Digital Fabrication of Biologically Cemented Spatial Structures

被引:0
|
作者
Paez, Karen Antorveza [1 ]
Ling, Andrea Shin [1 ]
Mahamaliyev, Nijat [1 ]
Bauer, Georg [2 ]
Dillenburger, Benjamin [1 ]
机构
[1] Swiss Fed Inst Technol, Inst Technol Architecture ITA, Dept Architecture, Digital Bldg Technol, Stefano Franscini Pl, CH-8093 Zurich, Switzerland
[2] Vienna Univ Technol, Fac Civil & Environm Engn, Vienna, Austria
关键词
biodesign; microbially induced calcite precipitation (MICP); biocementation; additive manufacturing; nonplanar 3D printing; robotic fabrication; STRENGTH; ASH;
D O I
10.1089/3dp.2023.0339
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The environmental impact of the construction industry demands sustainable alternatives to traditional concrete production. Microbially induced calcite precipitation (MICP) offers an alternative solution where microbes can produce biocemented structures at a low cost and ambient temperature. This study integrates MICP with nonplanar granular 3D printing methods, overcoming casting limitations such as geometrical constraints and uneven calcification, enabling the creation of thin, porous structures with an increased surface, which is beneficial for biocementation. Our approach combines computational design, microbial techniques, and digital fabrication, presenting biocemented prototypes demonstrating Sporosarcina pasteurii's ability to achieve natural calcification in printed systems. Materials analysis confirms the microorganisms' ability to produce more calcite in geometries that provide more surface exposure to the environment, which is a significant advance in large-scale 3D-printed biocemented structures. Moreover, even though 3D printing has already been demonstrated to be a viable means of fabricating small-scale structures capable of MICP, our study presents key steps toward 3D printing MICP-capable structures on a large scale, surpassing the typical small-scale demonstrators below 10 cm to samples above 20 cm in diameter.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Digital Fabrication
    Williams, Kim
    NEXUS NETWORK JOURNAL, 2012, 14 (03) : 407 - 408
  • [32] Digital Fabrication
    Lau, Manfred
    Mitani, Jun
    Igarashi, Takeo
    COMPUTER, 2012, 45 (12) : 76 - 79
  • [33] Rapid fabrication of antireflective structures on ZnS surface by spatial shaping femtosecond laser
    Zhou, Kun
    Yuan, Yanping
    Wang, Chunlian
    Zhang, Kaihu
    Chen, Jimin
    He, Huiyu
    OPTICS AND LASER TECHNOLOGY, 2024, 171
  • [34] Slack Pack: Fabrication System for the Dual Robotic Winding of Spatial Fiber Structures
    Hildebrandt, Harrison
    He, Mengxi
    Chen, Peng-An
    Estrada, Rebeca Duque
    Zechmeister, Christoph
    Menges, Achim
    PHYGITAL INTELLIGENCE, CDRF 2023, 2024, : 476 - 491
  • [35] From nature to fabrication: Biomimetic design principles for the production of complex spatial structures
    Magna, Riccardo
    Gabler, Markus
    Reichert, Steffen
    Schwinn, Tobias
    Waimer, Frédéric
    Menges, Achim
    Knippers, Jan
    International Journal of Space Structures, 2013, 28 (01) : 27 - 39
  • [36] Multi-level structures in cemented granular materials from digital image processing and complex network theory
    Yang, Hu
    Xie, Ziwan
    Shan, Liyan
    Li, Lingwen
    Wang, Xinran
    Dong, Zejiao
    POWDER TECHNOLOGY, 2025, 452
  • [37] Fabrication of Functionally Gradient Cemented Carbide with Ultrafine Grains
    Zhou, Xiangkui
    Wang, Kai
    Xu, Zhifeng
    Wang, Qiang
    Li, Guojian
    He, Jicheng
    CMC-COMPUTERS MATERIALS & CONTINUA, 2014, 41 (02): : 153 - 161
  • [38] Fabrication of functionally gradient cemented carbide with ultrafine grains
    Zhou, Xiangkui
    Wang, Kai
    Xu, Zhifeng
    Wang, Qiang
    Li, Guojian
    He, Jicheng
    Computers, Materials and Continua, 2014, 41 (02): : 153 - 161
  • [39] Balancing fluid and cemented routines in a digital workplace
    Rossi, Matti
    Nandhakumar, Joe
    Mattila, Merja
    JOURNAL OF STRATEGIC INFORMATION SYSTEMS, 2020, 29 (02):