Prospects of Detecting Nonthermal Protons in Solar Flares via Lyman Line Spectroscopy: Revisiting the Orrall─Zirker Effect
通过莱曼线谱探测太阳耀斑中非热质子的前景:重访Orrall-Zirker效应
Solar flares are efficient particle accelerators, with a substantial fraction of the energy released manifesting as nonthermal particles. While the role that nonthermal electrons play in transporting flare energy is well studied, the properties and importance of nonthermal protons are rather less well understood. This is in large part due to the paucity of diagnostics, particularly at the lower-energy (deka-keV) range of nonthermal proton distributions in flares. One means to identify the presence of deka-keV protons is by an effect originally described by Orrall & Zirker. In the Orrall─Zirker effect, nonthermal protons interact with ambient neutral hydrogen, and via charge exchange produce a population of energetic neutral atoms (ENAs) in the chromosphere. These ENAs subsequently produce an extremely redshifted photon in the red wings of hydrogen spectral lines. We revisit predictions of the strength of this effect using modern interaction cross sections, and numerical models capable of self-consistently simulating the flaring nonequilibrium ionization stratification, and the nonthermal proton distribution (and, crucially, their feedback on each other). We synthesize both the thermal and nonthermal emission from Ly α and Ly β, the most promising lines that may exhibit a detectable signal. These new predictions are weaker and more transient than prior estimates, but the effects should be detectable in fortuitous circumstances. We degrade the Ly β emission to the resolution of the Spectral Imaging of the Coronal Environment (SPICE) instrument on board Solar Orbiter, demonstrating that though likely difficult, it should be possible to detect the presence of nonthermal protons in flares observed by SPICE.
展开 ▾首次采用自洽的非平衡电离和非热质子分布反馈模型,结合更新后的电荷交换截面,给出了更真实的Lyα和Lyβ光谱预测;将结果退化至SPICE仪器分辨率,展示了实际探测的可行性,为耀斑粒子加速诊断开辟新窗口。
早期Orrall和Zirker提出通过氢谱线红翼探测耀斑低能非热质子的思路,但以往预测受限于简化的截面和非自洽的电离模型。本研究基于现代原子数据与辐射流体力学模拟,自洽处理非热质子与背景大气的反馈,揭示了信号比先前更弱且瞬变。随着太阳轨道器SPICE等仪器投入观测,未来有望在有利耀斑中捕捉到这一特征,为粒子加速过程提供关键约束,并推动多谱线、空间分辨的非热粒子诊断发展。
预印本 2023-02-03 · 接收 2023-02-03 · 刊出 2023-03-22 · 收录 2026-07-22