底盘电压对GNSS接收机嵌入式导航计算机影响的实验研究、结果与设计改进

Biju Vs, Vinoj Vs, Anand Shankar O T, Mohammed Basim A, Radhakrishna Pillai C, S. S
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引用次数: 1

摘要

全球卫星导航系统(GNSS)接收机是提高低成本低地球轨道运载火箭IMU性能的理想选择。GNSS接收器可以嵌入导航处理器本身,以减小尺寸、重量和成本。运载火箭导航计算机作为任务关键部件,其接地方案、隔离技术和质量标准的设计一般都需要特别注意。将GNSS接收器集成到导航计算机中需要对设计进行重大更改。GNSS接收机的信号地是射频电路,需要与运载火箭的底盘相连。这与导航计算机中使用底盘与地面隔离的正常概念相矛盾。研制了用于运载火箭应用的GNSS嵌入式导航处理器(GNP)板,其中包含导航处理器和NavIC/GPS接收器。鉴于接地理念的变化,GNP板受到不同的测试,以模拟在运载火箭中常见的底盘潜在上升情况。模拟了不同的情况,如阶段分离时无意的底盘电压,仪表转换器对底盘的短路,对底盘的热或阀电池带电短路以及热或阀电池带电短路返回。对测试结果进行了严格的分析,并实施了一些设计改进,以使GNP对底盘电压更稳定。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Studies on the Impact of Chassis Voltage on a GNSS Receiver Embedded Navigation Computer, Results and Design Improvements
Global Navigation Satellite System (GNSS) receivers are a suitable candidate for aiding the performance of a low cost IMU for launch vehicle which injects satellites to Low Earth Orbit (LEO). The GNSS receiver can be embedded into the navigation processor itself for reducing size, weight and cost. The navigation computer in a launch vehicle, being a mission critical element is generally designed with special care w.r.t its grounding scheme, isolation techniques and quality standards. The incorporation of a GNSS receiver into the navigation computer calls for major design changes. Being an RF circuit, the signal ground of a GNSS receiver should be connected to chassis of the launch vehicle. This contradicts the normal notion of ground isolation with chassis followed in navigation computers. A GNSS embed Navigation Processor (GNP) board which houses a Navigation processor and a NavIC/GPS receiver is developed for launch vehicle applications. In view of the change in grounding philosophy, the GNP board is subjected different tests to simulate the chassis potential rise scenarios commonly seen in a launch vehicle. Different conditions like inadvertent chassis voltage during stage separation, instruments converter shorting to chassis, pyro or valve battery live shorting to chassis and pyro or valve battery live shorting to return are simulated. The tests results are critically analyzed and some design improvements are implemented to make GNP more robust to chassis voltages.
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