出版專著:
[2] .于洋,寶音賀西. 第9章.小行星附近的軌道. 《深空探測動力學與控制》, 主編:李俊峰. 北京:科學出版社,2014.
發表論文:
[1] .Reconstructing the formation history of top-shaped asteroids by the surface boulders distribution.[期刊]:Nature Astronomy,2020
[2] .Yu Y. Orbital Dynamics in the Gravitational Field of Small Bodies. Springer, 2016.
[3] .于洋, 寶音賀西, 李俊峰. 空間繩索系統的動力學建模方法. 北京力學會2010學術年會, 2010, 10, 北京.
[4] .于洋, 寶音賀西, 李俊峰. 自旋空間系的引力潮汐推進. 全國第十五屆空間及運動體控制技術學術年會論文, 2012, 10, 合肥.
[5] .于洋, 寶音賀西, 李俊峰. 小行星(216)Kleopatra 附近的動力學環境. 中國宇航學會2011年學術年會, 2011, 12, 北京.
[6] .H. Niu, X. Zeng, J. Guo, Y. Yu, and F. Zhang. A CONCEPT OF A SWIMMING ROBOT FOR FUTURE EXTRATERRESTRIAL LIFE EXPLORATION. IAA-AAS-DyCoSS, Changsha, China, 2018.
[7] .M. Hirabayashi, A. B. Davis, S. P. Naidu, Y. Yu, et al. NASA’s DART mission to Didymos: A scenario of mutual orbit perturbation due to shape deformation of the primary caused by impacts of DART-driven ejecta. 9th Workshop on Catastrophic Disruption in the Solar System (CD9), Kobe, Japan, 2018.
[8] .M. Hirabayashi, A. B. Davis, S. P. Naidu, Y. Yu, et al. NASA’s DART MISSION TO DIDYMOS: THE EFFECT OF SHAPE DEFORMATION OF THE PRIMARY AND ELLIPTICITY OF THE SECONDARY ON POST-IMPACT ORBITAL PERIOD. 49th Lunar and Planetary Science Conference, TX, USA, 2018.
[9] .Hamilton D. P., Fahnestock E. G., Schwartz S. R., Murdoch N., Asphaug E., Cheng A. F., Housen K. R., Michel P., Miller P., Stickle A., Tancredi G., Vincent J. -B., Wünnemann K., Yu Y., Delchambre S., Ziegler T., Falke A., and The AIDA Impact Simulation Working Group. Asteroid Impact Deflection and Assessment (AIDA) Mission Properties of Impact Ejecta. DPS-EPSC Joint Meeting, Pasadena, California, USA, 2016.
[10] .Schwartz S. R., Asphaug E., Cheng A., Housen K. R., Michel P., Miller P., Stickle A., Tancredi G., Vincent J. -B., Wünnemann K., Yu Y., et al. Modeling and Simulation of Impact Outcomes: Ejecta Properties and Evolution. The 47th Lunar and Planetary Science Conference, Woodlands, Texas, USA, 2016.
[11] .Statler T., Richardson D. C., Walsh K., Yu Y., Michel P. A mechanism for self-reinforcing YORP acceleration of fast-rotating asteroids. Asteroids, Comets and Meteors, Helsinki, 2014.
[12] .Richardson D. C., Michel P., Schwartz S., Yu Y., Ballouz R., Matsumura S. Applications of granular dynamics numerical simulations to asteroid surfaces. Asteroids, Comets and Meteors, Helsinki, 2014.
[13] .Michel P, Yu Y. The contribution of impact cratering in the production of regolith on asteroid surfaces: first application to the targets of AIDA and Hayabusa2 missions. JpGU-AGU Joint Meeting 2017, Makuhari Messe, Japan, 2017.
[14] .Fahnestock E. G., Yu Y., Hamilton D. P., Schwartz S. R. Asteroid Impact Deflection Assessment (AIDA) Mission - Full-Scale Modeling & Simulation of Ejecta Evolution & Fates. DPS-EPSC Joint Meeting, Pasadena, California, USA, 2016.
