Skip to main content
Log in

Probing Twisted Magnetic Field Using Microwave Observations in an M Class Solar Flare on 11 February, 2014

  • Published:
Solar Physics Aims and scope Submit manuscript

Abstract

This work demonstrates the possibility of magnetic-field topology investigations using microwave polarimetric observations. We study a solar flare of GOES M1.7 class that occurred on 11 February, 2014. This flare revealed a clear signature of spatial inversion of the radio-emission polarization sign. We show that the observed polarization pattern can be explained by nonthermal gyrosynchrotron emission from the twisted magnetic structure. Using observations of the Reuven Ramaty High Energy Solar Spectroscopic Imager, Nobeyama Radio Observatory, Radio Solar Telescope Network, and Solar Dynamics Observatory, we have determined the parameters of nonthermal electrons and thermal plasma and identified the magnetic structure where the flare energy release occurred. To reconstruct the coronal magnetic field, we use nonlinear force-free field (NLFFF) and potential magnetic-field approaches. Radio emission of nonthermal electrons is simulated by the GX Simulator code using the extrapolated magnetic field and the parameters of nonthermal electrons and thermal plasma inferred from the observations; the model radio maps and spectra are compared with observations. We have found that the potential-magnetic-field approach fails to explain the observed circular polarization pattern; on the other hand, the Stokes-\(V\) map is successfully explained by assuming nonthermal electrons to be distributed along the twisted magnetic structure determined by the NLFFF extrapolation approach. Thus, we show that the radio-polarization maps can be used for diagnosing the topology of the flare magnetic structures where nonthermal electrons are injected.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Figure 1
Figure 2
Figure 3
Figure 4
Figure 5
Figure 6
Figure 7
Figure 8
Figure 9
Figure 10
Figure 11
Figure 12

Similar content being viewed by others

References

  • Battaglia, M., Grigis, P.C., Benz, A.O.: 2005, Size dependence of solar X-ray flare properties. Astron. Astrophys. 439, 737. DOI . ADS .

    Article  ADS  Google Scholar 

  • Brown, J.C.: 1971, The deduction of energy spectra of non-thermal electrons in flares from the observed dynamic spectra of hard x-ray bursts. Solar Phys. 18, 489. DOI . ADS .

    Article  ADS  Google Scholar 

  • Cohen, M.H.: 1960, Magnetoionic mode coupling at high frequencies. Astrophys. J. 131, 664. DOI . ADS .

    Article  ADS  MathSciNet  Google Scholar 

  • Démoulin, P., Priest, E.R., Lonie, D.P.: 1996, Three-dimensional magnetic reconnection without null points 2. Application to twisted flux tubes. J. Geophys. Res. 101, 7631. DOI . ADS .

    Article  ADS  Google Scholar 

  • Dulk, G.A.: 1985, Radio emission from the Sun and stars. Annu. Rev. Astron. Astrophys. 23, 169. DOI . ADS .

    Article  ADS  Google Scholar 

  • Fleishman, G.D., Kuznetsov, A.A.: 2010, Fast gyrosynchrotron codes. Astrophys. J. 721, 1127. DOI . ADS .

    Article  ADS  Google Scholar 

  • Golub, L., Deluca, E., Austin, G., Bookbinder, J., Caldwell, D., Cheimets, P., Cirtain, J., Cosmo, M., Reid, P., Sette, A., Weber, M., Sakao, T., Kano, R., Shibasaki, K., Hara, H., Tsuneta, S., Kumagai, K., Tamura, T., Shimojo, M., McCracken, J., Carpenter, J., Haight, H., Siler, R., Wright, E., Tucker, J., Rutledge, H., Barbera, M., Peres, G., Varisco, S.: 2007, The X-Ray Telescope (XRT) for the Hinode mission. Solar Phys. 243, 63. DOI . ADS .

    Article  ADS  Google Scholar 

  • Gordovskyy, M., Browning, P.K.: 2011, Particle acceleration by magnetic reconnection in a twisted coronal loop. Astrophys. J. 729, 101. DOI . ADS .

    Article  ADS  Google Scholar 

  • Gordovskyy, M., Browning, P.K.: 2012, Magnetic relaxation and particle acceleration in a flaring twisted coronal loop. Solar Phys. 277, 299. DOI . ADS .

    Article  ADS  Google Scholar 

  • Gordovskyy, M., Browning, P.K., Kontar, E.P.: 2017, Polarisation of microwave emission from reconnecting twisted coronal loops. Astron. Astrophys. 604, A116. DOI . ADS .

