【24h】

A novel synthetic diamond Cherenkov radiator for measuring space radiation

机译:用于测量空间辐射的新型合成钻石Cherenkov散热器

获取原文
获取原文并翻译 | 示例

摘要

The measurement of cosmic rays and Solar energetic particles in space is basic to our understanding of the Galaxy, the Sun, phenomena in the Heliosphere and the emerging field of space weather. For these reasons, cosmic ray instruments are common on both scientific spacecraft and operational spacecraft such as weather satellites.Cosmic rays (CRs) and Solar energetic particles (SEPs) include ions over the full range of elements found in the Solar System. High-resolution measurements of the energy spectra of space radiation are key to understanding both acceleration and propagation processes. An inherent challenge is the large range of energies of such spectra. Cosmic ray energies range up to over 10(21) eV, while SEPs can reach a few GeV. Multi-instrument measurements are currently required to cover the full range of particle energies. Indeed, the highest energy particles, due to the rarity, can only be measured with ground-based instruments using the atmosphere as a calorimeter.Over limited energy ranges, SEP spectra are often approximated by a power law; however, over the full energy range, SEP events exhibit changing spectral shapes (e.g. "knees", "roll-overs" and "cut-offs"). These features give information about the acceleration processes, such as size of the acceleration region, time of acceleration, morphology of the magnetic field during acceleration, and others, all of which can vary from event to event. Measurements of such features are often compromised by the need to combine measurements from more than one instrument, each with its own limited energy range. Even if there are no gaps between the energy intervals of the instruments, differing systematics can severely impact data analysis. A single instrument capable of measurements over a continuous and extended energy range would offer vastly more reliable measurement of the energy spectra of SEP events as well as replacing multiple instruments on resource-limited spacecraft.The most common method to measure GCRs and SEPs from a few to similar to 100 MeV for protons, is Si Solid-State Detector (SSD) stacks. Above these energies, Cherenkov detectors are typically used together with SSDs. Ideally, to provide full energy coverage with no gaps, this requires a Cherenkov radiator with a threshold of similar to 100 MeV. No suitable Cherenkov detector with such a low threshold has been developed. We are in the process of developing a synthetic diamond Cherenkov detector for this purpose. Diamond's high index of refraction (2.42) results in a theoretical threshold of 92 MeV for protons. Even with a practical threshold of similar to 110 MeV, this is ideal for extending the energy range from that of SSDs alone to that of sapphire Cherenkov detectors (202 MeV threshold) with higher energies attainable using plastic Cherenkov detectors. Both Sapphire and plastic Cherenkov radiators have spaceflight heritage.
机译:空间中宇宙射线和太阳能粒子的测量是我们对幽极岩中的银河系,太阳,太阳现象的理解和新兴的太空天气领域。出于这些原因,宇宙射线仪器在科学航天器和运营航天器上都是常见的,例如天气卫星。透射光线(CRS)和太阳能粒子(SEP)包括太阳系中发现的全系列元素上的离子。空间辐射能谱的高分辨率测量是理解加速度和传播过程的关键。固有的挑战是这种光谱的大量能量。宇宙射线能量范围高达10(21)只(21)只,而SEP可能达到几个GEV。目前需要多仪器测量来涵盖全系列的粒子能。实际上,由于稀有性,最高能量颗粒只能用基于基于仪器的基于基于仪器的仪器来测量,这些仪器作为量热计。在有限的能量范围内,SEP光谱通常由电力法近似;然而,在完全能量范围内,SEP事件表现出变化的光谱形状(例如“膝盖”,“滚动”,“滚动”和“截止值”)。这些特征提供有关加速过程的信息,例如加速度区域的大小,加速期间磁场的形态,以及其他所有的信息,所有这些都可以因事件而异。这些特征的测量通常是由于需要从多于一个仪器中的测量结果而损害,每个都具有其自身有限的能量范围。即使仪器的能量间隔之间没有间隙,不同的系统性也会严重影响数据分析。一种能够在连续和扩展的能量范围内测量的单个仪器将提供更加可靠的测量SEP事件的能谱以及更换资源限制的航天器上的多个仪器。最常见的方法可以测量GCR和SEPs的几个对于质子的类似于100 meV,是Si固态检测器(SSD)叠层。在这些能量之上,Cherenkov探测器通常与SSD一起使用。理想情况下,为了提供没有间隙的全能覆盖,这需要Cherenkov散热器,阈值类似于100 MeV。没有开发出具有如此低阈值的合适的Cherenkov检测器。我们正在开发合成钻石Cherenkov探测器,以此目的。 Diamond的高折射率(2.42)导致质子为92meV的理论阈值。即使具有类似于110 MeV的实际阈值,这也非常适合从SSDS延伸到SSAPHIRE Cherenkov探测器(202MeV阈值)的能量范围,使用塑料Cherenkov探测器可获得更高的能量。蓝宝石和塑料Cherenkov散热器都有航天遗产。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号