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Circumferential steady-state creep test and analysis of Zircaloy-4 fuel cladding

机译:锆稳态蠕变试验及分析锆瓦尔 - 4燃料包层

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In recent studies, the creep rate of Zircaloy-4, one of the basic property parameters of the nuclear fuel code, has been commonly used with the axial creep model proposed by Rosinger et?al. However, in order to calculate the circumferential deformation of the fuel cladding, there is a limitation that a difference occurs depending on the anisotropic coefficients used in deriving the circumferential creep equation by using the axial creep equation. Therefore, in this study, the existing axial creep law and the derived circumferential creep results were analyzed through a circumferential creep test by the internal pressurization method in the isothermal conditions. The circumferential creep deformation was measured through the optical image analysis method, and the results of the experiment were investigated through constructed IDECA (In-situDEformationCalculationAlgorithm based on creep) code. First, preliminary tests were performed in the isotropic β–phase. Subsequently in the anisotropic α-phase, the correlations obtained from a series of circumferential creep tests were compared with the axial creep equation, and optimized anisotropic coefficients were proposed based on the performed circumferential creep results. Finally, the IDECA prediction results using optimized anisotropic coefficients based on creep tests were validated through tube burst tests in transient conditions.
机译:在最近的研究中,锆燃料码的基本属性参数之一的蠕变率通常与Rosinger et?Al提出的轴蠕变模型一起使用。然而,为了计算燃料包层的圆周变形,有一个限制,取决于通过使用轴向蠕变方程来导出周向蠕变方程的各向异性系数。因此,在本研究中,通过在等温条件下的内部加压方法通过圆周蠕变试验分析现有的轴向蠕变律和衍生的周向蠕变结果。通过光学图像分析方法测量周向蠕变变形,通过构造的IDECA(基于蠕变)代码的IDECA(位于不成荫)代码来研究实验结果。首先,在各向同性β相中进行初步试验。随后在各向异性α-阶段中,将从一系列周向蠕变测试获得的相关性与轴向蠕变方程进行比较,并且基于所执行的周向蠕变效果提出优化的各向异性系数。最后,通过在瞬态条件下通过管突发测试验证了使用基于蠕变测试的优化各向异性系数的IDECA预测结果。

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