基本信息
阿尔察  男  博导  中国科学院国家空间科学中心
电子邮件: aercha@nssc.ac.cn
通信地址: 北京市海淀区中关村南二条一号
邮政编码: 100190

个人简介

蒙古族,中国科学院国家空间科学中心研究员,博士生导师,主要研究领域为电离层物理与空间天气,GNSS电离层技术与应用。在GRL,JGR: Space Physics, Space Weather等SCI期刊发表论文70余篇,其中第一作者论文近40篇,引用2500余次,H指数31;获得国家海外高层次青年人才项目、中国科学院率先行动计划、中国科协青年人才托举工程、中国科学院青年创新促进会等支持。研究成果入选美国地球物理学会研究亮点文章、《JGR: Space Physics》封面文章、《Space Weather》封面文章,多次在国际空间科学会议(如AGU、EGU、AOGS)作邀请报告,参与NSF等机构的研究项目评审工作等。

研究方向
  • 磁层-电离层-热层耦合
  • 岩石圈-大气层-电离层耦合
  • 电离层不规则体与多尺度结构
  • 电离层数据同化与预报
  • GNSS电离层技术与应用

招生信息

   
招生专业
070802-空间物理学
招生方向
电离层物理学

教育背景

2009-09--2011-09   美国密西根大学   联合培养博士
2007-09--2012-07   北京大学   博士
2003-09--2007-07   武汉大学   学士

工作经历

2024.07~至今 中国科学院国家空间科学中心, 研究员

2021.06~2024.06 美国麻省理工学院,研究员

2019.12~2021.06 美国麻省理工学院,博士后

2017.12~2019.12 美国密西根大学,访问学者

2012.08~2019.12 中国科学院国家空间科学中心,助理研究员、副研究员

发表论文

第一作者论文:

