A 3D Printing Method of Cement-Based FGM Composites Containing Granulated Cork, Polypropylene Fibers, and a Polyethylene Net Inter-Layer (2023-06)¶
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Journal Article - Materials, Vol. 16, Iss. 12, No. 4235
Abstract
The increasing popularity of additive manufacturing technologies in the prototyping and building industry requires the application of novel, improved composite materials. In this paper, we propose the use of a novel 3D printing cement-based composite material with natural, granulated cork, and additional reinforcement using a continuous polyethylene interlayer net combined with polypropylene fibre reinforcement. Our assessment of different physical and mechanical properties of the used materials during the 3D printing process and after curing verified the applicability of the new composite. The composite exhibited orthotropic properties, and the compressive toughness in the direction of layer stacking was lower than that perpendicular to it, by 29.8% without net reinforcement, 42.6% with net reinforcement, and 42.9% with net reinforcement and an additional freeze–thaw test. The use of the polymer net as a continuous reinforcement led to decreased compressive toughness, lowering it on average by 38.5% for the stacking direction and 23.8% perpendicular to the stacking direction. However, the net reinforcement additionally lowered slumping and elephant’s foot effects. Moreover, the net reinforcement added residual strength, which allowed for the continuous use of the composite material after the failure of the brittle material. Data obtained during the process can be used for further development and improvement of 3D-printable building materials.
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26 References
- Alkhalidi Ammar, Hatuqay Dina (2020-02)
Energy Efficient 3D Printed Buildings:
Material and Techniques Selection Worldwide Study - Bos Freek, Ahmed Zeeshan, Jutinov Evgeniy, Salet Theo (2017-11)
Experimental Exploration of Metal-Cable as Reinforcement in 3D Printed Concrete - Bos Freek, Bosco Emanuela, Salet Theo (2018-11)
Ductility of 3D Printed Concrete Reinforced with Short Straight Steel-Fibers - Bos Freek, Wolfs Robert, Ahmed Zeeshan, Salet Theo (2016-08)
Additive Manufacturing of Concrete in Construction:
Potentials and Challenges of 3D Concrete Printing - Buswell Richard, Silva Wilson, Bos Freek, Schipper Roel et al. (2020-05)
A Process Classification Framework for Defining and Describing Digital Fabrication with Concrete - Cicione Antonio, Kruger Jacques, Walls Richard, Zijl Gideon (2020-05)
An Experimental Study of the Behavior of 3D Printed Concrete at Elevated Temperatures - Duballet Romain, Baverel Olivier, Dirrenberger Justin (2017-08)
Classification of Building Systems for Concrete 3D Printing - Jiang Quan, Liu Qiang, Wu Si, Zheng Hong et al. (2022-06)
Modification Effect of Nano-Silica and Polypropylene-Fiber for Extrusion-Based 3D Printing Concrete:
Printability and Mechanical Anisotropy - Karpova Ekaterina, Skripkiūnas Gintautas, Sedova Anastasiia, Tsimbalyuk Yelyzaveta (2021-07)
Additive Manufacturing of Concrete Wall-Structures - Le Thanh, Austin Simon, Lim Sungwoo, Buswell Richard et al. (2012-01)
Mix-Design and Fresh Properties for High-Performance Printing Concrete - Liu Xuanting, Sun Bohua (2021-11)
The Influence of Interface on the Structural Stability in 3D Concrete Printing Processes - Ma Lei, Zhang Qing, Jia Zijian, Liu Chao et al. (2021-11)
Effect of Drying Environment on Mechanical Properties, Internal RH and Pore-Structure of 3D Printed Concrete - Nerella Venkatesh, Hempel Simone, Mechtcherine Viktor (2019-02)
Effects of Layer-Interface Properties on Mechanical Performance of Concrete Elements Produced by Extrusion-Based 3D Printing - Panda Biranchi, Paul Suvash, Lim Jian, Tay Yi et al. (2017-08)
