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引用次数: 5

摘要

飞机的自动导航可以通过许多方法来实现。在与地面的辐射接触令人满意的地方,诸如传统无线电测距和最近发展的双曲网格技术等系统是经济的,通常是可靠的。然而,在地球的某些地区和某些大气条件下,这些类型的无线电辅助可能不可靠。其他涉及与地面辐射接触的系统包括无线电测绘技术和多普勒导航;这些通常需要更昂贵的机载设备,尽管它们较少受到大气干扰。但由于在军事应用中,飞机的辐射提供了一种潜在的敌方探测手段,这种技术相对来说是不受欢迎的。目前,多普勒系统最不容易受到这种反对意见的影响。惯性导航利用加速度检测和积分来获取飞行器在地球表面上的运动信息。它独立于辐射接触,因此不受这种检测。另一方面,它也会受到仪器缺陷造成的误差的影响。特别是,基本陀螺仪的漂移导致指示位置的累积误差;因此,纯惯性自动导航仪的飞行时间是有限的,其指示是令人满意的准确。使用光电望远镜(星跟踪器)与惯性系统相结合提供了一个基本惯性空间的联系,例如最小化或消除陀螺漂移的累积效应。这样的组合被称为恒星惯性自动导航仪。
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Stellar Inertial Navigation
Automatic navigation of aircraft may be accomplished in a number of ways. Where radiative contact with the ground is satisfactory, systems such as the conventional radio ranges and the more recently developed hyperbolic grid techniques are economical and normally reliable. However, in some regions of the earth and under certain atmospheric conditions, these types of radio aids may not be reliable. Other systems that involve radiative contact with the ground include radio mapping techniques and Doppler navigation; these generally require more expensive airborne equipment, although they are less subject to atmospheric disturbances. But since in military applications radiation from an aircraft furnishes a potential means of enemy detection, such techniques are relatively undesirable. At the present time, Doppler systems are the least subject to this objection. Inertial navigation makes use of acceleration detection and integration for obtaining information on the progress of the aircraft over the surface of the earth. It is independent of radiative contacts, and therefore free from such detection. On the other hand, it is subject to errors resulting from instrumental imperfections. In particular, drift of the essential gyroscopes leads to cumulative errors in indicated position; consequently, pure inertial autonavigators are limited in the flight time over which their indications are satisfactorily accurate. Use of photoelectric telescopes (star trackers) in combination with an inertial system provides a tie to basic inertial space, such as to minimize or eliminate the cumulative effect of gyro drift. Such a combination is known as a stellar inertial autonavigator.
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