  1. Aa, E.*, Luo, X., Zhang, S.-R., Wang, X., Coster, A. J., Cai, X., Hairston, M., Zhang, Y., Souza, J., and Luo, B., (2026). Unusual Dawnside Storm-Enhanced Density and Coincident Neutral Tongue Structure During the 16 April 2025 Geomagnetic Storm, Journal of Geophysical Research: Space Physics. https://doi.org/10.1029/2026JA035036
  2. Aa, E.*, Luo, X., Chen, Y., Shen, H., Yuan, T., Huang, W. et al. (2026). An Ionospheric Space Weather Data Assimilation System over China based on Meridian Project GNSS Measurements. Chinese Journal of Space Science. doi: 10.11728/cjss2025-0182. 基于子午工程GNSS数据的中国电离层空间天气同化系统
  3. Aa, E.*, Zhang, S.-R., Coster, A. J., Hairston, M. R., Kerr, R. B., Souza, J. R., et al. (2025). Super equatorial plasma bubbles and strong longitudinal variability during the 10-11 October 2024 geomagnetic storm. Journal of Geophysical Research: Space Physics, 130, e2025JA034224. https://doi.org/10.1029/2025JA034224
  4. Aa, E.*, Zhang, S.-R., Lei, J., Huang, F., Erickson, P. J., Coster, A. J., & Luo, B. (2024). Significant midlatitude plasma density peaks and dual-hemisphere SED during the 10-11 May 2024 super geomagnetic storm. Journal of Geophysical Research: Space Physics, 129, e2024JA033360. https://doi.org/10.1029/2024JA033360
  5. Aa, E.*, Chen, Y., Luo, B. Dynamic Expansion and Merging of the Equatorial Ionization Anomaly During the 10-11 May 2024 Super Geomagnetic Storm. Remote Sens. 2024, 16, 4290. https://doi.org/10.3390/rs16224290
  6. Aa, E.*, Huba, J., Zhang, S.-R., Coster, A. J., Erickson, P. J., Goncharenko, L. P., et al. (2024). Multi-instrument and SAMI3-TIDAS data assimilation analysis of three-dimensional ionospheric electron density variations during the April 2024 total solar eclipse. Journal of Geophysical Research: Space Physics, 129, e2024JA032955. https://doi.org/10.1029/2024JA032955
  7. Aa, E.*, Dzwill, P., Zhang, S.-R., & Erickson, P. J. (2024). A statistical analysis of the morphology of storm-enhanced density plumes over the North American sector. Journal of Geophysical Research: Space Physics, 129, e2024JA032750. https://doi.org/10.1029/2024JA032750
  8. Aa, E.*, Coster, A., Zhang, S.-R., Vierinen, J., Erickson, P. J., Goncharenko, L.P., and Rideout, W. (2024), 2-D total electron content and 3-D ionospheric electron density variations during the 14 October 2023 Annular solar eclipse, Journal of Geophysical Research: Space Physics, 129, e2024JA032447. https://doi.org/10.1029/2024JA032447
  9. Aa, E.*, Pedatella, N. M., Liu, G. (2024), Impacts of the sudden stratospheric warming on equatorial plasma bubbles: suppression of EPBs and quasi-6-day oscillations, Remote Sensing, 16. https://doi.org/10.3390/rs16081469
  10. Aa, E.*, Zhang, S.-R., Zou, S., Wang, W., Wang, Z., Cai, X., et al. (2024), Significant midlatitude bubble-like ionospheric super-depletion structure (BLISS) and dynamic variation of storm-enhanced density plume during the 23 April 2023 geomagnetic storm, Space Weather, 22, e2023SW003704. https://doi.org/10.1029/2023SW003704
  11. Aa, E.*, Zhang, S.-R., Erickson, P. J., Wang. W., Coster, A., and Rideout, W. (2024), 3-D Ionospheric Imaging over the South American Region with a New TEC-based Ionospheric Data Assimilation System (TIDAS-SA), Space Weather, 22, e2023SW003792. https://doi.org/10.1029/2023SW003792
  12. Aa, E.*, Zhang, S.-R., Erickson, P.J., Wang,W., Coster A.J. 3-D Ionospheric Electron Density Variations during the 2017 Great American Solar Eclipse: A Revisit. Atmosphere 2023, 14, 1379. https://doi.org/10.3390/atmos14091379期刊封面文章
