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Design of a Pressurized Smokeproof Enclosure: CFD Analysis and Experimental Tests

机译:加压防烟外壳的设计:CFD分析和实验测试

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Pressure differential systems have the purpose of maintaining tenable conditions in protected spaces for different types of building safe places, like escape routes, firefighting access routes, lobbies, stairwells and refuge areas. The aim of pressure differential systems is to establish airflow paths from protected spaces at high pressure to spaces at lower or ambient pressure, preventing the spread of toxic gas released during a fire. This strategy ought to be supported by a detailed design of the necessary air supply, considering also the cycle of opening and closing doors during the egress phase. The paper deals with the design of a simple pressure differential system intended to be used in a building as a pressurized smokeproof enclosure. Specifically, experimental tests and numerical modelling are conducted with the objective of characterizing the pressure evolution in a small compartment under different conditions and through a cycle of door opening. Experimental tests are conducted in a simple 3-m side cubic enclosure with two doors and no vent openings. While a centrifugal fan blows constant airflow inside the structure, the pressure trend in time is recorded during steady state and transient conditions; additionally, the velocity of the airflow across the doors has been measured by means of an anemometer. Numerical CFD (computational fluid dynamics) simulations are carried out to reproduce the same smokeproof enclosure configuration (both geometrical and boundary conditions) using the fire dynamics simulator (FDS). Furthermore, specific attention is paid to the modelling of the leakage across the doors, directly inserted in the model through a localized HVAC (heating and venting air conditioning) advanced leakage function. Comparisons between experimental tests and numerical simulations are provided. Once the model was correctly calibrated, other geometrical and mechanical configurations have been studied, looking for convenient and efficient positions of the fan in order to fulfill the requirements of the pressure differential, airflow velocity and door handle force. The paper highlights some fundamental aspects on the pressurization and depressurization during steady state and transient phases, trying to identify if there are airflow profiles typical of some geometrical configurations.
机译:压差系统的目的是在受保护的空间中为不同类型的建筑安全场所(如逃生路线,消防通道,大厅,楼梯间和避难区)维持稳定的条件。压差系统的目的是建立从高压保护空间到低压或环境压力空间的气流路径,以防止火灾期间释放的有毒气体扩散。该策略应通过必要的空气供应的详细设计来支持,同时还要考虑出口阶段打开和关闭门的周期。该文件涉及一种简单的压差系统的设计,该系统打算在建筑物中用作加压的防烟外壳。具体而言,进行实验测试和数值模型的目的是表征小隔间在不同条件下以及通过开门周期的压力变化。实验测试是在一个简单的3-m侧面立方外壳中进行的,该外壳具有两个门且没有通风孔。当离心风扇在结构内部吹动恒定的气流时,在稳态和瞬态条件下会记录压力的时间趋势。另外,已经通过风速计测量了穿过门的气流速度。使用火灾动力学仿真器(FDS)进行了数值CFD(计算流体动力学)仿真,以再现相同的防烟外壳配置(几何条件和边界条件)。此外,要特别注意跨门泄漏的建模,这些泄漏是通过局部HVAC(加热和通风空调)高级泄漏功能直接插入模型中的。提供了实验测试和数值模拟之间的比较。一旦对模型进行了正确的校准,就已经研究了其他几何和机械配置,以寻找方便,高效的风扇位置,以满足压差,气流速度和门把手力的要求。本文重点介绍了稳态和瞬态阶段加压和减压的一些基本方面,试图确定是否存在某些几何构型的典型气流分布。

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