An Efficient Surrogate Model of Secondary Electron Formation and Evolution
Abstract
This work extends the adjoint-deep learning framework for runaway electron (RE) evolution developed in Ref. [C. McDevitt et al., A physics-constrained deep learning treatment of runaway electron dynamics, Submitted to Physics of Plasmas (2024)] to account for large-angle collisions. By incorporating large-angle collisions the framework allows the avalanche of REs to be captured, an essential component to RE dynamics. This extension is accomplished by using a Rosenbluth-Putvinski approximation to estimate the distribution of secondary electrons generated by large-angle collisions. By evolving both the primary and multiple generations of secondary electrons, the present formulation is able to capture both the detailed temporal evolution of a RE population beginning from an arbitrary initial momentum space distribution, along with providing approximations to the saturated growth and decay rates of the RE population. Predictions of the adjoint-deep learning framework are verified against a traditional RE solver, with good agreement present across a broad range of parameters.
Cite
@article{arxiv.2412.13044,
title = {An Efficient Surrogate Model of Secondary Electron Formation and Evolution},
author = {Christopher J. McDevitt and Jonathan Arnaud and Xian-Zhu Tang},
journal= {arXiv preprint arXiv:2412.13044},
year = {2024}
}