  13. Aa, E.*, Zhang, S.-R., Wang, W., Erickson, P. J., & Coster, A. J. (2023). Multiple longitude sector storm-enhanced density (SED) and long-lasting subauroral polarization stream (SAPS) during the 26-28 February 2023 geomagnetic storm. Journal of Geophysical Research: Space Physics, 128, e2023JA031815. https://doi.org/10.1029/2023JA031815
  14. Aa, E.*, Zhang, S.-R., Erickson, P. J., Wang, W., Qian, L., Cai, X., et al. (2023). Significant mid- and low-latitude ionospheric disturbances characterized by dynamic EIA, EPBs, and SED variations during the 13–14 March 2022 geomagnetic storm. Journal of Geophysical Research: Space Physics, 128, e2023JA031375. https://doi.org/10.1029/2023JA031375. https://doi.org/10.1029/2023JA031375
  15. Aa, E.*, Forsythe, V.V., Zhang, S.-R., Wang, W. and Coster, A.J. (2023), Next-decade needs for 3-D ionosphere imaging. Front. Astron. Space Sci. 10:1186513. https://doi.org/10.3389/fspas.2023.1186513
  16. Aa, E.*, Zhang, S.-R., Liu, G., Eastes, R. W., Wang, W., Karan, D. K., et al. (2023). Statistical analysis of equatorial plasma bubbles climatology and multi-day periodicity using GOLD observations. Geophysical Research Letters, 50, e2023GL103510. https://doi.org/10.1029/2023GL103510
  17. Aa, E.*, Zhang, S.-R., Coster, A. J., Erickson, P.J., and Rideout, W. (2023), Multi-instrumental analysis of the day-to-day variability of equatorial plasma bubbles. Front. Astron. Space Sci. 10:1167245. https://doi.org/10.3389/fspas.2023.1167245
  18. Aa, E.*, Zhang, S.-R., Erickson, P. J., Vierinen, J., Coster, A. J., Goncharenko, L. P., et al. (2022). Significant ionospheric hole and equatorial plasma bubbles after the 2022 Tonga volcano eruption. Space Weather, 20, e2022SW003101. https://doi.org/10.1029/2022SW003101AGU 研究亮点文章
  19. Aa, E.*, Zhang, S.-R., Wang, W., Erickson, P. J., Qian, L., Eastes, R., et al. (2022). Pronounced suppression and X-pattern merging of equatorial ionization anomalies after the 2022 Tonga volcano eruption. Journal of Geophysical Research: Space Physics, 127, e2022JA030527. https://doi.org/10.1029/2022JA030527期刊封面文章
  20. Aa, E.*, Zhang, S.-R., Erickson, P. J., Wang. W., Coster, A., and Rideout, W. (2022), 3-D regional ionosphere imaging and SED reconstruction with a new TEC-based ionospheric data assimilation system (TIDAS), Space Weather, 20, https://doi.org/10.1029/2022SW003055. https://doi.org/10.1029/2022SW003055
  21. Aa, E.*, S. R. Zhang, H. Shen et al., Local and conjugate ionospheric total electron content variation during the 21 June 2020 solar eclipse (2021), Advances in Space Research, Volume: 68, Issue: 8, 3435-3454, https://doi.org/10.1016/j.asr.2021.06.015
  22. Aa, E.*, Zhang, S.-R., Erickson, P. J., Coster, A. J., Goncharenko, L. P., Varney, R. H. et al. (2021). Salient midlatitude ionosphere thermosphere disturbances associated with SAPS during a minor but geoeffective storm at deep solar minimum. Journal of Geophysical Research: Space Physics, 126 (7), e2021JA029509. https://doi.org/10.1029/2021JA029509
  23. Aa, E.*, Erickson, P. J., Zhang, S.-R., Zou, S., Coster, A. J., Goncharenko, L. P., & Foster, J. C. (2020). A statistical study of the subauroral polarization stream over North American sector using the Millstone Hill incoherent scatter radar 1979–2019 measurements. Journal of Geophysical Research: Space Physics, Volume: 125, Issue: 10, e2020JA028584. https://doi.org/10.1029/2020JA028584
  24. Aa, E.*, Zhang, S.-R., Erickson, P. J., et al. (2020). Coordinated ground-based and space-borne observations of ionospheric response to the annularsolar eclipse on 26 December 2019. Journal of Geophysical Research: Space Physics, Volume: 125, Issue: 11, e2020JA028296. https://doi.org/10.1029/2020JA028296
