内爆
等离子体
惯性约束聚变
点火系统
国家点火设施
聚变能
核工程
激光器
融合
辐射
材料科学
热核聚变
原子物理学
物理
光学
核物理学
热力学
哲学
工程类
语言学
作者
A. B. Zylstra,O. A. Hurricane,D. A. Callahan,A. L. Kritcher,J. E. Ralph,H. F. Robey,Jeffrey S. Ross,C. V. Young,K. L. Baker,D. T. Casey,T. Döppner,L. Divol,M. Hohenberger,S. Le Pape,A. Pak,P. K. Patel,R. Tommasini,S. J. Ali,P. A. Amendt,L. J. Atherton
出处
期刊:Nature
[Nature Portfolio]
日期:2022-01-26
卷期号:601 (7894): 542-548
被引量:476
标识
DOI:10.1038/s41586-021-04281-w
摘要
Abstract Obtaining a burning plasma is a critical step towards self-sustaining fusion energy 1 . A burning plasma is one in which the fusion reactions themselves are the primary source of heating in the plasma, which is necessary to sustain and propagate the burn, enabling high energy gain. After decades of fusion research, here we achieve a burning-plasma state in the laboratory. These experiments were conducted at the US National Ignition Facility, a laser facility delivering up to 1.9 megajoules of energy in pulses with peak powers up to 500 terawatts. We use the lasers to generate X-rays in a radiation cavity to indirectly drive a fuel-containing capsule via the X-ray ablation pressure, which results in the implosion process compressing and heating the fuel via mechanical work. The burning-plasma state was created using a strategy to increase the spatial scale of the capsule 2,3 through two different implosion concepts 4–7 . These experiments show fusion self-heating in excess of the mechanical work injected into the implosions, satisfying several burning-plasma metrics 3,8 . Additionally, we describe a subset of experiments that appear to have crossed the static self-heating boundary, where fusion heating surpasses the energy losses from radiation and conduction. These results provide an opportunity to study α-particle-dominated plasmas and burning-plasma physics in the laboratory.
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