退役风力涡轮机叶片的热解和氧化特性及能源自给工艺设计

IF 5.8 2区 化学 Q1 CHEMISTRY, ANALYTICAL Journal of Analytical and Applied Pyrolysis Pub Date : 2024-11-19 DOI:10.1016/j.jaap.2024.106872
Yili Zhang , Zhaotianyi Zhang , Wenjing Ma , Pei Chen , Bing Bai , Linhui Li , Yuan Lai , Xuebin Wang
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引用次数: 0

摘要

热解提供了一种从报废风力涡轮机叶片中提取有价值玻璃纤维的直接方法,显示出资源利用的巨大潜力。实验结果表明,热解气体的热值随着热解温度在 400 ℃ 至 700 ℃ 之间的升高而增加。得到的固体产品在 500 ℃ 下氧化 40 分钟后,可得到洁净的玻璃纤维产品。在此基础上,使用 Aspen Plus 软件设计了一种新的热解工艺,用于退役风力涡轮机叶片和清洁玻璃纤维的回收。通过比较热解温度的影响,分析了系统的稳定性和灵活性。模拟结果表明,400-700 ℃范围内的热解温度可完全实现系统的能量自给自足,多余的热量可通过加热高热容量的熔盐储存起来。在实际应用中,建议将热解温度和氧化温度设定在 500 ℃ 左右,从而进一步提高系统的经济效益。该热解回收工艺通过能量自给系统优化,可显著提高经济效益,为退役风电叶片资源的可持续经济管理做出了重要贡献。
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Pyrolysis and oxidation characteristics and energy self-sustaining process design of retired wind turbine blades
Pyrolysis offers a straightforward method to extract valuable glass fiber from retired wind turbine blades, showing great potential for resource utilization. Experimental findings reveal that calorific value of pyrolysis gas increases with pyrolysis temperatures between 400 and 700 ℃. When the solid product obtained was oxidized at 500 ℃ for 40 minutes, clean glass fiber products can be obtained. Based on it, a new pyrolysis process for retired wind turbine blades and clean glass fiber recovery was designed using Aspen Plus software. By comparing the influence of pyrolysis temperatures, the stability and flexibility of the system were analyzed. The simulation results indicate that the pyrolysis temperature within the range of 400–700 ℃ can fully achieve energy self-sufficiency of the system, and excess heat can be stored by heating molten salts with high heat capacity. In practical applications, it is recommended to set the pyrolysis temperature and oxidation temperature at approximately 500 ℃, thereby further improving the economic efficiency of the system. This pyrolysis and recovery process can significantly improve its economic efficiency through energy self-sustaining system optimization, marking a significant contribution to the sustainable and economic management of retired wind turbine blade resources.
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来源期刊
CiteScore
9.10
自引率
11.70%
发文量
340
审稿时长
44 days
期刊介绍: The Journal of Analytical and Applied Pyrolysis (JAAP) is devoted to the publication of papers dealing with innovative applications of pyrolysis processes, the characterization of products related to pyrolysis reactions, and investigations of reaction mechanism. To be considered by JAAP, a manuscript should present significant progress in these topics. The novelty must be satisfactorily argued in the cover letter. A manuscript with a cover letter to the editor not addressing the novelty is likely to be rejected without review.
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