首页> 外文期刊>Proceedings >Optimized Use of Sensors to Detect Critical Full Load Instability in Large Hydraulic Turbines
【24h】

Optimized Use of Sensors to Detect Critical Full Load Instability in Large Hydraulic Turbines

机译:优化使用传感器来检测大型水轮机中的关键满负荷不稳定性

获取原文
           

摘要

Nowadays, hydropower plants are of paramount importance for the integration of intermittent renewable energy sources in the power grid. In order to match the energy generated and consumed, Large Hydraulic Turbines have to work at off-design conditions, which may lead to dangerous unstable operating points involving the hydraulic, mechanical and electrical system. Under these conditions, the stability of the power grid and the safety of the powerplant itself can be compromised. For many Francis Turbines, one of these critical points, that usually limits the maximum output power, is the full load instability. Therefore, these machines usually work far away from this unstable point, reducing the effective operating range of the unit. In order to extend the operating range of the machine, working closer to this point with a reasonable safety margin, it is of paramount importance to monitor and to control relevant parameters of the unit, which have to be obtained with an accurate sensor acquisition strategy. In the frame of a large EU Project, field tests in a large Francis Turbine located in Canada (rated power 444 MW) have been performed. Many different sensors were used to monitor several working parameters of the unit for all its operating range. Particularly for these tests, more than 80 signals, including ten types of different sensors and several operating signals that define the operating point of the unit, were simultaneously acquired. The present study focuses on the optimization of the acquisition strategy, which includes type, number, location, acquisition frequency of the sensors and corresponding signal analysis to detect the full load instability and to prevent the unit from reaching this point. In this way, the operating limits of the unit can be more accurately defined and therefore the effective operating range increased.
机译:如今,水力发电厂对于将间歇性可再生能源整合到电网中至关重要。为了匹配产生和消耗的能量,大型水轮机必须在非设计条件下工作,这可能会导致危险的不稳定工作点,涉及液压,机械和电气系统。在这些条件下,电网的稳定性和电厂本身的安全性可能会受到损害。对于许多弗朗西斯涡轮机而言,通常限制最大输出功率的这些临界点之一就是满负载不稳定性。因此,这些机器通常在远离该不稳定点的地方工作,从而减小了设备的有效工作范围。为了扩大机器的工作范围,并以合理的安全裕度在此点附近工作,监视和控制设备的相关参数至关重要,而这些参数必须通过准确的传感器采集策略来获得。在大型欧盟项目的框架内,已经在加拿大的大型弗朗西斯涡轮机(额定功率444 MW)中进行了现场测试。许多不同的传感器用于监视设备在其所有工作范围内的几个工作参数。特别是对于这些测试,同时获取了80多个信号,包括十种类型的不同传感器以及定义该单元工作点的几个操作信号。本研究着重于采集策略的优化,包括类型,数量,位置,传感器的采集频率以及相应的信号分析,以检测满载不稳定性并防止单元到达这一点。以这种方式,可以更精确地定义单元的工作极限,并因此增加了有效工作范围。

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