    Article  ADS  Google Scholar 

  • Gordovskyy, M., Browning, P.K., Kontar, E.P., Bian, N.H.: 2013, Effect of collisions and magnetic convergence on electron acceleration and transport in reconnecting twisted solar flare loops. Solar Phys. 284, 489. DOI . ADS .

    Article  ADS  Google Scholar 

  • Gordovskyy, M., Browning, P.K., Kontar, E.P., Bian, N.H.: 2014, Particle acceleration and transport in reconnecting twisted loops in a stratified atmosphere. Astron. Astrophys. 561, A72. DOI . ADS .

    Article  ADS  Google Scholar 

  • Guo, J., Emslie, A.G., Massone, A.M., Piana, M.: 2012, Properties of the acceleration regions in several loop-structured solar flares. Astrophys. J. 755, 32. DOI . ADS .

    Article  ADS  Google Scholar 

  • Hirayama, T.: 1974, Theoretical model of flares and prominences. I: Evaporating flare model. Solar Phys. 34, 323. DOI . ADS .

    Article  ADS  Google Scholar 

  • Jiang, Y.W., Liu, S., Liu, W., Petrosian, V.: 2006, Evolution of the loop-top source of solar flares: Heating and cooling processes. Astrophys. J. 638, 1140. DOI . ADS .

    Article  ADS  Google Scholar 

  • Kupriyanova, E.G., Melnikov, V.F., Nakariakov, V.M., Shibasaki, K.: 2010, Types of microwave quasi-periodic pulsations in single flaring loops. Solar Phys. 267, 329. DOI . ADS .

    Article  ADS  Google Scholar 

  • Kuznetsov, A.A., Nita, G.M., Fleishman, G.D.: 2011, Three-dimensional simulations of gyrosynchrotron emission from mildly anisotropic nonuniform electron distributions in symmetric magnetic loops. Astrophys. J. 742, 87. DOI . ADS .

    Article  ADS  Google Scholar 

  • Lemen, J.R., Title, A.M., Akin, D.J., Boerner, P.F., Chou, C., Drake, J.F., Duncan, D.W., Edwards, C.G., Friedlaender, F.M., Heyman, G.F., Hurlburt, N.E., Katz, N.L., Kushner, G.D., Levay, M., Lindgren, R.W., Mathur, D.P., McFeaters, E.L., Mitchell, S., Rehse, R.A., Schrijver, C.J., Springer, L.A., Stern, R.A., Tarbell, T.D., Wuelser, J.-P., Wolfson, C.J., Yanari, C., Bookbinder, J.A., Cheimets, P.N., Caldwell, D., Deluca, E.E., Gates, R., Golub, L., Park, S., Podgorski, W.A., Bush, R.I., Scherrer, P.H., Gummin, M.A., Smith, P., Auker, G., Jerram, P., Pool, P., Soufli, R., Windt, D.L., Beardsley, S., Clapp, M., Lang, J., Waltham, N.: 2012, The Atmospheric Imaging Assembly (AIA) on the Solar Dynamics Observatory (SDO). Solar Phys. 275, 17. DOI . ADS .

    Article  ADS  Google Scholar 

  • Lin, R.P., Dennis, B.R., Hurford, G.J., Smith, D.M., Zehnder, A., Harvey, P.R., Curtis, D.W., Pankow, D., Turin, P., Bester, M., Csillaghy, A., Lewis, M., Madden, N., van Beek, H.F., Appleby, M., Raudorf, T., McTiernan, J., Ramaty, R., Schmahl, E., Schwartz, R., Krucker, S., Abiad, R., Quinn, T., Berg, P., Hashii, M., Sterling, R., Jackson, R., Pratt, R., Campbell, R.D., Malone, D., Landis, D., Barrington-Leigh, C.P., Slassi-Sennou, S., Cork, C., Clark, D., Amato, D., Orwig, L., Boyle, R., Banks, I.S., Shirey, K., Tolbert, A.K., Zarro, D., Snow, F., Thomsen, K., Henneck, R., McHedlishvili, A., Ming, P., Fivian, M., Jordan, J., Wanner, R., Crubb, J., Preble, J., Matranga, M., Benz, A., Hudson, H., Canfield, R.C., Holman, G.D., Crannell, C., Kosugi, T., Emslie, A.G., Vilmer, N., Brown, J.C., Johns-Krull, C., Aschwanden, M., Metcalf, T., Conway, A.: 2002, The Reuven Ramaty High-Energy Solar Spectroscopic Imager (RHESSI). Solar Phys. 210, 3. DOI . ADS .

    Article  ADS  Google Scholar 

  • Magara, T., Mineshige, S., Yokoyama, T., Shibata, K.: 1996, Numerical simulation of magnetic reconnection in eruptive flares. Astrophys. J. 466, 1054. DOI . ADS .

