星系探索的空间推进物理学

Y. Minami
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引用次数: 3

摘要

由于到恒星系统的距离太大,用目前的推进技术到达离地球最近的恒星需要数万年的时间。为了克服这一限制,研究和发展新的推进理论和导航理论是必不可少的。作为一种很有前途的方法,介绍了以虚时间为特征的时空(即时间洞)给出的空间驱动推进理论和超空间导航方法。空间驱动推进系统是利用空间应变或变形场介质作用的场推进系统之一。空间曲率在推进理论中起着重要的作用。另一方面,进入以虚时间为特征的超空间,可以在短时间内实现星际旅行。超空间导航理论将允许星际飞船在任何时间和任何地点出发,进行星际旅行,到达最远的恒星系统,整个任务时间在人类的一生中。空间推进物理学如推进理论和导航理论为我们探索星系提供了具体的理论方法。本文对作者迄今发表的各主题(时空连续体力学、空间驱动推进、超空间导航)进行了综述。
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Space Propulsion Physics toward Galaxy Exploration
The distance to a stellar system is too huge, therefore the travel to the fixed star nearest to the Earth using the present propulsion technology will require tens of thousands years. In order to overcome such a limit of the space travel between fixed stars, research and development of a new propulsion theory and navigation theory are indispensable. As a promising approach, space drive propulsion theory and Hyper-Space navigation method given by a space-time featuring an imaginary time (i.e., Time-Hole) are introduced. Space drive propulsion system is one of field propulsion system utilizing the action of the medium of strained or deformed field of space. The curvature of space plays a significant role for the propulsion theory. On the other hand, a plunging into Hyper-Space characterized by imaginary time would make the interstellar travel possible in a short time. The Hyper-Space navigation theory would allow a starship to start at any time and from any place for an interstellar travel to the farthest star systems, the whole mission time being within human lifetime. Space propulsion physics such as propulsion theory and navigation theory give us a concrete theoretical method toward galaxy exploration. This paper describes a summary of each theme (Continuum mechanics of Space-Time, Space drive propulsion, Hyper-Space navigation) published so far by author.
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