[15] .Michel P., Yu Y., Schwartz S. R., Naidu S., Benner L. Dynamics of ejecta from the binary asteroid Didymos, the target of the AIDA mission. The European Geosciences Union, Vienna, Austria, 2016.
[16] .Schwartz S., Yu Y., Michel P., Jutzi M., Richardson D. C. NEOShield: the fate of ejecta from a kinetic impactor strike on a near-earth object. 4th IAA Planetary Defense Conference, Frascati, Roma, Italy, 2015.
[17] .Y. Yu, P. Michel. The Dynamics of Regolith Material Lofted from a Fast-rotating Top-shaped Asteroid, 18th U.S. National Congress for Theoretical and Applied Mechanics, Michigan, USA, 2018.
[18] .Yu Y., Michel P. ORBITAL DEPENDENCIES OF EJECTA FROM THE DART IMPACT ON THE SECONDARY OF 65803 DIDYMOS. PDC 2017, Tokyo, Japan, 2017.
[19] .Yu Y., Michel P. A GRID SEARCH OF THE DYNAMICAL FATES OF EJECTA PRODUCED BY THE AIDA IMPACT ON THE SECONDARY OF (65803) DIDYMOS. 48th Lunar and Planetary Science Conference, TX, USA, 2017.
[20] .Yu Y., Michel P. POST-IMPACT DYNAMICS OF THE EJECTA CLOUD IN THE AIDA MISSION SCENARIO: A MODEL STUDY. Asteroids, Comets, Meteors, Montevideo, Uruguay, 2017.
[21] .Yu Y., Michel P., Schwartz S. R., Benner S. N. L. DYNAMICS OF THE EJECTA CLOUD PRODUCED BY A KINETIC IMPACT ON THE SECONDARY OF THE BINARY ASTEROID DIDYMOS: A CONTRIBUTION TO THE AIDA SPACE PROJECT. The 47th Lunar and Planetary Science Conference, Woodlands, Texas, USA, 2016.
[22] .Yu Y., Schwartz S., Michel P., Benner L. Dynamics of ejecta from a binary asteroid impact in the framework of the AIDA mission: a NEOShield-2 contribution. European Planetary Science Congress 2015, Nantes, France, 2015.
[23] .Yu Y., Baoyin H., Chen Y., Li J., Gong S., Zeng X. The orbital propulsion of spinning tether via angular momentum transfer. 62nd International Astronautical Congress Proceedings, Cape Town, 2011.
[24] .Yu Y., Baoyin H., Li J., Chen Y. Static and dynamic analysis of space webs. 61st International Astronautical Congress Proceedings, Prague, 2010.
[25] .李京陽, 于洋, 寶音賀西, 李俊峰. 空間飛網兩種動力學模型的比較研究. 力學學報, 2011, 43: 542-550.
[26] .于洋, 寶音賀西, 李俊峰. 小天體附近的軌道動力學研究綜述. 深空探測學報, 2014, 1(2):93-104.
[27] .于洋, 寶音賀西, 李俊峰. 空間飛網拋射展開動力學與仿真. 宇航學報, 2010, 5: 1289-1295.
[28] .Cheng B., Yu Y., Baoyin H. Asteroid surface impact sampling: dependence of the cavity morphology and collected mass on projectile shape. SCIENTIFIC REPORTS, 2017, 7, 10004.
[29] .Hirabayashi M., Schwartz S. R., Yu Y., et al. Constraints on the perturbed mutual motion in Didymos due to impact-induced deformation of its primary after the DART impact. MNRAS, 2017, 472, 1641–1648.
[30] .Michel P., Cheng A., et al., Yu Y. Science case for the Asteroid Impact Mission (AIM): A component of the Asteroid Impact: Deflection Assessment (AIDA) mission, Advances in Space Research, 2016, 57(12): 2529-2547.
[31] .Zeng X., Fang B., Li J., Yu Y. Generalized flyby trajectories around elongated minor celestial bodies as a rotating mass dipole. Acta Mech. Sin., 2015, 32(3): 535–545.
[32] .Zeng X., Zhang Y., Yu Y., Liu X. THE DIPOLE SEGMENT MODEL FOR AXISYMMETRICAL ELONGATED ASTEROIDS. Astronomical Journal, 2018, 155, 85.
