Dynamics in solar prominences - connecting from small to large scale

Lead Research Organisation: University of Cambridge
Department Name: Applied Maths and Theoretical Physics

Abstract

Recent space based solar missions, the Japanese Hinode mission and the NASA Solar Dynamics Observatory (SDO) mission, have provided breathtaking observations of quiescent prominences (cool - 8000K - clouds of partially ionised plasma floating in the 1MK solar corona) revealing them to be highly dynamic phenomena where the fundamental process of a magnetised plasma are on constant display. To provide a specific example, one of the most exciting discoveries is that of the magnetic Rayleigh-Taylor instability, an instability that grows when a dense fluid is above a light fluid and the boundary is perturbed resulting in the formation of rising and falling plumes. Due to the fundamental physics that drive these dynamics, the answers of many of the key questions relating to prominences - i.e. what determines when they erupt, how do instabilities grow in the complex prominence environment, how does magnetic reconnection (the change in connectivity of a magnetic field that releases energy) work in the partially ionised prominence plasma, what are the connections between the different scales in prominences - are likely to be hidden within them. However, the great complexity if the prominence system has meant that we are still to understand these beautiful structures known as prominences.

Recent advances in computational power, theoretical modelling and the launch of the new NASA satellite the Interface Region Imaging Spectrograph (IRIS) - with its high sensitivity and resolution - mean that we now have the tools to tackle the problems relating to this complex system. Using a state-of-the-art code which simultaneously solves the dynamics of the neutrals and the ions in a partially ionised plasma system the interaction between the two fluids that make up the prominence plasma can be correctly tracked. Simulations of the fundamental physics that control the prominence system will be performed with this partially ionised plasma code, with the results compared and contrasted to the observational data to let theory and observations guide each other. Through this feedback approach employing all the tools that are available to use, we can head towards a new and exciting understanding to the prominence system.

The proposed work has a number of key aims that will be investigated:
1) How do MHD instabilities (in particular the magnetic Rayleigh-Taylor instability) form in quiescent prominences.
2) How does the presence of instabilities on small spatial and temporal scales effect the prominence system on longer timescales and larger spatial scales, what are the observational signatures of these processes and how do they relate to prominence eruptions.
3) What are the basic physics that controls the reconnection of magnetic fields in the partially ionised prominence material across the many observable scales.
4) How can we connect between the dynamic phenomena observed and the complex physics of the prominence system. This research would take place at the Department of Applied

Mathematics and Theoretical Physics (DAMTP), University of Cambridge. In this project, I will investigate the wide range of observed prominence dynamics from both a theoretical and observational perspective. Therefore, the use of a wide range of techniques, from large-scale numerical simulations of the formation of instabilities in a prominence to the analysis of the spectral lines emitted by solar plasma to determine the plasma motion in the prominence, will be necessary. The senior staff at DAMTP have great experience in a wide range of areas required for my study. Drs. Helen Mason and G. Del Zanna are world leaders in the field of solar spectral observations and Profs. M. Proctor, J. Papaloizou and G. Ogilvie are greatly experienced in the study of astrophysical systems through large-scale numerical simulations. All these combine to make DAMTP the perfect place to be to get the full support necessary for my work.

Publications

10 25 50
 
Title Kojiki and the Universe 
Description This is a collaboration that uses the music of the musician Kitaro about Kojiki (the Japanese myths of creation), matching them to the images of astronomical events. I worked on the content of the images, and the text associate with them. A Japanese language DVD is now available. I have finished the translation and the English language version is scheduled for release in April 2016. 
Type Of Art Film/Video/Animation 
Year Produced 2015 
Impact This is a DVD on general release that has the potential to impact thousands (or even more) people. It was publicised through press conferences in Japan on the Japanese language release. People have expressed a deepening of their interest in astronomy (and especially solar physics which makes up a major part of the content) as a result of watching the DVD. 
 
