Thermal degradation of self-contained breathing apparatus facepiece lenses under radiant thermal loads

IF 1.9 4区 工程技术 Q2 ENGINEERING, MULTIDISCIPLINARY Journal of Fire Sciences Pub Date : 2024-04-25 DOI:10.1177/07349041241227921
Richard M. Kesler
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Abstract

The self-contained breathing apparatus is one of the most critical components of the firefighting personal protective ensemble providing protection from potentially toxic gases and products of combustion. Three models of self-contained breathing apparatus facepiece lenses meeting various editions of national standards were exposed to radiant thermal loads of 5, 10, 15, and 20 kW/m2 until thermal degradation resulted in hole formation or the test duration reached 30 min. Thermal damage was documented as time to crazing, bubbling, and hole formation. Temperature was recorded within the facepiece. There were significant differences in times to thermal damage between lenses. The facepiece lens model meeting the 2013 edition of National Fire Protection Association 1981 had significantly longer times to thermal degradation than those meeting older editions of the standard. Maximum temperatures were higher in the facepiece model meeting the 2013 edition of National Fire Protection Association 1981, likely because of the extended time the radiant load was applied.
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辐射热负荷下自给式呼吸器面罩镜片的热降解
自给式呼吸器是消防员个人防护装备中最关键的部件之一,可提供对潜在有毒气体和燃烧产物的防护。将符合不同版本国家标准的三种型号的自给式呼吸器面罩镜片暴露在 5、10、15 和 20 kW/m2 的辐射热负荷下,直到热降解导致孔洞形成或测试持续时间达到 30 分钟。热损伤记录为裂纹、气泡和孔洞形成的时间。面罩内的温度被记录下来。不同镜片的热损坏时间存在明显差异。符合美国国家防火协会 1981 年标准 2013 版的面罩镜片型号的热降解时间明显长于符合旧版标准的镜片型号。符合美国国家防火协会 1981 年版 2013 年版标准的面罩型号的最高温度更高,这可能是因为施加辐射负荷的时间更长。
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来源期刊
Journal of Fire Sciences
Journal of Fire Sciences 工程技术-材料科学:综合
CiteScore
4.00
自引率
0.00%
发文量
14
审稿时长
2.5 months
期刊介绍: The Journal of Fire Sciences is a leading journal for the reporting of significant fundamental and applied research that brings understanding of fire chemistry and fire physics to fire safety. Its content is aimed toward the prevention and mitigation of the adverse effects of fires involving combustible materials, as well as development of new tools to better address fire safety needs. The Journal of Fire Sciences covers experimental or theoretical studies of fire initiation and growth, flame retardant chemistry, fire physics relative to material behavior, fire containment, fire threat to people and the environment and fire safety engineering. This journal is a member of the Committee on Publication Ethics (COPE).
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