BULLETIN OF THE CHINESE CERAMIC SOCIETY ›› 2024, Vol. 43 ›› Issue (11): 3911-3922.
• Cement and Concrete • Previous Articles Next Articles
ZHU Hongzhou1,2, DU Junchi2, CHEN Xiang2, YANG Song2, TAN Qiqi2
Received:
2024-05-23
Revised:
2024-07-14
Online:
2024-11-15
Published:
2024-11-21
CLC Number:
ZHU Hongzhou, DU Junchi, CHEN Xiang, YANG Song, TAN Qiqi. Research Progress on Characteristics of Manufactured Sand and Its Influence on Concrete Performance[J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2024, 43(11): 3911-3922.
[1] 卢 林, 杨政险, 陈 兵, 等. 花岗岩石粉对机制砂砂浆性能的影响[J]. 混凝土, 2023(11): 185-189. LU L, YANG Z X, CHEN B, et al. Effect of granite powder on properties of manufactured sand mortar[J]. Concrete, 2023(11): 185-189 (in Chinese). [2] 谢开仲, 刘振威, 盖炳州, 等. 机制砂混凝土应力-应变试验研究[J]. 硅酸盐通报, 2020, 39(12): 3823-3831. XIE K Z, LIU Z W,GAI B Z, et al. Stress-strain test of manufactured sand concrete[J]. Bulletin of the Chinese Ceramic Society, 2020, 39(12): 3823-3831 (in Chinese). [3] 李 波, 周海龙, 吕振国, 等. 高强机制砂混凝土工作性及力学性能的试验研究[J]. 硅酸盐通报, 2020, 39(6): 1765-1771+1797. LI B, ZHOU H L, LÜ Z G, et al. Experimental study on workability and mechanical properties of high strength manufactured sand concrete[J]. Bulletin of the Chinese Ceramic Society, 2020, 39(6): 1765-1771+1797 (in Chinese). [4] 王发平, 张硕文, 关博文, 等. 不同机制砂混凝土耐硫酸盐侵蚀特性[J]. 公路交通科技, 2023, 40(8): 43-50. WANG F P, ZHANG S W, GUAN B W, et al. Sulfate corrosion resistance of different manufactured sand concretes[J]. Journal of Highway and Transportation Research and Development, 2023, 40(8): 43-50 (in Chinese). [5] 李小波, 廖正彪, 樊 波. 精品机制砂石骨料生产线的工艺及设备探讨[J]. 水泥技术, 2019(3): 69-76. LI X B, LIAO Z B, FAN B. Discussion on the technology and equipment of fine mechanism aggregate production line[J]. Cement Technology, 2019(3): 69-76 (in Chinese). [6] 董藏龙, 肖志敏, 夏京亮. 两种生产工艺机制砂掺配对混凝土性能的影响[J]. 高速铁路技术, 2021, 12(1): 65-69. DONG C L, XIAO Z M, XIA J L. Effects of blending of machine-made sand manufactured with two production technologies on concrete performance[J]. High Speed Railway Technology, 2021, 12(1): 65-69 (in Chinese). [7] 王德永, 姚文奉, 陈 刚, 等. 湿法生产机制砂尾矿污泥用于生产烧结砖的技术可行性分析[J]. 砖瓦, 2021(7): 20-22. WANG D Y, YAO W F, CHEN G, et al. Technical feasibility analysis of wet process production of machine-made sand tailings sludge used in production of fired bricks[J]. Brick-Tile, 2021(7): 20-22 (in Chinese). [8] DONZA H, CABRERA O, IRASSAR E F. High-strength concrete with different fine aggregate[J]. Cement and Concrete Research, 2002, 32(11): 1755-1761. [9] 李振怀, 甘洋宇, 管民生, 等. 机制砂物理特性对高强混凝土工作性能和强度的影响[J]. 混凝土与水泥制品, 2018(8): 93-96. LI Z H, GAN Y Y, GUAN M S, et al. The influence on workability and strength of physical characteristic of high-strength concrete[J]. China Concrete and Cement Products, 2018(8): 93-96 (in Chinese). [10] 王军伟, 安明喆, 刘亚洲, 等. 机制砂物理特性对水泥胶砂流变性能的影响及机理[J]. 