Role of Chemical Admixtures on 3D Printed Portland Cement (2021-11)¶
10.1016/j.conbuildmat.2021.125666
, Ferreira Igor, , Senff Luciano, , , ,
Journal Article - Construction and Building Materials, Vol. 314
Abstract
Concretes intended for printing need specific rheological properties that are not found in traditional ones. Printable concretes must have as much consistency as possible and, at the same time, still need to be pumpable. Although the use of chemical additives is a known solution to overcome these problems, their effectiveness can be partially or totally compromised when used in combination. For example, a particular superplasticizer may not work in the presence of a setting retarder or may weaken the potency of an accelerator. The lack of literature on the possible interactions of different additives used in co-assembly motivated this work. In this, it was demonstrated how fluid mixtures can be rapidly made buildable, continuously, from pumping to printing with different chemical admixtures. Setting retarders, accelerators and a PCE-based superplasticizer were tested on different contents, singly and in co-assembly, to determine their interactions from a rheological point of view. The main results show that the superplasticizer and setting retarders are efficient in improving the open time maintaining the buildability to a critical concentration. When added in co-assembly, their effectiveness can be nullified if an intercalated stirring is not applied, therefore presenting a strong interaction. The setting accelerators have also shown their role rapidly increasing the structuration rate of cement pastes but needing significantly higher contents when co-assembled with the superplasticizer to compensate for their retarding and repulsive effect.
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11 References
- Chen Mingxu, Yang Lei, Zheng Yan, Huang Yongbo et al. (2020-04)
Yield-Stress and Thixotropy-Control of 3D Printed Calcium-Sulfoaluminate Cement Composites with Metakaolin Related to Structural Build-Up - Hager Izabela, Golonka Anna, Putanowicz Roman (2016-08)
3D Printing of Buildings and Building Components as the Future of Sustainable Construction? - Kazemian Ali, Yuan Xiao, Cochran Evan, Khoshnevis Behrokh (2017-04)
Cementitious Materials for Construction-Scale 3D Printing:
Laboratory Testing of Fresh Printing Mixture - Khalil Noura, Aouad Georges, Cheikh Khadija, Rémond Sébastien (2017-09)
Use of Calcium-Sulfoaluminate-Cements for Setting-Control of 3D Printing Mortars - Le Thanh, Austin Simon, Lim Sungwoo, Buswell Richard et al. (2012-01)
Hardened Properties of High-Performance Printing Concrete - Marchon Delphine, Kawashima Shiho, Bessaies-Bey Hela, Mantellato Sara et al. (2018-05)
Hydration- and Rheology-Control of Concrete for Digital Fabrication:
Potential Admixtures and Cement-Chemistry - Papachristoforou Michail, Mitsopoulos Vasilios, Stefanidou Maria (2018-10)
Evaluation of Workability Parameters in 3D Printing Concrete - Reiter Lex, Wangler Timothy, Roussel Nicolas, Flatt Robert (2018-06)
The Role of Early-Age Structural Build-Up in Digital Fabrication with Concrete - Roussel Nicolas (2018-05)
Rheological Requirements for Printable Concretes - Shakor Pshtiwan, Sanjayan Jay, Nazari Ali, Nejadi Shami (2017-02)
Modified 3D Printed Powder to Cement-Based Material and Mechanical Properties of Cement Scaffold Used in 3D Printing - Souza Marcelo, Ferreira Igor, Moraes Elisângela, Senff Luciano et al. (2020-09)
3D Printed Concrete for Large-Scale Buildings:
An Overview of Rheology, Printing Parameters, Chemical Admixtures, Reinforcements, and Economic and Environmental Prospects
44 Citations
- Tushar Fazlul, Hasan Mehedi, Hasan Kamrul, Mawa Jannatul et al. (2026-01)
Factors Affecting Flowability and Rheological Behavior of 3D Printed Concrete:
A Comprehensive Review - 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 - Iqbal Imtiaz, Kasim Tala, Besklubova Svetlana, Inqiad Waleed et al. (2025-12)
Exploring Knowledge Domains and Future Research Directions in 3D Printed Concrete:
A Bibliometric and Systematic Review - Tulliani Jean-Marc (2025-11)
