Literature DB >> 32121582

Injection 3D Concrete Printing (I3DCP): Basic Principles and Case Studies.

Norman Hack1, Inka Dressler2, Leon Brohmann1, Stefan Gantner1, Dirk Lowke2, Harald Kloft1.   

Abstract

Today, the majority of research in 3D concrete printing focuses on one of the three methods: firstly, material extrusion; secondly, particle-bed binding; and thirdly, material jetting. Common to all these technologies is that the material is applied in horizontal layers. In this paper, a novel 3D concrete printing technology is presented which challenges this principle: the so-called Injection 3D Concrete Printing (I3DCP) technology is based on the concept that a fluid material (M1) is robotically injected into a material (M2) with specific rheological properties, causing material M1 to maintain a stable position within material M2. Different to the layered deposition of horizontal strands, intricate concrete structures can be created through printing spatially free trajectories, that are unconstrained by gravitational forces during printing. In this paper, three versions of this method were investigated, described, and evaluated for their potential in construction: A) injecting a fine grain concrete into a non-hardening suspension; B) injecting a non-hardening suspension into a fine grain concrete; and C) injecting a fine grain concrete with specific properties into a fine grain concrete with different properties. In an interdisciplinary research approach, various material combinations were developed and validated through physical experiments. For each of the three versions, first architectural applications were developed and functional prototypes were fabricated. These initial results confirmed both the technological and economic feasibility of the I3DCP process, and demonstrate the potential to further expand the scope of this novel technology.

Entities:  

Keywords:  Injection 3D Concrete Printing; concrete 3D printing; digital concrete

Year:  2020        PMID: 32121582     DOI: 10.3390/ma13051093

Source DB:  PubMed          Journal:  Materials (Basel)        ISSN: 1996-1944            Impact factor:   3.623


  1 in total

1.  Foundation Piles-A New Feature for Concrete 3D Printers.

Authors:  Marcin Hoffmann; Krzysztof Żarkiewicz; Adam Zieliński; Szymon Skibicki; Łukasz Marchewka
Journal:  Materials (Basel)       Date:  2021-05-13       Impact factor: 3.623

  1 in total

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