中国铁道科学, 2021, 42(2): 19-27. WANG J W, AN M Z, LIU Y Z, et al. Effect of physical characteristics of manufactured sand on rheological properties of cement mortar and its mechanism[J]. China Railway Science, 2021, 42(2): 19-27 (in Chinese). [11] 徐 良, 程华才, 马子宸, 等. 机制砂岩性与级配对混凝土抗硫酸盐侵蚀性能的影响[J]. 硅酸盐通报, 2022, 41(6): 1973-1980. XU L, CHENG H C, MA Z C, et al. Effects of manufactured sand lithology and gradation on sulfate resistance of concrete[J]. Bulletin of the Chinese Ceramic Society, 2022, 41(6): 1973-1980 (in Chinese). [12] 方国富, 游秋森, 张显羽, 等. 硅质机制砂对混凝土性能影响机理研究[J]. 新型建筑材料, 2022, 49(4): 81-84+144. FANG G F, YOU Q S, ZHANG X Y, et al. Study on influence mechanism of siliceous manufactured sand on concrete performance[J]. New Building Materials, 2022, 49(4): 81-84+144 (in Chinese). [13] 王晓波, 亢泽千, 孔亚宁, 等. 母岩类型和岩性对混凝土骨料性能的影响[J]. 混凝土, 2023(3): 77-80+85. WANG X B, KANG Z Q, KONG Y N, et al. Concrete aggregate performance affected by the type and lithology of parent rock[J]. Concrete, 2023(3): 77-80+85 (in Chinese). [14] 宋少民, 程 成, 杨 楠. 机制砂岩性对胶砂和混凝土性能影响的研究[J]. 混凝土, 2019(9): 67-70. SONG S M, CHENG C, YANG N. Influence of manufactured sand lithology on mortar and concrete performance[J]. Concrete, 2019(9): 67-70 (in Chinese). [15] 冯玉钏, 贾小龙, 惠迎新, 等. 母岩类型及石粉含量对机制砂混凝土性能影响研究[J]. 硅酸盐通报, 2023, 42(8): 2773-2780. FENG Y C, JIA X L, HUI Y X, et al. Influences of mother rock type and stone powder content on properties of mechanism sand concrete[J]. Bulletin of the Chinese Ceramic Society, 2023, 42(8): 2773-2780 (in Chinese). [16] 李 军. 机制砂混凝土工作性能及强度影响因素研究[J]. 新型建筑材料, 2020, 47(5): 26-28+32. LI J. Study on different factors for working performance and strength of concrete with machined-sand[J]. New Building Materials, 2020, 47(5): 26-28+32 (in Chinese). [17] DING X X, LI C Y, XU Y Y, et al. Experimental study on long-term compressive strength of concrete with manufactured sand[J]. Construction and Building Materials, 2016, 108: 67-73. [18] 王建国, 周海龙, 葛成龙, 等. 石粉对高强机制砂混凝土工作性能和力学性能的影响[J]. 排灌机械工程学报, 2021, 39(8): 804-810. WANG J G, ZHOU H L, GE C L, et al. Influence of stone powder on working and mechanical properties of high-strength manufactured sand concrete[J]. Journal of Drainage and Irrigation Machinery Engineering, 2021, 39(8): 804-810 (in Chinese). [19] SHEN W G, LIU Y, WANG Z W, et al. Influence of manufactured sand's characteristics on its concrete performance[J]. Construction and Building Materials, 2018, 172: 574-583. [20] 杨卓强, 刘元珍. 石粉掺量对机制砂高性能混凝土强度及耐久性能影响研究[J]. 混凝土, 2018(7): 69-71+75. YANG Z Q, LIU Y Z. Effect of stone powder content on strength and durability of high performance concrete with machine-made sand[J]. Concrete, 2018(7): 69-71+75 (in Chinese). [21] 张广田, 刘娟红, 隋宝龙, 等. 硅质机制砂改性剂的机理研究与应用[J]. 材料导报, 2017, 31(24): 56-62. ZHANG G T, LIU J H, SUI B L, et al. Mechanism study and application of the modifier for siliceous machine-made sand[J]. Materials Review, 2017, 31(24): 56-62 (in Chinese). [22] 李 艳, 任永华, 黄法礼, 等. 石粉含量对机制砂颗粒形貌参数的影响[J]. 