上海交通大学学报 ›› 2022, Vol. 56 ›› Issue (12): 1561-1571.doi: 10.16183/j.cnki.jsjtu.2022.150
所属专题: 《上海交通大学学报》2022年“新型电力系统与综合能源”专题
• 新型电力系统与综合能源 • 下一篇
收稿日期:
2022-05-07
出版日期:
2022-12-28
发布日期:
2023-01-05
通讯作者:
李英姿
E-mail:liyz@ustb.edu.cn.
作者简介:
张 硕(1985-),男,河北省保定市人,副教授,从事综合能源系统、电力市场及电碳协同研究.
基金资助:
ZHANG Shuo1,3, LI Wei1, LI Yingzi2(), LIU Qiang1, ZENG Ming1
Received:
2022-05-07
Online:
2022-12-28
Published:
2023-01-05
Contact:
LI Yingzi
E-mail:liyz@ustb.edu.cn.
摘要:
实现我国“30·60”双碳目标,能源绿色低碳转型是基础支撑,构建以新能源为主体的新型电力系统是关键举措,绿色电力证书(简称绿证)则是体现可再生能源绿色价值的重要凭证.当前我国绿证分配机制单一,无法有效衡量不同可再生能源发电类型可获得绿色价值的差异性,并发挥其平衡可再生能源协调发展的杠杆作用.为此,从可再生能源发电类型电量兑换绿证的差异化入手,建立考虑可再生能源综合价值的绿证差异化评价指标体系,应用CRITIC法、熵权法和TOPSIS法构建可再生能源电力绿证差异化评价模型.以2030年碳达峰目标为发展场景,分析模型对集中式光伏发电、分布式光伏发电、陆上风力发电和海上风力发电绿色收益的影响,进而修正其发展规划,并提出绿证相关政策建议.所构建的绿证差异化分配模型可为我国绿证市场机制的建设和完善提供相应的辅助决策支持.
中图分类号:
张硕, 李薇, 李英姿, 刘强, 曾鸣. 面向新型电力系统的可再生能源绿色电力证书差异化配置模型[J]. 上海交通大学学报, 2022, 56(12): 1561-1571.
ZHANG Shuo, LI Wei, LI Yingzi, LIU Qiang, ZENG Ming. Differentiated Allocation Model of Renewable Energy Green Certificates for New-Type Power System[J]. Journal of Shanghai Jiao Tong University, 2022, 56(12): 1561-1571.
表1
可再生能源电力绿证差异化评价指标体系
一级指标 | 二级指标 | 指标特性 |
---|---|---|
技术 | 能源开发成熟度/% | 能源开发,正向 |
合理建设周期/d | 能源开发,负向 | |
能源转换效率/% | 设施条件,正向 | |
能源利用效率/% | 设施条件,正向 | |
装机容量平均增长量/% | 设施条件,正向 | |
经济 | 单位容量造价/(元·kW-1) | 运行成本,负向 |
平准化度电成本/(元·kW-1·h-1) | 运行成本,负向 | |
平均年投资额/元 | 运行成本,正向 | |
年带动就业人数/(人·MW-1) | 运行收益,正向 | |
上网电价/(元·kW-1·h-1) | 运行收益,负向 | |
资源 | 资源开发潜力/MW | 能源潜力,正向 |
电力季节性波动率/% | 能源潜力,负向 | |
弃风、光率/% | 能源潜力,负向 | |
可再生能源发电量占比/% | 利用水平,正向 | |
可再生能源装机量占比/% | 利用水平,正向 | |
环境 | 供电降污排放量/t | 降污成效,正向 |
供电降碳排放量/t | 降污成效,正向 | |
供电降废排放量/t | 降污成效,正向 | |
供电节水量/t | 保护成效,正向 | |
单位土地装机量/(kW·m-3) | 保护成效,正向 |
表8
修正前装机容量发展路径测算结果
年份 | $C^{a}_{i,t}$ | $P^{t}_{i,v}$ | |||
---|---|---|---|---|---|
集中式光伏 | 分布式光伏 | 陆上风电 | 海上风电 | ||
2020 | 17 400 | 7 900 | 27 100 | 900 | 53 300 |
2021 | 19 928 | 9 227 | 29 751 | 1 046 | 59 952 |
2022 | 22 456 | 10 554 | 32 402 | 1 192 | 66 604 |
2023 | 24 984 | 11 881 | 35 053 | 1 338 | 73 256 |
2024 | 27 512 | 13 208 | 37 704 | 1 484 | 79 908 |
2025 | 30 040 | 14 535 | 40 355 | 1 630 | 86 560 |
2026 | 32 568 | 15 862 | 43 006 | 1 776 | 93 212 |
2027 | 35 096 | 17 189 | 45 657 | 1 922 | 99 864 |
2028 | 37 624 | 18 516 | 48 308 | 2 068 | 106 516 |
2029 | 40 152 | 19 843 | 50 959 | 2 214 | 113 168 |
2030 | 42 680 | 21 170 | 53 610 | 2 360 | 119 820 |
表9
修正后装机容量发展路径规划结果
年份 | 装机容量 | Qn | |||
---|---|---|---|---|---|
集中式光伏 | 分布式光伏 | 陆上风电 | 海上风电 | ||
2020 | 17 400 | 7 900 | 27 100 | 900 | 53 300 |
2021 | 20 054 | 9 758 | 28 956 | 1 207 | 59 975 |
2022 | 22 707 | 11 614 | 30 811 | 1 514 | 66 646 |
2023 | 25 360 | 13 471 | 32 665 | 1 820 | 73 317 |
2024 | 28 013 | 15 328 | 34 520 | 2 127 | 79 988 |
2025 | 30 666 | 17 184 | 36 375 | 2 433 | 86 659 |
2026 | 33 319 | 19 041 | 38 230 | 2 740 | 93 329 |
2027 | 35 972 | 20 898 | 40 084 | 3 046 | 100 000 |
2028 | 38 625 | 22 755 | 41 939 | 3 353 | 106 671 |
2029 | 41 278 | 24 611 | 43 794 | 3 659 | 113 342 |
2030 | 43 931 | 26 468 | 45 649 | 3 966 | 120 013 |
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