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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Natural Cooling and Startup of Steam Turbines: Validity of the Over-Conductivity Function
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Natural Cooling and Startup of Steam Turbines: Validity of the Over-Conductivity Function

机译:汽轮机的自然冷却和启动:过电导函数的有效性

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The temperature drop during natural cooling and the way in which the steam turbine restarts have a major impact on the cyclic lifetime of critical parts and on the cyclic life of the whole machine. In order to ensure the fastest startup without reducing the lifetime of the turbine critical parts, the natural cooling must be captured accurately in calculation and the startup procedure optimized. During the cool down and restart, all turbine components interact both thermally and mechanically. For this reason, the thermal analyst has to include, in his numerical model, all turbine significant parts-rotor, casings together with their internal fluid cavities, valves, and pipes. This condition connected with the real phenomenon lead-time-more than 100 hours for natural cooling-makes the analysis time-consuming and not applicable for routine projects. During the past years, a concept called "over-conductivity" was introduced by Marinescu et al. (2013, "Experimental Investigation Into Thermal Behavior of Steam Turbine Components-Temperature Measurements With Optical Probes and Natural Cooling Analysis," ASME J. Eng. Gas Turbines Power, 136(2), p. 021602) and Marinescu and Ehrsam (2012. "Experimental Investigation on Thermal Behavior of Steam Turbine Components: Part 2-Natural Cooling of Steam Turbines and the Impact on LCF Life," ASME Paper No. GT2012 -68759). According to this concept, the effect of the fluid convectivity and radiation is replaced by a scalar function K(T) called over-conductivity, which has the same heat transfer effect as the real convection and radiation. K(T) is calibrated against the measured temperature on a Alstom KA26-1 steam turbine (Ruffino and Mohr, 2012, "Experimental Investigation on Thermal Behavior of Steam Turbine Components: Part 1-Temperature Measurements With Optical Probes," ASME Paper No. GT2012-68703). This concept allows a significant reduction of the calculation time, which makes the method applicable for routine transient analyses. The paper below shows the theoretical background of the over-conductivity concept and proves that when applied on other machines than KA26-1, the accuracy of the calculated temperatures remains within 15-18 ℃ versus measured data. A detailed analysis of the link between the over-conductivity and the energy equation is presented as well.
机译:自然冷却过程中的温度下降以及汽轮机重新启动的方式,对关键部件的循环寿命和整个机器的循环寿命都有重大影响。为了确保最快的启动而不降低涡轮关键部件的使用寿命,必须在计算中准确地捕获自然冷却并优化启动程序。在冷却和重新启动期间,所有涡轮机部件都在热和机械方面相互作用。因此,热分析人员必须在其数值模型中包括所有涡轮机重要部件,转子,壳体以及内部流体腔,阀和管道。这种条件与实际现象的提前时间相关(自然冷却需要100多个小时),使得分析很耗时,不适用于常规项目。在过去的几年中,Marinescu等人提出了一个称为“超导性”的概念。 (2013年,“利用光探头和自然冷却分析对汽轮机部件的热行为进行温度特性的实验研究”,ASME J. Eng。Gas Turbines Power,136(2),第021602页)以及Marinescu和Ehrsam(2012年。 “汽轮机部件热行为的实验研究:第2部分:汽轮机的自然冷却及其对LCF寿命的影响”,ASME文件号GT2012 -68759。根据此概念,流体对流和辐射的影响被称为超导率的标量函数K(T)代替,该函数具有与实际对流和辐射相同的传热效果。根据阿尔斯通KA26-1汽轮机上的测量温度对K(T)进行校准(Ruffino和Mohr,2012,“汽轮机部件热性能的实验研究:第1部分,使用光学探头的温度测量”,ASME论文编号: GT2012-68703)。该概念可以显着减少计算时间,这使得该方法适用于常规瞬态分析。下面的论文显示了超导概念的理论背景,并证明了在除KA26-1以外的其他机器上使用时,相对于测量数据,计算出的温度精度保持在15-18℃之内。还提供了对超导性和能量方程之间联系的详细分析。

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