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Development of a Practical Model for Optimizing Surge Tanks and Air Chambers in Water Transmission Systems

机译:开发用于优化喘振坦克和水流腔室的水流系统中的实际模型

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Surge tanks and air chambers are the most useful solution to deal with water hammer in water transmission systems (WTS). The optimal design of these protective devices can be effective in reducing the costs of constructing and operating a water transmission system. In this article, some software with the capability of simulating and optimizing these protective equipment is presented. To simulate the behavior of the system in the transient condition, the characteristic method was used. To optimize the number, dimensions and location of the surge tanks and air chambers, the genetic algorithm was employed. Constraints of the problem included the control of negative and positive pressures within the permissible range to prevent the cavitation and water hammer. To test the performance of simulation and optimization models, a well-known water transmission system in the previous research was selected as a case study. The results indicated that the critical heads were damped to a safer and allowable range; also, the total cost of the surge tanks and air chambers was reduced by 17% by the proposed method.
机译:电涌罐和空气室是处理水传输系统(WTS)中的水锤的最有用的解决方案。这些保护装置的最佳设计可以有效地降低构建和操作水传输系统的成本。在本文中,提出了一些具有模拟和优化这些保护设备的软件。为了在瞬态条件下模拟系统的行为,使用了特征方法。为了优化浪涌罐和空气室的数量,尺寸和位置,采用遗传算法。问题的约束包括控制允许范围内的负压和正压力,以防止空化和水锤。为了测试模拟和优化模型的性能,选择了先前研究中的着名水传输系统作为案例研究。结果表明,临界头被阻尼到更安全和允许的范围;而且,通过所提出的方法,电涌罐和空气室的总成本减少了17%。

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