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81.
空间光学相机调焦技术研究   总被引:1,自引:0,他引:1  
调焦技术是空间光学相机研制的关键技术之一,对于保证相机成像质量具有重要作用.文章阐述了造成相机离焦的主要因素,在调研分析国内外空间光学相机调焦方式的基础上,对相机调焦方式的选用原则进行了归纳,并介绍了常用调焦机构的基本结构形式和优缺点,以及具有发展前景的调焦光学元件,可为相机调焦技术的研究提供借鉴和帮助.  相似文献   
82.
光纤环是光纤陀螺的核心敏感部件,其内部应力值的大小和分布对光纤陀螺的整体性能有很大影响.光纤环的内部应力主要包含拉伸应力、弯曲应力和固化应力等,光纤环的绕制工艺和固化工艺等都会对光纤环的应力产生影响.通过测量不同绕制工艺下光纤环的应力分布和偏振串扰分布,得出光纤环绕制张力越小、光纤环直径越大、固化胶的收缩率越小,光纤环的应力也越小,相应的偏振串扰值也越小,为光纤环绕制技术的提高提供依据.  相似文献   
83.
基于任意角度压缩感知(CS)方法分析了传感器安装角度偏差对风扇/压气机周向模态识别重构的影响,设计了一套自适应角度优化程序修正重构误差。利用数值试验探究了传感器角度偏差和数量对周向模态重构结果的影响,研究表明:当角度偏差等级为2.5%时,平均重构误差达到10%以上,若保证重构误差基本不变,将传感器数量从7个增加至25个,仅可以将角度偏差等级放宽至4%。而采用小生境微种群遗传算法进行自适应角度优化,在20 dB信噪比下,通过自适应角度优化可将角度偏差等级从2.5%放宽至10%,降低了传感器安装的精度要求。成功优化了一款冷却风扇在前三阶叶片通过频率下的主要周向声模态重构幅值。自适应角度优化算法有效提升了基于压缩感知的风扇/压气机周向模态重构可靠性。  相似文献   
84.
目前,监测传感器传出信号中混有很多噪声,为提高信号可信度,需要一种有效的信号处理方法。文章基于Matlab仿真环境,完成了信号仿真和滤波算法的设计,重点对单传感器仿真信号的去噪和多传感器信息融合进行了研究,提出了基于中值滤波和小波阈值滤波的混合滤波方案和基于Kalman滤波的信号融合方案。研究工作有:基于高斯白噪声和脉冲噪声的数学特性,合理假设出5种基本信号形式;依据实际数据,完成单传感器和多传感器信号仿真,确定信噪比和均方根误差作为去噪评定指标;综合分析现有的滤波算法的滤波特性,利用不同长度滑动窗口的中值滤波处理实验信号,选取合适长度的滑动窗口。设置对比实验确定小波阈值滤波中的小波基函数选取、阈值计算和分解尺度等参数;融合中值滤波和小波阈值滤波优势,设计混合滤波方案,去除单传感器仿真信号中的噪声;研究信息融合理论在泄漏监测系统中的应用,设置不同融合方式下的对比实验,确立最佳融合方式下的Kalman滤波方案,实现多传感器信息融合。  相似文献   
85.
温室监控系统是对温室环境中温度、湿度、光照度等环境因子实施监测与调控的农业设施,可确保农作物获得最适宜的生长发育环境。针对现有温室监控系统在通信上存在距离受限、组网复杂、能耗高且基本仅能实现单个温室控制的问题,设计了一种基于LoRa和NB-IoT相结合的智慧温室群远程监控系统通信模式。该模式以STM32F103C8T6单片机为核心控制器件,采用ATK-LoRa SX1278和NB-IoT模块自组无线通信网实现数据的远程交互。测试结果表明:采用该通信模式可实现温室群中各温室间距离在2km范围内的数据采集、处理和传输,其通信距离远、功耗低,数据传输可靠性符合现代化农业物联网的需求。  相似文献   
86.
垂直腔面发射激光器(Vertical-cavity Surface-emitting Laser,VCSEL)是半导体激光器家族中的最重要成员之一,因其具有单纵模、低功耗、光束易整形等一系列独特优势,是多种微型化原子传感器的理想光源。围绕原子传感这一应用需求,国内外多个科研机构和企业对Rb原子和Cs原子传感用VCSEL开展了不同层次的研究,主要对其中的代表性研究进展进行综述。  相似文献   
87.
