• 제목/요약/키워드: Gimbal Structure

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마이크로 웨이브 탐색기의 김발 구조물 진동해석(II) : 유한요소해석 (Vibration Analysis for Gimbal Structure of a Micro Wave Seeker(II) : Finite Element Analysis)

  • 장영배;전홍걸;이석규;윤재윤;박영필
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2000년도 춘계학술대회논문집
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    • pp.514-518
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    • 2000
  • Micro wave seeker consists of a gimbal structure, a antenna and many RF parts. And Missile's propelling powers excite a gimbal structure, a antenna and many RF parts. Therefore, We must inquire into external forces to act on a micro wave seeker before everything. We must inquire into design parameters and then estimate dynamic characteristics of a gimbal structure with a finite element model to reflect part's characteristics for design for a gimbal structure in consideration of vibration features. In this paper, a gimbal structure of a micro wave seeker is modeled in finite element method and then updated by using the experimental modal data. Before we make a finite element model of a gimbal structure of a micro wave seeker, we make a finite element model of a sub-structure and compare with the experimental modal data.

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영상정보 수집 장치용 짐발 구조물의 진동특성해석 (Vibration Characteristic Analysis Of Gimbal Structure in Collection Equipment of Image Information)

  • 이상은;이태원
    • 한국기계가공학회지
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    • 제9권2호
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    • pp.20-25
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    • 2010
  • A camera module is supported by a gimbal structure in collection equipment of image information. During flight, the gimbal system undergoes serious accelerations with wide frequencies. To get the correct images, the camera module must be stably vibrated under these conditions. If natural frequency unfortunately exists in a exciting frequency range, resonance occurs there. Hence, harmonic responses analysis is needed to know correct vibration characteristic of the gimbal system. Finite element analysis was performed to get an acceleration of the gimbal system by mode superposition after extracting mode shapes and natural frequencies. Considering damping ratio of 2%, the reponses of gimbal structure were calculated from excitations with a design frequency band. As results, a maximum acceleration transmissibility, which is the ratio of response to excitation, was obtained and it can be used to design the gimbal structure effectively.

마이크로 웨이브 탐색기의 김발 구조물 진동해석(I) : 실험모드해석 (Vibration Analysis for a Gimbal Structure of a Micro Wave Seeker(I) : Experimental Modal Analysis)

  • 이석규;장영배;이진구;권병현;박영필
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2000년도 춘계학술대회논문집
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    • pp.508-513
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    • 2000
  • Micro wave seeker detects micro wave signal reflecting from a object and modifies the angle of a antenna in the direction of a reflecting signal. Gimbal structure makes a motion in the direction of an elevation axis and an azimuth axis and change the direction of a missile toward a object. As before, Micro wave seeker is a important part of a missile. Especially, gimbal structure is designed to resist a external force generated by a strong propelling power. For that reason, it is essential to analyze a vibration feature of gimbal structure. In this paper, we analyze dynamic characteristics of a gimbal structure of a micro wave seeker. And we measure frequency response functions of a gimbal structure in order to investigate the effect of a pre-load on bearing.

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방진 고무를 포함한 항공 감시 정찰용 짐발 구조 시스템의 충격 해석 (Shock Analysis of Gimbal Structure System Including Rubber Vibration Isolator in a Observation Reconnaissance Aircraft)

  • 이상은;이태원;강용구
    • 한국기계가공학회지
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    • 제13권2호
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    • pp.73-80
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    • 2014
  • A camera module that gathers visual information via aerial observation reconnaissance is equipped inside a gimbal structure. This gimbal structure system must reduce dynamic responses in order to obtain clear images under all circumstances. Among many design specifications for this system, there is MIL-STD-810G as a shock standard. This specification indicates a limitation of the acceleration of the camera module under a base shock excitation on the gimbal structure. The satisfaction of this condition can usually be proved by experiment, because it includes bearings and dynamic isolators made of rubber. Numerical analysis must be proposed for design improvement of the gimbal structure. To achieve this goal, transient response analysis for the base shock excitation was performed using the finite element method. Experimental results were compared with numerical solutions and it is shown that the present method is useful.

