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太阳高能粒子强度与日冕物质抛射及其II型射电暴的关系

严豪 丁留贯 封莉 顾斌

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太阳高能粒子强度与日冕物质抛射及其II型射电暴的关系

严豪, 丁留贯, 封莉, 顾斌

Relationship between solar energetic particle intensity and coronal mass ejections and its associated type II radio bursts

Yan Hao, Ding Liu-Guan, Feng Li, Gu Bin
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  • 本文选取了第24太阳活动周2010年1月至2014年9月期间的快速、大角宽日冕物质抛射(CME)事件, 结合不同约束条件下Richardson (2014) 太阳高能粒子(SEP)强度经验模型输出结果, 分析了CME属性、先行CME (pre-CME)、II型射电暴等观测特征对SEP强度的影响, 探讨了SEP事件的产生及其强度与这些特征的关系. 主要结论如下: 1) 快速CME前13 h内是否存在pre-CME对模型预测效果和快速CME是否产生SEP事件有明显影响, 但pre-CME的数量对模型输出结果没有明显改善. 2) 相比于无II型射电暴伴随的快速CME而言, 伴随II型射电暴的CME爆发产生SEP事件的误报占比明显更低(42%), 以此为约束条件, 可更加突显大SEP事件(如峰值≥0.01 pfu/MeV)的模型预测值与观测值的关联; 如果考虑射电增强, 则SEP事件的误报占比可进一步下降至29.4%, 模型预测效果显著提升. 3) II型射电暴的起始频率和结束频率对误报占比的影响不大, 以此作为条件约束对模型预测效果提升不明显. 4) 如考虑II型射电暴的细分类型作为模型约束条件, 伴随多波段II型射电暴的CME比单一波段事件具有更好的模型预测效果, 如m-DH-km II型射电暴事件, 具有较低的误报占比(35.4%), 准确率较高. 研究结果显示, 除了CME的速度和角宽参数外, pre-CME、II型射电暴及其增强、多波段类型等特征作为CME产生SEP事件的约束条件, SEP预测强度与观测强度具有较好的一致性, 可以获得较优的模型预测效果. 这也进一步表明了伴随有pre-CME、多波段II型射电暴及其增强的快速大角宽CME更容易产生SEP事件, 这些特征可作为SEP-rich类CME的辨别信号.
    Based on the multiple-vantage observations of STEREO, SOHO, wind and other spacecraft, the fast and wide coronal mass ejections (CME) during the 24th solar cycle from January 2010 to September 2014 are selected in this paper. Using the outputs of Richardson’s (2014) empirical model of solar energetic particle (SEP) intensity under different conditions, the effects of its associations such as CME, pre-CME, and type II radio bursts, on SEP intensity are analyzed, and the relationship between SEP event and these characteristics is also discussed. The main conclusions are as follows. 1) The presence or absence of pre-CME within 13 h before fast CME significantly improves the model prediction effect and has a significant influence on whether fast CME produces SEP event. Compared with the events without pre-CMEs, the events with pre-CMEs have a low proportion of false alarms (FR: 47.7% vs. 70%). However, the number of pre-CMEs does not improve the model output. 2) CMEs with type-II radio bursts have significantly lower FR to generate SEP events than fast CMEs without type-II radio bursts (42% vs. 68%). And selecting type-II radio bursts as a constraint will filter out some small/weak SEP events, the relationship between model predictions and observations especially for large SEP events (e.g. Ip ≥ 0.01 pfu/MeV) will stand out. Moreover, if the type-II radio enhancement is taken into account, FR can be further reduced to 29.4%, and the proportion of hits can be further increased (HR: 48.5%), and the model prediction is significantly improved. 3) The larger the start frequency of type II radio bursts, the smaller the end frequency is, and FR decreases slightly, but at the same time, a large number of SEP events are excluded by this condition, and the results show that the constraints on the start/end frequency of type-II radio bursts do not improve the model predictions distinctly. 4) If the sub-classification of type-II radio bursts is considered as the model constraint, the CMEs associated with multi-band type-II radio bursts have better model predictions than those with single-band events. For example, m-DH-km type-II radio bursts have lower FR (35.4%) and higher HR (48%), and the accuracy of empirical model is higher. In summary, we find that in addition to the velocity and angular width of CME, the associations of pre-CME, type II radio bursts and their enhancement, and multi-band sub-classification are the favorable conditions for CME to generate SEP events. The SEP intensities obtained by the empirical model have better consistency with the observations, and better predictions can be obtained. This investigation indicates that SEP events are more likely generated by fast and wide CMEs accompanied by pre-CMEs, multi-band type II radio bursts and their enhancements, which seem to serve as discriminative signal for SEP-rich and SEP-poor CMEs.
      通信作者: 丁留贯, dlg@nuist.edu.cn
    • 基金项目: 国家自然科学基金 (批准号: 42274215)、江苏省高校“青蓝工程”和江苏省“333”高层次人才培养工程资助的课题.
      Corresponding author: Ding Liu-Guan, dlg@nuist.edu.cn
    • Funds: Project supported by the National Natural Science Foundation of China (Grant No. 42274215), the “Qing Lan” Program of Jiangsu Province, China, and the “333” High-Level Talent Cultivation Project of Jiangsu Province, China.
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  • 图 1  SEP强度预测值(Ip)与观测值(Io)对比, SEP事件阈值准线将事件样本分为四类

