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Building structures and materials

Geometric characteristics, deployment mechanisms, and digital fabrication methods of a free-form deployable membrane system based on CNC-knitted fabrics and CNC-bent frames

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Pages 1355-1370 | Received 26 Jun 2023, Accepted 27 Sep 2023, Published online: 04 Dec 2023

References

  • Ahlquist, S., W. Mcgee, S. Sharmin. 2017. “PneumaKnit: Actuated Architectures Through Wale-And Course-Wise Tubular Knit-Constrained Pneumatic Systems.” ACADIA, Boston, 38–51.
  • Ahlquist, S., A. Menges. 2013. “Frameworks for Computational Design of Textile Micro-Architectures and Material Behavior in Forming Complex Force-Active Structures[c].”ACADIA, Boston, 281–292.
  • Attia, S. 2016. “Evaluation of Adaptive Facades: The Case Study of Al Bahr Towers in the UAE.” QScience Connect 2016 (2): 6. https://doi.org/10.5339/qproc.2016.qgbc.8.
  • Blümel, D. 1972. Wandelbare Dächer. Stuttgart: Institute of Lightweight Structures.
  • Blümel, D. 1975. IL 12 Wandelbare Pneus. Stuttgart: Institute of Lightweight Structures.
  • Buckminster, F. R. 1962. Tensile-Integrity Structures. US Patent No. 3063521.
  • Chandra, M., S. Kumar, S. Chattopadhyaya, S. Chatterjee, and P. Kumar. 2021. “A Review on Developments of Deployable Membrane-Based Reflector Antennas.” Advances in Space Research 68 (9): 3749–3764. https://doi.org/10.1016/j.asr.2021.06.051.
  • Chen, T., J. Panetta, M. Schnaubelt, and M. Pauly. 2021. “Bistable Auxetic Surface Structures.” ACM Transactions on Graphics 40 (4): 1–9. Article 39. https://doi.org/10.1145/3450626.3459940.
  • Ching, F. D. 2023. Architecture: Form, Space, and Order[m]. United Kingdom: Wiley.
  • De Laet, L., R. Luchsinger, R. Crettol, M. Mollaert, and N. De Temmerman. 2009. “Deployable Tensairity Structures.” Journal of the International Association for Shell and Spatial Structures 50 (2): 121–128.
  • Del Grosso, A. E., and P. Basso. 2013. “Deployable Structures.” Advances in Science and Technology (83): 122–131. https://doi.org/10.4028/www.scientific.net/ast.83.122.
  • Dessi-Olive, J., J. Case, M. Koliner, V. Teja Meda. 2019. “Self-Deploying Tensegrity Structures with Inflatable Struts.” IASS annual symposia. Barcelona, No. 5, 1–8.
  • De Temmerman, N. 2007. Design and Analysis of Deployable Bar Structures for Mobile Architectural Applications. Vrije Universiteit Brussel.
  • Eisenbarth, C., W. Haase, Y. Klett, L. Blandini, and W. Sobek. 2021. “PAOSS: Pneumatically Actuated Origami Sun Shading.” Journal of Facade Design and Engineering 9 (9): 147–162.
  • Escrig, F. 1996. “General Survey of Deployability in Architecture.” Mobile and Rapidly Assembled Structures 24: 3–22. https://doi.org/10.2495/MRS960011.
  • Gantes, C. J. 2001. Deployable Structures: Analysis and Design. Southampton: WIT Press.
  • Gupta, S. S., Y. Y. Tan, P. Z. Chia, C. P. Pambudi, Y. H. Quek, C. Yogiaman, and K. J. Tracy. 2020. “Prototyping Knit Tensegrity Shells: A Design-To-Fabrication Workflow.” SN Applied Sciences 2 (6): Article 1062. https://doi.org/10.1007/s42452-020-2693-4.
  • Hanaor, A., and R. Levy. 2001. “Evaluation of Deployable Structures for Space Enclosures.” International Journal of Space Structures 16 (4): 211–229. https://doi.org/10.1260/026635101760832172.
  • Hoberman, C. 2006. “Transformation in Architecture and Design.” Transportable Environments 3 (3): 70–79.
  • Lienhard, J., N. Kugel. 2015. “Design of a Retractable Membrane Roof in Buchs CH.” IASS Annual Symposia, Amsterdam, No. 27, 1–10.
  • Melancon, D., B. Gorissen, C. J. García-Mora, C. Hoberman, and K. Bertoldi. 2021. “Multistable Inflatable Origami Structures at the Metre Scale.” Nature 592 (7855): 545–550. https://doi.org/10.1038/s41586-021-03407-4.
