月球环境日球x射线成像仪中扫磁阵列带电粒子偏转的模拟。

IF 1.6 4区 工程技术 Q3 INSTRUMENTS & INSTRUMENTATION Review of Scientific Instruments Pub Date : 2024-12-01 DOI:10.1063/5.0230759
Catriana K Paw U, Brian M Walsh, Ramiz Qudsi, Sam Busk, Cadin Connor, Dennis Chornay, Hyunju K Connor, Kip D Kuntz, Rousseau Nutter, F Scott Porter
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引用次数: 0

摘要

月球环境日球x射线成像仪(LEXI)是一种用于成像地球磁鞘中太阳风电荷交换产生的x射线的仪器。监测磁层顶在磁鞘内边界的位置使我们能够了解磁重联如何调节太阳风的能量如何沉积到地球的磁层中。LEXI是即将在危机海登陆的月球着陆器任务的一部分。为了排斥不需要的带电粒子,该仪器携带了一个由48块钕磁铁组成的永磁阵列。该阵列的设计目的是最大化带电粒子偏转,同时最小化可能影响其他仪器或航天器运行的杂散磁场。建立了基于龙格-库塔的全动力学粒子跟踪模型,以评价LEXI独特的带电粒子偏转器阵列的有效性。结合仪器的其他粒子抑制措施,包括物理结构和过滤器,模拟表明质子和电子传输到LEXI探测器预计将充分减少,以允许成功成像。该灵活的仿真模型可以推广到其他仪器的磁偏转器阵列有效性的检测中,这些仪器的信号可能受到不需要的带电粒子污染的影响。
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Simulation of the charged particle deflection from the sweeping magnet array in the Lunar Environment heliospheric X-ray imager.

The Lunar Environment heliospheric X-ray Imager (LEXI) is an instrument built to image x-rays from solar wind charge exchange in Earth's magnetosheath. Monitoring the position of the magnetopause at the inner boundary of the magnetosheath allows us to understand how magnetic reconnection regulates how energy from the solar wind is deposited into Earth's magnetosphere. LEXI is part of an upcoming lunar lander mission set to land in Mare Crisium. To repel unwanted charged particles, the instrument carries a permanent magnet array composed of 48 neodymium magnets. The array was designed to maximize charged particle deflection while minimizing stray magnetic fields, which could impact other instruments or spacecraft operation. A Runge-Kutta-based fully kinetic particle tracing model was created to evaluate the effectiveness of LEXI's unique charged particle deflector array. Combined with the other particle suppression measures of the instrument, including physical structures and filters, the simulations show proton and electron transmission to the LEXI detector is expected to be sufficiently reduced to allow successful imaging. The flexible simulation model can be generalized to be used in examining the magnetic deflector array effectiveness of other instruments whose signals could be compromised by unwanted charged particle contamination.

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来源期刊
Review of Scientific Instruments
Review of Scientific Instruments 工程技术-物理:应用
CiteScore
3.00
自引率
12.50%
发文量
758
审稿时长
2.6 months
期刊介绍: Review of Scientific Instruments, is committed to the publication of advances in scientific instruments, apparatuses, and techniques. RSI seeks to meet the needs of engineers and scientists in physics, chemistry, and the life sciences.
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