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Hui Lei ZhiGang Li XuHai Yang WenJun Wu Xuan Cheng Ying Yang ChuGang Feng 《Advances in Space Research (includes Cospar's Information Bulletin, Space Research Today)》2011
A new strategy of precise orbit determination (POD) for GEO (Geostationary Earth Orbit) satellite using SATRE (SAtellite Time and Ranging Equipment) is presented. Two observation modes are proposed and different channels of the same instruments are used to construct different observation modes, one mode receiving time signals from their own station and the other mode receiving time signals from each other for two stations called pairs of combined observations. Using data from such a tracking network in China, the results for both modes are compared. The precise orbit determination for the Sino-1 satellite using the data from 6 June 2005 to 13 June 2005 has been carried out in this work. The RMS (Root-Mean-Square) of observing residuals for 3-day solutions with the former mode is better than 9.1 cm. The RMS of observing residuals for 3-day solutions with the latter mode is better than 4.8 cm, much better than the former mode. Orbital overlapping (3-day orbit solution with 1-day orbit overlap) tests show that the RMS of the orbit difference for the former mode is 0.16 m in the radial direction, 0.53 m in the along-track direction, 0.97 m in the cross-track direction and 1.12 m in the 3-dimension position and the RMS of the orbit difference for the latter mode is 0.36 m in the radial direction, 0.89 m in the along-track direction, 1.18 m in the cross-track direction and 1.52 m in the 3-dimension position, almost the same as the former mode. All the experiments indicate that a meter-level accuracy of orbit determination for geostationary satellite is achievable. 相似文献
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基于浮空器的新型应急通信监测系统 总被引:1,自引:0,他引:1
介绍了一种新型的机动式空中应急通信监测系统,该系统以机动式系留气球和小型遥控飞艇为空中平台,搭载各种通信、侦察、监测等电子设备,具有快速灵活、机动性强、费用低廉等特点,能够适应复杂环境,面对突发事件时可以快速布置到任何需要的地方。 相似文献
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Chi Pei Chen Zongji Zhou Rui Wei Chen 《中国航空学报》2007,20(5):443-451
未来空天飞行器跨空天两域飞行,要求有较高的自主性以适应由故障和环境变化带来的不确定因素。针对空天飞行器的不确定性,提出了自主控制重构方案。研究了线性模型的时变控制效益的估计方法,提出并证明了效益矩阵可估计的充分条件,给出了相应的算法并证明了其收敛性和对噪声的鲁棒性;提出了基于线性规划和模糊逻辑的控制分配算法,通过冗余效应器实现了不确定条件下的自主控制重构。系统集成和仿真结果分析验证了方案和算法的有效性。 相似文献
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高精度电磁标定力源是微推力测量系统的重要组成要素之一。为了获得性能优良的电磁标定力,本文综合采用数值模拟及实验测量两种方法分析研究了线圈和永磁铁相对位置变化时,磁铁几何尺寸对电磁力输出特性的影响:对于直径较大、厚度较小的永磁铁而言,其电磁力随相对位置的变化会存在极值,且极值点附近的电磁力具有较好的稳定性和一致性。根据电磁力变化趋势特性,提出了线圈和永磁铁相对基准中心(极值点)位置的高精度设置方案,且基准中心位置附近的电磁力变异系数可达0.00252,为高性能电磁力的获得提供了基础。最后,确定了大直径永磁铁+线圈组合型电磁力产生装置,并基于拟合方法建立了一定包络区间内的高精度电磁力控制关系式,其拟合曲线的估计标准误差约为0.0137,为微推力测量台架的标定提供了理论指导和技术支持。 相似文献
49.
民用飞机主制造商建立设计保证系统,旨在民机研制过程中充分发挥自主适航的能力,通过组织机构、职责、程序和资源落实设计、适航以及独立监督三大职能,以保证航空产品的设计或者设计更改满足适航当局的要求。其中,设计保证系统适航职能的适航独立核查功能正是这一保证的关键。基于对设计保证系统适航独立核查功能的具体分析基础上,从设计保证系统的规划与设计层面提出了实现适航独立核查功能的机制,给出了机制中需明确的责任主体、职责与资质要求、工作流程与支撑工具以及管理程序等方面的建议,并从大数据知识的技术支撑和阶梯式递进的人才培训保障两方面以不断优化改进的方法工具与人力配置来深化适航独立核查的功能与效果,进而增强设计保证系统对飞机型号研制的保证作用。 相似文献
50.
P.A. Chaizy T.G. DimbylowP.M. Allan M.A. Hapgood 《Advances in Space Research (includes Cospar's Information Bulletin, Space Research Today)》2011
In this paper, Science Operations Planning Expertise (SOPE) is defined as the expertise that is held by people who have the two following qualities. First they have both theoretical and practical experience in operations planning, in general, and in space science operations planning in particular. Second, they can be used, on request and at least, to provide with advice the teams that design and implement science operations systems in order to optimise the performance and productivity of the mission. However, the relevance and use of such SOPE early on during the Mission Design Phase (MDP) is not sufficiently recognised. As a result, science operations planning is often neglected or poorly assessed during the mission definition phases. This can result in mission architectures that are not optimum in terms of cost and scientific returns, particularly for missions that require a significant amount of science operations planning. Consequently, science operations planning difficulties and cost underestimations are often realised only when it is too late to design and implement the most appropriate solutions. In addition, higher costs can potentially reduce both the number of new missions and the chances of existing ones to be extended. Moreover, the quality, and subsequently efficiency, of SOPE can vary greatly. This is why we also believe that the best possible type of SOPE requires a structure similar to the ones of existing bodies of expertise dedicated to the data processing such as the International Planetary Data Alliance (IPDA), the Space Physics Archive Search and Extract (SPASE) or the Planetary Data System (PDS). Indeed, this is the only way of efficiently identifying science operations planning issues and their solutions as well as of keeping track of them in order to apply them to new missions. Therefore, this paper advocates for the need to allocate resources in order to both optimise the use of SOPE early on during the MDP and to perform, at least, a feasibility study of such a more structured SOPE. 相似文献