  25. Aa, E.*, Zou, S., & Liu, S. (2020). Statistical analysis of equatorial plasma irregularities retrieved from Swarm 2013-2019 observations. Journal of Geophysical Research: Space Physics, Volume: 125, Issue: 4, e2019JA027022. https://doi.org/10.1029/2019JA027022
  26. Aa, E.*, Zou, S., Erickson, P. J., Zhang, S.-R., & Liu, S. (2020). Statistical analysis of the main ionospheric trough using Swarm in situ measurements. Journal of Geophysical Research: Space Physics, Volume: 125, Issue: 3, e2019JA027583. https://doi.org/10.1029/2019JA027583
  27. Aa, E.*, Zou, S., Eastes, R., Karan, D. K., Zhang, S.-R., Erickson, P. J., & Coster, A. J. (2020). Coordinated ground-based and space-based observations of equatorial plasma bubbles. Journal of Geophysical Research: Space Physics, Volume: 125, Issue: 1, e2019JA027569. https://doi.org/10.1029/2019JA027569
  28. Aa, E.*, Zou, S., Ridley, A. J., Zhang, S.-R., Coster, A. J., Erickson, P. J., et al. (2019). Merging of storm time midlatitude traveling ionospheric disturbances and equatorial plasma bubbles. Space Weather, Volume: 17, Issue: 2, 285-298, https://doi.org/10.1029/2018SW002101
  29. Aa, E.*, Ridley, A. J., Huang, W., Zou, S., Liu, S., Coster, A. J., & Zhang, S. (2018). An ionosphere specification technique based on data ingestion algorithm and empirical orthogonal function analysis method. Space Weather, Volume: 16, Issue: 9, 1410-1423, https://doi.org/10.1029/2018SW001987
  30. Aa, E.*, Huang, W., Liu, S. et al. (2018). Ionospheric TEC data assimilation and now-casting system over China. Chinese J. Geophys. Res, Volume 61, Issue: 6, 2186-2197, 10.6038/cjg2018L0349
  31. Aa, E.*, Huang, W., Liu, S., Ridley, A., Zou, S., Shi, L., et al. (2018). Midlatitude plasma bubbles over China and adjacent areas during a magnetic storm on 8 September 2017. Space Weather, Volume: 16, Issue: 3, 321-331,  https://doi.org/10.1002/2017SW001776期刊封面文章
  32. Aa, E.*, S. Liu, W. Huang, et al. (2016), Regional 3-D ionospheric electron density specification on the basis of data assimilation of ground-based GNSS and radio occultation data (2016). Space Weather, Volume: 14, Issue: 6, 433-448, https://doi.org/10.1002/2016SW001363
  33. Aa, E.*, Huang W G, Liu S Q, et al. (2015) A regional ionospheric TEC mapping technique over China and adjacent areas: GNSS data processing and DINEOF analysis. Sci China Inf Sci, 58: 107201(11), https://doi.org/10.1007/s11432-015-5399-2
  34. Aa, E.*, W. Huang, S. Yu, S. Liu, L. Shi, J. Gong, Y. Chen, and H. Shen (2015), A regional ionospheric TEC mapping technique over China and adjacent areas on the basis of data assimilation, J. Geophys. Res. Space Physics, Volume: 120, Issue: 6, 5049-5061, https://doi.org/10.1002/2015JA021140
  35. Ercha, A., D.-H. Zhang, A. J. Ridley, Z. Xiao, and Y.-Q. Hao (2012), A global model: Empirical orthogonal function analysis of total electron content 1999-2009 data, J. Geophys. Res., 117, A03328, https://doi.org/10.1029/2011JA017238
  36. Ercha, A., A. J. Ridley, D.-H. Zhang, and Z. Xiao (2012): Analyzing the hemispheric asymmetry in the thermospheric density response to geomagnetic storms, J. Geophys. Res., Volume: 117, Issue: 8, A08317, https://doi.org/10.1029/2011JA017259
  37. Ercha, A., Zhang, D,-H, Xiao, Z., Hao, Y.-Q., Ridley, A. J., and Moldwin, M. (2011). Modeling ionospheric foF2 by using empirical orthogonal function analysis. Ann. Geophys., Volume: 29, 1501-1515, https://doi.org/10.5194/angeo-29-1501-2011