铁道建筑, 2017, 57(8): 139-142. LI Y, REN Y H, HUANG F L, et al. Influence of crusher dust on particle shape parameters of machine-made sands[J]. Railway Engineering, 2017, 57(8): 139-142 (in Chinese). [23] 王毓发, 孙文滨, 王秀青, 等. 机制砂中的石灰石粉对混凝土性能的影响[J]. 商品混凝土, 2016(5): 30-32. WANG Y F, SUN W B, WANG X Q, et al. Effect of limestone powder in machine-made sand on the properties of concrete[J]. Ready-Mixed Concrete, 2016(5): 30-32 (in Chinese). [24] 董 超, 冯 晨, 杨进波, 等. 机制砂质量指标及对混凝土性能的影响分析[J]. 混凝土与水泥制品, 2019(11): 21-24. DONG C, FENG C, YANG J B, et al. Analysis of the quality index of manufactured sand and its influence on concrete performance[J]. China Concrete and Cement Products, 2019(11): 21-24 (in Chinese). [25] 张 岩, 刘嘉昊, 吕 园, 等. 不同石粉参数对混凝土力学性能的影响[J]. 长江科学院院报, 2023, 40(3): 166-173. ZHANG Y, LIU J H, LÜ Y, et al. Influence of stone powder parameters on mechanical propertiesof concrete[J]. Journal of Changjiang River Scientific Research Institute, 2023, 40(3): 166-173 (in Chinese). [26] 黄登标. 机制砂特性及其混凝土配制技术的实验研究[D]. 南昌: 南昌大学, 2021. HUANG D B. Experimental study on the characteristics of machine-made sand and its concrete preparation technology[D]. Nanchang: Nanchang University, 2021 (in Chinese). [27] 刘文浩, 卿 迟, 冯前进, 等. 机制砂石粉参数对混凝土性能的影响[J]. 武汉理工大学学报, 2023, 45(3): 31-38+62. LIU W H, QING C, FENG Q J, et al. Effects of physical and chemical parameters of mechanized sand on concrete properties[J]. Journal of Wuhan University of Technology, 2023, 45(3): 31-38+62 (in Chinese). [28] 陈维敏, 王灯灯, 韩旭东, 等. 不同石粉含量机制砂混凝土徐变研究[J]. 混凝土, 2022(8): 71-73. CHEN W M, WANG D D, HAN X D, et al. Creep of manufactured sand concrete with different limestone powder contents[J]. Concrete, 2022(8): 71-73 (in Chinese). [29] 邓宋喜. 机制砂特性及其对混凝土性能的影响分析[J]. 工程建设与设计, 2018(7): 274-276. DENG S X. Characteristics of machine-made sand and its influence on concrete performance[J]. Construction & Design for Engineering, 2018(7): 274-276 (in Chinese). [30] 刘亚莲, 赵 爽, 张志福, 等. 机制砂对混凝土流变性能的影响及机理分析[C]//《工业建筑》2018年全国学术年会论文集(中册).北京: 工业建筑杂志社有限公司, 2018. LIU Y L, ZHAO S, ZHANG Z F, et al. Research of effects and mechanism of manufactured sand on the rheological property of concrete[C]// Proceedings of the 2018 National Academic Conference on Industrial Architecture (Volume). Beijing: Industria Construction Magazine Agency, 2018 (in Chinese). [31] CEPURITIS R, JACOBSEN S, PEDERSEN B, et al. Crushed sand in concrete-Effect of particle shape in different fractions and filler properties on rheology[J]. Cement and Concrete Composites, 2016, 71: 26-41. [32] 魏艺博, 陈 雷, 于 蕾, 等. 机制砂颗粒特性对胶砂综合性能的影响研究[J]. 