Dipolar Evolution in a Coronal Hole Region
arXiv:0908.0578 · doi:10.1088/0004-637X/703/1/1012
Abstract
Using observations from the SOHO, STEREO and Hinode, we investigate magnetic field evolution in an equatorial coronal hole region. Two dipoles emerge one by one. The negative element of the first dipole disappears due to the interaction with the positive element of the second dipole. During this process, a jet and a plasma eruption are observed. The opposite polarities of the second dipole separate at first, and then cancel with each other, which is first reported in a coronal hole. With the reduction of unsigned magnetic flux of the second dipole from 9.8*10^20 Mx to 3.0*10^20 Mx in two days, 171 A brightness decreases by 75% and coronal loops shrink obviously. At the cancellation sites, the transverse fields are strong and point directly from the positive elements to the negative ones, meanwhile Doppler red-shifts with an average velocity of 0.9 km s-1 are observed, comparable to the horizontal velocity (1.0 km s-1) derived from the cancelling island motion. Several days later, the northeastern part of the coronal hole, where the dipoles are located, appears as a quiet region. These observations support the idea that the interaction between the two dipoles is caused by flux reconnection, while the cancellation between the opposite polarities of the second dipole is due to the submergence of original loops. These results will help us to understand coronal hole evolution.
23 pages, 9 figures. accepted by ApJ
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Cited by in corpus (10)
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- SDO Observations of Magnetic Reconnection at Coronal Hole Boundaries
- A statistical study of long-term evolution of coronal hole properties as observed by SDO
- The role of flux cancellation in eruptions from bipolar active regions
- Observational Evidence of Magnetic Reconnection Associated with Magnetic Flux Cancellation
- Oscillation Power in Sunspots and Quiet Sun from Hankel Analysis Performed on SDO/HMI and SDO/AIA Data
- Cancellation of Small-Scale Magnetic Features
- Vector Magnetic Fields and Current Helicities in Coronal Holes and Quiet Regions
- Quantifying Properties of Photospheric Magnetic Cancellations in the Quiet Sun Internetwork
- Statistical Study of Emerging Flux Regions and the Upper Atmosphere Response