在场所管道系统建模中的压力依赖分析.
Jonathan B Burkhardt1, John Mino2, Feng Shang1
1Office of Research and Development, US Environmental Protection Agency, Cincinnati, Ohio, USA.
概括
准确地建模场所的管道系统需要了解固定装置特定的压力和流量关系. 这项研究开发了独特的参数,并使用了水网络弹性工具 (WNTR) 来分析系统影响.
科学领域:
- 液压工程 液压工程 液压工程
- 水系统建模 水系统建模
- 管道系统分析 系统分析
背景情况:
- 现场的管道系统显著影响水分网的性能.
- 准确的建模需要了解固定装置特定的压力流动力学.
- 可变的使用压力和整个建筑物的需求使流量预测变得复杂.
研究的目的:
- 为常见的管道装置开发实验性推导的压力流量参数.
- 通过使用WNTR. 调查内部管道系统对水分分配模型的影响.
- 突出在水网分析中需要详细考虑建筑规模的必要性.
主要方法:
- 对四个水龙头,一个淋浴/浴固定装置和一个所的独特压力流量参数的实验推导.
- 运用了水网弹性工具 (WNTR) 进行液压建模.
- 分析了两个水分系统的骨架化案例,其中包括场所管道的影响.
主要成果:
- 建筑物管道系统中的流量表现出复杂的,压力依赖的行为.
- 从实验中获得的参数可以更准确地表示固定装置的性能.
- 聚合模型中的最低压力必须考虑建筑规模的压力下降和组件.
结论:
- 准确的场所管道建模需要整合固定装置特定的压力流动特征.
- 水网弹性工具 (WNTR) 对于评估系统相互依赖是有价值的.
- 忽视建筑规模因素导致水分系统模拟中的不准确性.
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