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국회도서관 홈으로 정보검색 소장정보 검색

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날갯짓 초소형 비행체의 앞전 및 시맥 탄성이 공력 성능에 미치는 영향 = Effect of the leading edge and vein elasticity on aerodynamic performance of flapping-wing micro air vehicles / 윤상훈 ; 조해성 ; 신상준 ; 허석행 ; 구지훈 ; 유재관 ; 김종암 1

ABSTRACT 1

초록 1

I. 서론 2

II. 본론 2

2.1. 유연날개 연성해석 프로그램 2

2.2. 연성해석 결과 및 분석 5

III. 결론 9

References 9

권호기사

권호기사 목록 테이블로 기사명, 저자명, 페이지, 원문, 기사목차 순으로 되어있습니다.
기사명 저자명 페이지 원문 목차
천리안 2A호 별추적기 태양 차폐각 궤도상 운영 검증 = Verification of the star tracker sun exclusion angle of GEO-KOMPSAT-2A through in-orbit operation 강우용, 백광열, 김승균 p. 243-249

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PAV 케이블 하네스에 대한 낙뢰 간접 영향성 인증 기법에 관한 연구 = A study of certification of lightning indirect effects on cable harness in personal air vehicles 조재현, 김윤곤, 박세웅, 명노신 p. 251-262

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저속 풍동시험 시 NASA Common Research Model의 Belly Sting 모형 지지부에 의한 간섭효과에 관한 연구 = Belly sting model support interference effect of NASA Common Research Model at low speed wind tunnel 차경환, 김남균, 고성호 p. 167-174

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초음속 비행체의 소닉붐 측정과 도래각 추정 = Measurement and arrival direction estimation of supersonic flight sonic boom 하재현, 정석영, 이영환, 진현 p. 175-183

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날갯짓 초소형 비행체의 앞전 및 시맥 탄성이 공력 성능에 미치는 영향 = Effect of the leading edge and vein elasticity on aerodynamic performance of flapping-wing micro air vehicles 윤상훈, 조해성, 신상준, 허석행, 구지훈, 유재관, 김종암 p. 185-195

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심층 신경망을 이용한 실시간 유도탄 파편 탄착점 및 분산 추정 = Real-time estimation of missile debris predicted impact point and dispersion using deep neural network 강태영, 박국권, 김정훈, 유창경 p. 197-204

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플렉셔를 적용한 추력 시험대 설계 = Design of a thrust stand using flexure 진준엽, 박용석, 이창욱, 정상섭, 이주형, 백철우 p. 205-212

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헬리콥터 제어 성능 개선을 위한 증분 트위스팅 보상기 = Incremental twisting compensator for performance improvement of helicopter control 서강호, 주종인, 김윤수 p. 213-219

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덕트 팬-베인 형상의 제자리 비행 공력 특성 및 조종 성능 개선에 관한 수치적 연구 = Numerical investigation of aerodynamic characteristics of a ducted fan-vane configuration and improvement of control performance in hover 강동훈, 임진우, 유흥철 p. 221-231

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전기 추진 수직이착륙 도심 항공 모빌리티 항공기의 비용 예측 연구 = A novel cost estimation method for UAM eVTOLs 김현수, 이관중 p. 233-241

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참고문헌 (35건) : 자료제공( 네이버학술정보 )

