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 Federal Aviation Administration, FAA (eds) (2012) Find in CUMINCAD Advanced Composite Materials. Aviation Maintenance Technician. Handbook-Airframe , Aviation Supplies & Academics, Incorporated, Newcastle, WA, US

33%; open Baverel, O, Caron, JF, Tayeb, F and Peloux, LD (2012) Find in CUMINCAD Gridshells in composite materials: Construction of a 300 m2 forum for the solidays' festival in Paris , Structural Engineering International, 22(3), pp. 408-414

33%; open Cheung KC. (2012) Find in CUMINCAD Digital cellular solids: reconfigurable composite materials , Doctoral thesis, Massachusetts Institute of Technology, Cambridge, MA

33%; open Cheung, K (2012) Find in CUMINCAD Digital Cellular Solids: Reconfigurable Composite Materials , Ph.D. Thesis, MIT

33%; open Fernandez, JG and Ingber, DE (2012) Find in CUMINCAD Unexpected Strength and Toughness in Chitosan-Fibroin Laminates Inspired by Insect Cuticle , Advanced Materials, 24(4), pp. 480-484

33%; open Fernandez, JG and Ingber, DE (2012) Find in CUMINCAD Unexpected Strength and Toughness in Chitosan-Fibroin Laminates Inspired by Insect Cuticle , Advanced Materials, 24(4), pp. 480-484

33%; open Gosselin, C., Duballet, R., Roux, P., Gaudilliere, N., Dirrenberger, J. & Morel, P. (2016) Find in CUMINCAD Large-scale 3D printing of ultra-high performance concrete–a new processing route for architects and builders , Materials & Design, 100, 102-109. https://doi.org/10.1016/j.matdes.2016.03.097Khoshnevis, B. (2004). Automated construction by contour crafting—related robotics and information technologies. Automation in construction, 13(1), 5-19. https://doi.org/10.1016/j.autcon.2003.08.012Le, T. T., Austin, S. A., Lim, S., Buswell, R. A., Gibb, A. G., & Thorpe, T. (2012). Mix design and fresh properties for high-performance printing concrete. Materials and structures, 45(8), 1221-1232. https://doi.org/10.1617/s11527-012-9828-zLi, Z., Wang, L., Ma, G., Sanjayan, J., & Feng, D. (2020). Strength and ductility enhancement of 3D printing structure reinforced by embedding continuous micro-cables. Construction and Building Materials, 264, 120196. https://doi.org/10.1016/j.conbuildmat.2020.120196Lim, J. H., Weng, Y., & Pham, Q. C. (2020). 3D printing of curved concrete surfaces using Adaptable Membrane Formwork. Construction and Building Materials, 232, 117075. https://doi.org/10.1016/j.conbuildmat.2019.117075Ma, G., Li, Z., Wang, L., & Bai, G. (2019). Micro-cable reinforced geopolymer composite for extrusion-based 3D printing. Materials Letters, 235, 144-147. https://doi.org/10.1016/j.matlet.2018.09.159Masoud Akbarzadeh. Andrei Nejur.(2019). Polyframe. From https://psl.design.upenn.edu/polyframe/Mechtcherine, V., Nerella, V. N., Will, F., Näther, M., Otto, J., & Krause, M. (2019). Large-scale digital concrete construction–CONPrint3D concept for on-site, monolithic 3D-printing. Automation in Construction, 107, 102933. https://doi.org/10.1016/j.autcon.2019.102933Salet, T. A., Ahmed, Z. Y., Bos, F. P., & Laagland, H. L. (2018). Design of a 3D printed concrete bridge by testing. Virtual and Physical Prototyping, 13(3), 222-236. https://doi.org/10.1080/17452759.2018.1476064

33%; open Griffith, K., Williams, R., Knight, T., Sass, L. and Kamath, A. (2012) Find in CUMINCAD Cradle molding device: An automated CAD/CAM molding system for manufacturing composite materials as customizable assembly units for rural application , Automation in Construction, 21, 114-120

33%; open He, Y, Chen, M and Wang, X (2012) Find in CUMINCAD A Brief Discussion and Analysis on Methods of High Performance Architecture Facades Design , Advanced Materials Research, 368-373, pp 3757-3760

33%; open He, Y., Chen, M., Wang, X., (2011) Find in CUMINCAD A Brief Discussion and Analysis on Methods of High Performance Architecture Facades Design , Advanced Materials Research Vols. 368373(2012), 3757-3760

33%; open Herakovich, Carl T (2012) Find in CUMINCAD Composite Materials: Lamination Theory , Wiley Encyclopedia of Composites, edited by L. Nicolais, 1–5. John Wiley & Sons

33%; open Jiang, Z., & Liu, X. (2012) Find in CUMINCAD Numerical Simulation Study on High-rise Student Apartment Fire Evacuation , Advanced Materials Research, 433-44, 311-316. Available at: https://doi.org/1.428/www.scientific.net/AMR.43

33%; open Lee, Jae Hwang, Jonathan P. Singer, and Edwin L. Thomas (2012) Find in CUMINCAD Micro-/nanostructured Mechanical Metamaterials , Advanced Materials 24 (36): 4782–4810

33%; open Lee, Jae Hwang, Jonathan P. Singer, and Edwin L. Thomas (2012) Find in CUMINCAD Micro-/nanostructured Mechanical Metamaterials , Advanced Materials 24 (36): 4782–4810

33%; open Lee, Jae-Hwang, Jonathan P. Singer, and Edwin L. Thomas (2012) Find in CUMINCAD Micro-/Nanostructured Mechanical Metamaterials , Advanced Materials 24 (36): 4782–810

33%; open Nicholas P. and M. Tamke (2012) Find in CUMINCAD Composite Territories: Engaging A Bespoke Material Practice in Digitally Designed Materials , Proceedings of the 30th eCAADe Conference on Simulation, Prediction and Evaluation. Prague, Czech Republic: eCAADe 30(2): 681-690

33%; open Nicholas, P and Tamke, M (2012) Find in CUMINCAD Composite Territories: Engaging a bespoke material practice in digitally designed materials , Proceedings of the 30th eCAADe Conference - Volume 2, Czech Technical University in Prague, pp. 691-699

33%; open Nicholas, P. and Tamke, M. (2012) Find in CUMINCAD Composite Territories: Engaging a bespoke material practice in digitally designed materials , In Proceeding of eCAADe 2012: pp. 691-699. 2012

33%; open Nicholas, P. and Tamke, M. (2012) Find in CUMINCAD Composite Territories: Engaging a bespoke material practice in digitally designed materials , In Proceeding of eCAADe 2012: pp. 691-699. 2012

33%; open Overvelde, Johannes T. B., S. Shan, and Katia Bertoldi (2012) Find in CUMINCAD Compaction through Buckling in 2D Periodic, Soft and Porous Structures: Effect of Pore Shape , Advanced Materials 24 (17): 2337–42

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