首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >INVESTIGATION ON THE TURBINE BLADE TIP CLEARANCE MEASUREMENT AND ACTIVE CLEARANCE CONTROL BASED ON EDDY CURRENT PULSE-TRIGGER METHOD
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INVESTIGATION ON THE TURBINE BLADE TIP CLEARANCE MEASUREMENT AND ACTIVE CLEARANCE CONTROL BASED ON EDDY CURRENT PULSE-TRIGGER METHOD

机译:基于涡流脉冲触发法的汽轮机叶尖间隙测量与主动间隙控制研究

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Blade tip clearance (BTC) measurement and active clearance control (ACC) have been and continue to be a fundamental concern in turbomachinery, which are closely bound up with the efficiency and reliability. This paper addresses the BTC measurement and ACC experimental study based on eddy current pulse-trigger method (ECPTM). And the implementation of ACC by axial displacement of the blisk is novel and this paper is the first to present the technique. The purpose of this paper is three fold. The first portion of this paper addresses the BTC measurement in different rotating speeds based on the larger scale rig, where a high-bandwidth (100 kHz) eddy current sensor (HECS) is employed. The results show that the relative errors of BTC values are not much bigger than 20%. The result indicates that ECPTM is more generally applicable in the condition where the eddy current sensor (ECS) is insufficient sampling caused by the limit of narrow bandwidth, especially under the high linear velocity condition. The second portion of this paper describes the ACC system where an electro-hydraulic proportional position control system (EHPPCS) is employed as the actuator. EHPPCS has the advantages of small size, fast response, resistance to load stiffness, large output and simple operation, which is widely applicable to the automatic control system of industrial power. This system optimizes the geometry shapes of casing and the blade tips to create a linear relationship of BTC values related to the axial displacement of the rotor. The BTC values can be transferred into axial displacement of the rotor, and then a voltage/current-BTC values characteristic can be obtained by employing EHPPCS in different rotating speeds. Unfortunately, one of the core components of EHPPCS is an overflow valve with a non-linear and time-variable voltage/current-pressure characteristic. Besides, the pressure-axial displacement characteristic of tilting pad thrust bearing is also non-linear. All those non-linear characteristics make it unsatisfactory to use the conventional PID control algorithm to achieve effective control of the system, which cause many difficulties in controlling of axial displacement of the rotor. So the last portion of this paper is the experimental study on ACC based on the above system by adopting sliding mode adaptive control of nonlinear system (SMACNS). The BTC values have been obtained under different outlet pressures by changing the current in different rotating speeds. The results indicate that this approach has nice robustness and smooth controlled quantity, and can overcome the difficulty caused by nonlinearity, parameter uncertainty and load disturbance. And then, the precision verification and error analysis are made. However, this work is a proof-of-concept demonstration using a laboratory setup providing the basis for BTC active control and blade health monitoring (BHM) based on ECS.
机译:叶片尖端间隙(BTC)测量和主动间隙控制(ACC)一直是并将继续成为涡轮机械的基本问题,它们与效率和可靠性密切相关。本文介绍了基于涡流脉冲触发方法(ECPTM)的BTC测量和ACC实验研究。并且通过叶轮轴向位移实现ACC是新颖的,本文是首次提出该技术。本文的目的是三方面的。本文的第一部分介绍了基于大型钻机的不同转速下的BTC测量,其中采用了高带宽(100 kHz)涡流传感器(HECS)。结果表明,BTC值的相对误差不大于20%。结果表明,ECPTM更适用于由窄带宽限制引起的涡流传感器(ECS)采样不足的情况,尤其是在高线速度条件下。本文的第二部分描述了ACC系统,其中采用了电动液压比例位置控制系统(EHPPCS)作为执行器。 EHPPCS具有体积小,响应速度快,抗负载刚度大,输出功率大,操作简单等优点,广泛适用于工业电力自动控制系统。该系统优化了壳体和叶片尖端的几何形状,以创建与转子轴向位移相关的BTC值的线性关系。可以将BTC值转换为转子的轴向位移,然后可以通过在不同转速下采用EHPPCS获得电压/电流BTC值特性。不幸的是,EHPPCS的核心组件之一是具有非线性和随时间变化的电压/电流-压力特性的溢流阀。此外,可倾瓦推力轴承的压力-轴向位移特性也是非线性的。所有这些非线性特性使得不能使用常规的PID控制算法来实现对系统的有效控制,这在控制转子的轴向位移方面造成了许多困难。因此,本文的最后一部分是通过采用非线性系统的滑模自适应控制(SMACNS),对基于上述系统的ACC进行实验研究。通过在不同的转速下改变电流,可以在不同的出口压力下获得BTC值。结果表明,该方法具有良好的鲁棒性和平稳的控制量,可以克服非线性,参数不确定性和负载扰动带来的困难。然后进行精度验证和误差分析。但是,这项工作是使用实验室设置进行的概念验证演示,为基于ECS的BTC主动控制和刀片运行状况监视(BHM)提供了基础。

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