CumInCAD is a Cumulative Index about publications in Computer Aided Architectural Design
supported by the sibling associations ACADIA, CAADRIA, eCAADe, SIGraDi, ASCAAD and CAAD futures

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100%; open Rippman, M. and Block, P. (2013) Find in CUMINCAD Funicular Funnel Shells , Design Modelling Symposium 2013, Berlin

100%; open Rippmann M. and P. Block (2013) Find in CUMINCAD Funicular Funnel Shells , Proceedings of the Design Modeling Symposium Berlin, Berlin, Germany 28th September to 2nd October 2013

50%; open (2013) Find in CUMINCAD Climate adaptive building shells: state-of-the-art and future challenges , Renewable and Sustainable Energy Reviews, 25, pp. 483-493

50%; open (2013) Find in CUMINCAD Climate adaptative buildings shells: State-of-the-art and future challenges , Renewable and Sustainable Energy Reviews 25, 483-493

50%; open Bedarf, P., Szabo, A., Zanini, M. & Dillenburger, B. (2021) Find in CUMINCAD Machine Sensing for Mineral Foam 3D Printing , International Conference on Intelligent Robots and Systems: Workshop Robotic Fabrication, IROS 2021. https://doi.org/10.3929/ethz-b-000506097BubbleDeck. (2021). The Original Voided Slab. Retrieved May 11 2021, from https://www.bubbledeck.comCobiax. (2021). Voided flat plate slab technologies available worldwide. Retrieved May 11 2021, from https://www.cobiax.com/intl/en/Compas. (2020). Retrieved May 11 2021, from https://compas.dev/index.htmlFernández-Jiménez, A., & Palomo, A. (2005). Composition and microstructure of alkali activated fly ash binder: Effect of the activator. Cement and Concrete Research, 35(10), 1984–1992. https://doi.org/10.1016/j.cemconres.2005.03.003Furet, B., Poullain, P., & Garnier, S. (2019). 3D printing for construction based on a complex wall of polymer-foam and concrete. Additive Manufacturing, 28, 58–64. https://doi.org/10.1016/j.addma.2019.04.002Georgopoulos, C., & Minson, A. (2014). Sustainable concrete solutions. Wiley-Blackwell.Halpern, A. B., Billington, D. P., & Adriaenssens, S. (2013). The Ribbed Floor Slab Systems of Pier Luigi Nervi. Proceedings of the International Association for Shell and Spatial Structures (IASS), 7. http://formfindinglab.princeton.edu/wp-content/uploads/2011/09/Nervi_ribbed_floors.pdfHansemann, G., Schmid, R., Holzinger, C., Tapley, J. P., Peters, S., Trummer, A., & Kupelwieser, H. (2021). Lightweight Reinforced Concrete Slab: 130 different 3D printed voids. CPT Worldwide - Construction Printing Technology, 2021(2), 68.Jipa, A., Calvo Barentin, C., Lydon, G., Rippmann, M., Chousou, G., Lomaglio, M., Schlüter, A., Block, P., & Dillenburger, B. (2019). 3D-Printed Formwork for Integrated Funicular Concrete Slabs. Proceedings of the IASS Annual Symposium 2019, 10. https://www.researchgate.net/publication/335175125_3D-Printed_Formwork_for_Integrated_Funicular_Concrete_SlabsJipa, A., & Dillenburger, B. (2021). 3D Printed Formwork for Concrete: State-of-the-Art, Opportunities, Challenges, and Applications. 3D Printing and Additive Manufacturing, 00, 24. https://doi.org/10.1089/3dp.2021.0024Keating, S. J., Leland, J. C., Cai, L., & Oxman, N. (2017). Toward site-specific and self-sufficient robotic fabrication on architectural scales. Science Robotics, 2(5), 1-15. https://doi.org/10.1126/scirobotics.aam8986Liew, A., López, D. L., Van Mele, T., & Block, P. (2017). Design, fabrication and testing of a prototype, thin-vaulted, unreinforced concrete floor. Engineering Structures, 137, 323–335. https://doi.org/10.1016/j.engstruct.2017.01.075Palomo, A., Grutzeck, M. W., & Blanco, M. T. (1999). Alkali-activated fly ashes: A cement for the future. Cement and Concrete Research, 29(8), 1323–1329. https://doi.org/10.1016/S0008-8846(98)00243-9UN Environment Programme. (2020). Global Status Report for Buildings and Construction. Retrieved May 11 2021, from https://globalabc.org/sites/default/files/inline-files/2020%20Buildings%20GSR_FULL%20REPORT.pdfXu, H., & Van Deventer, J. S. J. (2000). The geopolymerisation of alumino-silicate minerals. International Journal of Mineral Processing, 59(3), 247–266. https://doi.org/10.1016/S0301-7516(99)00074-5Zhao, H., Gu, F., Huang, Q.-X., Garcia, J., Chen, Y., Tu, C., Benes, B., Zhang, H., Cohen-Or, D., & Chen, B. (2016). Connected fermat spirals for layered fabrication. ACM Transactions on Graphics, 35(4), 1–10. https://doi.org/10.1145/2897824.2925958

