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Validation of CFD and Thermal Hydraulics Codes by Digital Particle Image Velocimetry

机译:用数字粒子图像测速验证CFD和热液压码

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Experimental validation of thermal hydraulics and CFD codes of scaled down models and full models of Nuclear Reactor components is very important for reactor system designers and reactor safety experts for optimal design and providing best safety features of the reactor systems. Over the period of time several techniques have been developed for this purpose. Among them Digital Particle Image Velocimetry (DPIV), a laser based optical technique, is the recent, innovative, promising and flexible enough one so that it can be adapted to a large variety flows. By this technique test time is reduced significantly. DPIV is a non-intrusive optical measurement technique, which allows capturing several thousand velocity vectors within large flow fields instantaneously. DPIV technique is being used in very wide and different applications, from micro flows over combustion to supersonic flows for both industrial needs and research. 2-D DPIV facility having non-intrusive, instantaneous flow visualization with high spatial and temporal resolution features has been developed. It is used for measurement of flow velocity vectors at many (e.g. thousands) points in a flow field simultaneously and it provides instantaneous vector fields and displays velocity vectors in real-time. DPIV combines flow visualization with accurate quantitative velocity data. 2-D Velocity vectors are obtained by analysis of displacement of tracer particles on images in a known time. The development of visualization tools are powerful enough to attack the complexity of a resulting flow field but also flexible enough so that they can be adapted to a large variety of different flow. DPIV system has Laser light source, Laser beam delivery system, High speed camera interface, DPIV image acquisition & analysis software, CCD camera, computer controlled synchronizer, seeding particles & PC. This system will enhance our capability of thermal hydraulics, neutronics and multiphysics modelling by experimental support & actual measurement of parameters, in addition to codes we had with us. Application of DPIV is must for the flow in the separation and reattachment regions where it is directly related to drag and heat transfer coefficients and for Vortex shedding. This facility is being used for basic research of code verification, code development, design optimizations and safetyanalysis.
机译:对缩小模型和全型核反应堆组件的热液压和CFD代码的实验验证对于反应堆系统设计人员和反应堆安全专家来说非常重要,用于最佳设计,提供反应堆系统的最佳安全性。在这段时间内,已经为此目的开发了几种技术。其中,数字粒子图像VELOCIMETRY(DPIV),基于激光的光学技术,是最近,创新,有前途和灵活的,使其可以适应大量流动。通过该技术,测试时间显着减少。 DPIV是一种非侵入式光学测量技术,其瞬间允许在大流场内捕获几千个速度矢量。 DPIV技术在非常广泛和不同的应用中,从微量流过于用于工业需求和研究的超音速流动。已经开发出具有高空间和时间分辨率的非侵扰性瞬时流动可视化的2-D DPIV设施。它用于同时流场中的许多(例如成千上万)点的流速矢量,并且它提供瞬时矢量场,并实时显示速度矢量。 DPIV将流量可视化与精确的定量速度数据相结合。通过分析已知时间在图像中的示踪剂颗粒的位移来获得2-D速度矢量。可视化工具的开发足够强大以攻击所产生的流场的复杂性,但也足够灵活,以便它们可以适应各种不同的流量。 DPIV系统具有激光光源,激光束输送系统,高速摄像机接口,DPIV图像采集和分析软件,CCD摄像机,计算机控制同步器,播种粒子和PC。该系统将通过实验支持和实际测量来提高热力液压,中子学和多学科建模的能力,除了我们与我们的代码。 DPIV的应用必须用于分离和重新附着区域的流动,其中它与阻力和传热系数直接相关,并且用于涡旋脱落。该设施正在用于代码验证,代码开发,设计优化和安全性的基本研究。

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