Next Article in Journal
Explosion Shock Dynamics and Hazards in Complex Civil Buildings: A Case Study of a Severe Fuel Explosion Accident in Yinchuan, China
Previous Article in Journal
Natural Flame Retardant Minerals for Advanced Epoxy Composites
Previous Article in Special Issue
Optimized Machine Learning Model for Fire Consequence Prediction
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Editorial

Brief Introduction on Advances in Fire Suppression

1
School of Environment and Safety Engineering, North University of China, Taiyuan 030051, China
2
Institute of Advanced Energy Materials and Systems, North University of China, Taiyuan 030051, China
3
Shanxi Key Laboratory of Efficient Hydrogen Storage & Production Technology and Application, Taiyuan 030051, China
4
Tianjin Fire Science and Technology Research Institute of MEM, Tianjin 300381, China
5
State Key Laboratory of Fire Science, University of Science and Technology of China, Hefei 230022, China
*
Authors to whom correspondence should be addressed.
Fire 2024, 7(9), 309; https://doi.org/10.3390/fire7090309
Submission received: 26 June 2024 / Accepted: 27 August 2024 / Published: 30 August 2024
(This article belongs to the Special Issue Advances in Fire Suppression)

1. Introduction

As society rapidly evolves and urbanization accelerates, fire safety has become an increasingly pressing concern. Fire-extinguishing technology serves as a vital tool for the prevention and control of fires, capable of averting casualties and mitigating severe damage to the environment. The performance of extinguishing agents, a central component of fire-extinguishing technology, is pivotal to both the effectiveness of fire suppression and its environmental repercussions. Notably, technologies utilizing extinguishing agents such as water, dry powder, gas, and foam have demonstrated significant utility across a variety of application scenarios [1,2,3,4]. In light of the recent advancements in efficient fire-extinguishing technologies, access to timely research findings and profound insights is imperative for expanding the knowledge base in this domain. This Special Issue compiles 11 papers that tackle emerging issues and challenges in various fire suppression technologies, offering the necessary insights for effective fire mitigation.

