BULLETIN OF THE CHINESE CERAMIC SOCIETY ›› 2026, Vol. 45 ›› Issue (4): 1208-1219.DOI: 10.16552/j.cnki.issn1001-1625.2025.0892
• Cement and Concrete • Previous Articles Next Articles
WU Jie(
), TANG Zhenzhong(
), DEI Kai, YAO Yong
Received:2025-09-05
Revised:2025-11-13
Online:2026-04-20
Published:2026-05-14
Contact:
TANG Zhenzhong
CLC Number:
WU Jie, TANG Zhenzhong, DEI Kai, YAO Yong. Influence of Composite Retarder on Construction Performance of 3D Printing Concrete[J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2026, 45(4): 1208-1219.
| Material | Setting time/min | Compressive strength/MPa | Flexural strength/MPa | Specific surface area/(kg·m-3) | |||
|---|---|---|---|---|---|---|---|
| Initial setting time | Final setting time | 3 d | 28 d | 3 d | 28 d | ||
| OPC | 138 | 186 | 35.2 | 68.1 | 6.2 | 9.0 | 363 |
| HBC | 23 | 27 | 25.8 | 44.1 | 5.8 | 7.6 | 485 |
Table 1 Physical properties of OPC and HBC
| Material | Setting time/min | Compressive strength/MPa | Flexural strength/MPa | Specific surface area/(kg·m-3) | |||
|---|---|---|---|---|---|---|---|
| Initial setting time | Final setting time | 3 d | 28 d | 3 d | 28 d | ||
| OPC | 138 | 186 | 35.2 | 68.1 | 6.2 | 9.0 | 363 |
| HBC | 23 | 27 | 25.8 | 44.1 | 5.8 | 7.6 | 485 |
| Sample No. | Mass/g | Mass fraction/% | |||||||
|---|---|---|---|---|---|---|---|---|---|
| OPC | HBC | FA | HPMC | SP | Water | Sand | SC | SG | |
| Reference | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0 | 0 |
| SCG1 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.02 | 0.08 |
| SCG2 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.04 | 0.06 |
| SCG3 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.06 | 0.04 |
| SCG4 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.08 | 0.02 |
| SCG5 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.04 | 0.08 |
| SCG6 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.06 | 0.06 |
| SCG7 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.08 | 0.04 |
| SCG8 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.10 | 0.02 |
Table 2 Mix proportions of 3D printing concrete
| Sample No. | Mass/g | Mass fraction/% | |||||||
|---|---|---|---|---|---|---|---|---|---|
| OPC | HBC | FA | HPMC | SP | Water | Sand | SC | SG | |
| Reference | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0 | 0 |
| SCG1 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.02 | 0.08 |
| SCG2 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.04 | 0.06 |
| SCG3 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.06 | 0.04 |
| SCG4 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.08 | 0.02 |
| SCG5 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.04 | 0.08 |
| SCG6 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.06 | 0.06 |
| SCG7 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.08 | 0.04 |
| SCG8 | 500 | 350 | 150 | 0.2 | 0.5 | 300 | 1 100 | 0.10 | 0.02 |
| Inspection item | Standard requirement | Performance | Inspection standard | |
|---|---|---|---|---|
| Outflow fluidity/mm | 180~200 | 195 | T/CECS 786—2020 | |
| Inital setting time/min | — | 51 | JGJ/T 70—2009 | |
| Final setting time/min | — | 85 | JGJ/T 70—2009 | |
| Printable time/min | — | 25 | Field measurement | |
| Compressive strength(on-site sampling)/MPa | 6 h | — | 11.2 | T/CECS 786—2020 |
| 8 h | — | 15.7 | ||
| 28 d | ≥30 | 54.8 | ||
| Extrudability | Continuous, uniform, unobstructed, and free of significant cracking | Continuous, uniform, unobstructed, and free of significant cracking | T/CECS 786—2020 | |