  • Mollaert, M. 1996. “Retractable Membrane Roofs.” WIT Transactions on the Built Environment 24: 407–417. https://doi.org/10.2495/MRS960381.
  • Narayanan, V., L. Albaugh, J. Hodgins, S. Coros, and J. Mccann. 2018. “Automatic Machine Knitting of 3D Meshes.” ACM Transactions on Graphics 37 (3): 1–15. Article 35. https://doi.org/10.1145/3186265.
  • Otto, F. 1973. Tensile Structures; Design, Structure, and Calculation of Buildings of Cables, Nets, and Membranes. Cambridge: The MIT Press.
  • Panetta, J., F. Isvoranu, T. Chen, E. Siéfert, B. Roman, and M. Pauly. 2021. “Computational Inverse Design of Surface-Based Inflatables.” ACM Transactions on Graphics 40 (4): 1–14. https://doi.org/10.1145/3450626.3459789.
  • Pellegrino, S. 2001. Deployable Structures[m]. Vienna: Springer.
  • Perez, P. E. 1965. Three Dimensional Reticular Structure. US Patent No. 3185164.
  • Pillwein, S., and P. Musialski. 2021. “Generalized Deployable Elastic Geodesic Grids.” ACM Transactions on Graphics 40 (6): 1–15. Article 271. https://doi.org/10.1145/3478513.3480516.
  • Popescu, M., M. Rippmann, A. Liew, L. Reiter, R. J. Flatt, T. Van Mele, and P. Block. 2021. “Structural Design, Digital Fabrication and Construction of the Cable-Net and Knitted Formwork of the KnitCandela Concrete Shell.” Structures 2020:1287–1299. https://doi.org/10.1016/j.istruc.2020.02.013.
  • Popescu, M., M. Rippmann, T. Van Mele, and P. Block. 2017. Design Modeling Symposium, Paris, 271–284.
  • Preisinger, C., and M. Heimrath. 2014. “Karamba-A Toolkit for Parametric Structural Design.” Structural Engineering International 24 (2): 217–221. https://doi.org/10.2749/101686614X13830790993483.
  • Ren, Y., U. Kusupati, J. Panetta, F. Isvoranu, D. Pellis, T. Chen, and M. Pauly. 2022. “Umbrella Meshes: Elastic Mechanisms for Freeform Shape Deployment.” ACM Transactions on Graphics 41 (4): 1–15. Article 152. https://doi.org/10.1145/3528223.3530089.
  • Rieffel, J., F. Valero-Cuevas, and H. Lipson. 2009. “Automated Discovery and Optimization of Large Irregular Tensegrity Structures.” Computers & Structures 87 (5–6): 368–379. https://doi.org/10.1016/j.compstruc.2008.11.010.
  • Riether, G., A. J. Wit, S. T. Putt. 2015. “The Underwood Pavilion: An Investigation in Parametric Tensegrity Structures.” CAADRIA, Daegu, 663–672.
  • Roovers, K., L. A. Mira, N. De Temmerman. 2013. “From Surface to Scissor Structure.” Proceedings of the First Conference Transformables, Munich, 275–280.
  • Roovers, K., N. D. Temmerman. 2015. “Digital Design of Deployable Scissor Grids Based on Circle Packing.” IASS annual symposia, Amsterdam, No. 6, 1–12.
  • Rose, K., A. Sheffer, J. Wither, M. P. Cani, B. Thibert. 2007. “Developable Surfaces from Arbitrary Sketched Boundaries[c].” Proceedings of the fifth Eurographics symposium on Geometry processing, Barcelona, Spain, 163–172.
  • Schek, H. J. 1974. “The Force Density Method for Form Finding and Computation of General Networks. Computer Methods in Applied Mechanics and Engineering.” Computer Methods in Applied Mechanics and Engineering 3 (1): 115–134. https://doi.org/10.1016/0045-7825(74)90045-0.
  • Skouras, M., B. Thomaszewski, P. Kaufmann, A. Garg, B. Bickel, E. Grinspun, and M. Gross. 2014. “Designing Inflatable Structures.” ACM Transactions on Graphics 33 (4): 63. https://doi.org/10.1145/2601097.2601166.
  • Tachi, T. 2012. “Interactive Freeform Design of Tensegrity.” Advances in Architectural Geometry, Paris, 259–268. https://doi.org/10.1007/978-3-7091-1251-9_21.
  • Tamke, M., Y. Sinke Baranovskaya, F. Monteiro, J. Lienhard, R. La Magna, and M. Thomsen. 2020. “Computational Knit – Design and Fabrication Systems for Textile Structures with Customised and Graded CNC Knitted Fabrics.” Architectural Engineering and Design Management 17 (3–4): 175–195. https://doi.org/10.1080/17452007.2020.1747386.