2. Descriptions

The research scope of this Special Issue encompasses the development of fire-extinguishing agents, the design of fire-extinguishing systems, the transport dynamics of agents, dispersion kinetics, and simulation studies. These areas of research lay a robust foundation for the evolution of fire-extinguishing technology and its practical application. As environmental consciousness grows and demands for fire-extinguishing efficiency escalate, the innovation of novel extinguishing agents has emerged as a prevalent field of study. Notably, water-based fire-extinguishing agents, which leverage water as their primary component, have seen enhancements in their fire-suppression capabilities through the incorporation of chemical additives or the modification of water’s physical properties. Among these, fine water mist systems, recognized for their cleanliness and efficacy, have garnered considerable interest [1]. According to the national standard of China for “Water mist extinguishing equipment” [5], fine water mist is characterized by droplets with a flow-weighted cumulative volume distribution of less than 200 μm (Dv0.50) and 400 μm (Dv0.99) under the minimum design operating pressure. Systems are categorized based on operating pressure into high pressure (p ≥ 3.50 MPa), medium pressure (1.20 MPa ≤ p < 3.50 MPa), and low pressure (p < 1.20 MPa), where P denotes the pressure of the medium within the distribution network. The fire-extinguishing mechanisms are illustrated in Figure 1.
Fine-water-mist firefighting technology markedly enhances both the efficiency and versatility of firefighting applications through the incorporation of physical and chemical additives. Physical additives, such as surfactants, bolster cooling and suffocation effects, work by diminishing the surface tension of water, augmenting the diffusivity and wettability of the water mist, and promoting the amalgamation of water with fuel. Surfactants may be hydrocarbon-based or fluorinated [6]. While fluorinated surfactants offer superior hydrophobicity and the capacity to create aerosolized water films, they may also exert adverse environmental effects due to their persistence and potential for bioaccumulation in natural ecosystems [7,8,9]. Chemical additives, including alkalis, transition metals, and their hydroxides and salts, contribute to fire suppression by engaging in chemical reactions and physical processes. For instance, sodium and potassium compounds slow flame propagation and create a foam blanket to smother the fire source [10], whereas metal hydroxides quench combustion through neutralization reactions and by sequestering free radicals [11]. Furthermore, ultrafine water mist, engineered via high-pressure atomization, exhibits exceptional heat transfer efficiency and swift evaporation traits. This technology can precipitously lower the temperature of the fire source, offering a novel and efficient direction for environmentally friendly firefighting techniques.
Gaseous extinguishing agents are a class of fire suppression media that inhibit or extinguish fires through physical or chemical actions, playing a significant role in the field of fire extinguishing. Perfluorohexanone, as a new generation of gaseous fire-extinguishing agents, has garnered widespread attention in the international firefighting community due to its highly efficient fire suppression capabilities and excellent environmental characteristics [3]. This agent features an exceptionally low extinguishing concentration of 4.2%, rapid extinguishing speed, and the ability to effectively prevent fire re-ignition, with an extinguishing efficiency that significantly surpasses that of the traditional halon 1301 agent [12]. Perfluorohexanone has an Ozone Depletion Potential (ODP) value of zero, indicating no harm to the atmospheric ozone layer, and it possesses a relatively low Global Warming Potential (GWP), with an atmospheric lifetime of merely 0.014 years, thereby exerting a negligible impact on global climate change [13]. During the fire-extinguishing process, perfluorohexanone does not generate harmful corrosive gases and exhibits good compatibility with metals and polymeric materials, along with excellent electrical insulation properties. It leaves minimal residue post-extinguishing, reducing environmental pollution and post-fire cleanup efforts. Its excellent long-term storage stability also minimizes the maintenance costs associated with fire suppression systems. Amidst the global focus on environmental protection and sustainable development, the market demand and application prospects for perfluorohexanone are expanding. It is anticipated to play an increasingly prominent role in the realm of fire-extinguishing agents, contributing significantly to the protection of human life, property safety, and the environment.
Foam extinguishing agents are employed to extinguish fires through their mixture with water, resulting in the formation of foam. These agents are categorized into the following two primary types: protein-based and synthetic. Protein-based foam agents incorporate a range of reinforcing agents into their animal protein base liquid. Notably, fluoroprotein types enhance fire-extinguishing efficiency by incorporating fluorocarbon compounds [14]. On the other hand, synthetic foam agents exhibit a spectrum of characteristics. For instance, aqueous film-forming foam (AFFF) can create a protective film on the surface of combustible materials, as depicted in Figure 2. This protective film bolsters the fire-extinguishing process and the material’s resistance to re-ignition [15].
Dry powder extinguishing agents are a class of efficient, economical, and environmentally benign fire suppressants that integrate the functions of chemical extinguishing with physical suppression. Their fire-extinguishing efficacy can be several times greater than that of halon, leading to their widespread adoption across various applications [2]. A derivative of dry powder, dry water extinguishers, leverage the combined benefits of dry powder and water mist technologies, making them exceptionally suitable for extinguishing lithium-ion battery fires [16]. In their preparation, water and hydrophobic silica are blended via high-speed agitation, yielding a core–shell structured powder extinguishing agent (as illustrated in Figure 3). The extinguishing mechanisms of this agent encompass physical cooling, chemical inhibition, thermal radiation blocking, and free radical trapping [17]. During the firefighting process, the substantial volume of water discharged by the dry water extinguisher rapidly evaporates, drawing heat away from the fire source. Concurrently, the hydrophobic silica particles produced create a barrier over the fuel surface, sequestering the fuel from external heat exchange and oxygen, thereby effectively interrupting the combustion chain reaction. Moreover, dry water extinguishers exert minimal environmental impact post-use, aligning with contemporary requirements for green and efficient firefighting technologies.
Recent scholarly research underscores the pivotal role of piping design in the transport and dispersion dynamics of extinguishing agents, which is essential for enhancing fire prevention and suppression strategies. An optimized piping design enhances the flow characteristics and spatial dispersion efficiency of extinguishing agents by considering critical fluid dynamics parameters, including flow velocity, pressure loss, and turbulence [18]. By meticulously designing the pipe diameter, length, elbows, and branches, the system’s pressure loss can be minimized, thereby augmenting the delivery efficiency of the extinguishing agents. The utilization of simulation technology further refines piping design, facilitating the virtual simulation of extinguishing agent flow. This enables pre-assessment and refinement of the design scheme in a controlled environment, ensuring the high efficiency and reliability of the fire suppression system prior to its actual deployment [19].

