建筑物相邻空间燃气泄漏时空演化规律研究

Study on the spatio-temporal evolution of gas leakage in adjacent spaces of buildings

  • 摘要: 城市中地下燃气管网与地下各类管线(交通、市政)、经营场所等纵横交错、交叉耦合,揭示燃气在建筑物相邻空间中泄漏-扩散-集聚机理,可提升区域风险评估的精确性。本文以吉林松原“7·4”燃气爆炸事故区域建筑物布局为研究依据,基于数值模拟方法研究了建筑物空间/路径复杂度对燃气在相邻空间中时空演化规律的影响:针对相邻空间的空间复杂度与路径复杂度而言,甲烷浓度5%VOL区域的无量纲增幅分为三个阶段,均呈“双S曲线”,约50%的无量纲时间内燃气均处在聚集阶段。针对建筑物空间复杂度,房间对称布局风险更低,较非对称布局风险低10.05%;针对建筑物路径复杂度,双上拐路径布局风险更低,风险较最大值低15%;同一甲烷浓度5%VOL区域下,单位无量纲时间内路径复杂度相较空间复杂度的影响更弱。建筑物通风良好情况(窗户面积≥2%地面面积)会使甲烷浓度5%VOL区域面积减少80%。由此,建筑内对称空间布局、双上拐路径布局、全局通风将更有利于减少燃气聚集爆炸事故;在甲烷浓度5%VOL区域占建筑总面积的20%前,均为人员疏散的最佳时间段。

     

    Abstract: Urban underground gas pipeline networks are intricately intertwined and cross-coupled with transportation facilities, municipal utility pipelines, and commercial premises, resulting in highly complex gas leakage and dispersion. Consequently, gas explosion risks are strongly concealed and uncertain, posing significant regional safety hazards. Therefore, revealing the “leakage-dispersion-accumulation” mechanism of gas within adjacent building spaces is of great significance for improving the accuracy of regional risk assessment. In this study, the building layout associated with the Songyuan “7·4” gas explosion accident in Jilin Province was selected as the research background for the study. A typical adjacent-building space model was established based on numerical simulation methods to systematically investigate the spatio-temporal evolution characteristics of gas dispersion under different spatial and path complexity conditions. Multiple building configurations and path connectivity models were constructed to analyze the methane dispersion behavior within adjacent spaces, with particular emphasis on the influence of architectural spatial structures on the spatiotemporal evolution of hazardous regions with methane concentrations exceeding 5%VOL.The results indicate that, under both spatial complexity and path complexity conditions, the dimensionless growth process of the 5%VOL methane hazardous region can be divided into three stages: slow increase, rapid accumulation, and stable diffusion. The overall evolution exhibited a characteristic “double-S curve” pattern, and methane remained in the accumulation stage for approximately 50% of the dimensionless time. Regarding spatial complexity, symmetric room layouts exhibited lower risk levels than asymmetric layouts, reducing the hazardous region intensity by 10.05%. In terms of path complexity, the double-upward-bending path configuration presented the lowest risk, which was approximately 15% lower than that of the highest-risk scenario. Furthermore, under the same 5%VOL methane hazardous region condition, the influence of path complexity on dispersion intensity was weaker than that of spatial complexity. The evolution characteristics of methane-hazardous regions under different ventilation conditions were further investigated. The results demonstrate that effective building ventilation can significantly weaken the effects of methane accumulation. When the window area accounted for more than 2% of the floor area, the area of the 5%VOL methane hazardous region decreased by approximately 80%, whereas the expansion rate of the hazardous region was substantially reduced. Under the gas shutoff–ventilation coupling condition, methane concentration fluctuations were significant, and attenuation was limited under the 2% ventilation condition. In contrast, under the 10% ventilation condition, the methane concentration exhibited a short-term slow increase, followed by a continuous decline, with a cumulative reduction of approximately 43% and an average decay rate of approximately 4 ppm/s. A comprehensive analysis indicated that before the 5%VOL methane hazardous region expands to 20% of the total building area, large-scale hazardous coverage has not yet formed inside the building. Therefore, this period represents the optimal time window for personnel evacuation and emergency response. Timely implementation of evacuation, gas shutoff, and ventilation control measures can effectively reduce the casualties and property losses caused by gas explosion accidents. The findings of this study can provide theoretical support and technical guidance for urban building safety design and the development of emergency evacuation strategies for gas leakage accidents.

     

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