排序方式: 共有55条查询结果,搜索用时 15 毫秒
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为对比不同形状接受孔的预旋系统内气流流动特性,通过数值模拟方法,对带有不同形状接受孔的预旋系统进行了研究。研究发现:收缩型接受孔入口截面气流流通面积较大,相对速度较小,在预旋系统中的性能最优,其次是类梯型,最后是直孔型。同一旋转雷诺数下,带收缩型接受孔的预旋系统无量纲温降较直孔型提高5.8%,总压损失系数降低3.0%。三种类型接受孔的预旋系统无量纲温降和总压损失系数均随进出口压比的增加而增大,在相同压比下,收缩型接受孔预旋系统无量纲温降最大,总压损失系数最小。 相似文献
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Heloísa Alves da Silva Paulo de Oliveira Camargo João Francisco Galera Monico Marcio Aquino Haroldo Antonio Marques Giorgiana De Franceschi Alan Dodson 《Advances in Space Research (includes Cospar's Information Bulletin, Space Research Today)》2010
Global Navigation Satellite Systems (GNSS), in particular the Global Positioning System (GPS), have been widely used for high accuracy geodetic positioning. The Least Squares functional models related to the GNSS observables have been more extensively studied than the corresponding stochastic models, given that the development of the latter is significantly more complex. As a result, a simplified stochastic model is often used in GNSS positioning, which assumes that all the GNSS observables are statistically independent and of the same quality, i.e. a similar variance is assigned indiscriminately to all of the measurements. However, the definition of the stochastic model may be approached from a more detailed perspective, considering specific effects affecting each observable individually, as for example the effects of ionospheric scintillation. These effects relate to phase and amplitude fluctuations in the satellites signals that occur due to diffraction on electron density irregularities in the ionosphere and are particularly relevant at equatorial and high latitude regions, especially during periods of high solar activity. As a consequence, degraded measurement quality and poorer positioning accuracy may result. 相似文献
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卫星射频接收机电磁兼容防护设计方法 总被引:3,自引:0,他引:3
射频接收机是卫星测控、导航、有效载荷等分系统的重要组成设备,也是对电磁干扰最为敏感的设备,在对卫星进行电磁兼容性(EMC)设计时,必须充分考虑射频接收机的EMC防护,以保证其在卫星电测、发射和在轨运行时能够在其所处电磁环境中正常工作.文章描述了卫星射频接收机典型的EMC防护设计方法,从屏蔽、电磁泄露防护和天线耦合防护等方面进行了阐述. 相似文献
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从理论上推导全球导航卫星系统(GNSS)中基于双星故障的接收机自主完好性监测(RAIM)中的两个基本定理,为基于双星故障的RAIM技术提供了理论支撑。第一个定理给出了RAIM中奇偶矢量与导航误差的关系,指出了两者的统计独立性,它表明只能通过多次测量的累积以统计方法得到导航定位精度;第二个定理指出可通过偏差修正方式得到正确的导航解。这两个结论与单星故障假设条件下得到的结论是相同的,这就表明,基于单星故障假设的RAIM方法,其基本原理是可以通用于双星以至于多星故障情形的,只需在具体操作上进行适应性改进。另外,推导方法本身也提供了一种进行GNSS分析的有力工具。 相似文献
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为得到弹目交会过程中超宽带无线电引信接收机的时域输出信号,实现高速交会条件下引信接收机的性能优化,推导了取样积分微分电路的时域数学模型,提出了一种基于无载波信号时域多普勒效应的接收机输出信号时域仿真方法.弹目接近速度对接收机输出信号的影响研究表明,输出信号频率与弹目接近速度成正比;信号幅度与弹目接近速度关系曲线存在速度驻点.选择合理的积分、微分电容可设置恰当的速度驻点,提高引信的抗干扰性能. 相似文献
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自动校相技术在现代测控雷达中的实现 总被引:2,自引:0,他引:2
介绍自动校相技术的程序设计及其在工程中的应用,详细叙述了该软件关键部分的设计技术。 相似文献
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《Advances in Space Research (includes Cospar's Information Bulletin, Space Research Today)》2020,65(8):1941-1950
PPP (Precise Point Positioning) is a GNSS (Global Navigation Satellite Systems) positioning method that requires SSR (State Space Representation) corrections in order to provide solutions with an accuracy of centimetric level. The so-called RT-PPP (Real-time PPP) is possible thanks to real-time precise SSR products, for orbits and clocks, provided by IGS (International GNSS Service) and its associate analysis centers such as CNES (Centre National d'Etudes Spatiales). CNES SSR products also enable RT-PPP with integer ambiguity resolution. In GNSS related literature, PPP with ambiguity resolution (PPP-AR) in real-time is often referred as PPP-RTK (PPP – Real Time Kinematic). PPP-WIZARD (PPP - With Integer and Zero-difference Ambiguity Resolution Demonstrator) is a software that is made available by CNES. This software is capable of performing PPP-RTK. It estimates slant ionospheric delays and other GNSS positioning parameters. Since ionospheric effects are spatially correlated by GNSS data from active networks, it is possible to model and provide ionospheric delays for any position in the network coverage area. The prior knowledge ionospheric delays can reduce positioning convergence for PPP-RTK users. Real-time ionospheric models could benefit from highly precise ionospheric delays estimated in PPP-AR. In this study, we demonstrate that ionospheric delays obtained throughout PPP-AR estimation are actu ally ionospheric observables. Ionospheric observables are biased by an order of few meters caused by the receiver hardware biases. These biases prohibit the use of PPP-WIZARD ionospheric delays to produce ionospheric models. Receiver biases correction is essential to provide ionospheric delays while using PPP-AR based ionospheric observables. In this contribution, a method was implemented to estimate and mitigate receiver hardware biases influence on slant ionospheric observables from PPP-AR. In order to assess the proposed approach, PPP-AR data from 12 GNSS stations were processed over a two-month period (March and April 2018). A comparison between IGS ionospheric products and PPP-AR based ionospheric observables corrected for receiver biases, resulted in a mean of differences of −39 cm and 51 cm standard deviation. The results are consistent with the accuracy of the IGS ionospheric products, 2–8 TECU, considering that 1 TECU is ~16 cm in L1. In another analysis, a comparison of ionospheric delays from 5 pairs of short baselines GNSS stations found an agreement of 0.001 m in mean differences with 22 cm standard deviation after receiver biases were corrected. Therefore, the proposed solution is promising and could produce high quality (1–2 TECU) slant ionospheric delays. This product can be used in a large variety of modeling approaches, since ionospheric delays after correction are unbiased. These results indicate that the proposed strategy is promising, and could benefit applications that require accuracy of 1–2 TECU (~16–32 cm in L1). 相似文献
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微波辐射计接收机的线性度是表征输入噪声温度与输出电压间的关系,采用双位开关衰减器法实现等功率电平测量微波辐射计接收机的线性度。该方法是在已知输出温度的低温噪声源之后,接有一个双位开关衰减器,这个双位开关衰减器只有二个档位,要么是直通,要么是通过一个固定的小衰减量。多次交替开关,可使达到接收机的输入量每次的增加是个相同量,这样就能完成接收机线性度的准确测量。简述测量原理、方法和测量不确定度分析。 相似文献