Title Kojiki and the Universe (English Language version) 
Description This DVD matches the grammy award winning music o the musician Kitaro with astronomical images. The music and the associated images are used to inform about a wide range of astronomical phenomena. These include prominence dynamics and space weather, two areas of my STFC funded research. I worked on the content, but also as the translator for the original Japanese content. 
Type Of Art Film/Video/Animation 
Year Produced 2016 
Impact This is a DVD on general release that has the potential to impact thousands (or even more) people. The original Japanese version was publicised through press conferences in Japan on the Japanese language release and the English version has featured on blogs. People have expressed a deepening of their interest in astronomy (and especially solar physics which makes up a major part of the content) as a result of watching the DVD. 
URL http://www.domocart.com/domo-store/index.php?main_page=index&cPath=4&zenid=17bcba540a46117f86e4c598e...
 
Description One key finding is the way in which magnetic fields are able to change their connectivity in the lower regions of the solar atmosphere where the plasma is only partially ionised. Through developing a model of fractal reconnection that can traverse many different physical regimes found in this region of the atmosphere it has been possible to identify conditions of the solar atmosphere under which the magnetic fields can rapidly reconnect. I have also investigated how magnetic reconnection can be initiated at different heights of the solar atmosphere.

To complement these studies I have investigated the complex method through which the neutral fluid in the lower solar atmosphere connected to the magnetic field. In MHD shocks this leads to a finite width of the shock front with complex substructure forming within the shockfront. I have also observationally investigated the observational evidence for velocity differences between charged and neutral species in solar prominences. The results from this grant also have shed light on the nature of magnetohydrodynamic turbulence works in the prominence system.

I have provided new insight into the dynamics driven by the linear magnetic Rayleigh-Taylor instability, and combining this with a shear flow instability used linear instability analysis to determine the field strength of an observed prominence. i have also published observational evidence that flows internal to the prominence can become unstable to shear-flow instabilities. I have also published a review paper on this phenomenon. I have extended my study of instabilities in prominence material by developing a model of the flow instabilities that can be driven by the oscillating flow and magnetic field associated with MHD waves.

The most recent results of my study show how the nonlinear mixing of both the Rayleigh-Taylor and Kelvin-Helmholtz instabilities can be analytically modelled. These models can then be used to understand how these instabilities can heat material in the solar atmosphere through turbulence. The role of multi-fluid effects in these instabilities highlights an important process in heat transport
Exploitation Route These results are applicable to many different research topics in astrophysics and plasma physics where people are interested in turbulence, magentic reconnection and the dynamics of partially ionised plasma.
Sectors Education,Energy,Other

 
Description The findings have contributed to my outreach lessons to school students. The key points of the findings, often based on the use of the fundamental conservations laws of mass, momentum and energy, have been used to explain some fundamental aspects of the dynamics of the solar atmosphere.
First Year Of Impact 2017
Sector Education
Impact Types Societal

 
Description Consolidated Grant
Amount £700,102 (GBP)
Funding ID ST/R000891/1 
Organisation Science and Technologies Facilities Council (STFC) 
Sector Public
Country United Kingdom
Start 03/2018 
End 03/2021
 
Title the (PIP) code 
Description Numerical code written in Fortran 90 to study the dynamics of partially ionised solar plasma. 
Type Of Technology Software 
Year Produced 2019 
Open Source License? Yes  
Impact Code is being used by a few research groups. 
URL https://github.com/AstroSnow/PIP
 
Description Appearance on the TV show Elemental ideas to talk about solar magnetic fields 
Form Of Engagement Activity A press release, press conference or response to a media enquiry/interview
Part Of Official Scheme? No
Geographic Reach Regional
Primary Audience Public/other audiences
Results and Impact I gave a short interview about solar magnetism for Cambridge TV, explaining how the Sun's magnetism evolves to create prominences and filaments and how this creates space weather. The program is available online for people to view.
Year(s) Of Engagement Activity 2016
 