[33] .Baoyin H., Yu Y., Li J. Orbital maneuver for a rotating tethered system via tidal forces. Journal of Spacecraft and Rockets, 2013, 50(5): 1060-1068.
[34] .Ballouz R., Richardson D. C., Michel P., Schwartz S. R., Yu Y. Numerical simulations of collisional disruption of rotating gravitational aggregates: dependence on material properties. Planetary and Space Science, 2015, 107: 29-35.
[35] .Jiang Y., Baoyin H., Wang X., Yu Y., Li H., Peng C., Zhang Z. Order and chaos near equilibrium points in the potential of rotating highly irregular-shaped celestial bodies. Nonlinear Dynamics, 2016, 83: 231-252.
[36] .Yuan J., Yu Y., Gao Y., Li H., Ma W., Ning X., Tang G., Shi Y., Sun C., He X., Zhang S., Baoyin H., Three Decades of Progress in China’s Space High-Tech Program Empowered by Modern Astrodynamics. REACH-Reviews in Human Space Exploration, 2017, 5: 1-8.
[37] .Jiang Y., Yu Y., Baoyin H. Topological classifications and bifurcations of periodic orbits in the potential field of highly irregular-shaped celestial bodies. Nonlinear Dynamics, 2015, 81(1): 119-140.
[38] .Schwartz S. R., Yu Y., Michel P., Jutzi M., Small-body deflection techniques using spacecraft: Techniques in simulating the fate of ejecta, Advances in Space Research, 2016, 57(8): 1832-1846.
[39] .Cheng B., Yu Y., Baoyin H. A. Collision-Based Understanding of the Force Law in Granular Impact Dynamics. Physical Review E, 2018, 98, 012901.
[40] .Yu Y., Richardson D. C., Michel P. Structure analysis of rubble-pile asteroids applied to collisional evolution. Astrodynamics, 2017, 1: 57-69.
[41] .Yu Y., Baoyin H. Modeling and migrating grains on asteroid’s surface. Astrophysics and Space Science, 2015, 355(1): 43-56.
[42] .Yu Y., Baoyin H. Routing the asteroid surface vehicle with detailed mechanics. Acta Mechanica Sinica, 2014, 30(3): 301-309.
[43] .Yu Y., Baoyin H. Resonant orbits in the vicinity of asteroid 216 Kleopatra. Astrophysics and Space Science, 2013, 343(1): 75-82.
[44] .Yu Y., Baoyin H., Li J. Dynamic modeling and analysis of space webs. Science China Physics, Mechanics & Astronomy, 2011, 54(4): 783-791.
[45] .Yu Y., Michel P., Schwartz S. R., Naidu S. P., Benner L. A. M. Ejecta cloud from the AIDA space project kinetic impact on the secondary of a binary asteroid: I. mechanical environment and dynamical model. Icarus, 2017, 282: 313-325.
[46] .Yu Y., Baoyin H., Jiang Y. Construct the natural families of periodic orbits near irregular bodies. Monthly notices of the royal astronomical society. Monthly Notices of the Royal Astronomical Society, 2015, 453(3): 3269-3277.
[47] .Yu Y., Richardson D. C., Michel P., Schwartz S. R., Ballouz R. Numerical predictions of surface effects during the 2029 close approach of asteroid 99942 Apophis. Icarus. 2014, 242: 82-96.
[48] .Yu Y., Baoyin H. Orbital dynamics in the vicinity of asteroid 216 Kleopatra. Astronomical Journal, 2012, 143, 62.
[49] .Yu Y., Baoyin H. Generating families of 3D periodic orbits about asteroids. Monthly Notices of the Royal Astronomical Society, 2012, 427(1): 872-881.
[50] .Yu Y., Michel P., Hirabayashi M., et al. The Dynamical Complexity of Surface Mass Shedding from a Top-shaped Asteroid near the Critical Spin Limit. AJ, 2018, 156, 59.
[51] .Yu Y., Michel P. Ejecta cloud from the AIDA space project kinetic impact on the secondary of a binary asteroid: II. Fates and evolutionary dependencies. Icarus, 2018, 312, 128. ,2019