官方来源 · 论文题录

Overview of the physics basis for the ARC fusion power plant

Commonwealth Fusion Systems plans to build ARC as the first fusion power plant at a site in Chesterfield County, Virginia, USA by the early 2030s. We present an overview of analysis comprising the physics basis of the ARC V3A design, a high-magnetic-field tokamak with B<sub>0</sub> =11.4 T, I<sub>p</sub> =12.0 MA, R<sub>0</sub> =4.62 m, a =1.18 m. ARC V3A is designed to produce P<sub>f⁡u⁢s</sub> ≈1.13 GW DT fusion power and deliver ⩾400 MW net electric power to the grid. This overview includes quantitative analysis of fundamental issues for design of and operational plasma scenarios for a tokamak power plant, and lays out the design targets and strategic choices for ARC, including empirical fusion performance projections, assessment of H-mode access, ion cyclotron resonance heating simulations, alpha particle physics and time-dependent full-pulse simulations. This is complemented by topical papers on fusion performance and transport, disruption physics, boundary physics and magnetohydrodynamic stability. Critically, these studies identify key model uncertainties and physics risks to be retired through SPARC operation. Due to the modular nature of ARC, early results from SPARC can be incorporated into the design of the first ARC as well as subsequent replacements of the ARC vacuum vessel.

← 返回资源筛选结果
RESOURCE OVERVIEW

资源说明

Commonwealth Fusion Systems plans to build ARC as the first fusion power plant at a site in Chesterfield County, Virginia, USA by the early 2030s. We present an overview of analysis comprising the physics basis of the ARC V3A design, a high-magnetic-field tokamak with B<sub>0</sub> =11.4 T, I<sub>p</sub> =12.0 MA, R<sub>0</sub> =4.62 m, a =1.18 m. ARC V3A is designed to produce P<sub>f⁡u⁢s</sub> ≈1.13 GW DT fusion power and deliver ⩾400 MW net electric power to the grid. This overview includes quantitative analysis of fundamental issues for design of and operational plasma scenarios for a tokamak power plant, and lays out the design targets and strategic choices for ARC, including empirical fusion performance projections, assessment of H-mode access, ion cyclotron resonance heating simulations, alpha particle physics and time-dependent full-pulse simulations. This is complemented by topical papers on fusion performance and transport, disruption physics, boundary physics and magnetohydrodynamic stability. Critically, these studies identify key model uncertainties and physics risks to be retired through SPARC operation. Due to the modular nature of ARC, early results from SPARC can be incorporated into the design of the first ARC as well as subsequent replacements of the ARC vacuum vessel.

偏滤器面向等离子体部件70 PLASMA PHYSICS AND FUSION TECHNOLOGYfusion plasmaplasma confinementplasma devices
RESEARCH USE PROFILE

研究使用指引

适用任务建立物理模型、算法方法、参数依据与工程分析证据
使用准备提取适用条件、输入参数、边界假设、版本和引用关系
核验重点关键结论应回到原始章节、图表和发布记录进行复核
RESOURCE FEEDBACK

资源信息需要更新?

可报告链接失效、文件异常、信息错误或版本变化,我们会核对并更新资源记录。