This project has received funding from the Science and Technology Facilities Council (UK) through the consolidated grant ST/N000609/1 and the European Research Council (ERC) under the European Union’s Horizon 2020 research and innovation program (grant agreement No 647214).We proposed that the use of an approximate “jump condition” at the solar transition region permits fast and accurate numerical solutions of the one dimensional hydrodynamic equations when the corona undergoes impulsive heating. In particular, it eliminates the need for the very short timesteps imposed by a highly resolved numerical grid. This paper presents further examples of the applicability of the method for cases of non-uniform heating, in particular, nanoflare train...
This paper further develops the zero-dimensional (0D) hydrodynamic coronal loop model "Enthalpy-base...
Solar flare model atmospheres computed under the assumption of energetic equilibrium in the chromosp...
The heating of the solar corona has been investigated during four of decades and several mechanisms ...
We proposed that the use of an approximate “jump condition” at the solar transition region permits f...
We proposed that the use of an approximate “jump condition” at the solar transition region permits f...
We proposed that the use of an approximate “jump condition” at the solar transition region permits f...
C.D.J. acknowledges the financial support of the Carnegie Trust for the Universities of Scotland. Th...
We present a new computational approach that addresses the difficulty of obtaining the correct inter...
Funding: European Union Horizon 2020 research and innovation programme (grant agreement No. 647214);...
Funding: European Research Council (ERC) under the European Union’s Horizon 2020 research and innova...
This thesis presents a new computationally efficient method for modelling the response of the solar ...
The research leading to these results has received funding from the UK Science and Technology Facili...
This research has received funding from the European Research Council (ERC) under the European Union...
A ‘proof of principle’ is presented, whereby the Ohmic and viscous heating determined by a three-dim...
This paper further develops the zero-dimensional (0D) hydrodynamic coronal loop model "Enthalpy-base...
Solar flare model atmospheres computed under the assumption of energetic equilibrium in the chromosp...
The heating of the solar corona has been investigated during four of decades and several mechanisms ...
We proposed that the use of an approximate “jump condition” at the solar transition region permits f...
We proposed that the use of an approximate “jump condition” at the solar transition region permits f...
We proposed that the use of an approximate “jump condition” at the solar transition region permits f...
C.D.J. acknowledges the financial support of the Carnegie Trust for the Universities of Scotland. Th...
We present a new computational approach that addresses the difficulty of obtaining the correct inter...
Funding: European Union Horizon 2020 research and innovation programme (grant agreement No. 647214);...
Funding: European Research Council (ERC) under the European Union’s Horizon 2020 research and innova...
This thesis presents a new computationally efficient method for modelling the response of the solar ...
The research leading to these results has received funding from the UK Science and Technology Facili...
This research has received funding from the European Research Council (ERC) under the European Union...
A ‘proof of principle’ is presented, whereby the Ohmic and viscous heating determined by a three-dim...
This paper further develops the zero-dimensional (0D) hydrodynamic coronal loop model "Enthalpy-base...
Solar flare model atmospheres computed under the assumption of energetic equilibrium in the chromosp...
The heating of the solar corona has been investigated during four of decades and several mechanisms ...