Cheung, K. and Glass, B.: Automated Reconfigurable Mission Adaptive Digital Assembly Systems (ARMADAS), in: Ames Partnerships Day,
https://ntrs.nasa.gov/api/citations/20250002322/downloads/APD2025 ARMADAS.pdf (last access: 16 March 2026), 2025. a
Collins, T. J. and Shen, W.-M.: Integrated and adaptive locomotion and manipulation for self-reconfigurable robots, in: Conference Towards Autonomous Robotic Systems, pp. 150–165, Springer,
https://link.springer.com/chapter/10.1007/978-3-319-64107-2_13 (last access: 16 March 2026), 2017. a
Gralla, E. L.: Strategies for launch and assembly of modular spacecraft, Ph.D. thesis, Massachusetts Institute of Technology,
https://dspace.mit.edu/handle/1721.1/37886 (last access: 16 March 2026), 2006. a
Hamill, D., Bowman, L., Gilman, D. A., and Belvin, W. K.: High leverage technologies for in-space assembly of complex structures, in: AIAA SPACE 2016, p. 5397,
https://doi.org/10.2514/6.2016-5397, 2016.
a
Hsieh, J.-F.: Design and analysis of indexing cam mechanism with parallel axes, Mech. Mach. Theory, 81, 155–165, 2014. a
Hu, G., Li, Y., Li, X., Zhang, G., Zhang, Z., Wang, X., and Man, W.: Modular self-reconfigurable spacecraft: Development status, key technologies, and application prospect, Acta Astronaut., 207, 240–256, 2023.
a,
b
Jankovic, M., Brinkmann, W., Bartsch, S., Palazzetti, R., and Yan, X.: Concepts of active payload modules and end-effectors suitable for Standard Interface for Robotic Manipulation of Payloads in Future Space Missions (SIROM) interface, in: 2018 IEEE Aerospace Conference, pp. 1–15, IEEE,
https://doi.org/10.1109/AERO.2018.8396406, 2018.
a
Kief, C., Hannon, M., Lyke, J., Peters, C., Fronterhouse, D., and Ahlberg, M.: SPARC–1: a new, improved modular 6U spacecraft, in: 2019 IEEE Aerospace Conference, pp. 1–8, IEEE,
https://doi.org/10.1109/AERO.2019.8742248, 2019.
a
Kortman, M., Ruhl, S., Weise, J., Kreisel, J., Schervan, T., Schmidt, H., and Dafnis, A.: Building block based iBoss approach: fully modular systems with standard interface to enhance future satellites, in: 66th International Astronautical Congress (Jerusalem), vol. 2,
https://www.semanticscholar.org/paper/Building-Block-Based-"iBOSS"-Approach:-Fully-with-Kortmann-Schervan/aca641e175a7d2d8960d1b76634a1aa5ebf10c63 (last access: 16 March 2026), 2015. a
Kortmann, M., Dafnis, A., and Reimerdes, H.: Development and breadboard testing of a mechanical coupling interface for modular spacecraft systems, in: European Conference on Spacecraft Structures, Materials & Environmental Testing, Braunschweig, Germany, pp. 01–04,
https://www.semanticscholar.org/paper/Development-and-Breadboard-Testing-of-a-Mechanical (last access: 16 March 2026), 2014.
a
Kortmann, M., Meinert, T., Dafnis, A., and Schroeder, K.: Multifunctional interface for modular satellite systems with robotic servicing capabilities, in: Proceedings of the 68th International Astronautical Congress,
https://doi.org/10.1007/S42423-018-0009-1, 2017.
a
Kortmann, M., Zeis, C., Meinert, T., Dueck, A., and Schroder, K.: Design and qualification of a multifunctional interface for modular satellite systems, in: Proceedings of the 69th International Astronautical Congress, Bremen, Germany, pp. 1–5,
https://www.sla.rwth-aachen.de/cms/institut-fuer-strukturmechanik-und-leichtbau/Forschung/Publikationen/~faog/Details/?lidx=1&file=745832 (last access: 16 March 2026), 2018. a
Letier, P., Yan, X. T., Deremetz, M., Bianco, A., Grunwald, G., Roa, M., Krenn, R., Arancón, M. M., Dissaux, P., Casarrubios, J. S. G., RuizLucini, R., De Filippis, L., Porcelluzzi, G., Post, M., Walshe, M., and Perryman, P.: MOSAR: Modular spacecraft assembly and reconfiguration demonstrator, in: 15th symposium on advanced space technologies in robotics and automation,
https://www.semanticscholar.org/paper/MOSAR:-Modular-spacecraft-assembly-and-demonstrator-Letier-Yan/56810c9b567649eaba7e9621be5ea4bc8fc69f8f (last access: 16 March 2026) 2019. a
Li, J.-H., Liu, Z.-J., Wang, D.-P., Tian, Y., and Zhao, Y.-C.: Fault mode analysis and reliability optimization design of a mechanical interface based on cylindrical cam mechanisms, Eksploatacja i Niezawodność, 22, 715–723, 2020. a
Liu, C., Luo, Y., Yue, X., and Li, S.: Hierarchical Cooperative Adaptive Model Predictive Control for Swarm Self-assembly of Large-scale Spacecraft, Aerospace Science and Technology, p. 111538,
https://doi.org/10.1016/j.ast.2025.111538, 2025.
