Investigation of interlayer bonding and pore characteristics in 3D-printed high-strength mortar incorporating recycled lightweight aggregates

被引:0
|
作者
Bayat, Hamid [1 ]
Karimpouli, Sadegh [2 ]
Yang, Liming [3 ]
Ramandi, Hamed Lamei [4 ]
Kashani, Alireza [1 ]
机构
[1] Univ New South Wales, Ctr Infrastructure Engn & Safety, Sch Civil & Environm Engn, Sydney, Australia
[2] Helmholtz Ctr Potsdam, GFZ German Res Ctr Geosci, Potsdam, Germany
[3] Univ New South Wales, Sch Built Environm, Sydney, Australia
[4] Univ New South Wales, Sch Minerals & Energy Resources Engn, Sydney, Australia
来源
关键词
3D printing concrete; Lightweight aggregates; Pore structure; Interlayer bonding strength; Mechanical properties; Thermal insulation; FLY-ASH CENOSPHERE; CONCRETE; PERFORMANCE; DURABILITY;
D O I
10.1016/j.jobe.2025.112183
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This study explores the incorporation of recycled lightweight aggregates i.e. fly ash cenosphere (FAC) and expanded glass (EG) into 3D-printed cementitious mortar to enhance both thermal insulation and sustainability. The novelty lies in examining how these aggregates impact the mechanical and thermal properties of 3D-printed structures, while also analyzing the pore structure, particularly at the critical interface between successive printed layers. Replacing sand with 60 % FAC (C60) and 65 % EG (G65) resulted in a lightweight mortar with a density of 1800 kg/m3, but also led to reductions in compressive, interlayer bonding, and flexural strength. X-ray microtomography (mu-CT) analysis revealed significant variations in porosity, particularly at the interlayer region where porosity peaked at around 33 %. The thermal conductivity of the printed samples was reduced by up to 58 %, driven by both the lightweight aggregates and the porous interlayer structure. Despite the weakened mechanical properties, the enhanced thermal performance of the 3D-printed samples suggests potential for sustainable, energy-efficient construction. The findings highlight the critical role of pore structure, especially at layer interfaces, in determining the strength and insulation properties of 3D-printed mortars. This work provides valuable insights into the trade-offs between strength and thermal insulation when using lightweight aggregates, offering a pathway to more energy-efficient and sustainable 3D-printed buildings with potential lower operational carbon footprints for 3D-printing construction.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] Interlayer Shear Strength and Bonding Strength of Sinuous 3D-Printed Mortar
    Liu, Qiong
    Wang, Qiming
    Sun, Chang
    Li, Jiawang
    Singh, Amardeep
    COATINGS, 2025, 15 (01):
  • [2] Interlayer Strength of 3D-Printed Mortar Reinforced by Postinstalled Reinforcement
    Park, Jihun
    Bui, Quang-The
    Lee, Jungwoo
    Joh, Changbin
    Yang, In-Hwan
    MATERIALS, 2021, 14 (21)
  • [3] CHARACTERISTICS OF LIGHTWEIGHT AGGREGATES FOR HIGH-STRENGTH CONCRETE
    ZHANG, MH
    GJORV, OE
    ACI MATERIALS JOURNAL, 1991, 88 (02) : 150 - 158
  • [4] Interlayer bonding strength and pore characteristics of 3D printed engineered cementitious composites (ECC)
    Xiao, Jianzhuang
    Bai, Meiyan
    Wu, Yuching
    Duan, Zhenhua
    Qin, Jifeng
    JOURNAL OF BUILDING ENGINEERING, 2024, 84
  • [5] 3D-Printed, High-Porosity, High-Strength Graphite Aerogel
    Liu, Dapeng
    Chen, Chaoji
    Zhou, Yubing
    Bao, Yinhua
    Wang, Ruiliu
    Liu, Yu
    He, Shuaiming
    Huang, Hao
    Zhang, Clark
    Foster, Bob
    Li, Teng
    Hu, Liangbing
    SMALL METHODS, 2021, 5 (07)
  • [6] Combined printable and mechanical analysis of 3D-printed green high-strength, lightweight engineered cementitious composites
    Gou, Hongxiang
    Sofi, Massoud
    Zhang, Zipeng
    Zhu, Mintao
    Zhu, Hongbo
    Mendis, Priyan
    CEMENT & CONCRETE COMPOSITES, 2024, 149
  • [7] 3D-Printed Hydrogels with High-Strength and Anisotropy Mediated by Chain Rigidity
    Kong, Deshuai
    Li, Yunmeng
    Yang, Biao
    Pang, Yaokun
    Yuan, Hua
    Du, Cong
    Tan, Yeqiang
    SMALL, 2024, 20 (44)
  • [8] Investigation of the Impact of Material Rheology on the Interlayer Bonding Performance of Solid Waste 3D-Printed Components
    Li, Yifan
    Chen, Shuisheng
    Yang, Liuhua
    Guo, Chuan
    Li, Zhentao
    Chen, Youliang
    BUILDINGS, 2025, 15 (05)
  • [9] Interlayer bonding strength of 3D printed PEEK specimens
    Liaw, Chya-Yan
    Tolbert, John W.
    Chow, Lesley W.
    Guvendiren, Murat
    SOFT MATTER, 2021, 17 (18) : 4775 - 4789
  • [10] Flow, water absorption, and mechanical characteristics of normal- and high-strength mortar incorporating fine bottom ash aggregates
    Kim, H. K.
    Jeon, J. H.
    Lee, H. K.
    CONSTRUCTION AND BUILDING MATERIALS, 2012, 26 (01) : 249 - 256