Inertial Confinement Fusion惯性约束聚变
While magnetic confinement seeks to extend the time that ions spend close to each other in order to facilitate fusion, the inertial confinement strategy seeks to fuse nuclei so fast that they don't have time to move apart. The two approaches to inertial confinement have been laser fusion and ion-beam fusion. 尽管磁约束旨在延长离子彼此靠近的时间以促进融合,而惯性约束策略则试图以如此快的速度融合核子,以至于它们没有时间分开。惯性约束的两种方法分别是激光融合和离子束融合。
Directed onto a tiny deuterium-tritium pellet, the enormous energy influx evaporates the outer layer of the pellet, producing energetic collisions which drive part of the pellet inward. The inner core is increased a thousandfold in density and its temperature is driven upward to the ignition point for fusion. Accomplishing this in a time interval of 10-11 to 10-9 seconds does not allow the ions to move appreciably because of their own inertia; hence the name inertial confinement. directed onto a tiny deuterium-tritium pellet, the enormous energy influx evaporates the outer layer of the pellet, producing energetic collisions which drive part of the pellet inward. The inner core is increased a thousandfold in density and its temperature is driven upward to the ignition point for fusion. Accomplishing this in a time interval of 10^-11 to 10^-9 seconds does not allow the ions to move appreciably because of their own inertia; hence the name inertial confinement.
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Laser Fusion激光融合
Laser fusion attempts to force nuclear fusion in tiny pellets or microballoons of a deuterium-tritium mixture by zapping them with such a high energy density that they will fuse before they have time to move away from each other. This is an example of inertial confinement. 激光聚变试图通过用极高的能量密度照射由氘-氚混合物制成的微小球体或微球,使它们在有足够时间相互远离之前发生核融合。这是一种惯性约束的例子。
Two experimental laser fusion devices have been developed at Lawrence Livermore Laboratory, called Shiva and Nova. They deliver high power bursts of laser light from multiple lasers onto a small deuterium-tritium target. These lasers are neodymium glass lasers which are capable of extremely high power pulses. 在劳伦斯利弗莫尔实验室,已开发出两种实验性激光聚变装置,称为Shiva和Nova。它们通过多个激光器向一个小的氘-氚靶发射高功率的激光光束。这些激光器是钕玻璃激光器,能够产生极高的功率脉冲。
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Index Fusion concepts Laser concepts 索引 熔化概念 激光概念 | ||
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Shiva Laser SystemShiva 激光系统
During the Shiva project at Lawrence Livermore Laboratories, a collection of 20 neodynium lasers were focused to a precise position in a target chamber. The multi-laser device, called Shiva after the multi-armed Hindu god, sought to initiate laser fusion in small microballoons of a deuterium-tritium gas mixture. One of the 0.1 mm pellets is supposed to contain the energy equivalent of a barrel of oil. 在劳伦斯利弗莫尔实验室的Shiva项目中,20台钕激光器被聚焦到目标腔室中的精确位置。这种多激光器装置以多臂的印度教女神Shiva命名,旨在在氘-氚气体混合物的小微球中引发激光融合。其中一颗0.1毫米的靶丸应包含相当于一桶石油的能量。
The Shiva system was the first generation machine at Livermore, put into operation in 1978. It was operated until 1981. A second, more powerful machine called Nova has been built which offers the possibility of reaching the fusion breakeven point. Shiva系统是Livermore的第一代机器,于1978年投入运行。它一直运行到1981年。一台名为Nova的第二台、更强大的机器被建造起来,它提供了实现核融合平衡点的可能性。
References: 参考文献:Wiki: Shiva激光 |
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Nova Laser SystemNova 激光系统
Nova is the name given to the second generation laser fusion device at Lawrence Livermore Laboratories. It employs lasers ten times more powerful than the Shiva laser fusion device and will attempt to reach the breakeven point for fusion. Nova makes use of ten lasers which are focused on a 1 mm diameter target area, dumping 100,000 joules of energy into the target in a nanosecond. Nova 是 Lawrence Livermore 实验室第二代激光聚变装置的名称。它使用十倍于 Shiva 激光聚变装置的激光,试图达到聚变的临界点。Nova 利用十束激光聚焦在 1 毫米直径的目标区域,将 100,000 焦耳的能量在纳秒内注入目标区域。
As of 1994, Nova has reached the Lawson criterion, but at a temperature too low for fusion ignition. 1994年,诺瓦已经达到了劳伦兹准则,但温度太低,无法实现核融合点燃。
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Particle Beam Fusion粒子束融合
If a high energy beam of electrons or other particles can be directed onto a tiny pellet or microballoon of deuterium-tritium mixture, it could cause it to explode like a miniature hydrogen bomb, fusing the deuterium and tritium nuclei in a time frame too short for them to move apart. 如果高能电子或其他粒子束可以被定向照射到一小粒或微球状的氘-氚混合物上,它可能会像微型氢弹一样使其爆炸,使氘和氚的核在太短的时间内融合在一起,以至于它们无法分开。
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