  • Thomsen, M. R., Y. S. Baranovskaya, F. Monteiro, J. Lienhard, R. L. Magna, M. Tamke. 2019. “Systems for Transformative Textile Structures in CNC Knitted Fabrics–Isoropia[c].” Proceedings of the TensiNet Symposium, Milan, 95–110.
  • Tracy, K., S. Gupta, Y. Stella, S. Wen, T. Wortmann, R. Bamford. 2019. “Tensile Configurations: Exploring Spatial Membrane Tensegrity Shell Structures.” ACADIA, Austin, 110–119.
  • Tracy, K., S. S. Gupta, T. Ying Yi, C. Pei Zhi, Q. Yu Han, R. Bamford, C. Yogiaman, O. Weeger 2019. “Knit Tensegrity Shell.” IASS Annual Symposium, Barcelona, No. 5, 1–9.
  • Wang, L., S. Nagarajaiah, W. Shi, and Y. Zhou. 2021. “Semi-Active Control of Walking-Induced Vibrations in Bridges Using Adaptive Tuned Mass Damper Considering Human-Structure-Interaction.” Engineering Structures 244:112743. https://doi.org/10.1016/j.engstruct.2021.112743.
  • Wang, L., S. Nagarajaiah, W. Shi, and Y. Zhou. 2022. “Seismic Performance Improvement of Base-Isolated Structures Using a Semi-Active Tuned Mass Damper.” Engineering Structures 271:114963. https://doi.org/10.1016/j.engstruct.2022.114963.
  • Wang, L., S. Nagarajaiah, Y. Zhou, and W. Shi. 2023. “Experimental Study on Adaptive-Passive Tuned Mass Damper with Variable Stiffness for Vertical Human-Induced Vibration Control.” Engineering Structures 280:115714. https://doi.org/10.1016/j.engstruct.2023.115714.
  • Wang, L., W. Shi, and Y. Zhou. 2022. “Adaptive-Passive Tuned Mass Damper for Structural Aseismic Protection Including Soil–Structure Interaction.” Soil Dynamics and Earthquake Engineering 158:107298. https://doi.org/10.1016/j.soildyn.2022.107298.
  • Wang, L., Y. Zhou, S. Nagarajaiah, and W. Shi. 2023. “Bi-Directional Semi-Active Tuned Mass Damper for Torsional Asymmetric Structural Seismic Response Control.” Engineering Structures 294:116744. https://doi.org/10.1016/j.engstruct.2023.116744.
  • Wang, L., Y. Zhou, and W. Shi. 2023. “Seismic Control of a Smart Structure with Semiactive Tuned Mass Damper and Adaptive Stiffness Property.” Earthquake Engineering and Resilience 2 (1): 74–93. https://doi.org/10.1002/eer2.38.
  • Wang, L., Y. Zhou, W. Shi, and Y. Zhou. 2023. “Seismic Response Control of a Nonlinear Tall Building Under Mainshock-Aftershock Sequences Using Semi-Active Tuned Mass Damper.” International Journal of Structural Stability and Dynamics. https://doi.org/10.1142/S0219455423400278.
  • Wu, K., H. Swan, and C. Yuksel. 2019. “Knittable Stitch Meshes.” ACM Transactions on Graphics 38 (1): 1–13. Article 10. https://doi.org/10.1145/3292481.
  • Wyller, M., M. Yablonina, M. Alvarez, and A. Menges. 2020. “Adaptive Kinematic Textile Architecture.” Construction Robotics 4 (3): 227–237. https://doi.org/10.1007/s41693-020-00046-5.
  • Yang, S., and C. Sultan. 2016. “Modeling of Tensegrity-Membrane Systems.” International Journal of Solids and Structures 82:125–143. https://doi.org/10.1016/j.ijsolstr.2015.09.012.
  • Yige, L., L. Li, Y. Philip. 2019. “A Computational Approach for Knitting 3D Composites Preforms.” CDRF, Shanghai, 232–246.
  • Zhang, X., R. Nie, Y. Chen, and B. He. 2021. “Deployable Structures: Structural Design and Static/Dynamic Analysis.” Journal of Elasticity 146 (2): 199–235. https://doi.org/10.1007/s10659-021-09860-6.
  • Zhang, H., L. Wang, and W. Shi. 2023. “Seismic Control of Adaptive Variable Stiffness Intelligent Structures Using Fuzzy Control Strategy Combined with LSTM.” Journal of Building Engineering 78:107549. https://doi.org/10.1016/j.jobe.2023.107549.
  • Zheng, C., T. Sun, X. Chen. 2016. “Deployable 3D Linkages with Collision Avoidance.” Symposium on Computer Animation, Zurich, 179–188.