Robotic upcycling and recycling: unraveling the era of sustainable in-space manufacturing

被引:0
|
作者
Rai, Mini C. [1 ]
Nair, Manu H. [1 ]
Schaefer, Dirk [2 ]
Detry, Renaud [3 ]
Poozhiyil, Mithun [4 ]
Rybicka, Justyna [4 ]
Dulanty, Shan [4 ]
Gotz, Josie [4 ]
Roa, Maximo A. [5 ]
Lampariello, Roberto [5 ]
Govindaraj, Shashank [6 ]
Gancet, Jeremi [6 ]
机构
[1] Univ Lincoln, Lincoln Ctr Autonomous Syst, Sch Engn, Lincoln LN6 7TS, England
[2] Univ Hull, Fac Sci & Engn, Cottingham Rd, Kingston Upon Hull HU6 7RX, England
[3] Katholieke Univ Leuven, Kasteelpk Arenberg 10 box 2441, B-3001 Leuven, Belgium
[4] Mfg Technol Ctr, Coventry CV7 9JU, England
[5] DLR German Aerosp Ctr, Muenchener Str 20, D-82234 Wessling, Germany
[6] Space Applicat Serv NV SA, Leuvensesteenweg 325, B-1932 Brussels, Belgium
关键词
Mission design; Space debris; Sustainability; Materials; Manufacturing; Robotics; Space; 5.0; IMAGE-BASED CONTROL; TRACKING CONTROL; DEBRIS REMOVAL; SYNCHRONIZATION; SATELLITES; DYNAMICS; GUIDANCE; SYSTEMS; DESIGN; OBJECT;
D O I
10.1007/s12567-024-00576-6
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Advancements in material science, manufacturing and sensor technologies, Artificial Intelligence, and the Internet of Things have paved the way for fabricating new parts using additive manufacturing in microgravity conditions. NASA has successfully demonstrated 3D printing onboard the International Space Station (ISS), though at a minor scale. Nevertheless, the parts built onboard the ISS were returned to Earth for further testing and verification. The logistics of bi-directional transportation of raw materials from Earth to ISS and 3D-printed parts from ISS back to Earth is complex, expensive, and slow. Harnessing materials from space to establish in-orbit manufacturing as a sustainable process is both technically and economically challenging. The potential to reuse, repurpose or recycle space debris is not well studied, though there is an increasing momentum in Active Debris Removal (ADR) missions. Unlike the standard research or review paper, this is a visionary paper in which the authors explicitly address the intersection between space debris removal and in-space manufacturing. This paper defines a pathway towards implementing an operational in-orbit manufacturing and debris removal model. For the first time, the authors introduce the application of Cloud-Based Design and Manufacturing (CBDM) for in-space manufacturing in this paper. The paper aims to define a roadmap towards implementing a space operational model for in-orbit manufacturing and debris removal. Future enabling technologies that will leverage the advances in robotics, automation, and Space 5.0-based solutions to create a new environmentally friendly and economically profitable orbital ecosystem are presented. The authors analyze the pros and cons of robotic ADR, upcycling and recycling space debris for on-demand manufacturing in orbit and present a systematic approach to implementing in-orbit manufacturing as a new frontier. Recommendations are made to establish an imminent Earth-independent space logistics and supply chain system for operating an orbital factory or warehouse that will help realize a suite of in-orbit manufacturing, maintenance, and assembly missions.
引用
收藏
页码:455 / 469
页数:15
相关论文
共 50 条
  • [31] Autonomous Satellite Servicing Infrastructure for In-Space Assembly and Manufacturing
    Down, Ian M.
    van Wijk, David E. J.
    Parikh, Deep
    Majji, Manoranjan
    JOURNAL OF MANUFACTURING SCIENCE AND ENGINEERING-TRANSACTIONS OF THE ASME, 2024, 146 (12):
  • [32] Payload-centric autonomy for in-space robotic assembly of modular space structures
    Karumanchi, Sisir
    Edelberg, Kyle
    Nash, Jeremy
    Bergh, Charles
    Smith, Russell
    Emanuel, Blair
    Carlton, Jason
    Koehler, John
    Kim, Junggon
    Mukherjee, Rudranarayan
    Kennedy, Brett
    Backes, Paul
    JOURNAL OF FIELD ROBOTICS, 2018, 35 (06) : 1005 - 1021
  • [33] Augmented Reality-Based Robotic System for In-Space Servicing
    Garcia-Luna, Francesco
    Rodriguez-Ramirez, Alma
    Nandayapa, Manuel
    Flores-Abad, Angel
    IEEE AEROSPACE AND ELECTRONIC SYSTEMS MAGAZINE, 2024, 39 (01) : 18 - 31
  • [34] Design engineering a walking robotic manipulator for in-space assembly missions
    Nair, Manu Harikrishnan
    Rai, Mini Chakravarthini
    Poozhiyil, Mithun
    FRONTIERS IN ROBOTICS AND AI, 2022, 9
  • [35] An Autonomous Task Assignment Paradigm for Autonomous Robotic In-Space Assembly
    Moser, Joshua
    Hoffman, Julia
    Hildebrand, Robert
    Komendera, Erik
    FRONTIERS IN ROBOTICS AND AI, 2022, 9
  • [36] A Phase-Field Model for In-Space Manufacturing of Binary Alloys
    Ghosh, Manoj
    Hendy, Muhannad
    Raush, Jonathan
    Momeni, Kasra
    MATERIALS, 2023, 16 (01)
  • [37] Maintenance Factory Platform for In-space Manufacturing: Conceptualizing Design Architecture
    Bapat, Salil
    Srimurugan, Nithya
    Patrick, Albert J.
    Subbiah, Sathyan
    Malshe, Ajay P.
    MANUFACTURING LETTERS, 2024, 41 : 191 - 199
  • [38] Fabrication Time Diagrams for In-Space Manufacturing of Large Reticulated Structures
    Bhundiya, Harsh G.
    Marshall, Michael A.
    Cordero, Zachary C.
    JOURNAL OF MANUFACTURING SCIENCE AND ENGINEERING-TRANSACTIONS OF THE ASME, 2024, 146 (12):
  • [39] Outcomes of the PERIOD project on In-Space Manufacturing, Assembly and Refuelling Technologies
    Estable, Stephane
    Ahrns, Ingo
    Regele, Ralf
    Jankovic, Marko
    Brinkmann, Wiebke
    Gancet, Jeremi
    Barrio, A. M.
    Leiter, Pierre
    Colmenero, Francisco J.
    Ampe, Annelies
    Ordoubadian, Bjorn
    Chamos, Apostolos
    Caujolle, Romain
    Silveira, Daniel
    Soto, Isabel
    Shilton, Mark
    Vogel, Torsten
    Bartsch, Sebastian
    Manz, Marc
    12TH EASN INTERNATIONAL CONFERENCE ON "INNOVATION IN AVIATION & SPACE FOR OPENING NEW HORIZONS", 2023, 2526
  • [40] Advanced metal-wire laser additive manufacturing in-space
    Ding, Xueping
    Du, Farui
    Zhang, Qi
    Wang, Guoyu
    Fan, Shuqian
    Duan, Xuanming
    9TH INTERNATIONAL SYMPOSIUM ON ADVANCED OPTICAL MANUFACTURING AND TESTING TECHNOLOGIES: SUBDIFFRACTION-LIMITED PLASMONIC LITHOGRAPHY AND INNOVATIVE MANUFACTURING TECHNOLOGY, 2019, 10842