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High-performing simulations of the space radiation environment for the International Space Station and Apollo Missions.

机译:国际空间站和阿波罗飞行任务的空间辐射环境的高性能模拟。

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摘要

The space radiation environment is a significant challenge to future manned and unmanned space travels. Future missions will rely more on accurate simulations of radiation transport in space through spacecraft to predict astronaut dose and energy deposition within spacecraft electronics. The International Space Station provides long-term measurements of the radiation environment in Low Earth Orbit (LEO); however, only the Apollo missions provided dosimetry data beyond LEO. Thus dosimetry analysis for deep space missions is poorly supported with currently available data, and there is a need to develop dosimetry-predicting models for extended deep space missions.;GEANT4, a Monte Carlo Method, provides a powerful toolkit in C++ for simulation of radiation transport in arbitrary media, thus including the spacecraft and space travels. The newest version of GEANT4 supports multithreading and MPI, resulting in faster distributive processing of simulations in high-performance computing clusters. This thesis introduces a new application based on GEANT4 that greatly reduces computational time using Kingspeak and Ember computational clusters at the Center for High Performance Computing (CHPC) to simulate radiation transport through full spacecraft geometry, reducing simulation time to hours instead of weeks without post simulation processing. Additionally, this thesis introduces a new set of detectors besides the historically used International Commission of Radiation Units (ICRU) spheres for calculating dose distribution, including a Thermoluminescent Detector (TLD), Tissue Equivalent Proportional Counter (TEPC), and human phantom combined with a series of new primitive scorers in GEANT4 to calculate dose equivalence based on the International Commission of Radiation Protection (ICRP) standards. The developed models in this thesis predict dose depositions in the International Space Station and during the Apollo missions showing good agreement with experimental measurements. From these models the greatest contributor to radiation dose for the Apollo missions was from Galactic Cosmic Rays due to the short time within the radiation belts. The Apollo 14 dose measurements were an order of magnitude higher compared to other Apollo missions. The GEANT4 model of the Apollo Command Module shows consistent doses due to Galactic Cosmic Rays and Radiation Belts for all missions, with a small variation in dose distribution across the capsule. The model also predicts well the dose depositions and equivalent dose values in various human organs for the International Space Station or Apollo Command Module.
机译:空间辐射环境是未来载人和无人太空旅行的重大挑战。未来的任务将更多地依靠通过航天器对太空中的辐射传输进行精确模拟,以预测宇航员在航天器电子设备中的剂量和能量沉积。国际空间站提供对低地球轨道(LEO)辐射环境的长期测量;但是,只有阿波罗飞行任务提供了LEO以外的剂量学数据。因此,目前可获得的数据很少支持对深空任务的剂量学分析,因此需要开发用于扩展深空任务的剂量学预测模型。GEANT4,蒙特卡洛方法,提供了一种功能强大的C ++工具箱,用于模拟辐射以任意媒体进行运输,因此包括航天器和太空旅行。最新版本的GEANT4支持多线程和MPI,从而可以在高性能计算集群中更快地进行仿真的分布式处理。本文介绍了一个基于GEANT4的新应用程序,该应用程序可以使用高性能计算中心(CHPC)的Kingspeak和Ember计算集群大大减少计算时间,从而模拟整个航天器几何形状中的辐射传输,从而将仿真时间减少至数小时,而无需进行后仿真,而将时间从数周减少处理。此外,除了历史上使用过的国际辐射单位委员会(ICRU)球体以外,本文还介绍了一套新的探测器,用于计算剂量分布,包括热发光探测器(TLD),组织等效比例计数器(TEPC)和人体幻像并结合了GEANT4中一系列新的原始评分器,以根据国际辐射防护委员会(ICRP)标准计算剂量当量。本文开发的模型可预测国际空间站和阿波罗任务期间的剂量沉积,与实验测量结果吻合良好。在这些模型中,由于辐射带内的时间短,对阿波罗任务的辐射剂量最大的贡献者来自银河系宇宙射线。与其他Apollo任务相比,Apollo 14剂量测量结果高出一个数量级。由于所有任务的银河宇宙射线和辐射带,阿波罗指令模块的GEANT4模型显示出一致的剂量,整个胶囊的剂量分布变化很小。该模型还可以很好地预测国际空间站或阿波罗指挥模块在各个人体器官中的剂量沉积和等效剂量值。

著录项

  • 作者

    Lund, Matthew Lawrence.;

  • 作者单位

    The University of Utah.;

  • 授予单位 The University of Utah.;
  • 学科 Nuclear engineering.;Nuclear physics and radiation.;Aerospace engineering.
  • 学位 M.S.
  • 年度 2016
  • 页码 159 p.
  • 总页数 159
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:40:32

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