    Fig. 1.  Predicted versus observed SEP peak intensities at SOHO or STEREO-A/B (STA/STB) spacecraft for the fast and wide CMEs with speed greater than 900 km/s and width greater than 60º in the study period. The quadrants defined by crosshairs set at equal predicted and observed intensity thresholds divide the events into hits, false alarms, correct rejections, and misses.

    图 2  (a)不存在pre-CME时, SEP强度预测值与观测值关系; (b)存在pre-CME时, SEP强度预测值与观测值关系; (c)样本事件数量随pre-CME事件数量的变化(黑), HR, FR, CR和MR随pre-CME事件数量的变化(蓝、红、橙、紫)

    Fig. 2.  Predicted versus observed SEP intensities for the fast and wide CMEs without (a) or with (b) pre-CMEs, and (c) the number of selected events (black) and percentages of HR (blue), FR (red), CR (yellow), and MR (purple) versus the number of pre-CMEs.

    图 3  不伴随II型射电暴(a)和伴随II型射电暴(b)时, SEP强度预测值与观测值关系

    Fig. 3.  Predicted versus observed proton intensities for the fast and wide CMEs without (a) and with (b) type II radio bursts, respectively.

    图 4  II型射电暴无射电增强(a)和II型射电暴有射电增强(b)时, SEP强度预测值与观测值关系

    Fig. 4.  Predicted versus observed proton intensities for the fast and wide CMEs without (a) and with (b) radio enhancements during the period of type II radio bursts.

    图 5  (a) 击中、误报、正确拒绝和漏报占比随II型射电暴起始频率上限阈值($ {f}_{{\mathrm{s}}{\mathrm{t}}} $)的变化; (b) HR, FR, CR, MR随起始频率下限阈值($ {f}_{{\mathrm{s}}{\mathrm{t}}} $)的变化; (c) 不同SEP事件强度阈值情况下, 击中事件数量随II型射电暴起始频率阈值条件的变化

    Fig. 5.  (a) Fraction of hits, false alarms, correct rejections, and misses in all predictions versus the upper limit threshold ($ {f}_{{\mathrm{s}}{\mathrm{t}}} $) of the starting frequency of type II radio bursts; (b) similar to panel (a) but for the lower limit threshold $ {(f}_{{\mathrm{s}}{\mathrm{t}}}) $; (c) number of hit events among all the predictions in different thresholds of SEP intensity using the lower limit starting frequency threshold for type II radio bursts.