公路交通科技(应用技术版), 2018, 14(7): 137-138. WEI Y B, CHEN L, YU L, et al. Study on the influence of particle characteristics of machine-made sand on the comprehensive properties of mortar[J]. Journal of Highway and Transportation Research and Development(Applied Technology Edition), 2018, 14(7): 137-138 (in Chinese). [33] HAFID H, OVARLEZ G, TOUSSAINT F, et al. Effect of particle morphological parameters on sand grains packing properties and rheology of model mortars[J]. Cement and Concrete Research, 2016, 80: 44-51. [34] WESTERHOLM M, LAGERBLAD B, SILFWERBRAND J, et al. Influence of fine aggregate characteristics on the rheological properties of mortars[J]. Cement and Concrete Composites, 2008, 30(4): 274-282. [35] HUANG Y M, WANG L H. Effect of particle shape of limestone manufactured sand and natural sand on concrete[J]. Procedia Engineering, 2017, 210: 87-92. [36] 袁 霞. 机制砂的研究现状[J]. 工程技术研究, 2020, 5(2): 127-128. YUAN X. Research status of machine-made sand[J]. Engineering and Technological Research, 2020, 5(2): 127-128 (in Chinese). [37] SHEN W G, YANG Z G, CAO L H, et al. Characterization of manufactured sand: particle shape, surface texture and behavior in concrete[J]. Construction and Building Materials, 2016, 114: 595-601. [38] HUANG Y M, WANG L H. Effect of particle shape of limestone manufactured sand and natural sand on concrete[J]. Procedia Engineering, 2017, 210: 87-92. [39] 黄志刚, 徐志华, 李北星, 等. 机制砂片状颗粒对砂浆和混凝土性能与微观结构的影响[J]. 硅酸盐通报, 2022, 41(6): 1981-1989. HUANG Z G, XU Z H, LI B X, et al. Effects of flake particles in manufactured sand on properties and microstructure of mortar and concrete[J]. Bulletin of the Chinese Ceramic Society, 2022, 41(6): 1981-1989 (in Chinese). [40] 黄京胜. 机制砂品质对高强大流态混凝土性能的影响[D]. 北京: 北京建筑大学, 2021. HUANG J S. Effect of mechanical sand quality on performance of high strength flow concrete[D]. Beijing: Beijing University of Civil Engineering and Architecture, 2021 (in Chinese). [41] 杨 晨. 机制砂粒形参数的表征及对高性能混凝土性能影响研究[D]. 重庆: 重庆交通大学, 2024. YANG C. Characterization of mechanical sand grain shape parameters and their influence on performance of high performance concrete[D].Chongqing: Chongqing Jiaotong University, 2024 (in Chinese). [42] 刘嘉栋. 石灰岩机制砂粒形特性对混凝土强度的影响研究[D]. 舟山: 浙江海洋大学, 2018. LIU J D. Study on the influence of mechanical sand shape characteristics of limestone on concrete strength[D]. Zhoushan: Zhejiang Ocean University, 2018 (in Chinese). [43] 谢华兵. 机制砂粒形与级配特性及其对混凝土性能的影响[D]. 广州: 华南理工大学, 2016. XIE H B. The Characteristics of shape and grading of manufactured sand and theirs effects on the properties of concrete[D]. Guangzhou: South China University of Technology, 2016 (in Chinese). [44] 曾晓辉, 戴亚鹏, 瞿福林, 等. 基于图像处理技术的石灰石机制砂形貌研究[J]. 西南交通大学学报, 2017, 52(1): 69-74. ZENG X H, DAI Y P, QÜ F L, et al. Morphology of limestone manufactured sand based on image processing technology[J]. Journal of Southwest Jiaotong University, 2017, 52(1): 69-74 (in Chinese). [45] 周新文. 机制砂对水泥砂浆流变性能的影响及作用机理[D]. 南京: 东南大学, 2020. ZHOU X W. Effects and mechanisms of manufactured sand on rheological propeties of cement mortar[D]. Nanjing: Southeast University, 2020 (in Chinese). [46] 杜雪剑. 机制砂颗粒形貌及级配的定量表征与研究[D]. 