Additive Manufacturing of Geopolymer for Sustainable Built Environment - Paul Suvash, Tay Yi, Panda Biranchi, Tan Ming (2017-08)
Fresh and Hardened Properties of 3D Printable Cementitious Materials for Building and Construction - Paul Suvash, Zijl Gideon, Tan Ming, Gibson Ian (2018-05)
A Review of 3D Concrete Printing Systems and Materials Properties:
Current Status and Future Research Prospects - Pham Luong, Tran Jonathan, Sanjayan Jay (2020-04)
Steel-Fiber-Reinforced 3D Printed Concrete:
Influence of Fiber Sizes on Mechanical Performance - Puzatova (nee Sharanova) Anastasiia, Shakor Pshtiwan, Laghi Vittoria, Dmitrieva Maria (2022-11)
Large-Scale 3D Printing for Construction Application by Means of Robotic Arm and Gantry 3D Printer:
A Review - Ramakrishnan Sayanthan, Muthukrishnan Shravan, Sanjayan Jay, Pasupathy Kirubajiny (2021-08)
Concrete 3D Printing of Lightweight Elements Using Hollow-Core Extrusion of Filaments - Shakor Pshtiwan, Nejadi Shami, Sutjipto Sheila, Paul Gavin et al. (2020-01)
Effects of Deposition-Velocity in the Presence-Absence of E6-Glass-Fiber on Extrusion-Based 3D Printed Mortar - Sun Xiaoyan, Zhou Jiawei, Wang Qun, Shi Jiangpeng et al. (2021-11)
PVA-Fiber-Reinforced High-Strength Cementitious Composite for 3D Printing:
Mechanical Properties and Durability - Valente Marco, Sibai Abbas, Sambucci Matteo (2019-09)
Extrusion-Based Additive Manufacturing of Concrete Products:
Revolutionizing and Remodeling the Construction Industry - Wang Li, Ma Guowei, Liu Tianhao, Buswell Richard et al. (2021-07)
Inter-Layer Reinforcement of 3D Printed Concrete by the In-Process Deposition of U-Nails - Yang Yekai, Wu Chengqing, Liu Zhongxian, Zhang Hai (2021-12)
3D Printing Ultra-High-Performance Fiber-Reinforced Concrete under Triaxial Confining Loads - Yu Shiwei, Sanjayan Jay, Du Hongjian (2022-07)
Effects of Cement Mortar Characteristics on Aggregate-Bed 3D Concrete Printing - Zhang Jingchuan, Wang Jialiang, Dong Sufen, Yu Xun et al. (2019-07)
A Review of the Current Progress and Application of 3D Printed Concrete
4 Citations
- Shoaei Parham, Gallantree-Smith Harrison, Martínez Pacheco Victor, Pamies Ramón et al. (2024-06)
Comparative Analysis of 3D Printing of Portland Cement Mortars with Hydroxypropyl-Methylcellulose and Micro-Fibrillated Cellulose as Viscosity-Modifying-Agents - Mu Ru, Chen Jiao, Qing Longbang, Fan Chunhao et al. (2024-05)
Properties of a Steel-Fiber-Reinforced Cementitious Composite Stool with Digitally Distributed Steel-Fibers - Chamatete Kunda, Yalçınkaya Çağlar (2024-03)
Numerical Evaluation on Thermal Performance of 3D Printed Concrete Walls:
The Effects of Lattice-Type, Filament-Width and Granular-Filling-Material - Ungureanu Dragoș, Onuțu Cătălin, Isopescu Dorina, Țăranu Nicolae et al. (2023-06)
A Novel Approach for 3D Printing Fiber-Reinforced Mortars
BibTeX
@article{piet_zbys_sado.2023.A3PMoCBFCCGCPFaaPNIL,
author = "Daniel Pietras and Wojciech Zbyszyński and Tomasz Sadowski",
title = "A 3D Printing Method of Cement-Based FGM Composites Containing Granulated Cork, Polypropylene Fibers, and a Polyethylene Net Inter-Layer",
doi = "10.3390/ma16124235",
year = "2023",
journal = "Materials",
volume = "16",
number = "12",
pages = "4235",
}
Formatted Citation
D. Pietras, W. Zbyszyński and T. Sadowski, “A 3D Printing Method of Cement-Based FGM Composites Containing Granulated Cork, Polypropylene Fibers, and a Polyethylene Net Inter-Layer”, Materials, vol. 16, no. 12, p. 4235, 2023, doi: 10.3390/ma16124235.
Pietras, Daniel, Wojciech Zbyszyński, and Tomasz Sadowski. “A 3D Printing Method of Cement-Based FGM Composites Containing Granulated Cork, Polypropylene Fibers, and a Polyethylene Net Inter-Layer”. Materials 16, no. 12 (2023): 4235. https://doi.org/10.3390/ma16124235.