Impact of advanced physics and technology on the attractiveness of tokamak fusion power plants

IF 0.3 1区 艺术学 0 MUSIC NINETEENTH CENTURY MUSIC Pub Date : 2002-11-07 DOI:10.1109/FUSION.2002.1027630
F. Najmabadi
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引用次数: 1

Abstract

During the past ten years, the ARIES Team has studied a variety of tokamak power plants with different degrees of extrapolation in plasma physics and technology from present database. Continuation of research has allowed us to apply lessons learned from each ARIES design to the next. The results of ARIES tokamak power plant studies provide a large body of data that highlight the tradeoffs and relative leverage of advanced plasma physics and fusion technology directions. Our results indicate that for the same plasma physics (e.g., first-stability) and technology extrapolation, steady state operation is more attractive than pulsed-plasma operation. Dramatic improvement over first-stability operation can be obtained through either utilization of high-field magnets (e.g., high-temperature superconductors) or operation in advanced-tokamak modes (e.g., reversed-shear). In particular, if full benefits of reversed-shear operation are realized, as is assumed in ARIES-AT, tokamak power plants will have a cost of electricity competitive with other sources of electricity. In technology area, emerging technologies such as advanced Baryon cycle, high-temperature superconductor, and advanced manufacturing techniques can improve the cost and attractiveness of fusion plants. For blankets, liquid breeder/coolants are the most attractive because most of neutron power is directly deposited in the coolant. This property can be exploited to arrive at a blanket design with a coolant outlet temperature higher than the structure temperature in the radiation zone. The high coolant temperature leads to a high thermal conversion efficiency (as in ARIES-ST and ARIES-AT blankets). The dual-cooled (He and LiPb) ARIES-ST blanket using ferritic steel structural material represents a near-term option for fusion systems and achieves a thermal efficiency of 45%. Development of high-performance SIC composites leads to the high-performance ARIES-AT blanket (SiC composite/LiPb coolant) that achieves 59% thermal conversion efficiency as well as the full potential safety and environmental features of fusion power.
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先进物理和技术对托卡马克聚变电站吸引力的影响
在过去的十年里,ARIES团队从现有的数据库中研究了不同程度的等离子体物理和技术外推的各种托卡马克发电厂。持续的研究使我们能够将从每一个ARIES设计中吸取的经验教训应用到下一个设计中。ARIES托卡马克电厂的研究结果提供了大量的数据,突出了先进等离子体物理和聚变技术方向的权衡和相对优势。我们的结果表明,对于相同的等离子体物理(例如,第一稳定)和技术外推,稳态操作比脉冲等离子体操作更有吸引力。通过利用高场磁体(如高温超导体)或在先进的托卡马克模式(如反向剪切)下运行,可以大大改善第一稳定运行。特别是,如ARIES-AT所假定的那样,如果实现反向剪切操作的全部好处,托卡马克发电厂的电力成本将与其他电力来源相竞争。在技术领域,先进重子循环、高温超导体和先进制造技术等新兴技术可以提高核聚变工厂的成本和吸引力。对于电热毯,液体增殖剂/冷却剂是最有吸引力的,因为大多数中子功率直接沉积在冷却剂中。利用这一特性可以得到一种冷却剂出口温度高于辐射区的结构温度的冷却毯设计。高冷却剂温度导致高热转换效率(如在白羊座- st和白羊座- at毯)。采用铁素体钢结构材料的双冷(He和LiPb) ARIES-ST包层代表了聚变系统的近期选择,热效率可达45%。高性能SIC复合材料的发展导致了高性能ARIES-AT包层(SIC复合材料/LiPb冷却剂)的出现,该包层实现了59%的热转换效率,并充分发挥了核聚变发电的安全性和环保特性。
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来源期刊
CiteScore
0.40
自引率
0.00%
发文量
11
期刊介绍: 19th-Century Music covers all aspects of Western art music between the mid-eighteenth and mid-twentieth centuries. We welcome--in no particular order--considerations of composers and compositions, styles, performance, historical watersheds, cultural formations, critical methods, musical institutions, ideas, and topics not named on this list. Our aim is to publish contributions to ongoing conversations at the leading edge of musical and multidisciplinary scholarship.
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