| Stand ability | Shape remains stable and does not collapse after extrusion | Shape remains stable and does not collapse after extrusion | T/CECS 786—2020 | |
| Interlayer bonding strength/MPa | ≥1.5 | 3.4 | T/CECS 786—2020 | |
| Interlayer splitting strength/MPa | ≥1 | 2.8 | T/CECS 786—2020 | |
| Printing strength reduction rate/% | ≤20 | -3 | T/CECS 786—2020 | |
| 28 d drying shrinkage | — | 273×10-6 | GB/T 50082—2024 | |
Table 3 Performance of 3D printing concrete in engineering applications
| Inspection item | Standard requirement | Performance | Inspection standard | |
|---|---|---|---|---|
| Outflow fluidity/mm | 180~200 | 195 | T/CECS 786—2020 | |
| Inital setting time/min | — | 51 | JGJ/T 70—2009 | |
| Final setting time/min | — | 85 | JGJ/T 70—2009 | |
| Printable time/min | — | 25 | Field measurement | |
| Compressive strength(on-site sampling)/MPa | 6 h | — | 11.2 | T/CECS 786—2020 |
| 8 h | — | 15.7 | ||
| 28 d | ≥30 | 54.8 | ||
| Extrudability | Continuous, uniform, unobstructed, and free of significant cracking | Continuous, uniform, unobstructed, and free of significant cracking | T/CECS 786—2020 | |
| Stand ability | Shape remains stable and does not collapse after extrusion | Shape remains stable and does not collapse after extrusion | T/CECS 786—2020 | |
| Interlayer bonding strength/MPa | ≥1.5 | 3.4 | T/CECS 786—2020 | |
| Interlayer splitting strength/MPa | ≥1 | 2.8 | T/CECS 786—2020 | |
| Printing strength reduction rate/% | ≤20 | -3 | T/CECS 786—2020 | |
| 28 d drying shrinkage | — | 273×10-6 | GB/T 50082—2024 | |
| [1] | 徐卓越, 李辉, 张大旺, 等. 建筑3D打印用胶凝材料及其相关性能研究进展[J]. 材料导报, 2023, 37(12): 93-106. |
| XU Z Y, LI H, ZHANG D W, et al. Research progress of cementitious materials and related properties for building 3D printing[J]. Materials Reports, 2023, 37(12): 93-106 (in Chinese). | |
| [2] | 谭盐宾, 王浩, 郑永杰, 等. 缓凝剂对快硬修补砂浆性能的影响[J]. 混凝土, 2018(10): 123-126. |
| TAN Y B, WANG H, ZHENG Y J, et al. Influence of retarder on the performance of rapid-hardening repair mortar[J]. Concrete, 2018(10): 123-126 (in Chinese). | |
| [3] | 苏伟东. 不同温度下新型缓凝剂对混凝土性能的影响研究[J]. 新型建筑材料, 2020, 47(8): 73-74+102. |
| SU W D. Effect of new retarder on concrete performance at different temperatures[J]. New Building Materials, 2020, 47(8): 73-74+102 (in Chinese). | |
| [4] | 徐长伟, 何桂春, 孟琦涵. 缓凝剂对C50低氯离子混凝土性能的影响研究[J]. 混凝土, 2014(6): 48-50+54. |
| XU C W, HE G C, MENG Q H. Research on influence of retarders on the performance of C50 low chloride ion concrete[J]. Concrete, 2014(6): 48-50+54 (in Chinese). | |
| [5] | 杨辉, 徐鹏, 袁伟, 等. 复合缓凝剂对高强磷酸镁修补砂浆性能的影响[J]. 硅酸盐通报, 2022, 41(5): 1562-1569. |
| YANG H, XU P, YUAN W, et al. Effect of complex retarder on properties of high strength magnesium phosphate repair mortar[J]. Bulletin of the Chinese Ceramic Society, 2022, 41(5): 1562-1569 (in Chinese). | |
| [6] | 孙长征, 张晓平, 赵同峰. 缓凝剂复配对超早强灌浆料性能影响研究[J]. 混凝土, 2014(4): 138-141+145. |
| SUN C Z, ZHANG X P, ZHAO T F. Research on retarder compound to the performance of super high early strength grouting material[J]. Concrete, 2014(4): 138-141+145 (in Chinese). | |
| [7] | 王芳利, 邓旭华. 超缓凝高性能混凝土的试验与应用研究[J]. 广东土木与建筑, 2019, 26(6): 66-69. |
| WANG F L, DENG X H. Experimental and applied research on ultra-slow setting high performance concrete[J]. Guangdong Architecture Civil Engineering, 2019, 26(6): 66-69 (in Chinese). | |
| [8] | 毛芳芳, 廖声金, 郎春林. 聚羧酸减水剂与缓凝组分相容性的探究[J]. 混凝土, 2012(4): 74-76. |
| MAO F F, LIAO S J, LANG C L. Research about component compatibility of polycarboxylate superplasticizers and retarding[J]. Concrete, 2012(4): 74-76 (in Chinese). | |
