Linking fresh paste microstructure, rheology and extrusion characteristics of cementitious binders for 3D printing

被引:68
作者
Nair, Sooraj A. O. [1 ]
Alghamdi, Hussam [1 ]
Arora, Aashay [1 ]
Mehdipour, Iman [2 ]
Sant, Gaurav [2 ]
Neithalath, Narayanan [1 ]
机构
[1] Arizona State Univ, Sch Sustainable Engn & Built Environm, Tempe, AZ 85281 USA
[2] Univ Calif Los Angeles, Dept Civil & Environm Engn, Los Angeles, CA USA
基金
美国国家科学基金会;
关键词
3D printing; extrusion; microstructure; rheology; wall shear stress; yield stress; HIGH PERFORMANCE CONCRETE; PORTLAND-CEMENT; YIELD-STRESS; FLY-ASH; SIZE DISTRIBUTIONS; SQUEEZE-FLOW; WALL SLIP; CONSTRUCTION; GEOPOLYMER; LIMESTONE;
D O I
10.1111/jace.16305
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Cementitious binders amenable to extrusion-based 3D printing are formulated by tailoring the fresh microstructure through the use of fine limestone powder or a combination of limestone powder and microsilica or metakaolin. Mixtures are proportioned with and without a superplasticizer to enable different particle packings at similar printability levels. A simple microstructural parameter, which implicitly accounts for the solid volume and inverse square dependence of particle size on yield stress can be used to select preliminary material combinations for printable binders. The influence of composition/microstructure on the response of pastes to extension or squeezing are also brought out. Extrusion rheology is used in conjunction with a phenomenological model to better understand the properties of significance in extrusion-based printing of cementitious materials. The extrusion yield stress and die wall slip shear stress extracted from the model enables an understanding of their relationships with the fresh paste microstructure, which are crucial in selecting binders, extrusion geometry, and processing parameters for 3D printing.
引用
收藏
页码:3951 / 3964
页数:14
相关论文
共 50 条
[31]   Mechanical properties of engineered cementitious composites beams fabricated by extrusion-based 3D printing [J].
Zhu, Binrong ;
Pan, Jinlong ;
Zhou, Zhenxin ;
Cai, Jingming .
ENGINEERING STRUCTURES, 2021, 238
[32]   Use of polysaccharides as a rheology modifying admixture for alkali activated materials for 3D printing [J].
Shilton, Robert ;
Wang, Shen ;
Banthia, Nemkumar .
CONSTRUCTION AND BUILDING MATERIALS, 2025, 458
[33]   3D Printing Cementitious Materials Containing Nano-CaCO3: Workability, Strength, and Microstructure [J].
Yang, Huashan ;
Li, Weiwei ;
Che, Yujun .
FRONTIERS IN MATERIALS, 2020, 7
[34]   Optimizing printing and rheological parameters for 3D printing with cementitious materials [J].
Wang, Qingwei ;
Han, Song ;
Yang, Junhao ;
Li, Ziang ;
An, Mingzhe .
AUTOMATION IN CONSTRUCTION, 2025, 169
[35]   Influence of printing parameters on 3D printing engineered cementitious composites (3DP-ECC) [J].
Zhou, Wen ;
Zhang, Yamei ;
Ma, Lei ;
Li, Victor C. .
CEMENT & CONCRETE COMPOSITES, 2022, 130
[36]   3D Concrete Printing: A Systematic Review of Rheology, Mix Designs, Mechanical, Microstructural, and Durability Characteristics [J].
Rehman, Atta Ur ;
Kim, Jung-Hoon .
MATERIALS, 2021, 14 (14)
[37]   Fresh properties of a novel 3D printing concrete ink [J].
Zhang, Yu ;
Zhang, Yunsheng ;
Liu, Guojian ;
Yang, Yonggan ;
Wu, Meng ;
Pang, Bo .
CONSTRUCTION AND BUILDING MATERIALS, 2018, 174 :263-271
[38]   Relating print velocity and extrusion characteristics of 3D-printable cementitious binders: Implications towards testing methods [J].
Nair, Sooraj ;
Panda, Subhashree ;
Tripathi, Avinaya ;
Neithalath, Narayanan .
ADDITIVE MANUFACTURING, 2021, 46
[39]   Effect of superabsorbent polymer on 3D printing characteristics as rheology-modified agent [J].
Gu, Yu-cun ;
Khayat, Kamal H. .
CONSTRUCTION AND BUILDING MATERIALS, 2024, 438
[40]   Comprehensive investigations on the relationship between the 3D concrete printing failure criterion and properties of fresh-state cementitious materials [J].
Liu, Zhenbang ;
Li, Mingyang ;
Quah, Tan Kai Noel ;
Wong, Teck Neng ;
Tan, Ming Jen .
ADDITIVE MANUFACTURING, 2023, 76