Latest Developments in 3D-Printed Engineered Cementitious Composites:
Technologies, Prospects, and Challenges - González-Aviña J., Hosseinpoor Masoud, Yahia Ammar, Kohandelnia Mojtaba et al. (2025-10)
Anionic Biopolymers to Enhance Concrete Rheological Properties for 3D Printing Applications - Wang Chaofan, Chen Bing, Wang Yong, Vo Thanh et al. (2025-08)
Influencing Mechanism of Magnesium-to-Phosphate Ratio on the Rheology and Microstructure Development of 3D-Printed Magnesium Phosphate Cement at Early Hydration - Disu Oluwatimilehin, Ismail Sikiru, Wood Luke, Chrysanthou Andreas et al. (2025-08)
Experimental Study on Buildability of 3D-Printed Cement-Based Structures Using Aluminium Sulphate - Li Qiyan, Su Anshuang, Gao Xiaojian (2025-06)
Improvement of Interlayer Performance of 3D Printable Magnesium Oxysulfate Cement-Based Materials by Carbonation Curing - Mahdy Deena, Marais Eugene, Abdelrahim Marwa, Dubor Alexandre et al. (2025-06)
Life Cycle Assessment of Earth-Based Residential Unit “TOVA”:
A 3D Printed On-Site Load-Bearing Structure - Campos Guilherme, Lunelli Pietro, Moraes Elisângela, Souza Marcelo et al. (2025-04)
Optimization of Clay-Based Ceramic Mixtures with Sugarcane Bagasse Fiber for 3D Printing - Silveira Júnior Jairon, Sakata Rafael, Onghero Lucas, Matos Paulo et al. (2025-03)
Al-Anodizing Waste as a Supplementary Cementitious Material for 3D-Printed Portland Cement - Li Qiyan, Wen Xiaodong, Gao Xiaojian (2025-02)
Rheological and Mechanical Properties of 3D-Printable Magnesium-Oxysulfate-Cements - Vlieger Jentel, Blaakmeer Jan, Gruyaert Elke, Cizer Özlem (2025-01)
Assessing Static and Dynamic Yield-Stress of 3D Printing Mortar with Recycled Sand:
Influence of Sand-Geometry, Fineness Modulus, and Water-to-Binder Ratio - Elango K., Saravanakumar R., Vivek D., Yuvaraj S. et al. (2025-01)
A Critical Review of Fresh, Hardened and Durability Properties of 3D Printing Concrete - Tarhan Yeşim, Tarhan İsmail, Şahin Remzi (2024-12)
Comprehensive Review of Binder Matrices in 3D Printing Construction:
Rheological Perspectives - Seo Eun-A, Lee Hojae (2024-10)
Influence of Chemical Admixtures on Buildability and Deformation of Concrete for Additive Manufacturing - Asaf Ofer, Bentur Arnon, Amir Oded, Larianovsky Pavel et al. (2024-09)
A 3D Printing Platform for Design and Manufacturing of Multi-Functional Cementitious Construction Components and Its Validation for a Post-Tensioned Beam - Chajec Adrian, Šavija Branko (2024-09)
The Effect of Using Surface Functionalized Granite-Powder-Waste on Fresh Properties of 3D Printed Cementitious Composites - Robayo-Salazar Rafael, Muñoz Miguel, Vargas Armando, Gutiérrez Ruby (2024-08)
Effects of Incorporating Bentonite, Metakaolin, Microsilica, and Calcium-Carbonate on the Rheological Properties of Portland-Cement-Based 3D Printing Inks - Aghaee Kamran, Li Linfei, Roshan Alireza, Namakiaraghi Parsa (2024-08)
Additive Manufacturing Evolution in Construction:
From Individual Terrestrial to Collective, Aerial, and Extraterrestrial Applications - Hanratty Niall, Khan Mehran, McNally Ciaran (2024-07)
The Role of Different Clay Types in Achieving Low-Carbon 3D Printed Concretes - Shao Lijing, Liu Zhaolong, Liu Qi, Wang Haochuan et al. (2024-07)
A New Strategy to Enhance 3D Printability of Cement-Based Materials:
In-Situ Polymerization - Matos Paulo, Prigol Hellen, Schackow Adilson, Silva Nazário Samara et al. (2024-06)
Quality-Control-Tests of Fresh 3D Printable Cement-Based Materials - Rahman Mahfuzur, Rawat Sanket, Yang Chunhui, Mahil Ahmed et al. (2024-05)
A Comprehensive Review on Fresh and Rheological Properties of 3D Printable Cementitious Composites - Capêto Ana, Jesus Manuel, Uribe Braian, Guimarães Ana et al. (2024-05)
Building a Greener Future:
Advancing Concrete Production Sustainability and the Thermal Properties of 3D Printed Mortars - Silveira Júnior Jairon, Moura Cerqueira Kevin, Moura Ruan, Matos Paulo et al. (2024-04)
Influence of Time-Gap on the Buildability of Cement Mixtures Designed for 3D Printing - Yang Liuhua, Gao Yang, Chen Hui, Jiao Huazhe et al. (2024-04)
3D Printing Concrete Technology from a Rheology Perspective:
