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首页> 外文期刊>Annals of nuclear energy >Study on working mechanism of AP1000 moisture separator by numerical modeling
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Study on working mechanism of AP1000 moisture separator by numerical modeling

机译:AP1000除水器工作机理的数值模拟研究

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AP1000 (Advanced Passive 1000) moisture separator that consists of primary, gravity and secondary separators is a crucial device to eliminate droplets from steam and supply dry-saturated steam to turbines. In order to understand the working mechanism of AP1000 moisture separator, droplet-laden flows are simulated in moisture separators based on the Lagrangian-Eulerian approach. In terms of details, the actual droplets are represented by parcels whose equations of motion are cast in a set of ordinary differential equations (ODEs), and the steam phase is described by Reynolds-Averaged Navier-Stokes (RANS) equations. Particularly, the numerical stability of solving the ODEs by using a fourth-order Runge-Kutta scheme is analyzed by a theoretical method in order to increase the time step size to save the computational time. Further, a distinct algorithm is introduced to rise the execution speed of locating a droplet in the grid by about 6000 times. The results show that, firstly, the separation efficiency of primary separator is beyond 90%. According to the moisture distribution on the x-z plane, the swirl-vanes placed in the inner barrel indeed play an important role to eliminate droplets. Secondly, the gravity space has no separation function, but it can make droplets follow the steam without speed disparity. Thirdly, the separation efficiency of the secondary separator is about 25%. This low value is attributed to the fact that only the hooks at the first and third stages can trap droplets. (C) 2016 Elsevier Ltd. All rights reserved.
机译:由初级,重力和次级分离器组成的AP1000(高级被动式1000)水分分离器是消除蒸汽中的液滴并将干饱和蒸汽供应至涡轮机的关键设备。为了了解AP1000水分分离器的工作机理,基于Lagrangian-Eulerian方法在水分分离器中模拟了载有液滴的流动。在细节方面,实际的液滴由包裹表示,包裹的运动方程以一组常微分方程(ODE)表示,蒸汽相由雷诺平均Navier-Stokes(RANS)方程描述。特别地,通过理论方法分析了通过使用四阶Runge-Kutta方案求解ODE的数值稳定性,以增加时间步长以节省计算时间。此外,引入了独特的算法以将在网格中定位液滴的执行速度提高约6000倍。结果表明,首先,一级分离器的分离效率超过90%。根据x-z平面上的水分分布,放置在内桶中的旋流叶片确实在消除液滴方面起着重要作用。其次,重力空间没有分离功能,但可以使液滴跟随蒸汽而不会产生速度差异。第三,次级分离器的分离效率约为25%。该低值归因于这样的事实,即只有第一级和第三级的钩子才能捕获液滴。 (C)2016 Elsevier Ltd.保留所有权利。

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