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首页> 外文期刊>Annals of nuclear energy >ARCHER - a new Three-Dimensional method of characteristics neutron transport code for Pebble-bed HTR with coarse mesh finite difference acceleration
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ARCHER - a new Three-Dimensional method of characteristics neutron transport code for Pebble-bed HTR with coarse mesh finite difference acceleration

机译:ARCHER - 一种具有粗网格有限差分加速度的球床高温高压链球床中子输运码的三维特性中子输运码方法

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? 2022 Elsevier LtdA new deterministic code ARCHER using Three-Dimensional (3-D) Method of Characteristics (MOC) has been developed by Institute of Nuclear and new Energy Technology (INET), Tsinghua University, aiming to obtain high-fidelity transport solution of pebble-bed High Temperature gas-cooled Reactor (HTR) with explicit pebble-bed geometry. However, 3-D MOC usually suffers from the slow convergence rate without efficient acceleration methods. In this work, the Coarse Mesh Finite Difference (CMFD) based on regular mesh is implemented to accelerate 3-D MOC calculation, which is available for the problems with cylinder and cuboid geometry. The complex geometry of reactor core with randomly stacked spherical fuel elements and irregular helium flow area, as well as the topological relationships between fine Flat Source Region (FSR) mesh for MOC and coarse CMFD mesh, are the key but challenging tasks for high-fidelity transport solution. Constructive Solid Geometry (CSG) and Boolean operation are constructed to describe problem geometry, which has the ability to deal with complex topological relationships between meshes. In addition, tree grid structure is utilized to reduce the time complexity of ray tracing and obtain the grid mapping relationship between coarse mesh and fine mesh. Spatial domain decomposition parallel based on MPI is utilized to alleviate the memory pressure and pursue high computational performance. Ray parallel is further achieved through OpenMP with shared memory. Several problems have been used to verify the geometric modeling capability and computational performance of this new 3-D MOC code for pebble-bed HTR.
机译:?2022 爱思唯尔有限公司由清华大学核能与新能源技术研究所(INET)开发了采用三维(3-D)特征法(MOC)的新型确定性代码ARCHER,旨在获得具有明确球床几何形状的球床高温气冷堆(HTR)的高保真输运解决方案。然而,在没有有效加速方法的情况下,三维MOC通常存在收敛速率慢的问题。该文采用基于正则网格的粗网格有限差分(CMFD)来加速三维MOC计算,该计算可用于解决圆柱体和长方体几何问题。具有随机堆叠的球形燃料元件和不规则氦流面积的反应堆堆芯的复杂几何形状,以及MOC的精细平坦源区(FSR)网格与粗CMFD网格之间的拓扑关系,是高保真传输解决方案的关键但具有挑战性的任务。构造实体几何(CSG)和布尔运算用于描述问题几何,具有处理网格之间复杂拓扑关系的能力。此外,利用树状网格结构降低光线追踪的时间复杂度,得到粗网格和细网格之间的网格映射关系。利用基于MPI的空间域并行分解来缓解内存压力,追求高计算性能。光线并行通过具有共享内存的 OpenMP 进一步实现。已经使用几个问题来验证这种新的卵石床 HTR 三维 MOC 代码的几何建模能力和计算性能。

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