Minimum Safe Distances for DE-STAR Space Lasers

Adam Hibberd
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Abstract

The prospect of phased laser arrays in space has received considerable attention in recent years, with applications to both planetary defence and space exploration. The most detailed investigation conducted into such a design is that of the DE-STAR phased array, standing for $\textbf{D}$irected $\textbf{E}$nergy $\textbf{S}$ystems for $\textbf{T}$argeting of $\textbf{A}$steroids and explo$\textbf{R}$ation. DE-STAR is a square modular design which exploits the energy created by banks of solar cells in space to generate and amplify the power of a laser beam. A specific DE-STAR design is expressed as DE-STAR n, where 'n' (typically in the range 0 - 4) equates to the log to base 10 of the side, in metres, of a square bank of lasers. With a DE-STAR 4 structure (10 km $\times$ 10 km square) capable of generating a laser beam on the order of tens of gigawatts, clearly there is the potential for such an asset to be deployed as a weapon by targeting locations on Earth. This naturally leads to the question of what effective ways can this possible misuse be removed or at least mitigated, to ensure these powerful space lasers can only be used for their intended purpose, and never malevolent reasons. One solution would be to locate the DE-STAR far enough away so that the laser flux at Earth would be too low. Results indicate that given they should lie 1 au from the Sun, there are feasible locations for DE-STAR 0-2 arrays where there is no danger to Earth. For DE-STAR 4-5, such is their power, safety measures other than those considered here would have to be adopted. Positions in the Solar System where the DE-STAR lasers have no direct line-of-sight with Earth tend to be unstable, and would require regular corrections using an on-board propulsion system, or preferably using push-back from the laser itself.
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DE-STAR 空间激光器的最小安全距离
近年来,空间相控激光阵列的前景受到了广泛关注,它既可应用于行星防御,也可应用于空间探索。对这种设计进行的最详细的研究是 DE-STAR 相控阵,它代表了用于瞄准和探测小行星的 $\textbf{T}$ 定向 $\textbf{A}$ 能量 $\textbf{R}$ 系统。DE-STAR 是一种方形模块设计,利用空间太阳能电池组产生的能量来产生和放大激光束的功率。具体的 DE-STAR 设计用 DE-STAR n 表示,其中 "n"(通常在 0 - 4 范围内)相当于正方形激光器组边长(以米为单位)的基 10 对数。由于 DE-STAR 4 结构(10 千米乘以 10 千米的正方形)能够产生数十千兆瓦的激光束,显然有可能将这种资产作为武器部署,瞄准地球上的各个地点。这自然引出了一个问题:有什么有效的方法可以消除或至少减轻这种可能的误用,以确保这些强大的太空激光只用于其预期目的,而绝不是出于恶意。一种解决办法是将 DE-STAR 安装在足够远的地方,这样地球上的激光通量就会太低。研究结果表明,鉴于 DE-STAR 0-2 阵列应位于距离太阳 1 英里的地方,因此在这些地方安装 DE-STAR 0-2 阵列是可行的,不会对地球造成危险。至于 DE-STAR 4-5,由于它们的功率很大,必须采取比这里所考虑的更安全的措施。在太阳系中,DE-STAR 激光器与地球没有直接视线的位置往往是不稳定的,需要使用星载推进系统进行定期校正,或者最好使用激光器本身的推回。
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