condensation in Large-scale Coal-Fired Power Plants. In Proceedings of the 2018 4th International Conference on Green Technology and Sustainable Development (GTSD), Ho Chi Minh City, Vietnam, 23–24 November 2018; pp. 105–109. [Google Scholar]
- MONRE. The Draft of QCVN Dated 8th July 2021 Concerning About National Technical Regulation on Industrial Emission Which Issued by the Ministry of Natural Resources and Environment of the Socialist Republic of Vietnam (MONRE), July 2021. Available online: https://monre.gov.vn/VanBan/Pages/ChiTietVanBanDuThao.aspx?pID=267 (accessed on 9 February 2020).
- Shen, J.; Zheng, C.; Xu, L.; Zhang, Y.; Zhang, Y.; Liu, S.; Gao, X. Atmospheric emission in-ventory of SO3 from coal-fired power plants in China in the period 2009–2014. Atmos. Environ. 2019, 197, 14–21. [Google Scholar] [CrossRef]
- Yang, Y.; Li, C.; Wang, N.; Yang, Z. Progress and prospects of innovative coal-fired power plants within the energy internet. Glob. Energy Interconnect. 2019, 2, 160–179. [Google Scholar] [CrossRef]
- Zhao, X.; Cai, Q.; Ma, C.; Hu, Y.; Luo, K.; Li, W. Economic evaluation of environmental externalities in China’s coal-fired power generation. Energy Policy 2017, 102, 307–317. [Google Scholar] [CrossRef]
- Hoang, A.; Nguyen, T.; Nguyen, M. An Experimental Study and Evaluation between Fired Domestic Coal Subcritical and Mixed Import Coal Super-critical Power Units in Viet Nam: The Economic-Technical Terms. In Proceedings of the 2019 IEEE PES GTD Grand International Conference and Exposition Asia (GTD Asia), Bangkok, Thailand, 19–23 March 2019; pp. 206–210. [Google Scholar]
- Zhao, Y.; Liu, M.; Wang, C.; Wang, Z.; Chong, D.; Yan, J. Exergy analysis of the regulating measures of operational flexibility in supercritical coal-fired power plants during transient processes. Appl. Energy 2019, 253, 1134871. [Google Scholar] [CrossRef]
- Hoang, A.T.; Nguyen, T.V.; Nguyen, B.T. The Novel Design of Feed-water Control System for Thermal Power Plant Using Super-critical Start-up Motor-Boiler Feed-water Pump. In Proceedings of the 2020 IEEE PES/IAS PowerAfrica, Nairobi, Kenya, 25–28 August 2020; pp. 1–5. [Google Scholar]
- Li, J.; Zhang, Y.; Tian, Y.; Cheng, W.; Yang, J.; Xu, D.; Wang, Y.; Xie, K.; Ku, A.Y. Reduction of carbon emissions from China’s coal-fired power industry: Insights from the province-level data. J. Clean. Prod. 2020, 242, 118518. [Google Scholar] [CrossRef]
- Chen, D.; Cao, L.; Si, H. Benchmark value determination of energy effiency indexes for coal-fied power units based on data mining methods. Adv. Eng. Inform. 2020, 43, 101029. [Google Scholar] [CrossRef]
- Wang, S.; Yang, D.; Liu, D.; Ouyang, S.; Wang, W. Experimental and theoretical analysis on the safety and efficiency of an ultra-supercritical pulverized coal-fired boiler with low mass flux vertical water wall. Appl. Therm. Eng. 2019, 146, 440–449. [Google Scholar] [CrossRef]
- Kumar, R. A critical review on energy, exergy, exergoeconomic and economic (4-E) analysis of thermal power plants. Eng. Sci. Technol. Int. J. 2017, 20, 283–292. [Google Scholar] [CrossRef] [Green Version]
- Adibhatla, S.; Kaushik, S. Energy and exergy analysis of a super critical thermal power plant at various load conditions under constant and pure sliding pressure operation. Appl. Therm. Eng. 2014, 73, 51–65. [Google Scholar] [CrossRef]
- Kaushik, S.; Reddy, V.S.; Tyagi, S. Energy and exergy analyses of thermal power plants: A review. Renew. Sustain. Energy Rev. 2011, 15, 1857–1872. [Google Scholar] [CrossRef]
- Regulagadda, P.; Dincer, I.; Naterer, G. Exergy analysis of a thermal power plant with measured boiler and turbine losses. Appl. Therm. Eng. 2010, 30, 970–976. [Google Scholar] [CrossRef]
- Alobaid, F.; Mertens, N.; Starkloff, R.; Lanz, T.; Heinze, C.; Epple, B. Progress in dynamic simulation of thermal power plants. Prog. Energy Combust. Sci. 2017, 59, 79–162. [Google Scholar] [CrossRef]
- Kumar, P.R.; Raju, V.R.; Kumar, N.R. Simulation and parametric optimisation of thermal power plant cycles. Perspect. Sci. 2016, 8, 304–306. [Google Scholar] [CrossRef] [Green Version]