武汉: 武汉理工大学, 2020. DU X J. Quantitative characterization and study of shape and gradation of manufactured sand[D]. Wuhan: Wuhan University of Technology, 2020 (in Chinese). [47] ESTEPHANE P, GARBOCZI E J, BULLARD J W, et al. Three-dimensional shape characterization of fine sands and the influence of particle shape on the packing and workability of mortars[J]. Cement and Concrete Composites, 2019, 97: 125-142. [48] 艾长发, 彭 浩, 胡 超, 等. 机制砂级配对混凝土性能的影响规律与作用效应[J]. 混凝土, 2013(1): 73-76. AI C F, PENG H, HU C, et al. Influence law and action effect of manufactured sand gradation on concrete performance[J]. Concrete, 2013(1): 73-76 (in Chinese). [49] 尹亚柳. 机制砂混凝土的性能与配合比研究[D]. 重庆: 重庆大学, 2016. YIN Y L. Study on the properties of concrete with manufactured sand and its mix proportion[D]. Chongqing: Chongqing University, 2016 (in Chinese). [50] 赵文久. 机制砂级配对高强混凝土工作性能的影响分析[J]. 住宅与房地产, 2019(22): 106. ZHAO W J. Analysis on the influence of machine-made sand gradation on the working performance of high strength concrete[J]. Housing and Real Estate, 2019(22): 106 (in Chinese). [51] 艾志勇, 李娟燕, 舒小平, 等. 机制砂级配对高强混凝土工作性能的影响[J]. 交通科技, 2019(3): 135-138. AI Z Y, LI J Y, SHU X P, et al. Effects of manufactured-sand grade on working performance of high strength concrete[J]. Transportation Science & Technology, 2019(3): 135-138 (in Chinese). [52] QUIROGA P N, AHN N, FOWLER D W. Concrete mixtures with high microfines[J]. ACI Materials Journal, 2006, 103(4): 258-264. [53] 罗健勇, 于本田, 苏俊辉, 等. 机制砂颗粒级配对混凝土性能的影响研究[J]. 公路, 2022, 67(9): 384-388. LUO J Y, YU B T, SU J H, et al. Study on the influence of particle size distribution of machine-made sand on concrete properties[J]. Highway, 2022, 67(9): 384-388 (in Chinese). [54] 陈思嘉. 机制砂粒径粒形检测系统开发及实验研究[D]. 泉州: 华侨大学, 2017. CHEN S J. Development and experimental study on the manufactured sandsize and shape detection system[D]. Quanzhou: Huaqiao University, 2017 (in Chinese). [55] KONG D, FONSECA J. Quantification of the morphology of shelly carbonate sands using 3D images[J]. Géotechnique, 2018, 68(3): 249-261. [56] SU Y F, BHATTACHARYA S, LEE S J, et al. A new interpretation of three-dimensional particle geometry: m-A-V-L[J]. Transportation Geotechnics, 2020, 23: 100328. [57] YAGHOOBI H, MANSOURI H, ALI EBRAHIMI FARSANGI M, et al. Determining the fragmented rock size distribution using textural feature extraction of images[J]. Powder Technology, 2019, 342: 630-641. [58] 黄晓宇. 基于动态图像法的机制砂级配测量及补偿算法研究[D]. 泉州: 华侨大学, 2020: 109. HUANG X Y. Study on gradation measurement and compensation algorithm of manufactured sand based on dynamic image method[D].Quanzhou: Huaqiao University, 2020: 109 (in Chinese). [59] 中华人民共和国住房和城乡建设部. 普通混凝土配合比设计规程: JGJ 55—2011[S]. 北京: 中国建筑工业出版社, 2011. Ministry of Housing and Urban-Rural Development of the People's Republic of China. Specifications for mix design of ordinary concrete: JGJ 55—2011[S]. Beijing: China Construction Industry Press, 2011 (in Chinese). [60] 宋少民, 孙 凌. 土木工程材料[M]. 武汉: 武汉理工大学出版社, 2006. SONG S M, SUN L. Civil engineering materials[M]. Wuhan: Wuhan University of Technology Press, 2006 (in Chinese). [61] OZBAY E, OZTAS A, BAYKASOGLU A, et al. Investigating mix proportions of high strength self compacting concrete by using Taguchi method[J]. Construction and Building Materials, 2009, 23(2): 694-702. [62] 张 瑜. 