平衡点火,通过多重质量壳碰撞实现聚变的最小能量途径

S. Colgate
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引用次数: 1

摘要

建议,惯性聚变点火的最小能量途径是燃料和围合材料的密度足够高,热核燃料的热量可以在点火温度的平衡条件下被控制,而热损失的损失可以忽略不计。自然,这种约束的周期是由“惯性”条件确定的,但发现反应速率和热约束时间的标度强烈倾向于燃料内的热平衡条件,而不是标准模型,在标准模型中,较高的温度允许能量生产反应速率超过辐射损失率。由于约束介质中的“推手”(~ ×5燃料的推手)能量的高惩罚,在保持高密度约束材料的“绝热体”尽可能接近费米简并(即尽可能冷)方面有很高的溢价。此外,由于对冷绝热器的这种要求,提出了一种从储存的电能(即电容器)到点火的有效途径。在电容器放电电流的磁场作用下,薄金属壳稳定而有效地加速到~ 0.5 cm/ s的适度速度,这是一种“直线”加速度,在相对适度的电流上升时间(~ 5 μ s)下已经有了很好的记录。多重高密度圆柱质量壳,例如:
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Equilibrium Ignition, a Minimum Energy Route to Fusion Via Multiple Mass Shell Collisions
It is suggested that the minimum energy route to inertial fusion ignition is where the density of fuel and confining material is sufficiently high that the heat of the thermonuclear fuel can be contained at equilibrium conditions at ignition temperature with negligible penalty of thermal heat loss. Naturally the period of this confinement is established by the "inertial" conditions, but it is found that the scaling of reaction rate and thermal confinement time strongly favors thermal equilibrium conditions within the fuel rather than the standard model where higher temperatures allow the energy production reaction rate to exceed the radiation (bremstralhung) loss rate. Because of the high penalty of the energy within the confinement medium, the "pusher", (~ ×5 that of the fuel), there is a high premium in maintaining the "adiabat" of the high density confining material as close to Fermi degeneracy, i.e., cold, as possible. Furthermore, because of this requirement for a cold adiabat, an efficient route from stored electrical energy, i.e., capacitors, to ignition is suggested. The stable and efficient acceleration of a thin metal shell, a "liner" to modest velocities, ~ 0.5 cm/¿s by the magnetic field of the current of capacitor discharge, has been well documented for relatively modest rise times of the current, ~ 5 ¿s. Multiple high density cylindrical mass shells, e.g.
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