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A HYDROPOWER INFRASTRUCTURE SIMULATION MODEL FOR ASSESSMENT OF RESILIENCE

机译:弹性评估的水电基础设施模拟模型

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Many of Canada's hydropower infrastructure systems are reaching the end of their serviceable life. Major investments in the coming years will be required to renew and upgrade these critical infrastructure systems. It is important that decision makers have a good understanding of current system performance in order to optimize operations and develop strategies for re-engineering these systems in the future. Resilience is a dynamic numerical measure of system performance and adaptation capacity that covers the time from the beginning of an undesirable event to full system recovery from it. Using resilience as a metric to measure system performance offers a major advantage over traditional methods that seek to estimate probabilities, which are essentially a static measure of risk that does not take time variance into consideration. Simulation lends itself well to estimating system resilience as it can be used to investigate system response over time under different operating conditions. This paper presents a system dynamics simulation technique which can be utilized to quantify dynamic resilience. System dynamics facilitates: (a) detailed representations of complex system structures, allowing the modeller to ensure all components affecting system resilience are included in the model, and (b) easy modification of the system structure for comparison between different alternatives for infrastructure upgrades or operations strategies. Simulation outputs of system performance over time can be used to estimate the dynamic resilience of both individual system components and the system as a whole in response to various operating conditions. The system dynamics modelling approach presented in this work considers interactions between natural, engineered and human system components. The approach is applied to a hydropower system but a similar methodology could be utilized for other civil infrastructure systems. Four model sectors are utilized to represent the system structure: (1) the controller, (2) mechanical and electrical actuators, (3) physical infrastructure, and (4) sensors and information relay. Simulation provides a useful technique for quantification of system resilience, allowing for an improved understanding of the system structure and its vulnerabilities under different operating conditions. The proposed methodology can be utilized to provide informative comparisons between various investment alternatives for infrastructure renewal.
机译:加拿大许多水电基础设施系统的使用寿命已尽。未来几年将需要大量投资来更新和升级这些关键的基础架构系统。决策者必须对当前系统的性能有充分的了解,以便优化操作并制定将来重新设计这些系统的策略,这一点很重要。复原力是系统性能和适应能力的动态数值度量,涵盖了从不良事件开始到系统完全恢复所需的时间。与传统的试图估计概率的方法相比,使用弹性作为衡量系统性能的度量标准具有一个主要优势,传统方法本质上是一种静态的风险度量,不考虑时间差异。仿真可以很好地估计系统的弹性,因为它可用于调查不同操作条件下随时间变化的系统响应。本文提出了一种可以用来量化动态弹性的系统动力学仿真技术。系统动力学有助于:(a)复杂系统结构的详细表示,使建模人员可以确保影响系统弹性的所有组件都包含在模型中;以及(b)轻松修改系统结构,以便在基础架构升级或运营的不同替代方案之间进行比较策略。系统性能随时间变化的模拟输出可用于估计各个系统组件以及整个系统响应各种运行条件的动态弹性。本工作中提出的系统动力学建模方法考虑了自然,工程和人为系统组件之间的相互作用。该方法适用于水电系统,但其他民用基础设施系统也可以使用类似的方法。四个模型部分用于表示系统结构:(1)控制器,(2)机械和电气执行器,(3)物理基础设施,以及(4)传感器和信息中继。仿真为量化系统弹性提供了一种有用的技术,可以更好地了解系统结构及其在不同操作条件下的漏洞。可以利用所提出的方法对基础设施更新的各种投资备选方案之间进行有益的比较。

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