A Review - Chen Mingxu, Xu Jiabin, Yuan Lianwang, Zhao Piqi et al. (2024-03)
Use of Creep and Recovery-Protocol to Assess the Printability of Fiber-Reinforced 3D Printed White-Portland-Cement Composites - Robayo-Salazar Rafael, Vargas Armando, Martínez Fabio, Gutiérrez Ruby (2024-02)
Utilization of Powders and Fine Aggregates from the Recycling of Construction and Demolition Waste in the 3D Printing of Portland-Based Cementitious Materials - Zhang Hanghua, Tan Yanke, Hao Lucen, Zheng Shipeng et al. (2024-02)
Intelligent Real-Time Quality-Control for 3D Printed Concrete with Near-Nozzle Secondary-Mixing - Bono Victor, Ducoulombier Nicolas, Mesnil Romain, Caron Jean-François (2023-12)
Methodology for Formulating Low-Carbon Printable Mortar Through Particles-Packing-Optimization - Ingle Vaibhav, Kaliyavaradhan Senthil, Ambily Parukutty, Shekar Deepadharshan (2023-09)
3D Printable Concrete Without Chemical Admixtures:
Fresh and Hardened Properties - Matos Paulo, Zat Tuani, Lima Marcelo, Neto José et al. (2023-08)
Effect of the Superplasticizer-Addition Time on the Fresh Properties of 3D Printed Limestone-Calcined-Clay-Cement (LC³) Concrete - Cao Xiangpeng, Yu Shiheng, Cui Hongzhi, Li Zongjin (2023-07)
In-Situ Coating Technique for Rebar Installation for 3D Printed Reinforced Concrete - Núñez Varillas Christoper, Regalado Espinoza Marck, Gago Gamboa Angela (2023-07)
3D Printing:
An Opportunity for the Sustainable Development of Building Construction - Wang Fei, Hua Sudong, Chen Tingzhu, He Bijuan et al. (2023-07)
Effect of Nano-Clay and PCE on the Buildability of Ultra-Fine Dredged Sand-Based 3D Printing Materials - Robayo-Salazar Rafael, Martínez Fabio, Vargas Armando, Gutiérrez Ruby (2023-06)
3D Printing of Hybrid Cements Based on High Contents of Powders from Concrete, Ceramic and Brick Waste Chemically Activated with Sodium Sulphate (Na2SO4) - Chen Yu, Zhang Yu, He Shan, Liang Xuhui et al. (2023-06)
Improving Structural Build-Up of Limestone-Calcined-Clay-Cement-Pastes by Using Inorganic Additives - Ishida Takato, Nakada Kiyofumi (2023-02)
Review of Rheology in Cement-Based Materials and Its Application to 3D Printing Using Concrete - Harbouz Ilhame, Yahia Ammar, Rozière Emmanuel, Loukili Ahmed (2023-02)
Printing Quality-Control of Cement-Based Materials Under Flow and Rest-Conditions - Boddepalli Uday, Panda Biranchi, Gandhi Indu (2022-09)
Rheology and Printability of Portland-Cement-Based Materials:
A Review - Zafar Muhammad, Bakhshi Amir, Hojati Maryam (2022-09)
Toward 3D Printable Engineered Cementitious Composites:
Mix-Design Proportioning, Flowability, and Mechanical Performance - Zhou Wen, McGee Wesley, Zhu He, Gökçe H. et al. (2022-08)
Time-Dependent Fresh Properties Characterization of 3D Printing Engineered Cementitious Composites:
On the Evaluation of Buildability - Jin Yuan, Xu Jiabin, Li Yali, Zhao Zhihui et al. (2022-06)
Rheological Properties, Shape Stability and Compressive Strength of 3D Printed Colored Cement Composites Modified by Needle-Like Pigment
BibTeX
@article{souz_ferr_mora_senf.2022.RoCAo3PPC,
author = "Marcelo Tramontin Souza and Igor Maia Ferreira and Elisângela Guzi de Moraes and Luciano Senff and Sabrina Arcaro and José Renato de Castro Pessôa and Manuel J. Ribeiro and Antonio Pedro Novaes de Oliveira",
title = "Role of Chemical Admixtures on 3D Printed Portland Cement: Assessing Rheology and Buildability",
doi = "10.1016/j.conbuildmat.2021.125666",
year = "2022",
journal = "Construction and Building Materials",
volume = "314",
}
Formatted Citation
M. T. Souza, “Role of Chemical Admixtures on 3D Printed Portland Cement: Assessing Rheology and Buildability”, Construction and Building Materials, vol. 314, 2022, doi: 10.1016/j.conbuildmat.2021.125666.
Souza, Marcelo Tramontin, Igor Maia Ferreira, Elisângela Guzi de Moraes, Luciano Senff, Sabrina Arcaro, José Renato de Castro Pessôa, Manuel J. Ribeiro, and Antonio Pedro Novaes de Oliveira. “Role of Chemical Admixtures on 3D Printed Portland Cement: Assessing Rheology and Buildability”. Construction and Building Materials 314 (2022). https://doi.org/10.1016/j.conbuildmat.2021.125666.