3. Future Research Direction

The evolution of big data and artificial intelligence technologies is propelling fire suppression research to unprecedented heights. The integration of sophisticated AI algorithms with fire suppression technologies is poised to expand into broader application domains. Concurrently, the exploration of multimodal fire suppression technologies that integrate physical and chemical suppression mechanisms is underway to accommodate a wider array of fire scenarios. Furthermore, innovation in pipeline design, coupled with the application of simulation and modeling technologies, should be further advanced. These advancements should be integrated with transport and dispersion models within actual fire contexts to optimize the distribution efficiency of extinguishing agents. This optimization is essential to ensure the high efficiency and effectiveness of firefighting operations.

Author Contributions

Investigation, C.L.; Writing—original draft preparation, C.L.; Writing—review and editing, G.L.; Project administration, S.L. All authors have read and agreed to the published version of the manuscript.

Funding

This study has been sponsored by National Natural Science Foundation of China (12202410 and 12472370), Project funded by China Postdoctoral Science Foundation (2023T160734 and 2023M733935), Supported by Fundamental Research Program of Shanxi Province (20210302123017 and 202303021211145), Fund Program for the Scientific Activities of Selected Returned Overseas Professionals in Shanxi Province (20220012), Research Project Supported by Shanxi Scholarship Council of China (2022-139), Natural Science Foundation of Hunan Province (2023JJ40726), Changsha Municipal Natural Science Foundation (kq2208277), Supported by the Opening Foundation of Key Laboratory in North University of China (DXMBJJ2023-03). Also, the authors thank Wei Yue from Shiyanjia Lab (https://www.shiyanjia.com) for the DSC analysis.

Conflicts of Interest

The authors declare no conflicts of interest.

