Influence of Waste-Tire-Rubber-Particles-Size on the Microstructural, Mechanical, and Acoustic Insulation Properties of 3D Printable Cement Mortars (2021-06)¶
,
Journal Article - Civil Engineering Journal, Vol. 7, Iss. 6, pp. 937-952
Abstract
3D printing technologies of construction materials are gaining ground in the building industry. As well documented in the literature, these advanced manufacturing methodologies aim to reduce work-related injuries and materials waste, enhancing architectural flexibility which would enable more sophisticated designs for engineering and aesthetic purposes. In this framework, the development of functional and eco-sustainable printable materials represents an extremely attractive challenge for research, promoting digital fabrication to reach its maximum cost-effective and technological potentials. The use of recycled tire rubber particles in 3D printable Portland-based compounds is an exclusive contribution in this field. This line of research aims to integrate the well-known engineering performances of rubber-cement materials with the advanced peculiarities of additive manufacturing methodologies. As an innovative contribution, the authors propose here a detailed study on the possible relationship between rubber particle size and technological properties of the 3D printable mix. Specifically, two groups of continuous size grading polymer aggregates (0-1 mm rubber powder and 1-3 mm rubber granules as fine and coarse fractions, respectively) were analyzed in terms of impact on rheology, print quality, microstructure, mechanical properties, and acoustic insulation performance. Concerning the print quality, rubber aggregates altered the fluidity of the fresh mix, improving the adhesion between the printed layers and therefore enhancing the mechanical isotropy in the post-hardening sample. A remarkable influence of the rubber gradation on the compounds’ behaviour was found in hardened properties. By comparing the rubberized compounds, the fine polymer fraction shows greater interfacial cohesion with the cement paste. However, more significant mechanical strength loss was found due to a greater reduction in density and increased porosity degree. On the other hand, mortars doped with larger rubber particles tend to have a higher unit weight, finest pore distribution, minor mechanical strength drop, and higher ductility but worse interface binding with the matrix. Regarding the acoustic insulation properties, a proper balance between rubber powder and granules in the mixes allows to obtain comparable/superior performance compared to plain mortar but the effect of the aggregate size is strongly dependent on the sound frequency range investigated. Future findings revolve around applicability studies of these formulations in civil and architectural fields, benefiting from the design flexibility of 3D printing.
¶
12 References
- Ma Guowei, Li Yanfeng, Wang Li, Zhang Junfei et al. (2020-01)
Real-Time Quantification of Fresh and Hardened Mechanical Property for 3D Printing Material by Intellectualization with Piezoelectric Transducers - Marchment Taylor, Sanjayan Jay (2019-10)
Mesh Reinforcing Method for 3D Concrete Printing - 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 - 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 - Sambucci Matteo, Marini Danilo, Sibai Abbas, Valente Marco (2020-08)
Preliminary Mechanical Analysis of Rubber-Cement Composites Suitable for Additive Process Construction - Sambucci Matteo, Valente Marco, Sibai Abbas, Marini Danilo et al. (2020-07)
Rubber-Cement Composites for Additive Manufacturing:
Physical, Mechanical and Thermo-Acoustic Characterization - Sanjayan Jay, Nematollahi Behzad, Xia Ming, Marchment Taylor (2018-04)
Effect of Surface Moisture on Inter-Layer Strength of 3D Printed Concrete - Ting Guan, Tay Yi, Qian Ye, Tan Ming (2019-03)
Utilization of Recycled Glass for 3D Concrete Printing:
Rheological and Mechanical Properties - Valente Marco, Sambucci Matteo, Sibai Abbas, Musacchi Ettore (2020-07)
Multi-Physics Analysis for Rubber-Cement Applications in Building and Architectural Fields:
A Preliminary Analysis - Valente Marco, Sibai Abbas, Sambucci Matteo (2019-09)
Extrusion-Based Additive Manufacturing of Concrete Products:
Revolutionizing and Remodeling the Construction Industry - Weng Yiwei, Li Mingyang, Zhang Dong, Tan Ming et al. (2021-02)
Investigation of Inter-Layer Adhesion of 3D Printable Cementitious Material from the Aspect of Printing-Process - Yu Shiwei, Du Hongjian, Sanjayan Jay (2020-07)
Aggregate-Bed 3D Concrete Printing with Cement-Paste Binder
24 Citations
- Gil-Lopez Tomas, Amirfiroozkoohi Alireza, Valiente López María, Verdu-Vazquez Maria (2026-01)
The Impact of 3D Printing on Mortar Strength and Flexibility:
A Comparative Analysis of Conventional and Additive Manufacturing Techniques - Rangel Carolina, Salet Theo, Lucas Sandra (2025-12)
