Observations of equatorial plasma bubbles using a low-cost 630.0-nm all-sky imager in Ishigaki Island, Japan

被引:0
作者
Keisuke Hosokawa
Kohei Takami
Susumu Saito
Yasunobu Ogawa
Yuichi Otsuka
Kazuo Shiokawa
Chia-Hung Chen
Chien-Hung Lin
机构
[1] University of Electro-Communications,Institute for Space
[2] Electronic Navigation Research Institute,Earth Environmental Research
[3] Nagoya University,Department of Earth Sciences
[4] National Cheng Kung University,undefined
来源
Earth, Planets and Space | / 72卷
关键词
Ionosphere; Plasma bubble; Airglow; Optical observations; Satellite navigation;
D O I
暂无
中图分类号
学科分类号
摘要
Here, we introduce a low-cost airglow imaging system developed for observing plasma bubble signatures in 630.0-nm airglow emission from the F region of the ionosphere. The system is composed of a small camera, optical filter, and fish-eye lens, and is operated using free software that automatically records video from the camera. A pilot system was deployed in Ishigaki Island in the southern part of Japan (Lat 24.4, Lon 124.4, Mlat 19.6) and was operated for ~ 1.5 years from 2014 to 2016 corresponding to the recent solar maximum period. The pilot observations demonstrated that it was difficult to identify the plasma bubble signature in the raw image captured every 4 s. However, the quality of the image could be improved by reducing the random noise of instrumental origin through an integration of 30 consecutive raw images obtained in 2 min and further by subtracting the 1-h averaged background image. We compared the deviation images to those from a co-existing airglow imager of OMTIs, which is equipped with a back-illuminated cooled CCD camera with a high quantum efficiency of ~ 90%. It was confirmed that the low-cost airglow imager is capable of imaging the spatial structure of plasma bubbles, including their bifurcating traces. The results of these pilot observations in Ishigaki Island will allow us to distribute the low-cost imager in a wide area and construct a network for monitoring plasma bubbles and their space weather impacts on satellite navigation systems.[graphic not available: see fulltext]
引用
收藏
相关论文
共 97 条
  • [1] Aarons J(1993)The longitudinal morphology of equatorial F-layer irregularities relevant to their occurrence Space Sci Rev 63 209-243
  • [2] Basu S(1978)On the coexistence of kilometer- and meter-scale irregularities in the nighttime equatorial F region J Geophys Res 83 4219-4226
  • [3] Basu S(2014)Geomagnetic control of equatorial plasma bubble activity modeled by the TIEGCM with Kp Geophys Res Lett 41 5331-5339
  • [4] Aarons J(1980)Ionospheric irregularities Rev Geophys 18 401-454
  • [5] McClure JP(1984)Interpretation and modeling of quasiperiodic diffraction patterns observed in equatorial VHF scintillation due to plasma bubbles J Geophys Res 89 10891-10902
  • [6] Cousins MD(2019)Imaging of polar cap patches with a low-cost airglow camera: pilot observations in Svalbard, Norway Earth Planets Space 71 115-302
  • [7] Carter BA(1996)Nonlinear evolution of equatorial spread F: 2 gravity wave seeding of Rayleigh–Taylor instability J Geophys Res 101 293-19
  • [8] Fejer BG(2002)Observations of equatorial spread-F from Haleakala, Hawaii Geophys Res Lett 29 64-3121
  • [9] Kelley MC(2015)The morphology of equatorial plasma bubbles—a review J Astron Space Sci 32 13-10912
  • [10] Franke SJ(2009)Global bubble distribution seen from ROCSAT-1 and its association with the pre-reversal enhancement J Geophys Res 114 A06307-896