LOVIISA核电厂K-220-44-2汽轮机高压缸进汽口的改进

V. Solodov
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引用次数: 0

摘要

提出了一种计算蒸汽在锥形多孔蒸汽筛中的粘性流动的模型。该模型考虑了通道的复杂几何形状,设计和工程发展的结果以及优化Loviisa核电厂K-220-44-2涡轮机高压缸流道蒸汽管线截止阀的计算研究(芬兰)。在1号和2号截止阀的现代化改造过程中,主要关注的是减少蒸汽筛上的损失问题。许多设计特点在很大程度上抵消了大量孔的影响。这些包括以与孔轴线成一定角度围绕穿孔表面的流动;在蒸汽筛的侧表面后面用三个纵肋以及在侧表面和底表面交界处用无孔的环形区域阻塞蒸汽线通道。在现代化的过程中,增加了铸件的入口部分的内径,这使得有可能增加穿孔蒸汽筛的自由横截面。对所提出的设计方案进行了数值研究。利用Reynolds-Favre平均的Navier-Stokes方程组,对粘性可压缩蒸汽在流道中的空间三维流动进行了数值积分分析。该系统补充了微分湍流模型方程。利用作者的一个软件包对Navier-Stokes方程及相关方程系统进行积分[3]。采用非结构化六面体网格对计算的子域进行逼近。求解器中使用了精度为二阶的有限体积隐式差分格式和该算法的一种变体[4],[5],该算法允许在多处理器平台上有效地分割计算过程。假定固体壁面为绝热壁面,在壁面上设置无滑移条件和有效涡黏度等于零。湍流效应的描述基于Menter模型[4]和修正的Spalart-Allmaras湍流模型[5]。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improvement of steam inlet of the high pressure cylinder for K-220-44-2 turbine of the LOVIISA NPP
a model for calculating the viscous flow of steam through a conical perforated steam sieve is proposed. The model takes into account the complex geometry of the channels, the results of design and engineering developments and computational studies to optimize the stop valves of the steam line for flow path of the high-pressure cylinder of the K-220-44-2 turbine for the Loviisa NPP are considered (Finland). The main attention during the modernization of stop valves 1 and 2 was paid to the problem of reducing losses on the steam sieve. A number of design features largely offset the effect of a large number of holes. These include the flow around the perforated surface at an angle to the axis of the holes; obstruction of the steam line channel behind the side surface of the steam sieve with three longitudinal ribs, as well as by an annular zone without holes at the junction of the side and bottom surfaces. During modernization the inner diameter of the inlet part of the body in casting was increased, which made it possible to increase the free cross-section of the perforated steam sieve. The proposed design solutions were investigated numerically. The spatial three-dimensional flow of a viscous compressible steam through the flow path was analyzed by numerically integrating the system of Navier-Stokes equations averaged by Reynolds-Favre. The system was supplemented with equations of the differential turbulence model. One of the author's software package was used for integration of the system of Navier-Stokes equations and associated equations [3]. Unstructured hexahedral meshes were used for approximation of the calculated subdomains. An implicit difference scheme of finite volumes of the 2nd order of accuracy and a variant of the algorithm [4], [5] that allows efficient splitting of the computational process for multiprocessor platforms was used in the solver. The solid walls were assumed to be adiabatic, the no-slip condition and the equality of effective vortex viscosity to zero were set on them. Turbulent effects were described based on the Menter model [4] and the modified Spalart-Allmaras turbulence model [5].
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