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61.
62.
普通脉冲雷达由于存在地物杂波干扰不能探测到低空飞行的飞机,多普勒雷达由此应运而生.雷锡恩公司首次研制了连续波多普勒雷达,并将之应用于“麻雀”和“霍克”导弹中.以后人们又研制了脉冲多普勒雷达,它兼有脉冲雷达和连续波雷达的特性.介绍雷锡恩公司研制连续波雷达中的关键技术,叙述防空问题的特殊观点.详细论述低空防空武器制导系统的基本技术问题(主要有指令、噪声和尖叫声等)和解决这些问题的主要途径.最后介绍低空防空导弹技术和雷达技术的进展以及现状.  相似文献   
63.
低成本空间运输对保证正常扩大利用空间以及维持所需的地面/空间基地后勤支援是非常重要的.介绍了如何建立空间运输决策支持系统.重点介绍如何在该系统中采用费用-效果分析技术和分析程序.其目的是要提供一种计算机化的决策支持系统,使用户能按费用、进度和技术参数等来组成和评审空间运输系统结构.这种系统和用户有很强的交互作用性,能允许用户针对相同的和在变化中的判据来评审/比较多种空间运输系统方案.  相似文献   
64.
MX第一级     
1980年在 Montery 召开的 JANNAF 会议上,介绍了 MX 第一级原始方案论证及制订的研制方案。这篇新资料评论了最初的两次静态试验所取得的结果。  相似文献   
65.
1 前言通用测试设备部研制和试验导弹公司所生产的英国现有导弹遥测系统遵循的是多年以前建立的标准。与过去相比,现在的武器试验次数较少而要测的参数却数量大种类多;因而,现有的遥测系统不能完全适合目前的要求。此外,随着国际性合作发展武器的增多和英国武器在国外靶场的发射以及英国靶  相似文献   
66.
The present paper reports a kinetic analysis of changes of some physiological parameters, obtained from international literature, after changes in gravitational environment. The overall phenomenology of the adaptation to weightlessness is characterized by a rapid process followed by a slow one. The two processes show half time values differing by about five times. Also in the case of readaptation to gravity, after recovery on the Earth, two well resolved processes, showing different half time values, are observed. It is of interest to notice that the rate of response to weightlessness is lower than that to gravity. Of course, the half time values observed depend on the different physiological parameters considered. In any case, the experimental data suggest a general trend of many adaptive changes, that may all be described by a simple mathematical model.  相似文献   
67.
Blood pressure at 30-sec intervals, heart rate, and percentage increase in leg volume continuously were recorded during a 25-min protocol in the M092 Inflight Lower Body Negative Pressure (LBNP) experiment carried out in the first manned Skylab mission. These data were collected during six tests on each crewman over a 5-month preflight period. The protocol consisted of a 5-min resting control period, 1 min at -8, 1 min at -16, 3 min at -30, 5 min at -40, and 5 min at -50 mm Hg LBNP. A 5-min recovery period followed. Inflight tests were performed at approximately 3-day intervals through the 28-day mission. Individual variations in cardiovascular responses to LBNP during the preflight period continued to be demonstrated in the inflight tests. Measurements of the calf indicated that a large volume of fluid was shifted out of the legs early in the flight and that a slower decrease in leg volume, presumably due to loss of muscle tissue, continued throughout the flight. Resting heart rates tended to be low early in the flight and to increase slightly as the flight progressed. Resting blood pressure varied but usually was characterized by slightly elevated systolic blood pressure, lower diastolic pressure, and higher pulse pressures than during preflight examinations. During LBNP inflight a much greater increase in leg volume occurred than in preflight tests. Large increases occurred even at the smallest levels of negative pressure, suggesting that the veins of the legs were relatively empty at the beginning of the LBNP. The greater volume of blood pooled in the legs was associated with greater increases of heart rate and diastolic pressure and larger falls of systolic and pulse pressure than seen in preflight tests. The LBNP protocol represented a greater stress inflight, and on three occasions it was necessary to stop the test early because of impending syncopal reactions. LBNP responses inflight appeared to predict the degree of postflight orthostatic intolerance. Postflight responses to LBNP during the first 48 hours were characterized by marked elevations of heart rate and instability of blood pressure. In addition, systolic and diastolic pressures were typically elevated considerably both at rest and also during stress. The time required for cardiovascular responses to return to preflight levels was much slower than in the case of Apollo crewmen.  相似文献   
68.
Prediction that the various stresses of flight, particularly weightlessness, would bring about significant derangements in the metabolism of the musculoskeletal system has been based on various observations of long-term immobilized or inactive bed rest. The only attempt at controlled measurement of metabolic changes in space prior to Skylab, a study during the 14-day Gemini VII flight, revealed rather modest losses of important elements. The three astronauts of Skylab II consumed a planned day-by-day, quite constant, dietary intake of major metabolic elements in mixed foods and beverages and provided virtually complete collections of excreta for 31 days preflight, during the 28 days inflight, and for 17 days postflight. Analyses showed that, in varying degree among the crewmen, urinary calcium increased gradually during flight in a pattern similar to that observed in bed-rest studies: the mean plateau peak of urinary calcium excretion in the latter part of flight was double preflight levels. Fecal calcium excretion did not change significantly, but calcium balance, owing to the urinary calcium rise, became either negative or less positive than in preflight measurement. Increased excretion and negative balance of nitrogen and phosphorus indicated appreciable loss of muscle tissue in all three crewmen. Significant losses also occurred inflight in potassium, sodium, and magnesium. Based on the similarity in pattern and degree between these observations and those in bed rest of the losses in calcium, phosphorus, and nitrogen, musculoskeletal integrity would not be threatened in space flights of up to at least 3 months. However, if similar changes occur, indicative of continuing losses of these elements, in the planned Skylab flights for considerably more than 28 days, concern for capable musculoskeletal function should be serious for flights of very many months' duration, and greater research attention will need to be given to development of protective counter-measures.  相似文献   
69.
先进靶场测试飞机(ARIA)是一个空中平台,用于接收、记录、处理和转发遥测数据。本文扼要介绍ARIA的性能,特别着重于介绍改进后的ARIA——控制巡航导弹的飞机(CMMCA)。目前,巡航导弹试验中使用CMMCA具有机上实时显示遥测数据和进行远距离指令和遥控试验导弹的特点  相似文献   
70.
雷达的作用是向其他系统提供信息,这是不会改变的.现在雷达采用了各种技术,这使雷达比以往任何时候都更经常地采用反馈控制方法来获得韧性、适应性和容量.使雷达对已取得的数据起反应,使反馈控制技术的全部效益发挥出来,只有这样才能设计出更为有价值的雷达来.  相似文献   
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