Fabrication methods of shell structures

被引:3
作者
Vatandoost, Mohsen [1 ,3 ]
Ekhlassi, Ahmad [2 ]
Golabchi, Mahmood [1 ]
Rahbar, Morteza [2 ]
von Buelow, Peter [3 ]
机构
[1] Univ Tehran, Coll Fine Arts, Fac Architecture, Dept Architectural Technol, Tehran, Iran
[2] Iran Univ Sci & Technol, Sch Architecture & Environm Design, Tehran, Iran
[3] Univ Michigan, Taubman Coll Architecture & Urban Planning, Ann Arbor, MI USA
关键词
Shell structures; Formwork; Digital fabrication; Robotic fabrication; Additive manufacturing; Concrete; 3D-printing; Digital concrete; Prefabrication; Adaptive mold; Flexible mold; FORMWORK SYSTEM; CONCRETE; CONSTRUCTION; DESIGN; REINFORCEMENT; CHALLENGES; PROTOTYPE; NET;
D O I
10.1016/j.autcon.2024.105570
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Even though computational design has paved the way for the design of complex forms, construction is still difficult, inefficient, and costly. This paper aims to compile the most recent fabrication techniques for shell structures to create an overview of fabrication methods. This paper reviews existing, recently developed, and previously unexplored techniques for building and fabricating shell structures. The objective of this review is to find trends, patterns, or gaps in the literature that can direct future research. As a result, each fabrication technique is explained and demonstrated with relevant built projects. Moreover, each method's advantages, disadvantages, and limitations are highlighted. These techniques are grouped into four main classes and evaluated. In conclusion, categorizing fabrication techniques reveals the state-of-the-art in fabrication and highlights potential research gaps. Moreover, this research might encourage researchers to explore novel methods and solutions to overcome the current method's limitations.
引用
收藏
页数:25
相关论文
共 149 条
  • [1] Adriaenssens S., 2014, Shell Structures for Architecture, DOI DOI 10.4324/9781315849270
  • [2] Adriaenssens S., 2016, Advances in Architectural Geometry 2016
  • [3] Aghaei Meibodi M., 2020, ACADIA 2020: Distributed Proximities, V1, P516
  • [4] Baghdhadie S, 2022, IOP Conference Series: Earth and Environmental Science, V1078
  • [5] Bhooshan S., 2022, Archit. Struct. Constr, V2, P521, DOI DOI 10.1007/S44150-022-00051-Y
  • [6] Billington D., 1965, Thin Shell Concrete Structures
  • [7] FORM FINDING OF SHELLS BY STRUCTURAL OPTIMIZATION
    BLETZINGER, KU
    RAMM, E
    [J]. ENGINEERING WITH COMPUTERS, 1993, 9 (01) : 27 - 35
  • [8] NEST HiLo: Investigating lightweight construction and adaptive energy systems
    Block, P.
    Schlueter, A.
    Veenendaal, D.
    Bakker, J.
    Begle, M.
    Hischier, I.
    Hofer, J.
    Jayathissa, P.
    Maxwell, I.
    Echenagucia, T. Mendez
    Nagy, Z.
    Pigram, D.
    Svetozarevic, B.
    Torsing, R.
    Verbeek, J.
    Willmann, A.
    Lydon, G. P.
    [J]. JOURNAL OF BUILDING ENGINEERING, 2017, 12 : 332 - 341
  • [9] HIERARCHICAL STRUCTURES COMPUTATIONAL DESIGN AND DIGITAL 3D PRINTING
    Borunda, Luis
    Anaya, Jesus
    [J]. JOURNAL OF THE INTERNATIONAL ASSOCIATION FOR SHELL AND SPATIAL STRUCTURES, 2023, 64 (01): : 5 - 18
  • [10] The realities of additively manufactured concrete structures in practice
    Bos, F. P.
    Menna, C.
    Pradena, M.
    Kreiger, E.
    da Silva, W. R. Leal
    Rehman, A. U.
    Weger, D.
    Wolfs, R. J. M.
    Zhang, Y.
    Ferrara, L.
    Mechtcherine, V
    [J]. CEMENT AND CONCRETE RESEARCH, 2022, 156