立方卫星的低成本定向确定系统仅基于太阳能和磁传感器
Yerkebulan Nurgizat1, Abu-Alim Ayazbay1, Dimitri Galayko2
1Institute of Telecommunications and Space Engineering, Almaty University of Power Engineering and Telecommunications Named G. Daukeev, Almaty 050062, Kazakhstan.
Sensors (Basel, Switzerland)
|July 29, 2023
概括
本研究介绍了使用太阳能和磁传感器的立方卫星的低成本定向系统. 它可以实现精确的卫星导航,这对于科学数据收集和太空任务至关重要.
科学领域:
- 太空飞船工程 太空飞船工程
- 态度的确定和控制系统.
- 微型化卫星技术的微型化卫星技术
背景情况:
- 准确的立方卫星定向对于任务的成功和科学数据的获取至关重要.
- 现有的定向系统可能是复杂和昂贵的,限制了它们在微型有效载荷中的应用.
研究的目的:
- 为立方卫星提供一个具有成本效益和可靠的定向系统.
- 用最小的传感器硬件展示精确的卫星导航.
- 为低成本导向系统提供数学模型和硬件实现.
主要方法:
- 利用太阳能传感器根据照明测量卫星与太阳相对的方向.
- 使用磁传感器在卫星的参考框架中确定地球的磁场向量.
- 将传感器数据与卫星短暂体相结合,重建卫星-太阳矢量和磁场方向.
主要成果:
- 使用仅两个传感器 (太阳能和磁性) 精确确定立方卫星的方向.
- 成功重建卫星-太阳矢量和磁场方向.
- 对拟议系统的数学模型和硬件实现的验证.
结论:
- 开发的太阳能和磁传感器系统为立方卫星导航提供了可靠且价格合理的解决方案.
- 这项技术支持微型有效载荷的日益复杂化,通过使精确的卫星定位成为可能.
- 该系统适用于复杂而昂贵的仪器不切实际的太空任务.
相关概念视频
Circular Orbits and Critical Velocity for Satellites
2.9K
The Moon orbits around the Earth. In turn, the Earth (and other planets) orbit the Sun. The space directly above our atmosphere is filled with artificial satellites in orbit. One can examine the circular orbit, the simplest kind of orbit, to understand the relationship between the speed and the period of planets and satellites with respect to their positions and the bodies that they orbit.
Nicolaus Copernicus (1473-1543) first suggested that the Earth and all other planets orbit the Sun in...
Nicolaus Copernicus (1473-1543) first suggested that the Earth and all other planets orbit the Sun in...
2.9K
Relative Motion Analysis using Rotating Axes-Problem Solving
421
Consider a crane whose telescopic boom rotates with an angular velocity of 0.04 rad/s and angular acceleration of 0.02 rad/s2. Along with the rotation, the boom also extends linearly with a uniform speed of 5 m/s. The extension of the boom is measured at point D, which is measured with respect to the fixed point C on the other end of the boom. For the given instant, the distance between points C and D is 60 meters.
Here, in order to determine the magnitude of velocity and acceleration for point...
Here, in order to determine the magnitude of velocity and acceleration for point...
421
Types of Global Positioning System Surveys
78
GPS surveying methods vary in application, accuracy, and data collection techniques, catering to diverse surveying and mapping needs. Static GPS, kinematic GPS, and real-time kinematic (RTK) surveying are widely used. Each technique offers distinct advantages.Static GPS involves placing one receiver at a known reference point and another at the target point. It collects exact positional data by observing multiple satellite ranges over an extended period, achieving centimeter-level accuracy for...
78
Magnetic Declination
65
Magnetic declination is the angle between true north, which aligns with the Earth's rotational axis, and magnetic north, which follows the direction of the Earth's magnetic field. This discrepancy exists because the magnetic poles do not coincide with the geographic poles. The value of magnetic declination depends on the observer's location on Earth and is subject to changes over time due to the dynamic nature of the Earth's magnetic field.The declination is called eastern when magnetic north...
65
Design Example: Identifying the Locations of Monuments in the Field Using Global Positioning System Device
78
Surveyors use Global Positioning System (GPS) technology to measure the precise location and elevation of points on Earth. In a recent survey, GPS receivers were used to determine the coordinates and elevations of two park monuments. The process involved careful mission planning, data collection, and correction to ensure accuracy. The survey began with mission planning to identify optimal satellite visibility and minimize Position Dilution of Precision (PDOP). A geodetic control point...
78
Gyroscope
3.0K
A gyroscope is defined as a spinning disk in which the axis of rotation is free to assume any orientation. When spinning, the orientation of the spin axis is unaffected by the orientation of the body that encloses it. The body or vehicle enclosing the gyroscope can be moved from place to place, while the orientation of the spin axis remains the same. This makes gyroscopes very useful in navigation, especially where magnetic compasses cannot be used, such as in crewed and crewless spacecraft,...
3.0K