| [9] | 刘中勇, 何军. 探究高性能混凝土外加剂理论问题[J]. 四川建材, 2014, 40(3): 41-43. |
| LIU Z Y, HE J. Addressing theoretical issues in high-performance concrete admixtures[J]. Sichuan Building Materials, 2014, 40(3): 41-43 (in Chinese). | |
| [10] | 俞韶秋, 李相国, 谭洪波, 等. 柠檬酸钠在水泥颗粒表面的吸附行为及缓凝机理[J]. 混凝土, 2013(10): 72-75. |
| YU S Q, LI X G, TAN H B, et al. Adsorption behavior and retarding mechanism of sodium citrate on cement hydration process[J]. Concrete, 2013(10): 72-75 (in Chinese). | |
| [11] | 郭鹏飞, 余燕华, 黄永毅. 不同缓凝剂的缓凝效果及其对水泥水化的影响[J]. 新型建筑材料, 2022, 49(4): 22-25. |
| GUO P F, YU Y H, HUANG Y Y. The retarding effect of different retarders and their influence on cement hydration[J]. New Building Materials, 2022, 49(4): 22-25 (in Chinese). | |
| [12] | 孟龙. 掺复合缓凝剂混凝土性能试验研究[D]. 淮南: 安徽理工大学, 2024. |
| MENG L. Experimental study on properties of concrete adding the composite retarders[D]. Huainan: Anhui University of Science and Technology, 2024 (in Chinese). | |
| [13] | 王琴, 李时雨, 潘硕, 等. 不同缓凝剂对高贝利特硫铝酸盐水泥性能的影响及机制[J]. 建筑材料学报, 2020, 23(2): 239-246+254. |
| WANG Q, LI S Y, PAN S, et al. Influence and mechanism of different retarders on the performance of high belite sulphoaluminate cement[J]. Journal of Building Materials, 2020, 23(2): 239-246+254 (in Chinese). | |
| [14] | LIU C, WANG X G, CHEN Y N, et al. Influence of hydroxypropyl methylcellulose and silica fume on stability, rheological properties, and printability of 3D printing foam concrete[J]. Cement and Concrete Composites, 2021, 122: 104158. |
| [15] | CHEN M X, YANG L, ZHENG Y, et al. Yield stress and thixotropy control of 3D-printed calcium sulfoaluminate cement composites with metakaolin related to structural build-up[J]. Construction and Building Materials, 2020, 252: 119090. |
| [16] | CHEN M X, LI L B, WANG J A, et al. Rheological parameters and building time of 3D printing sulphoaluminate cement paste modified by retarder and diatomite[J]. Construction and Building Materials, 2020, 234: 117391. |
| [17] | 唐振中, 贾鲁涛, 林永权, 等. 钨尾矿粉对水泥基3D打印混凝土流变、水化及力学性能的影响[J]. 材料导报, 2024, 38(21): 169-174. |
| TANG Z Z, JIA L T, LIN Y Q, et al. Effect of tungsten tailing powder on rheology, hydration and mechanical properties of cement-based 3D printing concrete[J]. Materials Reports, 2024, 38(21): 169-174 (in Chinese). | |
| [18] | 马保国, 谭洪波, 许永和, 等. 葡萄糖酸钠对水泥水化微观结构的影响[J]. 武汉理工大学学报, 2008, 30(11): 50-53. |
| MA B G, TAN H B, XU Y H, et al. Cement hydration process of sodium gluconate[J]. Journal of Wuhan University of Technology, 2008, 30(11): 50-53 (in Chinese). | |
| [19] | 刘致远. 3D打印水泥基材料流变性能调控及力学性能表征[D]. 北京: 中国建筑材料科学研究总院, 2019. |
| LIU Z Y. Rheological behavior control and mechanical properties characterization of 3D printing cement-based materials. Beijing: China Building Materials Academy, 2019 (in Chinese). | |
| [20] | 栗翔, 毛永琳, 张建纲, 等. 葡萄糖酸钠对水泥浆体流动度的影响及作用机理[J]. 混凝土与水泥制品, 2024(2): 24-27. |
| LI X, MAO Y L, ZHANG J G, et al. Influence and mechanism of sodium gluconate on the fluidity of cement slurry[J]. China Concrete and Cement Products, 2024(2): 24-27 (in Chinese). | |
| [21] | ZHANG Y, ZHANG Y S, SHE W, et al. Rheological and harden properties of the high-thixotropy 3D printing concrete[J]. Construction and Building Materials, 2019, 201: 278-285. |
| [1] | WANG Wensheng, LYU Hailong, MA Jiangtao, LIU Qi, NIE Xiaodong. Research Status on Basic Mechanical Properties and Engineering Applications of Coral Concrete [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2026, 45(1): 1-20. |
