Philipp Lauber, M. Falessi, G. Meng, T. Hayward-Schneider, Virgil - Alin Popa, F. Zonca, Mireille Schneider
{"title":"ATEP: An advanced transport model for energetic particles","authors":"Philipp Lauber, M. Falessi, G. Meng, T. Hayward-Schneider, Virgil - Alin Popa, F. Zonca, Mireille Schneider","doi":"10.1088/1741-4326/ad6336","DOIUrl":null,"url":null,"abstract":"\n In this paper we report on the implementation and verification of a phase- space resolved energetic particle (EP) transport model. It is based on a first-principle theoretical framework, i.e. the system of non-linear gyrokinetic equations and the related transport equations. Its focus is primarily directed toward understanding the meso-scale character of EPs and its consequences. Compared to the conventional description of thermal radial transport via a one-dimensional radial diffusion equation, the newly developed model is three-dimensional using canonical constants-of-motion (CoM) variables. The model does not assume diffusive processes to be dominant a priori, instead the EP fluxes are self-consistently calculated and directly evolved in CoM space. We use the EP-Stability workflow and the HAGIS code to determine the phase space fluxes explicitly either in the limit of constant mode amplitudes or an energy-conserving quasi-linear model. As an application of the model the transport of neutral-beam-generated EPs due to a toroidal Alfv ́en eigenmode in an ITER plasma is investigated. As there are no sources and collisions taken into account so far (for an extension of the model see the companion paper ref. [1]), the results cannot be considered as an exhaustive study, but rather as a practical demonstration of the conceptual framework on the way to a comprehensive reduced description of burning plasmas.","PeriodicalId":503481,"journal":{"name":"Nuclear Fusion","volume":"14 20","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-07-15","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Nuclear Fusion","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1088/1741-4326/ad6336","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
In this paper we report on the implementation and verification of a phase- space resolved energetic particle (EP) transport model. It is based on a first-principle theoretical framework, i.e. the system of non-linear gyrokinetic equations and the related transport equations. Its focus is primarily directed toward understanding the meso-scale character of EPs and its consequences. Compared to the conventional description of thermal radial transport via a one-dimensional radial diffusion equation, the newly developed model is three-dimensional using canonical constants-of-motion (CoM) variables. The model does not assume diffusive processes to be dominant a priori, instead the EP fluxes are self-consistently calculated and directly evolved in CoM space. We use the EP-Stability workflow and the HAGIS code to determine the phase space fluxes explicitly either in the limit of constant mode amplitudes or an energy-conserving quasi-linear model. As an application of the model the transport of neutral-beam-generated EPs due to a toroidal Alfv ́en eigenmode in an ITER plasma is investigated. As there are no sources and collisions taken into account so far (for an extension of the model see the companion paper ref. [1]), the results cannot be considered as an exhaustive study, but rather as a practical demonstration of the conceptual framework on the way to a comprehensive reduced description of burning plasmas.
在本文中,我们报告了相空间解析高能粒子(EP)输运模型的实施和验证情况。该模型基于第一原理理论框架,即非线性陀螺动力学方程系统和相关输运方程。其重点主要在于理解 EP 的中尺度特征及其后果。与通过一维径向扩散方程描述热径向输运的传统方法相比,新开发的模型是使用典型运动常数(CoM)变量的三维模型。该模型并不先验地假定扩散过程占主导地位,而是自洽地计算 EP 通量,并直接在 CoM 空间中演化。我们使用 EP-Stability 工作流程和 HAGIS 代码,在恒定模式振幅或能量守恒准线性模型的限度内明确确定相空间通量。作为该模型的应用,研究了中性束产生的 EPs 在 ITER 等离子体中由于环形 Alfv ́en 特征模式而产生的传输。由于到目前为止还没有考虑源和碰撞(关于模型的扩展,请参阅参考文献[1]),因此不能将研究结果视为一项详尽的研究,而应视为在对燃烧等离子体进行全面简化描述的过程中对概念框架的实际演示。