Utilizing Small Launch Vehicles for Multiple Small Payload Missions

被引:0
|
作者
Stender, Marissa [1 ]
Loghry, Chris [2 ]
机构
[1] Moog Inc, 2581 Leghorn St, Mountain View, CA 94043 USA
[2] Moog Inc, 21339 Nordhoff St, Chatsworth, CA 91311 USA
关键词
D O I
暂无
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The growing number of dedicated small launch vehicles will lower the cost of space access in the coming years but many challenges remain in utilizing these for small payloads particularly Cubesat missions. Cubesats still have a similar number of concerns and obstacles as a secondary payload on a larger rocket as they do on a small rocket such as desired orbital location. Constellation phasing creates another challenge without using on-board propulsion or time consuming differential drag strategies. All of these create additional challenges for the mass/cost constrained Cubesat developer. Many of these challenges can be met through the use of a propulsive rideshare adapter or Small Launch Orbital Maneuvering Vehicle (SL-OMV). The SL-OMV is a low mass and low cost propulsive adapter that can be used to distribute Cubesat payloads (1U, 3U, and 6U) with different orbital parameters than the primary payload. The SL-OMV can remain on orbit for a longer duration allowing for constellation phasing for payloads without propulsion. The SL-OMV can provide an insertion stage capability for the small launchers (both new and existing) as well increasing the capability of the vehicles using a "bolt on" stage. The SL-OMV is designed with the future small launch vehicle systems in mind including using low cost platform avionics and composites, composites for low mass structures, and green propellant for spaceport operations. The SL-OMV can reduce costs for space access using rideshare and enable low cost missions that previously could only be achieved through the expense of a dedicated launch vehicle and propulsive spacecraft. The SL-OMV platform provides mission augmentation as well and can provide many of the services of a spacecraft bus reducing the cost and complexity of the payload.
引用
收藏
页数:8
相关论文
共 50 条
  • [11] Design of Deep Space Missions Using a Dedicated Small Launch Vehicle
    Choi, Su-Jin
    Loucks, Mike
    West, Stephen
    Seo, Daeban
    Lee, Keejoo
    [J]. JOURNAL OF THE KOREAN SOCIETY FOR AERONAUTICAL AND SPACE SCIENCES, 2022, 50 (12) : 877 - 888
  • [12] Optimized electromagnetic launch system for increasing payload of US expendable launch vehicles
    Cravey, WR
    Young, CM
    Bosma, J
    [J]. SPACE TECHNOLOGY AND APPLICATIONS INTERNATIONAL FORUM (STAIF-96), PTS 1-3: 1ST CONFERENCE ON COMMERCIAL DEVELOPMENT OF SPACE; 1ST CONFERENCE ON NEXT GENERATION LAUNCH SYSTEMS; 2ND SPACECRAFT THERMAL CONTROL SYMPOSIUM; 13TH SYMPOSIUM ON SPACE NUCLEAR POWER AND PROPULSION - FUTURE SPACE AND EARTH SCIENCE MISSIONS - SPECIAL TOPIC; REMOTE SENSING FOR COMMERCIAL, CIVIL AND SCIENCE APPLICATIONS - SPECIAL TOPIC, 1996, (361): : 713 - 718
  • [13] A Guidance Method for Small Solid-Rocket Launch Vehicles
    Lv, Rui
    Song, Zhiguo
    Li, Pu
    Jiang, Chunwang
    Ge, Yunpeng
    [J]. 2018 IEEE CSAA GUIDANCE, NAVIGATION AND CONTROL CONFERENCE (CGNCC), 2018,
  • [14] Automated launch, recovery, and refueling for small unmanned aerial vehicles
    Mullens, K
    Burmeister, A
    Wills, M
    Stroumtsos, N
    Denewiler, T
    Thomas, K
    Stancliff, S
    [J]. MOBILE ROBOTS XVII, 2004, 5609 : 233 - 243
  • [15] ESTIMATE OF PRESSURE DISTRIBUTION ON LAUNCH VEHICLES AT SMALL ANGLES OF ATTACK
    SASTRY, MS
    [J]. JOURNAL OF SPACECRAFT AND ROCKETS, 1977, 14 (09) : 574 - 576
  • [16] Whole-spacecraft vibration isolation on small launch vehicles
    Wilke, PS
    Johnson, CD
    Grosserode, PJ
    Sciulli, C
    [J]. SMART STRUCTURES AND MATERIALS 2000: DAMPING AND ISOLATION, 2000, 3989 : 440 - 451
  • [17] Metallic Hydrogen Propelled Launch Vehicles for Lunar Missions
    Cole, John W.
    Silvera, Isaac F.
    [J]. SPACE, PROPULSION & ENERGY SCIENCES INTERNATIONAL FORUM SPESIF-2009, 2009, 1103 : 117 - 125
  • [18] Launch vehicles for low-cost planetary missions
    Palsulich, JM
    Schinnerer, BJ
    [J]. ACTA ASTRONAUTICA, 2003, 52 (2-6) : 289 - 298
  • [19] Deployable mini-payload missions enabled by small radioisotope power systems (RPSs)
    Abelson, RD
    Satter, CM
    [J]. SPACE TECHNOLOGY AND APPLICATIONS INTERNATIONAL FORUM-STAIF 2005, 2005, 746 : 378 - 385
  • [20] AN ANALYSIS OF PAYLOAD GROWTH FOR MAJOR US AND EUROPEAN LAUNCH VEHICLES
    KASZUBOWSKI, MJ
    [J]. TECHNOLOGICAL FORECASTING AND SOCIAL CHANGE, 1995, 48 (03) : 269 - 284