    图 6  (a) 击中、误报、正确拒绝和漏报占比随II型射电暴结束频率上限阈值($ {f}_{{\mathrm{e}}{\mathrm{d}}} $)的变化; (b) HR, FR, CR, MR随下限阈值$ ({f}_{{\mathrm{e}}{\mathrm{d}}} $)的变化; (c) 不同SEP事件强度阈值情况下, 击中事件数量随II型射电暴结束频率阈值条件的变化

    Fig. 6.  (a) Fraction of hits, false alarms, correct rejections, and misses in all predictions versus the upper limit threshold ($ {f}_{{\mathrm{e}}{\mathrm{d}}} $) of the ending frequency of type II radio bursts; (b) similar to panel (a) but for the lower limit threshold $ {(f}_{{\mathrm{e}}{\mathrm{d}}}) $; (c) number of hit events among all the predictions in different thresholds of SEP intensity using the lower limit ending frequency threshold for type II radio bursts.

    图 7  不同类型的II型射电暴对模型输出结果的影响 (a) metric; (b) m-DH; (c) DH; (d) km; (e) DH-km; (f) m-DH-km

    Fig. 7.  Predictions versus observations of SEP intensities for different classes of type II radio bursts: (a) metric; (b) m-DH; (c) DH; (d) km; (e) DH-km; (f) m-DH-km.

    图 8  (a)误报率FAR和(b)准确率ACC随SEP事件峰值强度阈值设定值的变化. 黑色“+”表示CME速度≥900 km/s且角宽≥60°; 红色“*”表示存在pre-CME; 橙色菱形表示存在II型射电暴; 绿色正方形表示伴随DH-km或m-DH-km波段的II型射电暴, 即IP II型射电暴; 蓝色正方形表示伴随m-DH-km波段的II型射电暴; 紫色三角形表示伴随的II型射电暴存在射电增强

    Fig. 8.  (a) False alarm ratio versus threshold of SEP peak intensity (0 is a perfect score), for different CME selections based on their associations. The curves are for CME with speed ≥ 900 km/s and angular width ≥ 60° (black crosses), pre-CME required (red asterisks), type II radio bursts required (orange diamonds), IP type II radio bursts (DH-km or m-DH-km) required (green squares), m-DH-km type II radio bursts required (blue squares); radio enhancement in type II radio bursts (purple triangles). (b) The accuracy (fraction of correct predictions) versus threshold (perfect score = 1).

    图 9  (a)偏差BIAS和(b)命中率POD随SEP强度阈值变化

    Fig. 9.  (a) Frequency bias (BIAS) and (b) probability of detection (POD) versus threshold of solar energetic particle peak intensity (Bias: perfect score = 1, POD: perfect score = 1).

    图 10  (a)报空率POFD和(b) HK评分随SEP峰值强度阈值变化

    Fig. 10.  (a) Probability of false detection (POFD) and (b) Hanssen-Kuipers Discriminant (HK) versus threshold of solar energetic particle peak intensity (POFD: perfect score = 0, HK: perfect score = 1).

    表 1  不同SEP事件强度阈值情况下有/无II型射电暴伴随的SEP事件误报对比

    Table 1.  False alarms fraction of SEP predictions for CMEs with/without type II radio bursts at different SEP intensity thresholds.

    强度阈值/
    (pfu⋅MeV–1)
    无II型射电暴(188)有II型射电暴(317)
    $ {10}^{-2} $68.1%42.0%
    $ {10}^{-3} $71.8%32.8%
    $ {10}^{-4} $80.9%36.6%
    下载: 导出CSV

    表 2  不同类型II型射电暴条件下的模型输出结果

    Table 2.  Predicted results of SEPs associated with different classes of type II radio bursts.