50%; open Block P., and M. Rippmann (2013) Find in CUMINCAD Funicular Shell Design Exploration , Proceedings of the 33rd Annual Conference of the Association for Computer Aided Design in Architecture, October 24-26, 2013. Cambridge, ON: University of Waterloo School of Architecture

50%; open Clifford, B (2013) Find in CUMINCAD Thicker Funicular: Particle-Spring Systems for Variable-Depth Form-Responding Compression-Only Structures , International Conference on Structures and Architecture, Guimar?es, Portugal

50%; open Clow, D (2013) Find in CUMINCAD MOOCs and the funnel of participation , Third Conference on Learning Analytics and Knowledge, Leuven, pp. 185-189

50%; open Echenagucia, TM, Pugnale, A and Sassone, M (2013) Find in CUMINCAD Multi-Objective Optimization of Concrete Shells , Structures and Architecture: New concepts, applications and challenges, -, pp. 712-718.

50%; open Flügge, W (2013) Find in CUMINCAD Stresses in shells , Springer Science & Business Media

50%; open Loonen R.C.G.M., Trèka M., Cóstola D. et al. (2013) Find in CUMINCAD Climate adaptive building shells: state-of-the-art and future challenges , Renew Sust Energ Rev; 25: 483–493

50%; open Loonen, R, Trèka, M, Cóstola, D and Hensen, J (2013) Find in CUMINCAD Climate adaptive building shells: State-of-the-art and future challenges , Renewable and Sustainable Energy Reviews, 25, pp. 483-493

50%; open Loonen, R. C. G. M., Trèka, M., Cóstola, D. & Hensen, J. L. M. (2013) Find in CUMINCAD Climate adaptive building shells: State-of-the-art and future challenges , Renewable and Sustainable Energy Reviews, 25, 483–493. https://doi.org/10.1016/j.rser.2013.04.016Luna-Navarro, A., Loonen, R., Juaristi, M., Monge-Barrio, A., Attia, S., & Overend, M. (2020). Occupant-Facade interaction: a review and classification scheme. Building and Environment, 177(March), 106880. https://doi.org/10.1016/j.buildenv.2020.106880

50%; open Loonen, R. C. G. M., Trèka, M., Cóstola, D., & Hensen, J. L. M. (2013) Find in CUMINCAD Climate Adaptive Building Shells: State-of-the-art and Future Challenges , Renewable and Sustainable Energy Reviews, 25, 483-493. Available at: https://doi.org/1.116/j.rser.213.4.16

50%; open Loonen, R. C. G. M., Trèka, M., Cóstola, D., & Hensen, J. L. M. (2013) Find in CUMINCAD Climate adaptive building shells: State-of-the-art and future challenges , Renewable and Sustainable Energy Reviews, 25, pp. 483-493

50%; open Loonen, R. C.G.M., M. Trèka, D. Cóstola, And J. L.M. Hensen. (2013) Find in CUMINCAD Climate Adaptive Building Shells: State-of-the-Art and Future Challenges , Renewable and Sustainable Energy Reviews 25(2013): 483–93

50%; open Loonen, R., Trèka, M., Cóstola, D. and Hensen, J. (2013) Find in CUMINCAD Climate adaptive building shells: State-of-the-art and future challenges , Renewable and Sustainable Energy Reviews, 25, p. 483–493

50%; open Loonen, R.C.G.M., Trcka, M, Costola, D and Hansen, J.L.M. (2013) Find in CUMINCAD Climate adaptive building shells: State-of-the-art and future challenges , Renewable and Sustainable Energy Reviews, 25, pp. 483-493

50%; open Loonen, R.C.G.M., Tricka, M., Cóstola, D. and Hensen, J.L.M. (2013) Find in CUMINCAD Climate adaptive building shells: state-of-the-art and future challenges , Renewable and Sustainable Energy Reviews, 2013, 25, 483-93

50%; open Loonen, R.C.G.M., Trèka, M, Cóstola, D, Hensen, J.L.M. (2013) Find in CUMINCAD Climate adaptive building shells: State-of-the-art and future challenges , Renewable and Sustainble Energy Reviews, 25, p483-493. Available at https://doi.org/10.1016/j.rser.2013.04.016 (Accessed 10 October 2021)

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