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 ›› 2023, Vol. 42 ›› Issue (12): 1651-1655.

• • 上一篇    下一篇

基于绝热火焰温度法的掺氢天然气爆炸下限计算模型

安国钰, 徐宁, 熊小琴   

  1. (中国石油大学 工学院,新疆 克拉玛依 834000)
  • 出版日期:2023-12-15 发布日期:2023-12-15
  • 作者简介:安国钰(2000- ),男,山西太原人,中国石油大学工学院硕士研究生,主要从事长输管道安全保障研究,新疆维吾尔自治区克拉玛依市克拉玛依区安定路355号,834000。
  • 基金资助:
    中国石油大学(北京)克拉玛依校区科研启动项目(KL01JB20230008)

Explosion limit calculation model of hydrogen-doped natural gas based on adiabatic flame temperature method

An Guoyu, Xu Ning, Xiong Xiaoqin   

  1. (College of Engineering, China University of Petroleum, Xinjiang Karamay 834000, China)
  • Online:2023-12-15 Published:2023-12-15

摘要: 本文分析了管输泄漏条件下掺氢天然气爆炸下限(LEL)的影响因素,基于贫燃料化学反应式和燃烧过程中的热力学平衡,依靠爆炸下限处绝热火焰温度法建立了针对掺氢天然气的多元可燃气体爆炸下限计算模型。结果表明,气体组分对爆炸下限的影响较大,而在管输泄漏过程中,常温条件下环境因素对掺氢天然气爆炸下限的影响可忽略,建立的模型在计算N2等惰性气体含量较低的含氢可燃性气体爆炸下限时,相对误差均在5%以内,计算精度高于Le Chaterlier公式及其改进方法,满足工程需要,为管输掺氢天然气泄漏爆炸事故预防提供参考。

关键词: 掺氢天然气, 绝热火焰温度法, 爆炸下限, 计算模型

Abstract: In this paper, the influence factors of the lower explosive limit(LEL) of hydrogen—doped natural gas under pipeline leakage condition are analyzed. Based on the chemical reaction formula of lean fuel and the thermodynamic equilibrium in the combustion process, the calculation model of the lower explosive limit of multiple combustible gases for hydrogen—doped natural gas was established by using the adiabatic flame temperature method at the lower explosive limit. The results show that the influence of gas components on the lower explosive limit is great, while the influence of environmental factors on the lower explosive limit of hydrogen—doped natural gas under pipeline leakage condition can be ignored at normal temperature. When the model calculated the lower explosive limit of hydrogen—containing flammable gases with low inert gas content such as N2, the relative error of the model was all within 5%. The calculation accuracy is higher than Le Chaterlier formula and its improved method, which can meet the engineering needs and provide reference for the prevention of leakage and explosion accidents of hydrogen—doped natural gas in pipeline transportation.

Key words: hydrogen—doped natural gas, adiabatic flame temperature method, lower explosive limit, calculation model