- Sanpasertparnich, T.; Aroonwilas, A. Simulation and optimization of coal-fired power plants. Energy Procedia 2009, 1, 3851–3858. [Google Scholar] [CrossRef] [Green Version]
- Hoang, A.; Nguyen, T.; Nguyen, M. Experimental Verification of Electrostatic Precipitator Stable Operation Under Oil and Co-fuel Firing Conditions of a Coal-fired Power Plant. In Proceedings of the 2018 International Conference and Utility Exhibition on Green Energy for Sustainable Development (ICUE), Phuket, Thailand, 24–26 October 2018; pp. 1–5. [Google Scholar]
- PECC2. Vinh Tan 4 Extension Thermal Power Plant Project: As-Built Documents; Power Engineering Consulting Joint Stock Company 2 (PECC2): Ho Chi Minh City, Vietnam, 2020. [Google Scholar]
- PECC2. Vinh Tan 4 Thermal Power Plant Project: As-Built Document; Power Engineering Consulting Joint Stock Company 2 (PECC2): Ho Chi Minh City, Vietnam, 2020. [Google Scholar]
- PECC2. Vinh Tan 1 Thermal Power Plant Project: As-Built Document; Power Engineering Consulting Joint Stock Company 2 (PECC2): Ho Chi Minh City, Vietnam, 2020. [Google Scholar]
- PECC2. Duyen Hai 1 Thermal Power Plant Project: As-Built Document; Power Engineering Consulting Joint Stock Company 2 (PECC2): Ho Chi Minh City, Vietnam, 2020. [Google Scholar]
Item | Generating Capacity (MW) | Classified Change (%) | ||||
---|---|---|---|---|---|---|
2025 | 2030 | 2045 | 2025 | 2030 | 2045 | |
Total installed power capacity | 105,265 | 143,839 | 329,610 | |||
Coal | 30,179 | 44,878 | 63,944 | 28.67% | 31.2% | 19.4% |
Gas + LNG + Heavy oil + Diesel | 14,621 | 32,076 | 69,877 | 13.89% | 22.3% | 21.2% |
Renewable energy (Wind, Solar, Waste-to-energy, Biomass, Biogas, Tide, Geothermal and others) | 31,527 | 36,966 | 137,447 | 29.95% | 25.7% | 41.7% |
Hydro power (run-of-rivers and storage hydro pump) | 26,032 | 25,503 | 36,587 | 24.73% | 17.73% | 11.1% |
Import sources | 2095 | 4416 | 21,754 | 2.76% | 3.07% | 6.6% |
Description | Symbol | Unit | 100_DH1_1 | 75_DH1_1 | 100_DH1_2 | 75_DH1_2 | 100_VT4_1 | 75_VT4_1 | 100_VT4_2 | 75_VT4_2 | 100_VT4_E | 75_VT4_E | 60_VT4_E | 100_VT1_1 | 75_VT1_1 |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Corrected Gross Unit Output | Pg_corr | kW | 626,048 | 471,059 | 623,083 | 469,573 | 603,805 | 453,036 | 605,532 | 449,984 | 607,361 | 455,539 | 363,235 | 618,635 | 465,266 |
Corrected Plant Net Heat Rate | HRnet_corr | kJ/kWh | 9472 | 9788 | 9300 | 9488 | 9110 | 9336 | 9185 | 9540 | 9316 | 9505 | 10,183 | 9116 | 9643 |
Corrected Plant Net Efficiency | Effnet_corr | % | 38.71 | 37.94 | 38.01 | 36.78 | 39.52 | 38.56 | 39.19 | 37.73 | 38.64 | 37.88 | 35.35 | 39.49 | 37.33 |
Carbonic Emission Rate | gCO2/kWh | 468 | 483 | 459 | 469 | 450 | 461 | 454 | 471 | 460 | 469 | 503 | 450 | 476 | |
Throttle Steam Pressure | BarA | 164 | 127 | 163 | 127 | 241 | 200 | 242 | 198 | 241 | 200 | 159 | 226 | 173 | |
Net Standard Coal Consumption Rate | mnet_std_coal_corr | kg/kWh | 0.323 | 0.334 | 0.317 | 0.324 | 0.311 | 0.319 | 0.313 | 0.326 | 0.318 | 0.324 | 0.348 | 0.311 | 0.329 |
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Hoang, A.T.; Nguyen, T.V.; Nguyen, B.T. The Experimental Evaluation of Energy Efficiency and Carbonic Emission Rates for All Stable Loads of Larger-Scale (+600 MW) Coal-Fired Power Generation Units in Vietnam. Energies 2022, 15, 2185. https://doi.org/10.3390/en15062185
Hoang AT, Nguyen TV, Nguyen BT. The Experimental Evaluation of Energy Efficiency and Carbonic Emission Rates for All Stable Loads of Larger-Scale (+600 MW) Coal-Fired Power Generation Units in Vietnam. Energies. 2022; 15(6):2185. https://doi.org/10.3390/en15062185
Chicago/Turabian StyleHoang, Anh T., Tuyen V. Nguyen, and Bao T. Nguyen. 2022. "The Experimental Evaluation of Energy Efficiency and Carbonic Emission Rates for All Stable Loads of Larger-Scale (+600 MW) Coal-Fired Power Generation Units in Vietnam" Energies 15, no. 6: 2185. https://doi.org/10.3390/en15062185