复合胶材体系机制砂混凝土性能及配合比设计研究[D]. 北京: 北京交通大学, 2020. ZHANG Y. Study on manufactured sand concrete of composite cement material system: performance and mix proportion design[D]. Beijing: Beijing Jiaotong University, 2020 (in Chinese). [63] 翟文静. 机制砂混凝土配合比设计方法研究[D]. 北京: 北京建筑大学, 2022: 110. ZHAI W J. Mix proportion design method of manufactured sand concrete[D]. Beijing: Beijing University of Civil Engineering and Architecture, 2022: 110 (in Chinese). [64] 吴朝明, 李春锦, 胡 堃, 等. 基于性能需求的机制骨料混凝土配合比设计[J]. 建筑材料学报, 2024, 27(8): 667-674. WU C M, LI C J, HU K, et al. Mix design of concrete according to the requirements of performance[J]. Journal of Building Materials, 2024, 27(8): 667-674 (in Chinese). [65] 曹康建, 姬勇刚, 范兴安, 等. 不同石粉含量花岗岩机制砂混凝土配合比设计及性能研究[J]. 混凝土, 2023(4): 120-125+130. CAO K J, JI Y G, FAN X A, et al. Mix design and performance study of granite manufactured sand concrete with different stone powder content[J]. Concrete, 2023(4): 120-125+130 (in Chinese). [66] 朱效荣. 数字量化混凝土实用技术[M]. 北京: 中国建材工业出版社, 2016: 312. ZHU X R. Practical technology of digital quantified concrete[M]. Beijing: China Building Materials Press, 2016: 312 (in Chinese). [67] SHOBEIRI V, BENNETT B, XIE T Y, et al. A generic framework for augmented concrete mix design: optimisation of geopolymer concrete considering environmental, financial and mechanical properties[J]. Journal of Cleaner Production, 2022, 369: 133382. [68] 李北星, 周明凯, 田建平, 等. 石粉与粉煤灰对C60机制砂高性能混凝土性能的影响[J]. 建筑材料学报, 2006, 9(4): 381-387. LI B X, ZHOU M K, TIAN J P, et al. Effect of stone dust and fly ash on properties of C60 high performance concrete containing manufactured sand[J]. Journal of Building Materials, 2006, 9(4): 381-387 (in Chinese). [69] 刘平云, 张 晗, 李 琨, 等. 水灰比对机制砂混凝土性能影响的试验研究[J]. 混凝土与水泥制品, 2024(6): 37-42. LIU P Y, ZHANG H, LI K, et al. Experimental study on the effect of water-cement ratio on manufactured sand concrete[J]. China Concrete and Cement Products, 2024(6): 37-42 (in Chinese). [70] 王慧斌, 崔 通, 陈 捷, 等. 基于响应面法的机制砂路面混凝土配合比优化及其性能研究[J]. 硅酸盐通报, 2024, 43(5): 1878-1888. WANG H B, CUI T, CHEN J, et al. Mix proportion optimization and performance study of manufactured sand road concrete based on response surface methodology[J]. Bulletin of the Chinese Ceramic Society, 2024, 43(5): 1878-1888 (in Chinese). [71] 宋少民, 耿 雷. 人工砂高性能混凝土配制技术研究[J]. 建筑技术, 2007(1): 46-48. SONG S M, GENG L. Study on production technology of high performance concrete with artificial sand[J]. Architecture Technology, 2007(1): 46-48 (in Chinese). [72] 管宇晨, 张 雄. 机制砂混凝土配合比优化设计[J]. 粉煤灰综合利用, 2017, 30(1): 39-43+47. GUAN Y C, ZHANG X. The mix proportion optimization design of machine-made sand concrete[J]. Fly Ash Comprehensive Utilization, 2017, 30(1): 39-43+47 (in Chinese). |
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