综合智慧能源 ›› 2025, Vol. 47 ›› Issue (10): 60-68.doi: 10.3969/j.issn.2097-0706.2025.10.007
黄梓琪(
), 吴志聪(
), 徐钢*(
), 葛士宇(
), 陈衡(
)
收稿日期:2024-10-23
修回日期:2024-12-16
出版日期:2025-05-28
通讯作者:
*徐钢(1978),男,教授,博士,从事热力学、火力发电节能理论与技术、多能互补系统集成等方面的研究,xgncepu@163.com。作者简介:黄梓琪(2000),女,硕士生,从事氢醇高效转化及化工动力集成方面的研究,19030821131@163.com;基金资助:
HUANG Ziqi(
), WU Zhicong(
), XU Gang*(
), GE Shiyu(
), CHEN Heng(
)
Received:2024-10-23
Revised:2024-12-16
Published:2025-05-28
Supported by:摘要:
提出一种新型系统,对甲醇合成系统进行全流程优化。该系统将甲醇合成系统的驰放气用作燃气轮机联合循环(GTCC)的原料气体,且GTCC能够有效利用甲醇合成塔所产生的热量,从而提升整个系统能量的利用效率及发电能力。采用Aspen Plus软件构建新系统模型,与甲醇合成系统进行对比,并对两个系统进行热力学及敏感性分析。热力学分析表明:甲醇合成集成GTCC优化系统与传统系统相比能效提升3.53%,㶲效率提升3.66%。敏感性分析结果显示:操作条件设定压力为3~8 MPa、合成温度为200~300 ℃、分流比为0.95~ 0.99,H2/CO2摩尔比为2.5~3.5时,将合成温度设定为250 ℃,H2/CO2摩尔比设定为3,提高压力、增大分流比均对甲醇产量的提升有积极作用。
中图分类号:
黄梓琪, 吴志聪, 徐钢, 葛士宇, 陈衡. 基于甲醇合成与燃气轮机联合循环的联产系统优化分析[J]. 综合智慧能源, 2025, 47(10): 60-68.
HUANG Ziqi, WU Zhicong, XU Gang, GE Shiyu, CHEN Heng. Optimization analysis of a cogeneration system based on methanol synthesis and gas turbine combined cycle[J]. Integrated Intelligent Energy, 2025, 47(10): 60-68.
表7
不同系统的㶲分析
| 项目 | 甲醇合成系统 | 甲醇合成集成GTCC优化系统 | 变化量 |
|---|---|---|---|
| 氢气输入㶲/MW | 669.59 | 669.59 | 0 |
| 电能输入㶲/MW | 11.33 | 12.84 | 1.51 |
| 小计/MW | 680.92 | 682.43 | 1.51 |
| 甲醇输出㶲/MW | 594.32 | 594.32 | 0 |
| GTCC发电功率增量/MW | 0 | 26.30 | 26.30 |
| 小计/MW | 594.32 | 620.61 | 26.30 |
| 驰放气㶲损/MW | 29.82 | 0 | -29.82 |
| 甲醇合成器㶲损/MW | 39.72 | 39.72 | 0 |
| 压缩机㶲损/MW | 2.38 | 2.47 | 0.09 |
| 精馏塔㶲损/MW | 9.37 | 9.37 | 0 |
| 换热器㶲损/MW | 15.28 | 6.45 | -8.83 |
| GTCC㶲损/MW | 0 | 40.95 | 40.95 |
| 废热㶲损/MW | 22.17 | 14.03 | -8.14 |
| 小计/MW | 161.81 | 158.72 | -6.87 |
| 㶲效率/% | 87.28 | 90.94 | 3.66 |
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