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首页> 外文期刊>Fusion Science and Technology >Tritium Plasma Experiment Upgrade and Improvement of Surface Diagnostic Capabilities at STAR Facility for Enhancing Tritium and Nuclear PMI Sciences
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Tritium Plasma Experiment Upgrade and Improvement of Surface Diagnostic Capabilities at STAR Facility for Enhancing Tritium and Nuclear PMI Sciences

机译:实验室进行的t等离子体实验升级和表面诊断能力的增强,以增强Tri和核PMI科学

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摘要

Recently, Tritium Plasma Experiment (TPE), a unique high-flux linear plasma device that can handle beryllium, tritium and neutron-irradiated plasma facing materials, has undergone major upgrades in its electrical and control systems. The upgrade has improved worker occupational safety, and enhanced TPE plasma performance to better simulate extreme plasma-material-interaction (PMI) conditions expected in ITER, Fusion Nuclear Science Facility (FNSF) and demonstration fusion power plant (DEMO). The PMI determines a boundary condition for diffusing tritium into bulk plasma-facing components (PFCs) and plays critical role in in-vessel and ex-vessel safety assessments. Enhancing surface capabilities for tritium-contaminated and radioactive samples is crucial for the PMI sciences in burning plasma long pulse operation. The TPE Upgrade and improvement of surface diagnostic capabilities for tritium-contaminated and radioactive samples at STAR facility help enhance tritium and nuclear PMI sciences for the development of reliable PFCs and tritium fuel cycle in ITER, FNSF and DEMO.
机译:最近,Tri等离子体实验(TPE)是一种独特的高通量线性等离子体设备,可以处理铍,tri和中子辐照的等离子体材料,其电气和控制系统已经进行了重大升级。此次升级提高了工人的职业安全性,并增强了TPE等离子体性能,以更好地模拟ITER,聚变核科学设施(FNSF)和示范聚变电厂(DEMO)中预期的极端等离子体-材料相互作用(PMI)条件。 PMI确定了将tri扩散到面向等离子体的散装组件(PFC)中的边界条件,并且在船内和船外安全性评估中起着至关重要的作用。增强tri污染和放射性样品的表面能力对于燃烧等离子体长脉冲操作的PMI科学至关重要。 TPE的升级以及STAR设施对受and污染和放射性样品的表面诊断能力的改进,有助于增强tri和核PMI科学,从而在ITER,FNSF和DEMO中开发可靠的PFC和tri燃料循环。

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