a
Liu, J., Zhao, P., Wu, C., Chen, K., Ren, W., Liu, L., Tang, Y., Ji, C., and Sang, X.: SIASAIL-I solar sail: from system design to on-orbit demonstration mission, Acta Astronaut., 192, 133–142, 2022. a
Liu, S., Zhang, E., Xu, Z., and Zhang, J.: Design of Docking Interfaces for On-Orbit Assembly of Large Structures in Space, Sensors, 24, 6534, 2024a. a
Liu, T., Wang, Z., Zhang, Y., Wang, Z., Liu, Z., Zhang, Y., and Huang, P.: Self-reconfiguration Strategies for Space-distributed Spacecraft, in: 2024 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS), pp. 9879–9884, IEEE,
https://doi.org/10.1109/IROS58592.2024.10802829, 2024b.
a
Melroy, P., Hill, L., Fowler, E. E., Hunter, R., Eagen, J., Sullivan, B. R., Will, P., and Palmer, J.: DARPA phoenix satlets: Progress towards satellite cellularization, in: AIAA SPACE 2015 Conference and Exposition, p. 4487,
https://doi.org/10.2514/6.2015-4487, 2015.
a
Nair, M. H., Rai, M. C., Reade, S., Bloch, O., Adlen, S., Soltau, M., and Homfray, D. A.: In-orbit assembly of high-value modular infrastructures: Holistic analysis and mission concepts, Acta Astronaut.,
https://doi.org/10.1016/j.actaastro.2025.09.070, 2025.
a
O'Neill, M., Yue, H., Nag, S., Grogan, P., and de Weck, O.: Comparing and optimizing the DARPA system F6 program value-centric design methodologies, in: AIAA SPACE 2010 Conference & Exposition, p. 8828,
https://doi.org/10.2514/6.2010-8828, 2010.
a
Piskorz, D. and Jones, K. L.: On-orbit assembly of space assets: A path to affordable and adaptable space infrastructure, The aerospace corporation, pp. 12–13,
https://aerospace.org/sites/default/files/2018-05/OnOrbitAssembly_0.pdf (last access: 16 March 2026), 2018. a
Schervan, T., Kreisel, J., Schroeder, K., and Wingo, D. R.: New horizons for exploration via flexible concepts based on building blocks using the standardized issi (intelligent space system interface) modular coupling kit by iboss, in: Global Space Exploration Conference, pp. 14–18,
https://doi.org/10.1109/IROS58592.2024.10802829, 2021.
a
Shoer, J. P. and Peck, M. A.: Flux-pinned interfaces for the assembly, manipulation, and reconfiguration of modular space systems, The J. Astronaut. Sci., 57, 667–688, 2009. a
Sun, J., Liu, X., Yin, Z., Zeng, T., Su, T., Ding, X., and Shao, Y.: Optimisation design investigation of a cylindrical end curve towards a non-continuous profile of a cam mechanism, The J. Eng., 2018, 1753–1760, 2018. a
Wang, J., Tian, Y., Xi, F., Chablat, D., Ren, G., and Zhao, Y.: A Pill bug-inspired Two-mode Mobile Robot Covered with Sliding Curvy Shells, IEEE T. Robot., pp. 1–14,
https://doi.org/10.1109/TRO.2026.3661723, 2026.
a
Wang, X., Zhang, F., Hu, D., Chen, R., and Song, Z.: Review, Prospect and Technical Challenge of Launch Vehicle, in: Autonomous Trajectory Planning and Guidance Control for Launch Vehicles, pp. 1–31, Springer Nature Singapore Singapore,
https://link.springer.com/chapter/10.1007/978-981-99-0613-0_1 (last access: 16 March 2026), 2023. a
Xue, Z., Liu, J., Wu, C., and Tong, Y.: Review of in-space assembly technologies, Chinese J. Aeronaut., 34, 21–47, 2021. a
Ye, D., Wang, B., Wu, L., Del Rio-Chanona, E. A., and Sun, Z.: PO-SRPP: A decentralized pivoting path planning method for self-reconfigurable satellites, IEEE T. Ind. Electron., 71, 14318–14327, 2024. a
Zhang, Z., Li, X., Li, Y., HU, G., Wang, X., Zhang, G., and TAO, H.: Modularity, reconfigurability, and autonomy for the future in spacecraft: A review, Chinese J. Aeronaut., 36, 282–315, 2023. a
Zhao, P., Liu, J., Li, Y., and Wu, C.: A spring-damping contact force model considering normal friction for impact analysis, Nonlinear Dynam., 105, 1437–1457, 2021. a
Zhao, P., Liu, J., Wu, C., Ye, S., Yang, Q., and Hao, G.: Deployment analysis of membranes with creases using a nonlinear torsion spring model, Int J. Mech. Sci., 255, 108444,
https://doi.org/10.1016/j.ijmecsci.2023.108444, 2023a.
a
Zhao, P., Wu, C., and Li, Y.: Design and application of solar sailing: A review on key technologies, Chinese J. Aeronaut., 36, 125–144, 2023b. a
Zhao, P., Liu, J., Wu, C., Zhao, Y., Yu, S., and Jing, X.: Theoretical modelling and sensitivity analysis for triangular membrane wrinkling of solar sail under muti-field effects, Appl. Math. Model., p. 116646,
https://doi.org/10.1016/j.apm.2025.116646, 2025.
a