DTT 中性光束注入器的创新理念

IF 1.5 4区 物理与天体物理 Q3 PHYSICS, FLUIDS & PLASMAS IEEE Transactions on Plasma Science Pub Date : 2024-11-15 DOI:10.1109/TPS.2024.3418133
P. Agostinetti;E. Benedetti;R. Bonifetto;M. Bonesso;G. Calabrò;M. Cavenago;F. Crisanti;S. Dal Bello;M. Dalla Palma;D. D’Ambrosio;R. Dima;G. Favero;A. Ferro;M. Fincato;L. Grando;G. Granucci;R. Lombroni;R. Marsilio;A. Murari;T. Patton;A. Pepato;F. Raffaelli;P. Rebesan;M. Recchia;M. Ripani;A. Romano;E. Sartori;M. Scarpari;V. Variale;G. Ventura;F. Veronese;R. Zanino;A. Zappatore;G. Zavarise
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引用次数: 0

摘要

导流托卡马克试验(DTT)设施的主要目的是在与ITER和DEMO相关的综合物理和技术条件下,研究缓解功率排放问题的替代解决方案。整个项目中最复杂和最创新的子系统之一当然是负离子中性束注入器(NBI),它的目的是用510 keV的氘中性束注入10兆瓦的辅助功率。这篇文章描述了DTT NBI系统光束线的概念设计,特别关注了为满足要求和最大化性能而采用的创新技术解决方案。DTT NBI需要在几种操作场景下以高效率运行,覆盖大范围的光束能量,在标称值(510 keV)的10%到100%之间。为了实现这一具有挑战性的目标,一种创新的加速器设计,球形和柠檬超透镜网格(SLHGs)已经被开发出来。由于最近增材制造(AM)技术的改进,这种加速器设计概念的实施最近成为可能。与现有设备相比,DTT NBI的另一个创新之处在于其真空泵系统,该系统将基于非蒸发吸气剂(NEG)泵。这将是NEG技术首次应用于核聚变实验的加热和电流驱动系统的NBI,相对于基于低温泵的典型解决方案,它可能会简化整体结构。其他创新的解决方案是用于中和剂面板的圆柱形锯齿结构(CSS)和带有封装中和剂的杂散场屏蔽系统(SFSS)。本文概述了DTT NBI的注入器,重点介绍了创新的技术解决方案。
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Innovative Concepts in the DTT Neutral Beam Injector
The main purpose of the divertor tokamak test (DTT) facility is to study alternative solutions to mitigate the issue of the power exhaust, under integrated physics and technical conditions relevant to ITER and DEMO. One of the most complex and innovative subsystems of the entire project is certainly the negative-ion-based neutral beam injector (NBI), meant to inject 10 MW of auxiliary power with a beam of 510 keV deuterium neutrals. This contribution describes the conceptual design of the beamline for the DTT NBI system, with a particular focus on the innovative technical solutions adopted to fulfill the requirements and maximize the performance. The DTT NBI is required to operate with high efficiency in several operating scenarios, covering a large range of beam energies, between 10% and 100% of the nominal value (510 keV). To reach this challenging goal, an innovative accelerator design, the spherical and lemon hyperlens grids (SLHGs), has been developed. The implementation of this design concept of the accelerator has recently become possible thanks to recent improvements in additive manufacturing (AM) technology. Another original aspect of the DTT NBI, compared to existing devices, regards the vacuum pumping system, which will be based on nonevaporable getter (NEG) pumps. This will represent the first application of the NEG technology to an NBI for the heating and current drive system of a fusion experiment, with a possible simplification of the overall construction, with respect to typical solutions based on cryogenic pumps. Other innovative solutions are the cylindrical sawtooth structure (CSS) for the neutralizer panels and the stray field shielding system (SFSS) with encapsulated neutralizer. This article provides an overview of the injector for DTT NBI with a particular focus on innovative technical solutions.
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来源期刊
IEEE Transactions on Plasma Science
IEEE Transactions on Plasma Science 物理-物理:流体与等离子体
CiteScore
3.00
自引率
20.00%
发文量
538
审稿时长
3.8 months
期刊介绍: The scope covers all aspects of the theory and application of plasma science. It includes the following areas: magnetohydrodynamics; thermionics and plasma diodes; basic plasma phenomena; gaseous electronics; microwave/plasma interaction; electron, ion, and plasma sources; space plasmas; intense electron and ion beams; laser-plasma interactions; plasma diagnostics; plasma chemistry and processing; solid-state plasmas; plasma heating; plasma for controlled fusion research; high energy density plasmas; industrial/commercial applications of plasma physics; plasma waves and instabilities; and high power microwave and submillimeter wave generation.
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