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Development of a risk-based method for predicting the severity of potential fire accidents in road tunnels based on real-time data

机译:基于风险的方法的发展,用于基于实时数据预测道路隧道潜在火灾事故严重程度的方法

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摘要

Fire incidents are considered serious events for road tunnel safety because they can evolve into catastrophic accidents. Bearing in mind that tunnels constitute critical infrastructure elements of road systems, risk assessment has been employed to prepare tunnels to deal with such incidents. However, if an incident occurs, an adequate response is also related to the information about the particular event. To this respect, a novel risk-based method is proposed to support tunnel operators in assessing the criticality of potential fire incidents by using real-time data. The structure of the proposed method is as follows. Initially, the backlayering that determines the criticality of an incident is examined and the stochastic parameters of the system that affect backlayering are identified. Subsequently, multiple simulations are performed by changing the examined parameters randomly and thus the relation between backlayering and those parameters arises. As a result, the developed relation provided with real-time data can estimate the potential severity of any incident occurring in real time. The outcome facilitates tunnel operators to predict promptly the potential severity of fires and make better-informed decisions. This will allow a more efficient operation of the control room of the tunnel. An illustrative case is presented to showcase the utilisation of the proposed method.
机译:消防事件被认为是道路隧道安全的严重事件,因为它们可以发展成灾难性的事故。考虑到隧道构成道路系统的关键基础设施元素,已经采用风险评估来准备隧道处理此类事件。但是,如果发生事件,则足够的响应也与关于特定事件的信息有关。为此,提出了一种新的基于风险的方法,以支持隧道运营商通过使用实时数据评估潜在火灾事故的临界性。所提出的方法的结构如下。最初,确定确定事件临界性的反向形式,并识别出影响反向层的系统的随机参数。随后,通过随机改变检查的参数来执行多种模拟,因此反斜层和这些参数之间的关系产生。结果,具有实时数据的发达关系可以估计实时发生的任何事件的潜在严重程度。结果有助于隧道运营商预测迅速的火灾潜在的严重程度,并做出更好的决策。这将允许更有效地操作隧道的控制室。提出了一种说明性案例以展示所提出的方法的利用率。

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