论文标题

木星的非热X射线的观察和起源

Observation and origin of non-thermal hard X-rays from Jupiter

论文作者

Mori, Kaya, Hailey, Charles, Bridges, Gabriel, Mandel, Shifra, Garvin, Amani, Grefenstette, Brian, Dunn, William, Hord, Benjamin J., Branduardi-Raymont, Graziella, Clarke, John, Jackman, Caitriona, Nynka, Melania, Ray, Licia

论文摘要

电子在地球上通过各种波浪散射或随机过程加速,产生坚硬的非热X射线bremsstrahlung,至> 〜1 MEV和Power Earth的各种极光。尽管木星的磁场是比地球大的数量级,但基于空间的望远镜先前仅检测到X射线仅为〜7 keV。基于Jovian极光X射线产生的理论模型,〜2-7 KeV频段中的X射线发射已被解释为热(由Maxwell-Boltzmann分布的电子引起的)BREMSSTRAHLUNG。在这里,我们报告了使用Nustar X射线天文台获得的Jovian Aurorae的8-20 keV频段中的硬X射线观察。 X射线适合具有斜率0.60 +/- 0.22的平面幂律模型 - 非热,硬X射线bremsstrahlung的光谱签名。我们使用Juno航天器的Jade和Jedi Instruments确定了KEV到MEV能量范围的电子通量和光谱形状。我们观察到的形式的Jovian电子光谱以前被解释为在随机加速度中产生,而不是电场的相干加速。我们通过模拟在模型jovian大气中模拟了ulysses的X射线光谱形状和近似通量,并通过模拟了在型模型的Jovian大气中模拟尤利西斯对硬X射线的未检测。结果突出了在土星上也可能发生的地球和木星上产生硬X射线极光的过程之间的相似性。

Electrons accelerated on Earth by a rich variety of wave scattering or stochastic processes generate hard non-thermal X-ray bremsstrahlung up to >~ 1 MeV and power Earth's various types of aurorae. Although Jupiter's magnetic field is an order of magnitude larger than Earth's, space-based telescopes have previously detected X-rays only up to ~7 keV. On the basis of theoretical models of the Jovian auroral X-ray production, X-ray emission in the ~2-7 keV band has been interpreted as thermal (arising from electrons characterized by a Maxwell-Boltzmann distribution) bremsstrahlung. Here we report the observation of hard X-rays in the 8-20 keV band from the Jovian aurorae, obtained with the NuSTAR X-ray observatory. The X-rays fit to a flat power-law model with slope 0.60+/-0.22 - a spectral signature of non-thermal, hard X-ray bremsstrahlung. We determine the electron flux and spectral shape in the keV to MeV energy range using coeval in situ measurements by the Juno spacecraft's JADE and JEDI instruments. Jovian electron spectra of the form we observe have previously been interpreted to arise in stochastic acceleration, rather than coherent acceleration by electric fields. We reproduce the X-ray spectral shape and approximate flux observed by NuSTAR, and explain the non-detection of hard X-rays by Ulysses, by simulating the non-thermal population of electrons undergoing precipitating electron energy loss, secondary electron generation and bremsstrahlung emission in a model Jovian atmosphere. The results highlight the similarities between the processes generating hard X-ray auroras on Earth and Jupiter, which may be occurring on Saturn, too.

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