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 (7): 132-139.

• • 上一篇    下一篇

车辆基地上盖开发项目盖板耐火性能试验研究

畅若妮1,2, 刘 涛1,2, 张 茹1,2   

  1. (1.中国建筑科学研究院有限公司建筑防火研究所,北京 100013; 2.建研防火科技有限公司,北京 100013)
  • 收稿日期:2025-11-13 修回日期:2026-03-30 出版日期:2026-07-15 发布日期:2026-07-15
  • 作者简介:畅若妮,中国建筑科学研究院有限公司建筑防火研究所,建研防火科技有限公司设计咨询部研究一室主任,高级工程师,主要从事消防设计咨询、消防安全评估等方面的研究,北京市朝阳区北三环东路30号,100013。

Experimental research on fire resistance of roof slabs for vehicle depot superstructure development projects

Chang Ruoni1,2, Liu Tao1,2, Zhang Ru1,2   

  1. (1. Institute of Building Fire Research of China Academy of Building Research, Beijing 100013, China; 2. CABR Fire Prevention Technology Co., Ltd., Beijing 100013, China)
  • Received:2025-11-13 Revised:2026-03-30 Online:2026-07-15 Published:2026-07-15

摘要: 针对车辆基地上盖开发项目的特殊防火需求,依据《地铁设计防火标准》中关于楼板耐火极限不低于3.00 h的强制性要求,以某客整所上盖开发项目为例,对其钢筋混凝土盖板开展耐火性能试验研究。设计了3种不同尺寸与跨厚比的钢筋混凝土板试件,采用缩尺缩荷载方法,在标准升温条件下对其承载能力、完整性与隔热性进行了测试。试验结果表明:所有试件在181 min的标准耐火试验中均未发生破坏;其中,双向板试件性能最优,背火面平均温升最高为47.5 ℃,最大挠度值为91.1 mm,远低于规范限值;单向板试件在试验中虽挠度较大(310.3 mm),但变形速率未超限,且背火面单点温升(148.1 ℃)仍符合规范要求。本研究证实,在满足特定设计参数(板厚≥170 mm、保护层厚度35 mm、荷载比约71%)的前提下,该类钢筋混凝土盖板可满足3.00 h的耐火极限要求,其优异性能主要得益于较大板厚、保护层厚度以及双向板中形成的薄膜效应。

关键词: 盖板, 缩尺试验, 耐火性能, 耐火极限

Abstract: This paper addresses the specific fire protection requirements for vehicle depot superstructure development projects. In accordance with the mandatory requirement in the Standard for fire protection design of metro that the fire resistance rating of floor slabs should not be less than 3.00 h, a fire resistance performance test was conducted on reinforced concrete roof slabs using a passenger vehicle depot superstructure development project as a case study. Three types of reinforced concrete slab specimens with varying dimensions and span-to-thickness ratios were designed. Using a scaled-down load method under standard heating conditions, tests evaluated their load-bearing capacity, integrity, and thermal insulation. Test results indicate: All specimens withstood the 181 min standard fire test without failure. Among them, the two-way slab specimen demonstrated optimal performance, with a maximum average temperature rise at the unexposed side of 47.5 ℃ and a maximum deflection of 91.1 mm, significantly below code limits. Although unidirectional slab specimens exhibited greater deflection (310.3 mm) during testing, their deformation rate remained within limits, and the single-point temperature rise at the unexposed side (148.1 ℃) still met code requirements. This study confirms that under specific design parameters (slab thickness ≥170 mm, protective layer thickness 35 mm, load ratio approximately 71%), this type of reinforced concrete roof slab can meet the 3.00 h fire resistance rating requirement. Its superior performance is primarily attributed to the substantial slab thickness, protective layer thickness, and the film effect formed in the two-way slab.

Key words: roof slab, scaled experiment, Fire resistance performance, fire resistance rating