참고문헌 목록에 대한 테이블로 번호, 참고문헌, 국회도서관 소장유무로 구성되어 있습니다.
번호 참고문헌 국회도서관 소장유무
1 Sane, S. P., “The aerodynamics of insect flight,” Journal of Experimental Biology, Vol. 206, 2003, pp. 4191~4208. 미소장
2 Shyy, W., Berg, M. and Ljungqvist, D., Flapping and flexible wings for biological and micro air vehicles, Progress in Aerospace Sciences, Vol. 24, No. 5, 1999, pp. 455~505. 미소장
3 Ellington, C. P., Berg, C. V. D., Willmott, A. P. and Thomas, A. L. R., “Leading-edge vortices in insect flight,” Nature, Vol. 384, 1996, pp. 626~630. 미소장
4 Dickinson, M. H., “Wing Rotation and the Aerodynamic Basis of Insect Flight,” Science, Vol. 284, 1999, pp. 1954~1960. 미소장
5 Lee, J.-S., Kim, J.-H. and Kim, C., “Numerical Study on the Unsteady-Force-Generation Mechanism of Insect Flapping Motion,” AIAA Journal, Vol. 46, 2008, pp. 1835~1848. 미소장
6 Kim, J.-H. and Kim, C., “Computational Inve- stigation of Three-Dimensional Unsteady Flow-field Characteristics Around Insects’ Flapping Flight,” AIAA Journal, Vol. 49, 2011, pp. 953~968. 미소장
7 Lee, K.-B., Kim, J.-H. and Kim, C., “Aero- dynamic Effects of Structural Flexibility in Two- Dimensional Insect Flapping Flight,” Journal of Aircraft, Vol. 48, 2011, pp. 894~909. 미소장
8 Lee, J. and Kim, C., “Development of a Mechanism for Flapping Wing Micro Aerial Vehicle,” 17th International Conference on Control, Automation and Systems, Korea, 2017, pp. 21~22. 미소장
9 Adhikari, D. R., An Experimental Optimi- zation of Flapping Wing Geometry in the Hover, Master Dissertation, Department of Mechanical and Aerospace Engineering, Seoul National University, 2018. 미소장
10 Cho, S. G., Lee, J. H. and Kim, C. A., “Velocity Profile Optimization of Flapping Wing Micro Air Vehicle,” Journal of The Korean Society for Aeronautical and Space Sciences, Vol. 48, No. 11, November, 2020, pp. 837~847. 미소장
11 Phan, H. V., Truong, Q. T. and Park, H. C., “An experimental comparative study of the efficiency of twisted and flat flapping wings during hovering flight,” Bioinspiration and Biomimetics, Vol. 12, 036009, 2017. 미소장
12 Jeong, H., Two-dimensional Fluid-Structure Interaction Analysis of Flapping Micro Aerial Vehicles, Master Dissertation, Department of Mechanical and Aerospace Engineering, Seoul National University, 2016. 미소장
13 Kang, C. K., Aono, H., Cesnik, C. E. S. and Shyy, W., “Effects of flexibility on the Aero- dynamic performance of flapping wings,” Journal of Fluid Mechanics, Vol. 689, 2011, pp. 32~74. 미소장
14 Cho, H., Kim, H. and Shin, S. J., “Geometrically nonlinear dynamic formulation for three-dimensional co-rotational solid elements,” Computer Methods in Applied Mechanics and Engineering, Vol. 328, 2018, pp. 301~320. 미소장
15 Yoon, S. H., Cho, H. S., Lee, J. H., Kim, C. A. and Shin, S. J., “Effects of Camber Angle on Aerodynamic Performance of Flapping-Wing Micro Air Vehicle,” Journal of Fluids and Structures, Vol. 97, 103101, 2020. 미소장
16 Ahn, H. T. and Kallinderis, Y., “Strongly coupled flow/structure interactions with a geometrically conservative ALE scheme on general hybrid meshes,” Journal of Computational Physics, Vol. 219, 2006, pp. 671~696. 미소장
17 Mavriplis, D. J. and Yang, Z., “Construction of the discrete geometric conservation law for high-order time-accurate simulations on dynamic meshes,” Journal of Computational Physics, Vol. 213, 2006, pp. 557~573. 미소장
