首页> 外文会议>International conference on nuclear engineering >EXPERIMENTAL AND NUMERICAL ANALYSIS OF THE FLOW FIELD IN THE INTEGRATED VALVE FOR THE CONTROL ROD HYDRAULIC DRIVE SYSTEM
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EXPERIMENTAL AND NUMERICAL ANALYSIS OF THE FLOW FIELD IN THE INTEGRATED VALVE FOR THE CONTROL ROD HYDRAULIC DRIVE SYSTEM

机译:控制杆液压驱动系统集成阀内流场的实验和数值分析

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Control Rod Hydraulic Drive System (CRHDS) is a new type of built-in control rod drive technology, and the Integrated Valve (IV) is the key control component of it. The pulse water flowing into the control rod hydraulic mechanism (CRHDM) is controlled by the IV to drive the hydraulic cylinders to move in a predefined sequence to make the control rod perform step-up, step-down and scram functions. Flow resistance of the IV flow channels is the key design parameter of IV which influences the step motion of the hydraulic cylinder and thus affects the performance of the CRHDS. Experiments on the flow resistance of IV flow channels at different working temperatures were conducted to obtain differential pressures of IV under various temperature and flow rate operating conditions. Based on the experimental conditions and results, three dimensional flow field analysis of the IV flow channels was carried out to get the flow field distribution and hydraulic parameters of the IV flow channels. Flow resistance of the IV flow channels at different working temperatures were obtained using the calculation results and agree well with the experimental results. It verified the correctness of the CFD model. On the basis of the numerical simulation results, the velocity and pressure distribution schemes in the IV flow channels under different working temperature conditions were compared and analyzed. The research results show that the flow resistance of the IV in-rod flow channels remains largely unchanged at different working temperatures, the peak flow velocity appears at the entrance of the valve core section which is also the main flow resistance loss area. The theoretical model was then applied to analyze the influence of the design parameters which include the valve core size, the angle between flow channels, etc., on the total flow resistance of IV at high temperatures. And the analysis results show that, the angle between flow channels has little influence on the flow resistance coefficient. The increase of valve core radius can significantly reduce the total flow resistance of IV flow channels. Numerical simulation on one out-rod flow channel is also carried out, which shows that the flow resistance in out-rod flow channel is much lower than the corresponding in-rod flow channels. The research results can give guidance for the design and optimization of the IV.
机译:控制杆液压驱动系统(CRHDS)是一种新型的内置控制杆驱动技术,集成阀(IV)是其关键控制组件。通过IV控制流入控制杆液压机构(CRHDM)的脉冲水,以驱动液压缸以预定的顺序运动,以使控制杆执行升压,降压和紧急停车功能。 IV流道的流阻是IV的关键设计参数,它影响液压缸的步进运动,从而影响CRHDS的性能。进行了在不同工作温度下静脉输液通道的流阻实验,以获得在不同温度和流量运行条件下静脉输液的压差。根据实验条件和结果,对IV流道进行了三维流场分析,得到了IV流道的流场分布和水力参数。计算结果获得了不同工作温度下的IV流道的流阻,与实验结果吻合良好。它验证了CFD模型的正确性。根据数值模拟结果,比较和分析了不同工作温度条件下IV流道中的速度和压力分布方案。研究结果表明,在不同的工作温度下,IV杆内流道的流阻基本保持不变,峰值流速出现在阀芯段的入口,这也是主要的流阻损失区域。然后将理论模型应用于分析设计参数(包括阀芯尺寸,流道之间的角度等)对高温下IV的总流阻的影响。分析结果表明,流道间的夹角对流阻系数影响很小。阀芯半径的增加可以显着降低IV流道的总流阻。还对一个杆外流动通道进行了数值模拟,结果表明,杆外流动通道的流动阻力远低于相应的杆内流动通道。研究结果可为静脉输液的设计和优化提供指导。

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