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空间堆撞击地表结构破坏行为研究

徐达伟 戴守通 同梦玉 吕征

原子能科学技术2026,Vol.60Issue(2):397-411,15.
原子能科学技术2026,Vol.60Issue(2):397-411,15.DOI:10.7538/yzk.2025.youxian.0255

空间堆撞击地表结构破坏行为研究

Research on Structural Destructive Behavior of Space Nuclear Reactor Impact on Ground Surface

徐达伟 1戴守通 1同梦玉 1吕征1

作者信息

  • 1. 中国原子能科学研究院,北京 102413
  • 折叠

摘要

Abstract

Space nuclear reactors have gained increasing importance in deep space exploration missions,with launch abort scenarios leading to ground surface impact representing a core consideration in reactor safety design.However,space nuclear reactors cannot incorporate the same degree of redundancy and diversity as terrestrial nuclear facilities.Throughout their mission lifecycle,space nuclear reactors may experience atmospheric re-entry and subsequent ground surface impact at any stage.During hypervelocity impact events,the extreme kinetic energy induces severe structural deformation in the reactor pressure vessel.This deformation process may compromise safety-critical components such as control drums,fuel pins and restraint mechanisms,potentially affecting the reactor's neutronics characteristics.Consequently,conducting structural integrity assessments under various impact conditions provides essential data for criticality safety evaluations and serves as the basis for design optimization.This study employed the TOPAZ-Ⅱ space nuclear reactor as the research subject.Finite element simulations of terrestrial and aquatic impact behavior under various accident scenarios were conducted using ANSYS/DYNA and ABAQUS software.Based on finite element principles,Eulerian and Lagrangian methods were utilized to simulate reactor impacts.The structural response,component damage,and the influence of different failure criteria and motion parameters were investigated.The most severe damage to the space nuclear reactor occurs during ground surface impact at 0°.At this orientation,fastener failure initiates at low velocities,causing reflector assembly and control drum detachment.Additionally,safety control rods exhibit ejection propensity within the 16-68 m/s impact velocity range,whereas no ejection is observed at impact angles exceeding 21°.In contrast,water body impacts cause relatively minor damage to the space nuclear reactor,with no ejection risk has been observed.The reactor structure remains largely intact at impact velocities below 100 m/s,whereas fuel element dispersion occurs at velocities exceeding 200 m/s.At impact angles of 45° and 90° with velocities of 100 m/s and 150 m/s,the reactor faces a critical risk scenario.Under these conditions,the reflector layer and control drums detach,safety rods undergo partial destruction,and the reactor core becomes submerged in water body.Complete structural failure of the reactor vessel and fuel element dispersion occur at impact velocities above 200 m/s.The impact of a space nuclear reactor on both ground surface and water body presents critical safety risks.In the case of ground surface impact,the primary hazard arises from the potential ejection of safety rods and the detachment of the reflector layer and control drums.These results deliver fundamental inputs for criticality safety assessments and establish reference frameworks for test parameter definition and experimental configuration design in space nuclear reactor terrestrial impact experiments.

关键词

空间堆/撞击地表/本构模型/失效准则/空间核安全

Key words

space nuclear reactor/ground surface impact/constitutive model/fracture criterion/space nuclear security

分类

能源科技

引用本文复制引用

徐达伟,戴守通,同梦玉,吕征..空间堆撞击地表结构破坏行为研究[J].原子能科学技术,2026,60(2):397-411,15.

原子能科学技术

1000-6931

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