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The Improvement of Coupling Method in TINTE by Fully Implicit Scheme

机译:完全隐式方案对TINTE中耦合方法的改进

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摘要

TINTE is a well-established code for the pebble-bed high-temperature gas-cooled reactor (HTR), including the complicated nuclear module and thermal-hydraulic module, which has been validated by experiments and widely used in the transient behavior simulation. However, only an operator splitting scheme is employed in TINTE to couple the neutronics and thermal hydraulics, and some physical quantities are not consistent in time. As a result, the accuracy and stability are limited by the additional error term derived from the unconverged physical term. In this paper, a fully implicit coupling method was investigated in which the coupled nonlinear fields at each time step are converged using Picard iterations. A physics-based preconditioning is proposed in the work here to further improve the computational performance of the fully implicit coupling method. Seven test problems are implemented based on a practical engineering model, rather than a simple model, to evaluate the performance of the Picard method. The numerical results show that the fully implicit Picard iteration method is more accurate and more stable, which permits longer time steps and a reduction of the computational burden for solving the coupled field equations. The computational efficiency is further enhanced when the physics-based preconditioning is utilized.
机译:TINTE是卵石床高温气冷堆(HTR)的公认规范,其中包括复杂的核模块和热工液压模块,已通过实验验证并广泛用于瞬态行为模拟中。但是,在TINTE中仅采用了操作员拆分方案来耦合中子学和热力学,并且某些物理量在时间上不一致。结果,准确性和稳定性受到从未收敛物理项中得出的附加误差项的限制。在本文中,研究了一种完全隐式耦合方法,其中使用Picard迭代对每个时间步长处的耦合非线性场进行收敛。在本文的工作中提出了基于物理的预处理,以进一步提高完全隐式耦合方法的计算性能。根据实用的工程模型而不是简单的模型来实现七个测试问题,以评估Picard方法的性能。数值结果表明,完全隐式的Picard迭代方法更准确,更稳定,这允许更长的时间步长并减少了求解耦合场方程的计算量。当利用基于物理的预处理时,计算效率进一步提高。

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