红外与激光工程
紅外與激光工程
홍외여격광공정
INFRARED AND LASER ENGINEERING
2014年
11期
3825-3831
,共7页
离轴反射%扩束系统%平面反射镜%激光干扰%分析
離軸反射%擴束繫統%平麵反射鏡%激光榦擾%分析
리축반사%확속계통%평면반사경%격광간우%분석
off﹣axis reflection%beam expanding system%turning plane reflector%laser jamming%analysis
随着光电传感技术的快速发展,对于红外干扰技术的要求也越来越高,常规系统已经无法满足能量高度集中、隐蔽性好的新要求。基于此原因,提出了一种离轴双反射式激光干扰扩束系统的设计方案,并对系统主要部件包括离轴双反射式镜组、平面反射镜及固定支撑结构进行了详细的设计与分析。为了缩小系统尺寸,采用了一种新的平面反射镜支撑结构;为减小镜面变形,离轴双反射式镜组及平面反射镜均采用微应力固定设计。仿真实验结果显示,系统一阶固有频率为45.68 Hz,其固定支撑结构应力远小于材料屈服强度。测试结果表明,系统的两轴一致性误差小于等于0.3 mrad,并可以实现1:12.01的扩束比,满足设计指标要求。
隨著光電傳感技術的快速髮展,對于紅外榦擾技術的要求也越來越高,常規繫統已經無法滿足能量高度集中、隱蔽性好的新要求。基于此原因,提齣瞭一種離軸雙反射式激光榦擾擴束繫統的設計方案,併對繫統主要部件包括離軸雙反射式鏡組、平麵反射鏡及固定支撐結構進行瞭詳細的設計與分析。為瞭縮小繫統呎吋,採用瞭一種新的平麵反射鏡支撐結構;為減小鏡麵變形,離軸雙反射式鏡組及平麵反射鏡均採用微應力固定設計。倣真實驗結果顯示,繫統一階固有頻率為45.68 Hz,其固定支撐結構應力遠小于材料屈服彊度。測試結果錶明,繫統的兩軸一緻性誤差小于等于0.3 mrad,併可以實現1:12.01的擴束比,滿足設計指標要求。
수착광전전감기술적쾌속발전,대우홍외간우기술적요구야월래월고,상규계통이경무법만족능량고도집중、은폐성호적신요구。기우차원인,제출료일충리축쌍반사식격광간우확속계통적설계방안,병대계통주요부건포괄리축쌍반사식경조、평면반사경급고정지탱결구진행료상세적설계여분석。위료축소계통척촌,채용료일충신적평면반사경지탱결구;위감소경면변형,리축쌍반사식경조급평면반사경균채용미응력고정설계。방진실험결과현시,계통일계고유빈솔위45.68 Hz,기고정지탱결구응력원소우재료굴복강도。측시결과표명,계통적량축일치성오차소우등우0.3 mrad,병가이실현1:12.01적확속비,만족설계지표요구。
With the rapid development of photoelectric sensor technology, the infrared interference technology is required higher. Routine system can not be satisfied with the new demands of energy concentration and good concealment. Based on these reasons, this paper put forward a design scheme regarding of an off﹣axis double reflector type of laser jamming applied at beam expanding system. It designed and analyzed the optical﹣mechanical structure of such key parts as the components of off﹣axis double reflectors, the turning plane reflector and supporting and fixing mechanisms. A special structure design of turning plane reflector was adopted with a view to decreasing the size of the system; the design of micro﹣stress was adopted for components of both the main and secondary reflectors and the turning plane reflector. Simulation results showed that the first order natural frequency was 46.85 Hz, and stress responses of the structure was also far less than yield limit of the material. After the actual detection, the consistency of two axes was below or equal to 0 . 3 mrad and the beam expanding ratio obtained was 1:12.01, meeting the requirement of designed technical index.