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河北省典型沿海风电项目生命周期碳排放核算
Life cycle carbon emission accounting of a typical coastal wind power generation project in Hebei Province, China
| 作者 | Wei Gao · Mengyao Han · Lijuan Chen · Chao Ai · Siyuan Liu · Shengwei Cao · Longzheng Wei |
| 期刊 | Energy Conversion and Management |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 324 卷 |
| 技术分类 | 风电变流技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | A [carbon emission](https://www.sciencedirect.com/topics/earth-and-planetary-sciences/carbon-dioxide-emission "Learn more about carbon emission from ScienceDirect's AI-generated Topic Pages") mixed accounting framework with wind conditions is established. |
语言:
中文摘要
摘要 在传统能源结构向全生命周期零碳排放的可再生能源转型背景下,风力发电是一种典型的基于可再生能源的发电形式,风电项目的生命周期碳排放已成为全球关注的焦点。由于风能的波动性和随机性直接影响风电项目的碳排放,因此准确预测其在服役期间的碳排放量及环境影响具有较大难度。本文以中国秦皇岛市的沿海风电场为研究案例,在不考虑风机间尾流效应的情况下,构建了考虑风况影响的预测型全生命周期碳排放核算体系,围绕整个生命周期建立了减排指标体系,并将风电的减排能力与传统火电工程进行了对比分析。结果表明,该风电项目的净碳减排量为7.62×10⁴ t CO₂e,相较于同等装机容量的传统火电机组,累计净减排量达1.35×10⁶ t CO₂e;减排水平达到71.47%,碳减排投入的回报率较火电机组提高了357.46%;碳减排投入的回收周期为4.98年。研究成果为沿海风电项目的碳排放及其减排潜力提供了有效的核算框架,表明风力发电机组的推广与应用有助于实现碳达峰与碳中和目标。
English Abstract
Abstract Under the transition from a traditional energy structure to renewable energy with zero carbon emissions over the whole life cycle, wind power is a typical form of renewable energy-based power generation, and the life cycle carbon emissions of wind power projects have become the focus of global attention. Because the fluctuation and randomness of wind energy directly affect the carbon emissions of wind power projects, accurately predicting wind power projects’ carbon emissions and environmental impacts during their service life is impossible. The coastal wind farm in Qinhuangdao City, China, is taken as the research case without considering the wake effect between wind turbines. A predictive composite whole-life carbon emission accounting system is constructed with the impact of wind conditions, an emission reduction indicator system is established around the entire life cycle, and the emission reduction capacity of wind power is compared with that of traditional thermal power engineering. The results show that the net carbon emission reduction of the wind power project is 7.62 E + 04 t CO 2 e, and net emissions are reduced by 1.35 E + 06 t CO 2 e compared with traditional thermal power units of the same power level. The emission reduction level reaches 71.47 %, and the return rate of emission reduction increases by 357.46 % compared with thermal power units. The return cycle of the carbon emission reduction input is 4.98 years. The research results provide an effective accounting framework for the carbon emissions and emission reduction potential of coastal wind power projects and show that the popularization and application of wind turbines can help achieve carbon peak and neutrality.
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SunView 深度解读
该研究对阳光电源风电配套储能系统具有重要参考价值。研究揭示风电全生命周期碳减排潜力达71.47%,但风能波动性影响碳排放精准预测。阳光电源ST系列储能变流器及PowerTitan系统可通过平抑风电波动,提升发电稳定性,优化碳减排效益。结合iSolarCloud平台的预测性维护功能,可建立风储协同的全生命周期碳排放监测体系,精准量化储能系统对风电项目碳减排的增益贡献,为海上风电场储能配置提供数据支撑,助力双碳目标实现。