조이스틱 명령에 따른 Electro-Optical Targeting Pod의 LOS 이동 알고리즘 설계 (LOS Moving Algorithm Design of Electro-Optical Targeting Pod for Joystick Command)

  • 서형규;박재영;안정훈
    • 전기학회논문지
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    • 제67권10호
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    • pp.1395-1400
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    • 2018
  • EO TGP(Electro-Optical Targeting Pod) is an optical tracking system which has various functions such as target tracking and image stabilization and LOS(Line of Sight) change. Especially, it is very important to move the LOS into a interest point for joystick command. When pilot move joystick in order to observe different scene, EO TGP gimbals should be operated properly. Generally, most EOTS just operate corresponding gimbal for joystick command. For example, if pilot input horizontal command in order to observe right hand screen, it just drive azimuth gimbal at any position. But in the screen, the image dosen't move in a horizontal direction because gimbal structure is Euler angle. And image rotation is occurred by elevation gimbal angle. So we need to move Pitch gimbal. So in the paper, we designed LOS moving algorithm which convert LOS command to gimbal velocity command to move LOS properly. We modeled a differential kinematic equation and then change the joystick command into velocity command of gimbals. This algorithm generate velocity command of each gimbal for same horizontal direction command. Finally, we verified performance through MATLAB/Simulink.

전자력을 이용한 평면 진동형 자이로스코프의 제작 (Fabrication of Planar Vibratory Gyroscope Using Electromagnetic Force)

  • 이상훈;김용권
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1993년도 정기총회 및 추계학술대회 논문집 학회본부
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    • pp.195-197
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    • 1993
  • In this paper, a planar vibratory gyroscope is designed and fabricated in macro model. Elementary experiment and test are done for micro model. This gyroscope has a double gimbal structure with an active dimension $80{\times}120{\times}1\;mm^3$. Outer gimbal vibration is generated by electromagnetic force using ferrite E-core wounded by coil. Inner gimbal vibration is detected by inductive sensor. It is demonstrated' that mechanical and electrical symmetries are important for improvement of vibratory gyroscope.

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감시 정찰 카메라부를 포함한 짐발 구조 시스템의 진동 특성 해석 (Vibration Characteristic Analysis of Gimbal Structure System with Observation Reconnaissance Camera Module)

  • 이상은;이태원
    • 대한기계학회논문집A
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    • 제35권4호
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    • pp.409-415
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    • 2011
  • 감시 정찰용 짐발 구조 시스템은 베어링들과 다른 기계 요소들로 구성된 복잡한 기계 장치이다. 이 시스템은 크게 카메라부와 카메라부를 지지하는 안정화 짐발로 나눌 수 있다. 영상 정보 취득을 위한 비행 중 짐발 구조 시스템은 정찰기로부터 전달되는 광범위한 진동수를 갖는 심각한 가진을 받게 된다. 비록 정찰기로부터 전달되는 안정화 짐발의 기초 가진이 카메라부의 진동을 유발할지라도 카메라부는 정확하고 선명한 영상을 기록하여야만 한다. 그러므로 카메라부를 포함한 전체 짐발 구조시스템의 고유진동수와 고유진동 모드를 분석하는 것이 중요하다. 이에 본 연구에서는 베어링들의 효과를 고려한 시스템의 진동 특성 해석을 유한요소법에 의해 수행하였다. 뿐만 아니라, 0 Hz ~ 500 Hz 의 진동수 영역에서 조화응답해석을 통해 카메라부의 가속도 전달률을 계산하였다.

2축 짐벌 구조 적재 장치를 위한 최소제곱법 기반 시스템 식별 (Least Squares Method-Based System Identification for a 2-Axes Gimbal Structure Loading Device)

  • 심예리;진상록
    • 로봇학회논문지
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    • 제17권3호
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    • pp.288-295
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    • 2022
  • This study shows a system identification method of a balancing loading device for a stair climbing delivery robot. The balancing loading device is designed as a 2-axes gimbal structure and is interpreted as two independent pendulum structures for simplifying. The loading device's properties such as mass, moment of inertia, and position of the center of gravity are changeable for luggage. The system identification process of the loading device is required, and the controller should be optimized for the system in real-time. In this study, the system identification method is based on least squares method to estimate the unknown parameters of the loading device's dynamic equation. It estimates the unknown parameters by calculating them that minimize the error function between the real system's motion and the estimated system's motion. This study improves the accuracy of parameter estimation using a null space solution. The null space solution can produce the correct parameters by adjusting the parameter's relative sizes. The proposed system identification method is verified by the simulation to determine how close the estimated unknown parameters are to the real parameters.