18 Chorin, A. J., “A Numerical Method for Solving Incompressible Viscous Flow Problems,” Journal of Computational Physics, Vol. 2, 1967, pp. 12~26. 미소장
19 Roe, P. L., “Approximate Riemann Solvers, Parameter Vectors, and Difference Schemes,” Journal of Computational Physics, Vol. 43, 1981, pp. 357~372. 미소장
20 Van Leer, B., “Towards the Ultimate Conservative Difference Scheme. V. A Second- Order Sequel to Godunov’s Method,” Journal of Computational Physics, Vol. 32, 1979, pp. 101~136. 미소장
21 Alonso, J. J. and Jameson, A., “FuIIy-Impicit Time-Marching Aeroelastic Solutions,“ 32nd Aerospace Sciences Meeting and Exhibit, Aeroelastic Solutions, AIAA-94-0056, 1994. 미소장
22 Yoon, S. and Kwak, D., “Three-Dimensional Incompressible Navier-Stokes Solver Using Lower- Upper Symmetric-Gauss-Seidel Algorithm,” AIAA Journal, Vol. 29, 1991, pp. 874~875. 미소장
23 Rankin, C. C. and Brogan, A., “An Element- independent Co-rotational Procedure for the Treatment of Large Rotations,” ASME Journal of Pressure Vessel Technology, Vol. 108, No. 2, 1989, pp. 165~175. 미소장
24 Felippa, C. A. and Haugen, B., “A unified formulation of small-strain Co-rotational finite elements: I. Theory,” Computer Methods in Applied Mechanics and Engineering, Vol. 194, 2005, pp. 2285~ 2335. 미소장
25 Battini, J. M. and Pacoste, C., “Co-rotational beam elements with warping effects in instability problems,” Computer Methods in Applied Mechanics and Engineering, Vol. 191, 2002, pp. 1755~1789. 미소장
26 Felippa, C. A., “A study of optimal membrane triangles with drilling freedoms,” Computer Methods in Applied Mechanics and Engineering, Vol. 192, 2003, pp. 2125~2168. 미소장
27 Arnold, M. and Brüls, O., “Convergence of the generalized-α scheme for constrained mechanical systems,” Multibody System Dynamics, Vol. 18, 2007, pp. 185~202. 미소장
28 Cho, H., Gong, D., Lee, N., Shin, S. J. and Lee, S., “Combined co-rotational beam/shell elements for fluid–structure interaction analysis of insect- like flapping wing,” Nonlinear Dynamics, Vol. 97, No. 1, 2019, pp. 203~224. 미소장
29 Cho, H., Kim, H. and Shin, S. J., “Geometrically nonlinear dynamic formulation for three-dimensional co-rotational solid elements,” Computer Methods in Applied Mechanics and Engineering, Vol. 328, 2018, pp. 301~320. 미소장
30 Cho, H., Kwak, J. Y., Shin, S. J., Lee, N. and Lee, S., “Flapping-Wing Fluid–Structural Interaction Analysis Using Corotational Triangular Planar Structural Element,” AIAA Journal, Vol. 54, No. 8, 2016, pp. 2265~2276. 미소장
31 Alonso, J. J. and Jameson, A., “FuIIy- Impicit Time-Marching Aeroelastic Solutions,” 32nd Aerospace Sciences Meeting and Exhibit, Aeroelastic Solutions, AIAA-94-0056, 1994. 미소장
32 Byun, C. and Guruswamyt, G. P., “A Parallel, Multi-block, Moving Grid Method for Aeroelastic Applications on Full Aircraft,” AIAA paper, AIAA-94-4782, 1998. 미소장
33 Beckert, A. and Wendland, H., “Multivariate interpolation for fluid-structure-interaction problems using radial basis functions,” Aerospace Science and Technology, Vol. 5, 2001, pp. 125~134. 미소장
34 Tay, W. B., Van Oudheusden, B. W. and Bijl, H., “Numerical simulation of a flapping four-wing micro-aerial vehicle,” Journal of Fluids and Structures, Vol. 55, 2015, pp. 237~261. 미소장
35 “Young's Modulus,” Online, Available: http://www-materials.eng.cam.ac.uk/mpsite/interactive_charts/stiffness-density/NS6Chart.html 미소장