[1] 陈连发, 陈 悦, 李 龙, 等. 高性能轻集料混凝土的力学性能研究[J]. 硅酸盐通报, 2015, 34(10): 2822-2828. CHEN L F, CHEN Y, LI L, et al. Mechanical property of high performance lightweight aggregate concrete[J]. Bulletin of the Chinese Ceramic Society, 2015, 34(10): 2822-2828 (in Chinese). [2] SIFAN M, NAGARATNAM B, THAMBOO J, et al. Development and prospectives of lightweight high strength concrete using lightweight aggregates[J]. Construction and Building Materials, 2023, 362: 129628. [3] 刘云鹏, 申培亮, 何永佳, 等. 特种骨料混凝土的研究进展[J]. 硅酸盐通报, 2021, 40(9): 2831-2855. LIU Y P, SHEN P L, HE Y J, et al. Research progress of special aggregate concrete[J]. Bulletin of the Chinese Ceramic Society, 2021, 40(9): 2831-2855 (in Chinese). [4] 张 超. 赤泥协同多源固废两级跃迁制备高强免烧轻骨料及其应用的试验研究[D]. 济南: 山东大学, 2023. ZHANG C. Experimental study on preparation and application of high strength cold bonded lightweight aggregates based on two-step transition utilization of red mud together with multi-source solid wastes[D]. Jinan: Shandong University, 2023 (in Chinese). [5] LIU Y P, WAN W H, LU J X, et al. Preparation of glass-ceramic-based artificial aggregates using multiple solid wastes: crystallization mechanism[J]. Journal of Cleaner Production, 2023, 421: 138298. [6] 张高展, 葛竞成, 丁庆军, 等. 轻质超高性能混凝土的制备及性能形成机理[J]. 硅酸盐学报, 2021, 49(2): 381-390. ZHANG G Z, GE J C, DING Q J, et al. Preparation and formation mechanism of lightweight ultra-high performance concrete[J]. Journal of the Chinese Ceramic Society, 2021, 49(2): 381-390 (in Chinese). [7] LU J X, SHEN P L, ALI H A, et al. Mix design and performance of lightweight ultra high-performance concrete[J]. Materials & Design, 2022, 216: 110553. [8] 许鸽龙. 骨料嵌锁型混凝土特性及其形成机理研究[D]. 武汉: 武汉理工大学, 2020. XU G L. Properties of aggregate interlocking concrete and its formation mechanism[D]. Wuhan: Wuhan University of Technology, 2020 (in Chinese). [9] SIDDIQUE S, KIM H, SON H, et al. Characteristics of preplaced aggregate concrete fabricated with alkali-activated slag/fly ash cements[J]. Materials, 2021, 14(3): 591. [10] YOON J, KIM J, HWANG Y, et al. Lightweight concrete produced using a two-stage casting process[J]. Materials, 2015, 8(4): 1384-1397. [11] PENG B, WANG J T, DONG X Z, et al. Enhancement of mechanical and durability properties of preplaced lightweight aggregate concrete[J]. Advances in concrete construction, 2023, 15(6): 419-430. [12] DU Q, SUN Q, LV J, et al. Use of preplaced casting method in lightweight aggregate concrete[J]. Advances in Materials Science and Engineering, 2017, 2017: 7234761. [13] ABDELGADER H S, ELGALHUD A A. Effect of grout proportions on strength of two-stage concrete[J]. Structural Concrete, 2008, 9(3): 163-170. [14] 中华人民共和国住房和城乡建设部, 国家市场监督管理总局. 混凝土物理力学性能试验方法标准: GB/T 50081—2019[S]. 北京: 中国建筑工业出版社, 2019. Ministry of Housing and Urban-Rural Development of the People’s Republic of China, State Administration of Market Supervision and Administration. Standards for test methods of physical and mechanical properties of concrete: GB/T 50081—2019[S]. Beijing: China Construction Industry Press, 2019 (in Chinese). [15] 中华人民共和国住房和城乡建设部. 轻骨料混凝土应用技术标准: JGJ/T 12—2019[S]. 北京: 中国建筑工业出版社, 2020. China Academy of Building Research. Technical standard for lightweight aggregate concrete application: JGJ/T 12—2019[S]. Beijing: China Construction Industry Press, 2020 (in Chinese). [16] CHU S H, LAM W L, LI L, et al. Packing density of ternary cementitious particles based on wet packing method[J]. Powder Technology, 2022, 405: 117493. [17] 王鑫鹏. 基于最紧密堆积理论的生态型超高性能混凝土设计和评价[D]. 武汉: 武汉理工大学, 2018. WANG X P. Close packing theroy based design method in developing eco-efficient ultra-high performance concrete[D]. Wuhan: Wuhan University of Technology, 2018 (in Chinese). [18] SANIAH K, HASIMAH H A. Development of morinda citrifolia citrus-flavoured drink using response surface methodology (RSM)[J]. Journal of Tropical Agriculture and Food Science, 2008, 36: 87-97. [19] CHENG Y H, LIU S, ZHU B L, et al. Preparation of preplaced aggregate concrete and experimental study on its strength[J]. Construction and Building Materials, 2019, 229: 116847. [20] AKERS D J, GRUBER R D, RAMME B W, et al. Guide for structural lightweight-aggregate concrete[J]. American Concrete Institute (ACI), Michigan, 2003. [21] YOON J Y, KIM J H. Mechanical properties of preplaced lightweight aggregates concrete[J]. Construction and Building Materials, 2019, 216: 440-449. [22] ZHOU Y W, GONG G Q, HUANG Y J, et al. Feasibility of incorporating recycled fine aggregate in high performance green lightweight engineered cementitious composites[J]. Journal of Cleaner Production, 2021, 280: 124445. [23] WEI H, LIU Y, WU T, et al. Effect of aggregate size on strength characteristics of high strength lightweight concrete[J]. Materials, 2020, 13(6): 1314. [24] SZYDŁOWSKI R S, ŁABUZEK B. Experimental evaluation of shrinkage, creep and prestress losses in lightweight aggregate concrete with sintered fly ash[J]. Materials, 2021, 14(14): 3895. [25] YANG X, JIN C, LIU T, et al. Effect of brick-based construction and demolition waste on the performance and microstructure of lightweight aggregate concrete[J]. Journal of Building Engineering, 2023: 107665. [26] DA GLÓRIA GOMES M, BOGAS J A, REAL S, et al. Thermal performance assessment of lightweight aggregate concrete by different test methods[J]. Sustainability, 2023, 15(14): 11105. [27] DOMAGAŁA L, SIEJA K. Effect of moisture condition of structural lightweight concretes on specified values of static and dynamic modulus of elasticity[J]. Materials, 2023, 16(12): 4299. |