Main characteristics and perspectives of development of laser gyroscopes

S. Alpert
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Abstract

Nowadays unmanned aerial vehicles (drones) are applied for solution numerous remote sensing tasks. They give a new opportunites for conducting environmental monitoring and give images with a very high resolution. Unmanned aerial vehicles are applied for solution numerous agricultural problems. They give a detail picture of fields. Unmanned aerial vehicles are used to help increase crop production. With technology constantly improving, imaging of the crops will need to improve as well.Digital images obtained by unmanned aerial vehicles (drones) can be used in forestry, they are used for environmental monitoring, plant health assessment and analysis of natural disasters. Unmanned aerial vehicles are also used for mining, they are applied for mapping deposit sites, exploring for oil and gas, surveying mines.Laser gyroscope is an essential component of a drones flight control system. Laser gyroscopes provides orientation control of drone and essential navigation information to the central flight control systems. Laser gyroscopes provide navigation information to the flight controller, which make drones easier and safer to fly. Laser gyroscope is one of the most important components, allowing the drone to fly smooth even in strong winds. The smooth flight capabilities allows us to get images with high precision.Nowadays the main function of gyroscope technologies is to improve the unmanned aerial vehicles flight capabilities. It was described a structure and main characteristics of laser gyroscopes. It was noted, that laser gyroscope is operated on the principle of the Sagnac effect. Sagnac effect is a phenomenon encountered in interferometry that is elicited by rotation. It were described main advantages and disadvantages of laser gyroscopes. A comparative analysis of mechanical and laser gyroscopes was carried out too.It also was noted, that laser gyroscopes are applied in different areas, such as: inertial navigation systems, aircraft, ships, unmanned aerial vehicles (drones) and satellites. Nowadays laser technology is developed further. There are all prerequisites for improving the precision and other technical characteristics of laser gyroscopes.
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激光陀螺仪的主要特点及发展前景
目前,无人驾驶飞行器(无人机)被用于解决许多遥感任务。它们为进行环境监测提供了新的机会,并提供了非常高分辨率的图像。无人机被应用于解决许多农业问题。它们给出了田野的详细图像。无人驾驶飞行器被用来帮助增加作物产量。随着技术的不断进步,农作物的成像也需要改进。无人机获取的数字图像可用于林业,用于环境监测、植物健康评估和自然灾害分析。无人驾驶飞行器也用于采矿,它们被应用于测绘矿床地点,勘探石油和天然气,测量矿山。激光陀螺仪是无人机飞行控制系统的重要组成部分。激光陀螺仪为无人机提供方向控制,并为中央飞行控制系统提供必要的导航信息。激光陀螺仪为飞行控制器提供导航信息,使无人机飞行更容易、更安全。激光陀螺仪是最重要的部件之一,使无人机即使在强风中也能平稳飞行。平滑的飞行能力使我们能够获得高精度的图像。目前,陀螺仪技术的主要作用是提高无人机的飞行能力。介绍了激光陀螺仪的结构和主要特点。有人指出,激光陀螺仪是根据萨格纳克效应原理工作的。萨格纳克效应是干涉测量中由于旋转引起的一种现象。介绍了激光陀螺仪的主要优点和缺点。并对机械陀螺仪和激光陀螺仪进行了对比分析。会议还指出,激光陀螺仪应用于不同领域,例如:惯性导航系统、飞机、船舶、无人驾驶飞行器和卫星。如今,激光技术得到了进一步的发展。这些都是提高激光陀螺仪精度和其他技术特性的先决条件。
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