Discussion on the Feasibility of the Integration of Wind Power and Coal Chemical Industries for Hydrogen Production
Abstract
:1. Introduction
2. Wind-Coal Coupling Energy System
2.1. Basic Framework
2.2. Characterization
3. Feasibility Analysis
4. Programming Model
4.1. Objective Function
4.2. Restrictions
4.2.1. System Energy and Material Balance Constraints
4.2.2. Constraints on Hydrogen Production Cell of an Electrolyzer
4.2.3. Hydrogen Storage Unit Constraints
4.2.4. Other Constraints
5. Case Analysis
6. Challenges
7. Conclusions
- The credibility of the wind farm capacity and its investment subject are the main factors affecting the feasibility of the WCCES. The higher the credibility of the wind farm, the lower the proportion of electricity price costs.
- Constrained by electricity prices and incentives for environmental benefits, the self-built wind farm can make the WCCES more economical while achieving an output similar to that obtained using the methanol production plants.
- As the trusted capacity of the wind farm increases, the planned rated power of the electrolytic cell and the capacity of the hydrogen storage tank decrease and the WCCES revenue increases. When the trusted capacity of the wind farm increases to 0.26, the coupled system does not need to purchase electricity from a large power grid and a stable hydrogen supply can be maintained by coordinating the charging and discharging processes of the hydrogen storage tank.
- Coupled scheme 1 is more economical than coupled scheme 2. Scheme 1 will reduce emissions by 22.4 million tons during the planning period, and the emission reduction benefit will be 2.048 billion yuan if the emission reduction benefits of hydrogen production using wind power are not considered.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Title | Unit Price |
---|---|
Industrial water | 5 Yuan/t |
Coal | 300 Yuan/t |
Electricity price | 0.5 Yuan/kWh |
Industrial methanol | 2500 Yuan/t |
Investment cost | 8000 Yuan/kW |
Methanol Energy Consumption and Emissions/t | Legacy System | Wind-coal Coupled System |
---|---|---|
Coal consumption in pulping process/t | 1.36 | 1 |
Water consumption in pulping process/t | 4 | 2 |
Coal consumption in power generation/t | 0.24 | - |
Water consumption in power generation/t | 6 | - |
Electrolytic water consumption/t | - | 1 |
Water electrolysis consumes electricity/MWh | - | 6.25 |
CO2 emission from power generation/t | 0.56 | - |
CO2 separation emission/t | 2.08 | 0.4 |
System energy consumption | 46,892.8 | 22,500 |
Title | Simulation Parameters |
---|---|
Electrolytic cell investment cost | 10,000 Yuan/kW |
Hydrogen storage tank investment cost | 1200 Yuan/Nm3 |
Electrolytic cell operating costs | 1.6 Yuan/kWh |
CO2 emission subsidy | 0.04 Yuan/kg |
Planning Indicators | Trusted Capacity (0.2) | Trusted Capacity (0.36) |
---|---|---|
Rated power of electrolyzer/MW | 1.36 | 1 |
Hydrogen storage tank capacity/L | 4 | 2 |
Hydrogen production storage investment cost/100 million yuan | 0.24 | - |
Power purchase cost/100 million yuan | 6 | - |
Wind power consumption/100 million KWH | - | 1 |
Planning Indicators | Scheme 1 | Scheme 2 |
---|---|---|
Comprehensive investment cost of wind farm/100 million Yuan | 40 | - |
Wind farm operation and maintenance costs/100 million Yuan | 1.2 | - |
Hydrogen production storage investment costs/100 million Yuan | 4.01 | 4.03 |
Investment cost of methanol from coal/100 million yuan | 1.0 | 1.0 |
Coal consumption cost/100 million Yuan | 6.86 | 6.86 |
Water consumption cost/100 million Yuan | 0.45 | 0.45 |
Power purchase cost/100 million Yuan | 0 | 32.41 |
Methanol yield/100 million Yuan | 57.2 | 57.2 |
CO2 emission reduction/ten thousand tons | 2240 | - |
Emission reduction benefits/100 million Yuan | 20.48 | - |
Wind power consumption/100 million KWH | 64.82 | - |
Total revenue/100 million yuan | 24.16 | 12.45 |
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Yang, S.; Peng, S.; Ling, X. Discussion on the Feasibility of the Integration of Wind Power and Coal Chemical Industries for Hydrogen Production. Sustainability 2021, 13, 11628. https://doi.org/10.3390/su132111628
Yang S, Peng S, Ling X. Discussion on the Feasibility of the Integration of Wind Power and Coal Chemical Industries for Hydrogen Production. Sustainability. 2021; 13(21):11628. https://doi.org/10.3390/su132111628
Chicago/Turabian StyleYang, Shuxia, Shengjiang Peng, and Xianzhang Ling. 2021. "Discussion on the Feasibility of the Integration of Wind Power and Coal Chemical Industries for Hydrogen Production" Sustainability 13, no. 21: 11628. https://doi.org/10.3390/su132111628
APA StyleYang, S., Peng, S., & Ling, X. (2021). Discussion on the Feasibility of the Integration of Wind Power and Coal Chemical Industries for Hydrogen Production. Sustainability, 13(21), 11628. https://doi.org/10.3390/su132111628