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 (8): 107-114.DOI: 10.20168/j.1009-0029.2026.08.0107.08

• • 上一篇    下一篇

森林草原风力灭火机发展综述

朱国庆1,2, 张雨蝶1, 陈凡宝1,3   

  1. (1.中国矿业大学 安全工程学院,江苏 徐州 221116;2.深地科学与工程云龙湖实验室,江苏徐州 221116;3.中国石油大学(华东)机电工程学院,山东 青岛 266580)
  • 收稿日期:2025-09-01 修回日期:2026-04-16 出版日期:2026-08-15 发布日期:2026-08-15
  • 作者简介:朱国庆,中国矿业大学安全工程学院教授,博士生导师,主要从事森林草原防灭火、建筑火灾防护、消防救援装备以及新型灭火材料等研究,江苏省徐州市铜山区大学路1号,221116,zgq119xz@126.com。
  • 基金资助:
    国家消防救援局科技计划项目(2023XFCX33);中央高校基本科研业务费专项资金项目(2021ZDPY0218);深圳市重点科技计划项目(ZDCYKCX20250901094159001);山东省重点研发计划项目(2021CXGC011303)

A review of the development of pneumatic fire extinguishers used in forest-grassland firefighting

Zhu Guoqing1, Zhang Yudie1, Chen Fanbao1,2   

  1. (1. School of Safety Engineering, China University of Mining and Technology, Xuzhou Jiangsu 221116, China; 2. Yunlong Lake Laboratory of Deep Underground Science and Engineering, Xuzhou Jiangsu 221116 China; 3. College of Mechanical and Electronic Engineering, China University of Petroleum(East China), Qingdao Shandong 266580, China)
  • Received:2025-09-01 Revised:2026-04-16 Online:2026-08-15 Published:2026-08-15

摘要: 在全球森林草原火灾频发的背景下,风力灭火机凭借其良好的便携性与地形适应性,已成为我国基层森林消防的重要装备,但仍面临复燃难以控制、振动噪声大、续航受限等瓶颈。本文系统梳理了风力灭火机的灭火机理、装备演进及未来发展方向。研究表明,风力灭火的机制可概括为“高速气流移除可燃挥发物、中断热量供应、终止燃烧反应”3个阶段,但其定量化研究存在参数标准不统一、复杂场景下普适性模型缺失等问题,难以为装备优化提供精准支撑。我国风力灭火机的发展历经功能实现、集成拓展和性能优化3个阶段,在机身结构、灭火剂协同以及减振降噪方面取得了一定进展,但在系统集成与技术研发方面仍存在不足。未来技术突破应聚焦电池供能升级、气凝胶等新型高效灭火介质的协同创新,同时补齐定量化研究与工程化应用的薄弱环节。本文旨在为风力灭火技术创新与工程化应用提供技术路径参考,助力提升森林草原火灾防控效能。

关键词: 森林草原火灾, 风力灭火机制, 发展综述, 全固态电池供能, 气凝胶灭火剂

Abstract: Against the global backdrop of frequent forest-grassland fires, the pneumatic fire extinguishers have emerged as essential equipment for grassroots firefighting in China due to their superior portability and terrain adaptability, although persistent bottlenecks such as the difficulty in controlling reignition, excessive vibration and noise, and limited endurance remain. In this paper, the pneumatic fire extinguishing mechanism, equipment evolution, and future development directions are systematically reviewed. It is demonstrated that the extinguishing process is achieved through three stages comprising the removal of combustible volatiles, heat supply interruption, and combustion reaction termination via high-speed airflow. Nevertheless, quantitative research is currently constrained by inconsistent parameter standards and the absence of universal models for complex scenarios, making it difficult to provide accurate support for equipment optimization. In China, pneumatic fire extinguishers have progressed through phases of functional realization, integrated expansion, and performance optimization, achieving significant advancements in structural design, the synergistic application of fire extinguishing agents, and noise reduction, though system integration and technology development remain insufficient. It is proposed that future technological breakthroughs should prioritize battery power upgrades and synergistic innovation with aerogel fire extinguishing agents, while simultaneously bridging the gaps between quantitative theory and engineering application. This study is intended to provide a theoretical and practical reference for technological innovation and engineering application of pneumatic fire extinguishers, ultimately enhancing the efficiency of forest and grassland fire suppression.

Key words: forest-grassland fire, pneumatic fire extinguishing mechanism, development review, all-solid-state battery power supply, aerogel fire extinguishing agent