通讯及合作论文:

  1. Luo, X., Aa, E.*, Wang, X., & Luo, B. (2026). Strong longitudinal and latitudinal differences of ionospheric responses in north American and european sectors during the 10–11 October 2024 geomagnetic storm. Remote Sensing, 18(2), 256. https://doi.org/10.3390/rs18020256
  2. Wang, J., Yan, Y., Luo, B., Liu, C., Li, H., Aa, E., et al. (2026). The New geomagnetic monitoring network in China: Insights from the 2024 Mother's Day superstorm. Space Weather, 24, e2025SW004610.
  3. Chen, Y., Aa, E., Yuan, T., Zhang, S., Shen, H., Yue, X., Xu, H., Liu, S., Wang, X., Huang, W., Li, H., Luo, B., Zhang, Q., & Wang, C. (2025). The extreme depletion of ionospheric electron density and its hemispheric asymmetry during the May 2024 storm. National Science Review, 12(10), nwaf307. https://doi.org/10.1093/nsr/nwaf307
  4. Wang, X., Aa, E.*, Chen, Y., Zhang, J., Zhu, Y., Cai, L., Lu, X., Luo, B., Liu, S., Li, M., Shen, H., & Yuan, T. (2025). Midlatitude neutral wind response during the mother’s day super-intense geomagnetic storm in 2024 using observations from the Chinese meridian project. Journal of Geophysical Research: Space Physics, 130(4), e2024JA033574. https://doi.org/10.1029/2024JA033574
  5. Huang, F., Lei, J., Zhang, S.-R., Wang, Y., Li, Z., Zhong, J., Yan, R., Aa, E.. et al. (2024). Peculiar nighttime ionospheric enhancements over the Asian sector during the May 2024 superstorm. Journal of Geophysical Research: Space Physics, 129, e2024JA033350. https://doi.org/10.1029/2024JA0333
  6. Wang, X., Ren, T., Wang, R., Luo, B., Aa, E.., Cai, L., et al. (2024). Estimates of spherical satellite drag coefficients in the upper thermosphere during different geomagnetic conditions. Space Weather, 22, e2024SW003974. https://doi.org/10.1029/2024SW0039
  7. Pedatella, N. M., Aa, E., Maute, A., (2024). Quasi 6-Day Planetary Wave Oscillations in Equatorial Plasma Irregularities. Journal of Geophysical Research: Space Physics, 129, e2023JA032312. https://doi.org/10.1029/2023JA032312
  8. Zhang, S.-R., Nishimura, Y., Vierinen, J., Lyons, L. R., Knipp, D. J., Gustavsson, B. J., E. Aa., et al. (2023). Simultaneous global ionospheric disturbances associated with penetration electric fields during intense and minor solar and geomagnetic disturbances. Geophysical Research Letters, 50, e2023GL104250.
  9. Cai, X., Wang, W., Eastes, R. W., Qian, L., Pedatella, N. M., Aa, E., et al. (2023). Equatorial ionization anomaly discontinuity observed by GOLD, COSMIC-2, and ground-based GPS receivers' network. Geophysical Research Letters, 50, e2023GL102994. https://doi.org/10.1029/2023GL102994
  10. Reddy, S. A., Forsyth, C., Aruliah, A., Smith, A., Bortnik, J., Aa, E., et al. (2023). Predicting swarm equatorial plasma bubbles via machine learning and Shapley values. Journal of Geophysical Research: Space Physics, 128, e2022JA031183. https://doi.org/10.1029/2022JA031183
  11. Zhang, S.-R., Nishimura, Y., Erickson, P. J., Aa, E., Kil, H., Deng, Y., et al. (2022). Traveling ionospheric disturbances in the vicinity of storm-enhanced density at midlatitudes. Journal of Geophysical Research: Space Physics, 127, e2022JA030429. https://doi.org/10.1029/2022JA030429
