主管:中华人民共和国应急管理部
主办:应急管理部天津消防研究所
ISSN 1009-0029  CN 12-1311/TU

消防科学与技术 ›› 2026, Vol. 45 ›› Issue (9): 61-71.

• • 上一篇    下一篇

抽水蓄能电站地下厂房大空间火灾机械排烟性能数值模拟

张佳庆, 尚峰举, 过羿   

  1. (国网安徽省电力有限公司电力科学研究院 安徽省新型电力系统火灾安全与应急技术重点实验室(国家电网公司输变电设施火灾防护实验室),安徽 合肥 230601)
  • 收稿日期:2025-12-09 修回日期:2026-01-16 出版日期:2026-09-15 发布日期:2026-09-15
  • 作者简介:张佳庆,国网安徽省电力有限公司电力科学研究院正高级工程师,主要从事电力消防技术与管理工作,安徽省合肥市经济技术开发区紫云路299号,230601,dkyzjq@163.com。
  • 基金资助:
    国家电网有限公司总部管理科技项目(4000-202455072A-1-1-ZN)

Numerical simulation of mechanical smoke exhaust performance in large-space underground powerhouses fire of pumped storage power plant

Zhang Jiaqing, Shang Fengju, Guo Yi   

  1. (State Grid Anhui Electric Power Research Institute, Anhui Province Key Laboratory of Electric Fire and Safety Protection (State Grid Laboratory of Fire Protection for Transmission and Distribution Facilities), Hefei Anhui 230601, China)
  • Received:2025-12-09 Revised:2026-01-16 Online:2026-09-15 Published:2026-09-15

摘要: 抽水蓄能电站地下厂房高压设备密集,其大空间、复杂的几何结构和受限的通风条件易导致火灾烟气在短时间内迅速积聚,严重威胁人员疏散及设备安全。针对该类复杂环境,选取典型抽水蓄能电站发电机层及副厂房,建立了精细化火灾动力学模型,模拟了地下厂房电气柜火灾情景下有/无机械排烟系统的烟气动态蔓延过程,并定量分析了烟气温度、CO摩尔分数及能见度的演化规律。结果表明:在无排烟工况下,烟气数秒内触顶,火源区域温度峰值高达339 ℃,CO峰值达1 750×10-6,烟气在200 s内渗透至下层通道,疏散路径能见度急剧下降。启用机械排烟系统后,排烟效率显著提升,火源区域温度峰值降低约40.5%;在副厂房第五层火灾场景中,走道和下层梯口的能见度提升28.5%~50%,CO摩尔分数下降约20%~30%。本研究揭示了机械排烟系统在复杂地下环境中的控烟机理,证实了其在保障人员疏散安全、降低灾害风险中的关键作用,可为地下厂房消防系统优化设计和应急预案制定提供重要技术支撑。

关键词: 抽水蓄能电站, 地下厂房, 数值模拟, 机械排烟, 烟气扩散

Abstract: High voltage equipments are densely packed in the underground powerhouse of a pumped storage power plant (PSPP). characterized by its large, complex geometry and restricted ventilation, the powerhouse is prone to rapid smoke accumulation during a fire, threatening evacuation and equipment safety. Focusing on a typical PSPP’s generator floor and auxiliary building, this study develops a detailed fire dynamics model to simulate smoke spread from an electrical cabinet fire, with and without a mechanical smoke exhaust system. The evolution of smoke temperature, CO mole fraction, and visibility is analyzed quantitatively. Results show that without exhaust, smoke reaches the ceiling within seconds, with peak temperature and CO mole fraction at the source reaching 339 °C and 1 750×10-6; smoke penetrates lower passages within 200 s, severely reducing visibility. With the exhaust system activated, smoke-exhaust effect improve significantly: the peak temperature at the fire source is reduced by approximately 40.5%. In a fifth-floor auxiliary building fire scenario, visibility in walkways and lower stairwells improves by 28.5%~50%, and CO mole fraction decreases by about 20%~30%. This study demonstrates the smoke control effectiveness of mechanical exhaust in such complex environments, confirming its critical role in enhancing evacuation safety and mitigating risk, thereby providing technical support for optimizing fire protection design and emergency planning.

Key words: pumped storage power plant, underground powerhouse, numerical simulation, mechanical smoke exhaust, smoke dispersion