A Design Methodology for Sustainable Lightweight 3D-Printable Concrete with SCMs - Delavar Mohammad, Aslani Farhad, Sercombe Tim (2025-10)
Cracking Behaviour in 3D Concrete Printed Fiber-Reinforced Cementitious Composites:
A Review - Ramakrishnan Sayanthan, Pasupathy Kirubajiny, Manalo Allan, Sanjayan Jay (2025-07)
Rheological, Mechanical and Fire Resistance Performance of Waste Glass Activated Geopolymers for Concrete 3D Printing - Raza Muhammad, Kravchenko Ekaterina, Besklubova Svetlana, Lazorenko Georgy et al. (2025-07)
3D Printing of Recycled Materials for Sustainable Construction:
A Comprehensive Economic and Life Cycle Assessment - Su Yanli, Wu Chang, Shang Jiaqi, Zhang Pu (2025-06)
Mechanical Properties of 3D-Printed High-Ductility Cementitious Composite with Sulphoaluminate Cement and Modified Crumb Rubber - Mim Nusrat, Shaikh Faiz, Sarker Prabir (2025-03)
Sustainable 3D Printed Concrete Incorporating Alternative Fine Aggregates:
A Review - Sun Junbo, Zhang Yanling, Wu Qi, Wang Yufei et al. (2024-10)
3D Printed Concrete Incorporating Waste-Rubber:
Anisotropic Properties and Environmental Impact-Analysis - Wang Xiangyu, Du Liangfen, Liu Zhenbang, Li Mingyang et al. (2024-09)
3D Cementitious Composites Printing with Pretreated Recycled Crumb-Rubber:
Mechanical and Acoustic Insulation Properties - Barve Prasad, Bahrami Alireza, Shah Santosh (2024-07)
A Comprehensive Review on Effects of Material-Composition, Mix-Design, and Mixing-Regimes on Rheology of 3D Printed Geopolymer Concrete - González-Fonteboa Belén, Seara-Paz Sindy, Caneda-Martínez Laura (2024-06)
3D Printing Concrete with Byproducts - Bodur Burak, Mecit Işık Muhammet, Benli Ahmet, Bayrak Barış et al. (2024-05)
Durability of Green Rubberized 3D Printed Lightweight Cement Composites Reinforced with Micro-Attapulgite and Micro-Steel-Fibers:
Printability and Environmental Perspective - Zaid Osama, Ouni Mohamed (2024-04)
Advancements in 3D Printing of Cementitious Materials:
A Review of Mineral Additives, Properties, and Systematic Developments - Rangel Carolina, Guimarães Ana, Salet Theo, Lucas Sandra (2024-03)
3D Printing Lightweight Mortars with Cork to Improve Thermal Efficiency in Buildings - Carvalho Ivo, Melo Abcael, Melo Carlos, Brito Mateus et al. (2023-12)
Evaluation of the Effect of Rubber-Waste-Particles on the Rheological and Mechanical Properties of Cementitious Materials for 3D Printing - Zhu Binrong, Wang Yufei, Sun Junbo, Wei Yang et al. (2023-10)
An Experimental Study on the Influence of Waste-Rubber-Particles on the Compressive, Flexural and Impact Properties of 3D Printable Sustainable Cementitious Composites - Riaz Raja, Usman Muhammad, Ali Ammar, Majid Usama et al. (2023-06)
Inclusive Characterization of 3D Printed Concrete in Additive Manufacturing:
A Detailed Review - Valente Marco, Sambucci Matteo, Chougan Mehdi, Ghaffar Seyed (2023-04)
Composite Alkali-Activated Materials with Waste-Tire-Rubber Designed for Additive Manufacturing:
An Eco-Sustainable and Energy Saving Approach - Sambucci Matteo, Biblioteca Ilario, Valente Marco (2023-01)
Life Cycle Assessment (LCA) of 3D Concrete Printing and Casting Processes for Cementitious Materials Incorporating Ground Waste Tire Rubber - Pasupathy Kirubajiny, Ramakrishnan Sayanthan, Sanjayan Jay (2023-01)
3D Concrete Printing of Eco-Friendly Geopolymer Containing Brick Waste - Melichar Jindřich, Žižková Nikol, Brožovský Jiří, Mészárosová Lenka et al. (2022-11)
Study of the Interaction of Cement-Based Materials for 3D Printing with Fly-Ash and Superabsorbent Polymers - Strohle Max, Sadique Monower, Dulaimi Anmar, Kadhim Mustafa (2022-11)
Prospect and Barrier of 3D Concrete:
A Systematic Review - Nodehi Mehrab, Ozbakkaloglu Togay, Gholampour Aliakbar (2022-04)
Effect of Supplementary Cementitious Materials on Properties of 3D Printed Conventional and Alkali-Activated Concrete:
A Review - Dey Dhrutiman, Srinivas Dodda, Panda Biranchi, Suraneni Prannoy et al. (2022-02)
Use of Industrial Waste-Materials for 3D Printing of Sustainable Concrete:
A Review
BibTeX
@article{samb_vale.2021.IoWTRPSotMMaAIPo3PCM,
author = "Matteo Sambucci and Marco Valente",
title = "Influence of Waste-Tire-Rubber-Particles-Size on the Microstructural, Mechanical, and Acoustic Insulation Properties of 3D Printable Cement Mortars",
doi = "10.28991/cej-2021-03091701",
year = "2021",
journal = "Civil Engineering Journal",
volume = "7",
number = "6",
pages = "937--952",
}
Formatted Citation
M. Sambucci and M. Valente, “Influence of Waste-Tire-Rubber-Particles-Size on the Microstructural, Mechanical, and Acoustic Insulation Properties of 3D Printable Cement Mortars”, Civil Engineering Journal, vol. 7, no. 6, pp. 937–952, 2021, doi: 10.28991/cej-2021-03091701.
Sambucci, Matteo, and Marco Valente. “Influence of Waste-Tire-Rubber-Particles-Size on the Microstructural, Mechanical, and Acoustic Insulation Properties of 3D Printable Cement Mortars”. Civil Engineering Journal 7, no. 6 (2021): 937–52. https://doi.org/10.28991/cej-2021-03091701.