首页> 外文会议>Asian International Conference on Fluid Machinery >Numerical Hydraulic Study on Seawater Cooling System of Combined Cycle Power Plant
【24h】

Numerical Hydraulic Study on Seawater Cooling System of Combined Cycle Power Plant

机译:联合循环发电厂海水冷却系统的数值水力研究

获取原文

摘要

As the rated flow and pressure increase in pumping facilities, a proper design against surges and severe cavitations in the pipeline system is required. Pressure surge due to start-up, shut-down process and operation failure causes the water hammer in upstream of the closing valve and the cavitational hammer in downstream of the valve. Typical cause of water hammer is the urgent closure of valves by breakdown of power supply and unexpected failure of pumps. The abrupt changes in the flow rate of the liquid results in high pressure surges in upstream of the valves, dins kinetic energy is transformed into potential energy which leads to the sudden increase of the pressure dun is called as water hammer. Also, by the inertia, the liquid continues to flow downstream of the valve with initial speed. Accordingly, the pressure decreases and an expanding vapor bubble known as column separation are formed near the valve. In this research, the hydraulic study on the closed cooling water heat exchanger line, which is the one part of the power plank is introduced. The whole power plant consists of 1,200 MW combined power plant and 220,000 m3/day desalination facility. Cooling water for the plant is supplied by sea water circulating system with a capacity of 29 m3/s. The primary focus is to verify the steady state hydraulic capacity of the system. The secondary is to quantify transient issues and solutions in the system. The circuit was modeled using a commercial software. The stable piping network was designed through the hydraulic studies using the simulation for the various scenarios.
机译:随着泵送设施的额定流量和压力增加,需要对管道系统中的浪涌和严重空腔进行适当的设计。由于启动,关闭过程和操作故障引起的压力浪涌使水锤在阀门下游的闭合阀的上游和空化锤。水锤的典型原因是通过电源分解和泵出意外失效的阀门紧急闭合。液体的流速的突然变化导致阀上游的高压浪涌,浸入动能转化为势能,这导致压力突然增加作为水锤。而且,通过惯性,液体继续以初始速度在阀的下游流动。因此,在阀门附近形成压力降低和称为柱分离的膨胀蒸汽泡。在本研究中,引入了封闭式冷却水热交换器线的水力研究,即电力板的一部分。整个发电厂由1,200 MW组合电厂和220,000 M3 /天海水淡化设施组成。该植物的冷却水由海水循环系统供应,容量为29m3 / s。主要重点是验证系统的稳态液压容量。辅助是在系统中量化瞬态问题和解决方案。电路使用商业软件进行建模。稳定的管道网络是通过使用各种场景的模拟的液压研究设计的。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号