| [2] | CAI Yin, LI Rui, BAO Tianpeng. Application of Fine-Grained Phosphorus Slag in Highway Base [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2026, 45(1): 202-211. |
| [3] | ZHOU Yifan, ZHANG Weiye, CHEN Anjian, RAN Jinlin, WANG Dongxing. Review on Performance Enhancements and Engineering Applications of Geopolymer Grouting Materials [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2025, 44(8): 2873-2890. |
| [4] | WEN Xiaoyun, TONG Xiong, SHANG Jiangtao, CHE Yuan, CHEN Kezhen, XIE Xian, FAN Peiqiang. Progress on Application and Mechanical Properties of Phosphogypsum Cementitious Materials [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2025, 44(3): 953-969. |
| [5] | WANG Chunlong, MU Rui, LIU Ningbo, WANG Zhenggang. Research Progress on Preparation and Mechanical Properties of Recycled Aggregate Concrete [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2025, 44(12): 4283-4300. |
| [6] | WU Wenzhen, SUN Jiangtao, LI Zhitang, SHANG Yixin, ZHANG Wentao, XU Wei, SHEN Weiguo. Powder Water Demand Index and Its Application of Manufactured Sand [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2025, 44(12): 4368-4374. |
| [7] | YANG Jingxian, MA Liping, HE Binbin, WU Zhangyu, SHE Wei. Research Progress on Phosphogypsum-Based Solid Waste Alkali-Activated Cementitious Materials [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2025, 44(11): 3934-3946. |
| [8] | LI Weihong, GUO Wenbin, GUO Xiangbing, CHEN Xiao, ZHOU Mingkai. Composition Design and Application of CFB Ash-Slag Concrete [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2024, 43(7): 2530-2538. |
| [9] | WANG Benren, ZHANG Liuyang, LIU Xifeng, DUAN Xulin, CHEN Xiao. Study on Road Performance and Engineering Application of Cement Steel Slag Stabilized Soil [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2024, 43(4): 1472-1481. |
| [10] | MAO Zhitian, DUAN Xiang, HAO Zehui, DENG Hongyang, TANG Wei, HE Yuan. Experiments and Applications on Preparation of Natural Hydraulic Lime by Calcination of Industrial Solid Waste [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2024, 43(11): 4159-4166. |
| [11] | ZHANG Haiyan, TANG Guoming, GUO Minlong, KANG Shengguo. Tests and Numerical Simulation on Compressive Properties of 3D Printing Concrete along Rectangular-Ambulatory-Plane Path [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2023, 42(6): 1980-1986. |
| [12] | LIU Chao, ZHAO Deqiang, MA Qian, CHEN Gui, HUANG Ya, SHEN Weiguo. Research and Application of Cement-Phosphogypsum Stabilized Crushed Stone Pavement Base Material [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2023, 42(6): 2121-2130. |
| [13] | CHEN Yingxue, LIAO Yishun, WAN Fangqi, CHEN Mingyang, YU Jingshuo. Effect of Retarder on Hydration Process of Magnesium Oxychloride Cement [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2022, 41(4): 1222-1228. |
| [14] | LIU Shicheng, CAO Kaiwei, XU Shengcai, WANG Xingang, WANG Rui, ZHU Jielu. Effect of Sugar and Sodium Gluconate Binary Compound on Performance of Super-Retarding Concrete for Long Spiral Bite Piles [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2022, 41(12): 4214-4224. |
| [15] | BAI Min, LONG Guangcheng, XIE Youjun, WANG Fan, SHI Yingying, ZHOU Tianyang. Properties and Application of Non-Fired Bricks Prepared from Manganese Slag and Recycled Brick Aggregates [J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2022, 41(10): 3533-3541. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||