    II型射电
    暴类型
    事件数量数量
    占比/%
    误报
    占比/%
    击中
    占比/%
    metric61.983.30
    DH3912.356.412.8
    km61.95033.3
    m-DH3210.143.825.0
    DH-km10733.841.133.6
    m-DH-km12740.135.448.0
    下载: 导出CSV

    表 3  当SEP阈值强度选为0.01 pfu/MeV时的模型输出结果和评价指标

    Table 3.  Example of skill scores for SEP intensity threshold = 0.01 pfu/MeV.

    条件totalHitsFACrMissesFARPODBIASPOFDHKACC
    完美得分011011
    CME速度≥900 km/s, 角宽≥60°(对照组)50511926111690.690.932.970.690.240.47
    无pre-CME906631920.910.758.630.77-0.020.28
    有pre-CME4151131989770.640.942.590.670.270.51
    无II型射电暴18871285300.951.0019.290.710.290.32
    有II型射电暴3171121336390.540.932.020.680.250.55
    无射电增强18146933840.670.922.780.710.210.46
    有射电增强13666402550.380.931.490.620.310.67
    $ {f}_{{\mathrm{s}}{\mathrm{t}}} $<140 MHz279991185570.540.932.050.680.250.55
    $ {f}_{{\mathrm{s}}{\mathrm{t}}} $≥140 MHz381315820.540.871.870.650.210.55
    $ {f}_{{\mathrm{e}}{\mathrm{d}}} $ < 0.1 MHz452217420.440.921.630.810.110.58
    $ {f}_{{\mathrm{e}}{\mathrm{d}}} $ ≥ 0.1 MHz272901165970.560.932.080.660.270.55
    m-DH-km II型射电暴12761451830.420.951.660.710.240.62
    DH-km II型射电暴10736442250.550.881.950.660.220.54
    m-DH-km + DH-km (行星际II型射电暴)23497894080.480.921.770.690.230.59
    下载: 导出CSV
    Baidu
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    Kahler S W 2001 J. Geophys. Res. 106 20947Google Scholar

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    Reams D V 1999 Space. Sci. Rev. 90 413Google Scholar

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    Cliver E W, Kahler S W 2004 Astrophys. J. 605 902Google Scholar

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    Kahler S W 1992 Annu. Rev. Astron. Astrophys. 30 113Google Scholar

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    Gopalswamy N, Yashiro S, Krucker S, Stenborg G, Howard R A 2004 J. Geophys. Res. 109 12Google Scholar

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    Ding L G, Jiang Y, Zhao L, Li G 2013 Astrophys. J. 763 30Google Scholar

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    Wang Y, Lyu D, Wu X H, Qin G 2022 Astrophys. J. 940 67Google Scholar

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    Stewart R T, McCabe M K, Koomen M J, Hansen R T, Dulk G A 1974 Sol. Phys. 36 203Google Scholar

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    Hundhausen A J, Holzer T E, Low B C 1987 J. Geophys. Res. 92 0148Google Scholar

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    Vršnak B, Lulić S 2000 Sol. Phys. 196 181Google Scholar

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    Vršnak B, Cliver E 2008 Sol. Phys. 253 215Google Scholar

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    Kahler S W 1982 J. Geophys. Res. 87 2439Google Scholar

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    Cane H V, Erickson W C, Prestage N P 2002 J. Geophys. Res. 107 1315Google Scholar

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    Wild J, McCready L 1950 Aust. J. Sci. Res. Ser. A: Phys. Sci. 3 387

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    Prakash O, Umapathy S, Shanmugaraju A, Vršnak B 2009 Sol. Phys. 258 105Google Scholar

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    Kahler S W 1996 Amer. Inst. Phys. 374 61

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    Gopalswamy N, Aguilar-Rodriguez E, Yashiro S, Nunes S, Kaiser M L, Howard R A 2005 J. Geophys. Res. 110 07Google Scholar

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出版历程
  • 收稿日期:  2023-11-26
  • 修回日期:  2024-01-19
  • 上网日期:  2024-01-23
  • 刊出日期:  2024-04-05

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