本文面向直升机健康与使用监测系统(HUMS)的现场计量保障需求,针对其中振动传感器在低频段尚无法实现现场校准的现状,提出了基于直线电机驱动技术的便携式低频振动校准技术方案。该方案利用高精度直线电机构造低频标准振动源,采用稳定性高的石英挠性加速度计作为标准加速度计,具有体积小、精度高、现场环境适应性好的特点,非常适用直升机HUMS的现场计量保障。根据不确定度评估结果,该方案能够实现0.5Hz~20Hz频率范围,0.01m/s~2~20m/s~2加速度范围内不超过1%的校准不确定度(k=2)。  相似文献   
88.
Remote sensing scientists work under assumptions that should not be taken for granted and should, therefore, be challenged. These assumptions include the following:1. Space, especially Low Earth Orbit (LEO), will always be available to governmental and commercial space entities that launch Earth remote sensing missions.2. Space launches are benign with respect to environmental impacts.3. Minimization of Type 1 error, which provides increased confidence in the experimental outcome, is the best way to assess the significance of environmental change.4. Large-area remote sensing investigations, i.e. national, continental, global studies, are best done from space.5. National space missions should trump international, cooperative space missions to ensure national control and distribution of the data products.At best, all of these points are arguable, and in some cases, they're wrong. Development of observational space systems that are compatible with sustainability principles should be a primary concern when Earth remote sensing space systems are envisioned, designed, and launched. The discussion is based on the hypothesis that reducing the environmental impacts of the data acquisition step, which is at the very beginning of the information stream leading to decision and action, will enhance coherence in the information stream and strengthen the capacity of measurement processes to meet their stated functional goal, i.e. sustainable management of Earth resources. We suggest that unconventional points of view should be adopted and when appropriate, remedial measures considered that could help to reduce the environmental footprint of space remote sensing and of Earth observation and monitoring systems in general. This article discusses these five assumptions in the context of sustainable management of Earth's resources. Taking each assumption in turn, we find the following:(1) Space debris may limit access to Low Earth Orbit over the next decades.(2) Relatively speaking, given that they're rare event, space launches may be benign, but study is merited on upper stratospheric and exospheric layers given the chemical activity associated with rocket combustion by-products.(3) Minimization of Type II error should be considered in situations where minimization of Type I error greatly hampers or precludes our ability to correct the environmental condition being studied.(4) In certain situations, airborne collects may be less expensive and more environmentally benign, and comparative studies should be done to determine which path is wisest.(5) International cooperation and data sharing will reduce instrument and launch costs and mission redundancy. Given fiscal concerns of most of the major space agencies – e.g. NASA, ESA, CNES – it seems prudent to combine resources.  相似文献   
89.
The Clouds and Earth Radiant Energy System (CERES) project’s objectives are to measure the reflected solar radiance (shortwave) and Earth-emitted (longwave) radiances and from these measurements to compute the shortwave and longwave radiation fluxes at the top of the atmosphere (TOA) and the surface and radiation divergence within the atmosphere. The fluxes at TOA are to be retrieved to an accuracy of 2%. Improved bidirectional reflectance distribution functions (BRDFs) have been developed to compute the fluxes at TOA from the measured radiances with errors reduced from ERBE by a factor of two or more. Instruments aboard the Terra and Aqua spacecraft provide sampling at four local times. In order to further reduce temporal sampling errors, data are used from the geostationary meteorological satellites to account for changes of scenes between observations by the CERES radiometers.  相似文献   
90.
The Global Navigation Satellite System (GNSS) has been a very powerful and important contributor to all scientific questions related to precise positioning on Earth’s surface, particularly as a mature technique in geodesy and geosciences. With the development of GNSS as a satellite microwave (L-band) technique, more and wider applications and new potentials are explored and utilized. The versatile and available GNSS signals can image the Earth’s surface environments as a new, highly precise, continuous, all-weather and near-real-time remote sensing tool. The refracted signals from GNSS radio occultation satellites together with ground GNSS observations can provide the high-resolution tropospheric water vapor, temperature and pressure, tropopause parameters and ionospheric total electron content (TEC) and electron density profile as well. The GNSS reflected signals from the ocean and land surface could determine the ocean height, wind speed and wind direction of ocean surface, soil moisture, ice and snow thickness. In this paper, GNSS remote sensing applications in the atmosphere, oceans, land and hydrology are presented as well as new objectives and results discussed.  相似文献   
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