[1] ANGIOLILLI M, GREGORI A, CATTARI S. Performance of fiber reinforced mortar coating for irregular stone masonry: experimental and analytical investigations[J]. Construction and Building Materials, 2021, 294: 123508. [2] ANGIOLILLI M, GREGORI A, PATHIRAGE M, et al. Fiber reinforced cementitious matrix (FRCM) for strengthening historical stone masonry structures: experiments and computations[J]. Engineering Structures, 2020, 224: 111102. [3] 赵见超. 某砌体结构楼房健康鉴定与加固技术研究[D]. 哈尔滨: 哈尔滨工业大学, 2021: 6-8. ZHAO J C. Study on health appraisal and strengthening technology of a masonry building[D]. Harbin: Harbin Institute of Technology, 2021: 6-8 (in Chinese). [4] 邵旭东, 邱明红, 晏班夫, 等. 超高性能混凝土在国内外桥梁工程中的研究与应用进展[J]. 材料导报, 2017, 31(23): 33-43. SHAO X D, QIU M H, YAN B F, et al. A review on the research and application of ultra-high performance concrete in bridge engineering around the world[J]. Materials Review, 2017, 31(23): 33-43 (in Chinese). [5] 张文华, 刘鹏宇, 吕毓静. 超高性能混凝土动态力学性能研究进展[J]. 材料导报, 2019, 33(19): 3257-3271. ZHANG W H, LIU P Y, LYU Y J. Dynamic mechanical property of UHPCs: a review[J]. Materials Reports, 2019, 33(19): 3257-3271 (in Chinese). [6] BRÜHWILER E, DENARIÉ E. Rehabilitation and strengthening of concrete structures using ultra-high performance fibre reinforced concrete[J]. Structural Engineering International, 2013, 23(4): 450-457. [7] HABERT G, DENARIÉ E, ŠAJNA A, et al. Lowering the global warming impact of bridge rehabilitations by using ultra high performance fibre reinforced concretes[J]. Cement and Concrete Composites, 2013, 38: 1-11. [8] ZHANG Z Y, PANG K, XU L H, et al. The bond properties between UHPC and stone under different interface treatment methods[J]. Construction and Building Materials, 2023, 365: 130092. [9] 马兴林, 杨 俊, 周建庭, 等. UHPC与石材的粘结界面抗剪性能试验研究[J]. 材料导报, 2022, 36(24): 90-96. MA X L, YANG J, ZHOU J T, et al. Experimental research on the shear property of interfacial bonding between UHPC and stone[J]. Materials Reports, 2022, 36(24): 90-96 (in Chinese). [10] WANG Z S, YANG J, ZHOU J T, et al. Strengthening of existing stone arch bridges using UHPC: theoretical analysis and case study[J]. Structures, 2022, 43: 805-821. [11] 王 楠. 超高韧性水泥基复合材料与既有混凝土粘结工作性能试验研究[D]. 大连: 大连理工大学, 2011: 3-5. WANG N. Experimental study on bonding performance of ultra-high toughness cement-based composites with existing concrete[D]. Dalian: Dalian University of Technology, 2011: 3-5 (in Chinese). [12] 吴应雄, 郑新颜, 黄 伟, 等. 超高性能混凝土-既有普通混凝土界面粘结性能研究综述[J]. 材料导报, 2023, 37(16): 144-154. WU Y X, ZHENG X Y, HUANG W, et al. Review of interface bond behavior between ultra-high performance concrete and existing normal concrete[J]. Materials Reports, 2023, 37(16): 144-154 (in Chinese). [13] WU Y X, ZHENG X Y, HUANG W, et al. Experimental and numerical analysis of shear bonding behavior of interface between stone and ultra-high performance concrete made with POM fiber[J]. Engineering Structures, 2023, 286: 116142. [14] HONG S G, KANG S H. Effect of surface preparation and curing method on bond strength between UHPC and normal strength concrete[J]. Iabse Symposium Report, 2013, 105(15): 1-7. [15] CARBONELL MUÑOZ M A, HARRIS D K, AHLBORN T M, et al. Bond performance between ultrahigh-performance concrete and normal-strength concrete[J]. Journal of Materials in Civil Engineering, 2014, 26(8): 04014031. [16] JANG H O, LEE H S, CHO K, et al. Experimental study on shear performance of plain construction joints integrated with ultra-high performance concrete (UHPC)[J]. Construction and Building Materials, 2017, 152: 16-23. [17] 王兴旺. UHPC与普通钢筋混凝土结构界面抗剪性能研究[D]. 长沙: 湖南大学, 2016: 33-36. WANG X W. Study on shear behavior of interface between UHPC and ordinary reinforced concrete structure[D]. Changsha: Hunan University, 2016: 33-36 (in Chinese). [18] 杨 俊, 周建庭, 张中亚, 等. UHPC-NC键槽界面抗剪性能研究[J]. 中国公路学报, 2021, 34(8): 132-144. YANG J, ZHOU J T, ZHANG Z Y, et al. Shear performance of keyway interface between UHPC and normal concrete[J]. China Journal of Highway and Transport, 2021, 34(8): 132-144 (in Chinese). [19] 邓宗才, 鹿宇浩, 龚明高, 等. 玻璃纤维网格超高性能混凝土板抗弯性能试验研究[J]. 天津大学学报(自然科学与工程技术版), 2022, 55(6): 621-631. DENG Z C, LU Y H, GONG M G, et al. Flexural performance of ultra-high performance concrete slabs with glass fiber net[J]. Journal of Tianjin University (Science and Technology), 2022, 55(6): 621-631 (in Chinese). [20] YU R, LIU K N, YIN T Y, et al. Comparative study on the effect of steel and polyoxymethylene fibers on the characteristics of ultra-high performance concrete (UHPC)[J]. Cement and Concrete Composites, 2022, 127: 104418. [21] 孔旭文, 崔士起, 姚 宏, 等. 钻芯法检测混凝土劈裂抗拉强度试验研究[J]. 建筑结构, 2014, 44(21): 72-74. KONG X W, CUI S Q, YAO H, et al. Experimental study on concrete splitting tensile strength by core drilling method detection[J]. Building Structure, 2014, 44(21): 72-74 (in Chinese). [22] JAVIDMEHR S, EMPELMANN M. Shear bond between ultra-high performance fibre reinforced concrete overlays and normal strength concrete substrates[J]. Sustainability, 2021, 13(15): 8229. [23] Standard test method for measuring pavement macrotexture depth using a volumetric technique: ASTM E965—15[S]. ASTM International. [24] MANSOUR W, FAYED S. Effect of interfacial surface preparation technique on bond characteristics of both NSC-UHPFRC and NSC-NSC composites[J]. Structures, 2021, 29: 147-166. [25] 郭进军. 高温后新老混凝土粘结的力学性能研究[D]. 大连: 大连理工大学, 2003: 43-56. GUO J J. Study on mechanical properties of bond between new and old concrete after high temperature[D]. Dalian: Dalian University of Technology, 2003: 43-56 (in Chinese). |