    Article  ADS  Google Scholar 

  • Morgachev, A.S., Kuznetsov, S.A., Melnikov, V.F.: 2014, Radio diagnostics of the solar flaring loop parameters by the forward fitting method. Geomagn. Aeron. 54, 933. DOI . ADS .

    Article  ADS  Google Scholar 

  • Nakajima, H., Nishio, M., Enome, S., Shibasaki, K., Takano, T., Hanaoka, Y., Torii, C., Sekiguchi, H., Bushimata, T., Kawashima, S., Shinohara, N., Irimajiri, Y., Koshiishi, H., Kosugi, T., Shiomi, Y., Sawa, M., Kai, K.: 1994, The Nobeyama radioheliograph. IEEE Proc. 82, 705. ADS .

    Article  ADS  Google Scholar 

  • Nita, G.M., Fleishman, G.D., Kuznetsov, A.A., Kontar, E.P., Gary, D.E.: 2015, Three-dimensional radio and x-ray modeling and data analysis software: Revealing flare complexity. Astrophys. J. 799, 236. DOI . ADS .

    Article  ADS  Google Scholar 

  • Pinto, R.F., Gordovskyy, M., Browning, P.K., Vilmer, N.: 2016, Thermal and non-thermal emission from reconnecting twisted coronal loops. Astron. Astrophys. 585, A159. DOI . ADS .

    Article  ADS  Google Scholar 

  • Rudenko, G.V., Myshyakov, I.I.: 2009, Analysis of reconstruction methods for nonlinear force-free fields. Solar Phys. 257, 287. DOI . ADS .

    Article  ADS  Google Scholar 

  • Scherrer, P.H., Schou, J., Bush, R.I., Kosovichev, A.G., Bogart, R.S., Hoeksema, J.T., Liu, Y., Duvall, T.L., Zhao, J., Title, A.M., Schrijver, C.J., Tarbell, T.D., Tomczyk, S.: 2012, The Helioseismic and Magnetic Imager (HMI) investigation for the Solar Dynamics Observatory (SDO). Solar Phys. 275, 207. DOI . ADS .

    Article  ADS  Google Scholar 

  • Sharykin, I.N., Kuznetsov, A.A.: 2016, Modelling of nonthermal microwave emission from twisted magnetic loops. Solar Phys. 291, 1341. DOI . ADS .

    Article  ADS  Google Scholar 

  • Syrovatskii, S.I., Shmeleva, O.P.: 1972, Heating of plasma by high-energy electrons, and nonthermal x-ray emission in solar flares. Soviet Astron. 16, 273. ADS .

    ADS  Google Scholar 

  • Titov, V.S., Démoulin, P.: 1999, Basic topology of twisted magnetic configurations in solar flares. Astron. Astrophys. 351, 707. ADS .

    ADS  Google Scholar 

  • Tsuneta, S.: 1997, Moving plasmoid and formation of the neutral sheet in a solar flare. Astrophys. J. 483, 507. ADS .

    Article  ADS  Google Scholar 

  • Wheatland, M.S., Sturrock, P.A., Roumeliotis, G.: 2000, An optimization approach to reconstructing force-free fields. Astrophys. J. 540, 1150. DOI . ADS .

    Article  ADS  Google Scholar 

  • Zheleznyakov, V.V., Zlotnik, E.Y.: 1964, Polarization of radio waves passing through a transverse magnetic field region in the solar corona. Soviet Astron. 7, 485. ADS .

    ADS  MathSciNet  Google Scholar 

Download references

Acknowledgements

This work was supported by the Russian Foundation of Basic Research (RFBR, grant 16-32-50172). A.A. Kuznetsov acknowledges partial support from the RFBR grants 15-02-03717 and 15-02-03835. I.I. Myshyakov acknowledges partial support from the RFBR grant 16-32-00315. I.N. Sharykin is grateful to the colleagues from the Institute of Solar-Terrestrial Physics for discussions and hospitality during working at the ISTP.

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to I. N. Sharykin.

Ethics declarations

Disclosure of Potential Conflicts of Interest

The authors claim that they have no conflicts of interest.

Rights and permissions

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Sharykin, I.N., Kuznetsov, A.A. & Myshyakov, I.I. Probing Twisted Magnetic Field Using Microwave Observations in an M Class Solar Flare on 11 February, 2014. Sol Phys 293, 34 (2018). https://doi.org/10.1007/s11207-017-1237-6

Download citation

  • Received:

  • Accepted:

  • Published:

  • DOI: https://doi.org/10.1007/s11207-017-1237-6

Keywords

Navigation