  12. Zhang, S. R., Vierinen, J., Aa, E., Goncharenko, L. P., Erickson, P. J., Rideout, W., Coster, A. J., Spicher, A. (2022), 2022 Tonga Volcanic Eruption Induced Global Propagation of Ionospheric Disturbances via Lamb Waves, Frontiers in Astronomy and Space Sciences, 9, https://doi.org/10.3389/fspas.2022.871275
  13. Wang, X., Miao, J., Lu, X., Aa, E., Luo, B., Liu, J., Hong, Y., Wang, Y., Ren, T., Zeng, R., Du, C., and Liu, S. (2022). Using Temporal Relationship of Thermospheric Density with Geomagnetic Activity Indices and Joule Heating as Calibration for NRLMSISE-00 During Geomagnetic Storms, Space Weather, 20, https://doi.org/10.1029/2021SW003017
  14. Wan, X., Xiong, C., Gao, S., Huang, F., Liu, Y., Aa, E., Yin, F., and Cai, H., The nighttime ionospheric response and occurrence of equatorial plasma irregularities during geomagnetic storms: a case study. Satellite Navigation, 2, 23 (2021). https://doi.org/10.1186/s43020-021-00055-x.
  15. Wei, L., Jiang, C., Lan, T., Wang, W., Shen, H., Aa, E., et al. (2021). Observations of unusual daytime range spread F at middle latitude during the afternoon hours. Space Weather, 19, e2021SW002870. https://doi.org/10.1029/2021SW002870.
  16. Zhang, S.-R., & Aa, E., Ionospheric electron density large gradients at midlatitudes (2021). In Y. Nishimura, O. Verkhoglyadova, Y. Deng, & S.-R. Zhang (Eds.), Cross-scale coupling and energy transfer in the magnetosphere-ionosphere-thermosphere system (pp. 175–193). Elsevier
  17. Zhang, S-R., Erickson, P. J., Gasque, L. C., Aa, E., et al (2021). Electrified postsunrise ionospheric perturbations at Millstone Hill, Geophysical Research Letters, Volume: 48, Issue: 18, e2021GL095151.
  18. Wang, Z., Zou, S., Ren, J., Liu, L., and Aa, E. (2021). Hemispheric asymmetries in the mid-latitude ionosphere during the September 7-8, 2017 storm: multi-instrument observations, Journal of Geophysical Research: Space Physics, Volume: 126, Issue: 4, https://doi.org/10.1029/2020ja028829.
  19. Wang, X., Liu, S., Miao, J., Lu, X., Aa, E., Liu, J., and Wang, Y. (2021) Latitudinal Impacts of Joule Heating on the High-Latitude Thermospheric Density Enhancement during Geomagnetic Storms, Journal of Geophysical Research: Space Physics, Volume: 126, Issue: 7, e2020JA028747.
  20. Wei, L.; Jiang, C.; Hu, Y; Aa, E.; Huang, W.; Liu, J.; Yang, G.; Zhao, Z. Ionosonde Observations of Spread F and Spread Es at Low and Middle Latitudes during the Recovery Phase of the 7–9 September 2017 Geomagnetic Storm. Remote Sens. 2021, 13, 1010. https://doi.org/10.3390/rs13051010
  21. Zhang, S.-R., Erickson, P. J., Vierinen, J., Aa, E., et al. (2021) Conjugate ionospheric perturbation during the 2017 solar eclipse. Journal of Geophysical Research: Space Physics, Volume: 126, Issue: 2, e2020JA028531, https://doi.org/10.1029/2020JA028531
  22. Huang, F., Li, Q., Shen, X., Xiong, C., Yan, R., Zhang, S.-R., & Aa, E. et al. (2020). Ionospheric responses at low latitudes to the annular solar eclipse on 21 June 2020. Journal of Geophysical Research: Space Physics, Volume: 125, Issue: 10, e2020JA028483. https://doi.org/10.1029/2020JA028483.
  23. Liu, L., Yao, Y., and Aa, E. (2020) Multi-instrumental observations of early morning equatorial plasma depletions during the 2017 memorial weekend storm, IEEE Journal of selected topics in applied earth observations and remote sensing, Volume: 13, 5351-5357, doi: 10.1109/JSTARS.2020.3022748