Description CISM Summer School on Advanced Topics in MHD 
Form Of Engagement Activity Participation in an activity, workshop or similar
Part Of Official Scheme? No
Geographic Reach International
Primary Audience Postgraduate students
Results and Impact I co-organised a summer school at CISM in Udine, Italy on Advanced Topics in MHD on the 11th to 15th June. This was attended by about 30 graduate students and Postdocs.
Year(s) Of Engagement Activity 2018
URL http://www.cism.it/courses/C1806/
 
Description Center for Mathematical Sciences, University of Cambridge open day 
Form Of Engagement Activity Participation in an open day or visit at my research institution
Part Of Official Scheme? No
Geographic Reach Regional
Primary Audience Public/other audiences
Results and Impact The department was open to the public, with each research group running a booth to present information about their results. I helped organise and present information on space weather. Many people, over a wide range of ages were very interested in this topic. On running into a person who I had spoken to at the event at a later date, he told me that his son had become very interested with solar physics.
Year(s) Of Engagement Activity 2015
 
Description Exeter Progresson lesson 2018 
Form Of Engagement Activity Participation in an activity, workshop or similar
Part Of Official Scheme? No
Geographic Reach Local
Primary Audience Schools
Results and Impact Approximately 10 students from a local 6th form college from the Exeter area. I performed a lesson on using Mathematics to understand the dynamics of the soalr system, especially connecting with my research by looking at prominence eruptions. Feedback from the students on the event was very positive.
Year(s) Of Engagement Activity 2018
 
Description Lecturer at 2018 STFC Solar System Introductory Summer School 
Form Of Engagement Activity A talk or presentation
Part Of Official Scheme? No
Geographic Reach National
Primary Audience Postgraduate students
Results and Impact I lectured on the solar atmosphere at the 2018 STFC solar systems summer school held in Exeter in August 2018. About 40 students attended.
Year(s) Of Engagement Activity 2018
URL http://blogs.exeter.ac.uk/issp18/
 
Description Organised RAS Discussion meeting on 'Recent Advances on Solar Partially Ionised Plasma' 
Form Of Engagement Activity Participation in an activity, workshop or similar
Part Of Official Scheme? No
Geographic Reach International
Primary Audience Professional Practitioners
Results and Impact I organised a discussion meeting on solar partially ionised plasma at Burlington House in London on the 11th Jan 2019. This was attended by about 50 people, with about 10 from around Europe.
Year(s) Of Engagement Activity 2019
URL https://blogs.exeter.ac.uk/rasdiscussion/
 
Description RI Mathematics Masterclass 
Form Of Engagement Activity Participation in an activity, workshop or similar
Part Of Official Scheme? Yes
Geographic Reach Local
Primary Audience Schools
Results and Impact Students studied about planetary motion, travel to Mars and the space weather implications of space travel. This lesson sparked a large number of questions. Of the students who took the class 61% rated it as interesting and of 11 students who took all the classes in the curse, 16% chose my course as their favourite.

Students were very excited to study about orbits and became very interested in space weather and its impact on space travel. pupils afterwards told me that they were now interested in space weather.
Year(s) Of Engagement Activity 2015
 
Description RI Mathematics Masterclass 
Form Of Engagement Activity Participation in an activity, workshop or similar
Part Of Official Scheme? No
Geographic Reach Local
Primary Audience Schools
Results and Impact I developed, though due to circumstances did not deliver (my colleague replaced me), a lesson teaching the mathematics of the solar system and space weather. This was a development of the lesson I performed in 2015. There were approximately 30 year 8 students. This lesson sparked many questions and was viewed highly by the students.
Year(s) Of Engagement Activity 2016
 
Description RI Mathematics Masterclass held in Cambridge 2018 
Form Of Engagement Activity Participation in an activity, workshop or similar
Part Of Official Scheme? No
Geographic Reach Regional
Primary Audience Schools
Results and Impact approximately 25 year 8 pupils from the Cambridge region attended this class. I showed how order of magnitude Mathematics can be used to investigate dynamic phenomena in the solar system, culminating in a look at prominences and their stability dynamics (i.e. my research topic). Feedback from the students was positive, with the class being seen as enjoyable and helpful.
Year(s) Of Engagement Activity 2018