References

  1. Hamzehpour, A.; Verda, V.; Borchiellini, R. Simulation Study on Suppressing Shielded Fires by Water Mist Systems. Fire 2023, 6, 129. [Google Scholar] [CrossRef]
  2. Lu, G.; Zhao, J.; Zhou, Y.; Fu, Y.; Lu, S.; Zhang, H. Study on Flowability Enhancement and Performance Testing of Ultrafine Dry Powder Fire Extinguishing Agents Based on Application Requirements. Fire 2024, 7, 146. [Google Scholar] [CrossRef]
  3. Ni, X.; Chen, Y.; Huang, Q.; Zhao, C.; Li, S.; Huang, J.; Wang, J. An Experimental Study on the Transportation Characteristics of Perfluoro(2-methyl-3-pentanone) in a Straight Pipe. Fire 2023, 6, 156. [Google Scholar] [CrossRef]
  4. Kang, W.; Yan, L.; Ding, F.; Guo, X.; Xu, Z. Experimental study on fire-extinguishing efficiency of protein foam in diesel pool fire. Case Stud. Therm. Eng. 2019, 16, 100557. [Google Scholar] [CrossRef]
  5. GA 1149; People’s Republic of China Public Security Industry Standards. Technical Report; Standardization Administration of China: Beijing, China, 2014.
  6. Robinet, A.; Chetehouna, K. A Review of Additives for Water Mist Fire Suppression Systems. Fire Technol. 2024, 60, 2923–2961. [Google Scholar] [CrossRef]
  7. Yun, X.; Lewis, A.J.; Stevens-King, G.; Sales, C.M.; Spooner, D.E.; Kurz, M.J.; Suri, R.; McKenzie, E.R. Bioaccumulation of per- and polyfluoroalkyl substances by freshwater benthic macroinvertebrates: Impact of species and sediment organic carbon content. Sci. Total Environ. 2023, 866, 161208. [Google Scholar] [CrossRef] [PubMed]
  8. Burkhard, L.P. Evaluation of Published Bioconcentration Factor (BCF) and Bioaccumulation Factor (BAF) Data for Per- and Polyfluoroalkyl Substances Across Aquatic Species. Environ. Toxicol. Chem. 2021, 40, 1530–1543. [Google Scholar] [CrossRef] [PubMed]
  9. Alexandrino, D.A.M.; Mucha, A.P.; Almeida, C.M.R.; Carvalho, M.F. Atlas of the microbial degradation of fluorinated pesticides. Crit. Rev. Biotechnol. 2022, 42, 991–1009. [Google Scholar] [CrossRef] [PubMed]
  10. Wei, S.; Yu, M.; Pei, B.; Xu, M.; Guo, J.; Hu, Z. Experimental and numerical study on the explosion suppression of hydrogen/dimethyl ether/methane/air mixtures by water mist containing NaHCO3. Fuel 2022, 328, 125235. [Google Scholar] [CrossRef]
  11. Bokka, S.; Ameta, P.; Achary, S.N.; Chowdhury, A. A simple and economical fire test setup for examining the fire retardancy/extinguishing ability of water additive fire-retardant materials on class A fires. Fire Mater. 2024, 48, 93–101. [Google Scholar] [CrossRef]
  12. Liang, C.; Jin, K.; Liu, P.; Wang, C.; Xu, J.; Li, H.; Wang, Q. The Efficiency of Perfluorohexanone on Suppressing Lithium-Ion Battery Fire and Its Device Development. Fire Technol. 2023, 59, 1283–1301. [Google Scholar] [CrossRef]
  13. He, Y.; Deng, J.; Yi, X.; Chen, W.; Xiao, Y.; Deng, Y.; Zhu, X.; Yin, L. Effect of fluorine-containing explosion suppressants on methane explosions. J. Therm. Anal. Calorim. 2024, 149, 3711–3722. [Google Scholar] [CrossRef]
  14. Zhao, M.; Ni, X.; Zhang, S.; Cao, W.; Guan, Y.; Liang, C.; Wang, X.; Zhang, H. Improving the performance of fluoroprotein foam in extinguishing gasoline pool fires with addition of bromofluoropropene. Fire Mater. 2016, 40, 261–272. [Google Scholar] [CrossRef]
  15. Liu, Z.; Li, C.; Yuan, Z.; He, W.; Zhang, L.; Cheng, Z. Synthesis of Y-Type Fluorinated Surfactant for Aqueous Film-Forming Foam Extinguishing Agent with High Performance. Ind. Eng. Chem. Res. 2024, 63, 12288–12296. [Google Scholar] [CrossRef]
  16. Li, X.; Du, K.; Zhu, Y.; Zhou, Z.; Zhou, X. Dry water: Toward an ideal extinguishant for lithium-ion battery fire. J. Energy Storage 2024, 80, 110204. [Google Scholar] [CrossRef]
  17. Wang, Y.-Y.; Zhu, F.-H.; Zhou, H.-L.; Jiang, J.-C.; Huang, A.-C. Development of a novel dry-water fire extinguishing agent containing additives. J. Therm. Anal. Calorim. 2023. [Google Scholar] [CrossRef]
  18. Li, Q.; Li, Z.; Chen, R.; Zhang, Z.; Ge, H.; Zhou, X.; Pan, R. Numerical Study on Effects of Pipeline Geometric Parameters on Release Characteristics of Gas Extinguishing Agent. Symmetry 2021, 13, 1766. [Google Scholar] [CrossRef]
  19. Mohamed, M.A.; New, T.H.; Ng, B.F. Modelling of fire-suppressant injection into engine nacelle for various flight regimes. Proc. Inst. Mech. Eng. Part G J. Aerosp. Eng. 2023, 237, 3111–3125. [Google Scholar] [CrossRef]
Figure 1. Water mist extinguishing mechanism.
Figure 1. Water mist extinguishing mechanism.
Fire 07 00309 g001
Figure 2. Foam cooling schematic.
Figure 2. Foam cooling schematic.
Fire 07 00309 g002
Figure 3. (a) Formation mechanism of the dry water extinguishing agent; (b) mechanism of dry water extinguishing [17].
Figure 3. (a) Formation mechanism of the dry water extinguishing agent; (b) mechanism of dry water extinguishing [17].
Fire 07 00309 g003
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content.

Share and Cite

MDPI and ACS Style

Liu, C.; Li, G.; Lu, S. Brief Introduction on Advances in Fire Suppression. Fire 2024, 7, 309. https://doi.org/10.3390/fire7090309

AMA Style

Liu C, Li G, Lu S. Brief Introduction on Advances in Fire Suppression. Fire. 2024; 7(9):309. https://doi.org/10.3390/fire7090309

Chicago/Turabian Style

Liu, Changcheng, Guohui Li, and Song Lu. 2024. "Brief Introduction on Advances in Fire Suppression" Fire 7, no. 9: 309. https://doi.org/10.3390/fire7090309

APA Style

Liu, C., Li, G., & Lu, S. (2024). Brief Introduction on Advances in Fire Suppression. Fire, 7(9), 309. https://doi.org/10.3390/fire7090309

Article Metrics

Back to TopTop