  24. Wang, X., Miao, J., Aa, E., Ren, T., Wang, Y., Liu, J., Liu, S., (2020) Statistical Analysis of Joule Heating and Thermosphere Response during Geomagnetic Storms of Different Magnitudes, Volume: 125, Issue: 8, e2020JA027966, Journal of Geophysical Research: Space Physics.
  25. Jiang, C., Wei, L., Yang, G., Aa, E., Lan, T., Liu, T., Liu, J., Zhao, Z. (2020). Large-Scale Ionospheric Irregularities Detected by Ionosonde and GNSS Receiver Network, IEEE Geoscience and Remote Sensing Letters, Volume: 18, Issue: 6, 940-943, doi: 10.1109/LGRS.2020.2990940
  26. Geng, W., Huang, W., Liu, G., Aa, E., Liu, S., Chen, Y., Luo, B. (2020) Generation of ionospheric scintillation maps over Southern China based on Kriging method, Advances in Space Research, Volume: 65, Issue: 12, 2808-2820.
  27. Liu. L., Zou, S., Yao, Y., Aa, E. (2020), Multi-scale ionosphere responses to the May 2017 magnetic storm over the Asian sector, GPS solutions, 24 (1), 26
  28. Liu, G., Huang, W., Shen, H., Aa, E., Li, M., Liu, S., & Luo, B. (2019). Ionospheric response to the 2018 sudden stratospheric warming event at middle- and low-latitude stations over China sector. Space Weather, Volume: 17, Issue: 8, 1230–1240. https://doi.org/10.1029/ 2019SW002160
  29. Huang, W., Aa, E., H. Shen, S. Liu. (2018), Statistical study of GNSS L-band solar radio bursts, GPS Solutions, 22:114, https://doi.org/10.1007/s10291-018-0780-4
  30. Ruan, H., Lei, J., Dou, X., Liu, S., & Aa, E. (2018). An exospheric temperature model based on CHAMP observations and TIEGCM simulations. Space Weather, Volume: 16, Issue: 2, 147-156
  31. Yu, S., Z. Xiao, Aa, E., Y. Hao, and D. Zhang (2016). Observational investigation of the possible correlation between medium-scale TIDs and mid-latitude spread F, Adv. Space Res., 58(3), 349-357. https://doi.org/10.1016/j.asr.2016.05.002.
  32. Cui, Y., S. Liu, E. A,, X. Ao. (2016). Verification of SPE probability forecasts at the Space Environment Prediction Center (SEPC), Science China Earth Science, 59(6), 1292-1298. doi: 10.1007/s11430-016-5284-x.
  33. Zhang, D., Mo, X, E. A., et al. (2012), Case study of ionospheric fluctuation over mid-latitude region during one large magnetic storm, Sci Chi Ser E-Tech Sci, 55: 1198-1206, doi:10.1007/s11431-01204785-x.
  34. Zhang, D., L. Cai, E. A, et al. (2012): Statistical Studies on the Excess Peak Flux in Soft X-rays and EUV Bands from Solar Flares, Sol Phys. 280(1), 183-196, doi: 10.1007/s11207-012-0062-1

科研项目

1. 电离层等离子体泡逐日变化特性机理与时变三维成像研究,自然科学基金委,面上项目,主持

2. 中低纬电离层等离子体泡暴时变化特性及统计研究,自然科学基金委,面上项目,主持

3. 暴时电离层总电子含量的现报预报方法及建模研究,自然科学基金委,面上项目,主持

4. 基于层析和无线电掩星的电离层数据同化方法及建模研究,自然科学基金委,青年项目,主持

5. 电离层高精度数据同化模型研究,中国科协青年人才托举工程,主持

6. 电离层特征分析与测量技术研究,中国科学院科技创新重点部署项目,主持

7. 热层大气密度高精度动态修正模型研究,中国科学院科技创新重点部署项目,主持

8. Understanding the Day-to-Day Variability of Plasma Bubbles Utilizing GOLD-ICON Data, Co-I

9. The Influence of Traveling Ionospheric Disturbances on Ionospheric Irregularities, Co-I

10. Three-dimensional Large Electron Density Gradients at Mid-latitudes from a TEC-based Ionospheric Data Assimilation system , NSF, Co-I