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Fuel Assembly Combined Lateral and Axial Model

机译:燃料组件侧向和轴向组合模型

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The objective of this paper is to develop a purely mechanistic fuel assembly structural model that will predict the fuel assembly's static and dynamic characteristics from the knowledge of the fuel assembly's geometry and component properties. This model provides a method for analyzing the static and dynamic lateral and axial properties of the fuel assembly. A comparison of various in-air fuel assembly test data such as lateral and axial stiffnesses and lateral natural frequencies is provided to demonstrate the analytical model.rnThe fuel assembly model developed by Shah, Brenneman, etc. (1), achieved very good agreement with assembly lateral impact test data by utilizing a "3-beam" model. In that model, the fuel rod-to-spacer grid interfaces were represented by spring and friction elements. The fuel assembly was restrained at each grid position by means of rotational springs, which were benchmarked to the test frequencies. This newly developed model eliminates the need for using rotational springs at the grid locations. Hence, it fully simulates the fuel assembly lateral and axial behavior based on the fuel assembly geometric properties.rnThe fuel assembly model is a 2-D planar model of beams in both lateral and axial directions. The grids are modeled with plate elements. At each grid location there are springs, preload, and frictional sliders representing the lateral and axial connectivity characteristics to the fuel assembly beam model. As the Zircaloy grid preloads relax from irradiation, they can be easily simulated by removing the preload. Hence, this model can represent the fuel assembly structural properties for all aspects of fuel assembly cycles. This model can be used to analyze the fuel assembly lateral static stiffness, first mode and higher order lateral natural frequencies, mode shapes, axial stiffness, in-grid stiffness, through-grid stiffness, and fuel assembly lateral and axial seismic and LOCA response. The model will also estimate the fuel rod frequencies and mode shapes. This model may eliminate the need for some expensive prototype fuel assembly testing.
机译:本文的目的是开发一种纯机械的燃料组件结构模型,该模型将根据对燃料组件的几何形状和组件特性的了解来预测燃料组件的静态和动态特性。该模型提供了一种用于分析燃料组件的静态和动态侧向和轴向特性的方法。通过比较各种空气燃料组件的测试数据,例如侧向和轴向刚度以及侧向固有频率,可以证明该分析模型。rn由Shah,Brenneman等人开发的燃料组件模型(1)与通过使用“三束”模型装配横向冲击测试数据。在该模型中,燃料棒到垫片的网格接口由弹簧和摩擦元件表示。燃料组件通过旋转弹簧约束在每个栅格位置,并以测试频率为基准。这种新开发的模型消除了在网格位置使用旋转弹簧的需要。因此,它可以根据燃料组件的几何特性完全模拟燃料组件的横向和轴向行为。rn燃料组件模型是梁在横向和轴向上的二维平面模型。网格是用板单元建模的。在每个网格位置,都有弹簧,预紧力和摩擦滑块,它们表示燃料组件梁模型的横向和轴向连接特性。由于Zircaloy网格的预紧力会因辐照而松弛,因此可以通过去除预紧力轻松地模拟它们。因此,该模型可以代表燃料组件循环各个方面的燃料组件结构特性。该模型可用于分析燃料组件的侧向静态刚度,一阶和更高阶的横向固有频率,模式形状,轴向刚度,网格内刚度,贯通网格刚度,以及燃料组件的横向和轴向地震响应以及LOCA响应。该模型还将估计燃料棒的频率和模式形状。该模型可以消除对某些昂贵的原型燃料组件测试的需求。

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