[1] VENKATA RAMANA M, RAO G V, SHANKAR RAO B, et al. Design & development of durable low cost housing from glass fiber composites[J]. Materials Today: Proceedings, 2020, 32(5): 3205-3212. [2] ZHOU H Y, DHIRADHAMVIT K, ATTARD T L. Tornado-borne debris impact performance of an innovative storm safe room system protected by a carbon fiber reinforced hybrid polymeric-matrix composite[J]. Engineering Structures, 2014, 59(3): 308-319. [3] 常春敏, 李海超, 马永斌. 复合材料在铁路集装箱制造中的应用探索[J]. 铁道运输与经济, 2004, 26(5): 31-33. [4] LIU W Q, ZHANG F B, WANG L, et al. Flexural performance of sandwich beams with lattice ribs and a functionally multilayered foam core[J]. Composite Structures, 2016, 152: 704-711. [5] 方海, 刘伟庆, 万里. 格构增强型复合材料夹层结构的制备与受力性能[J]. 玻璃钢/复合材料, 2009(4): 67-69. [6] 李晓龙, 刘伟庆, 方海, 等. 格构腹板增强复合材料泡沫夹芯板侧压性能试验与分析[J]. 南京工业大学学报(自然科学版), 2017, 39(2): 64-69. [7] FANG H, XU X, LIU W Q, et al. Flexural behavior of composite concrete slabs reinforced by FRP grid facesheets[J]. Composites Part B: Engineering, 2016, 92: 46-62. [8] WANG L, LIU W Q, WAN L, et al. Mechanical performance of foam-filled lattice composite panels in four-point bending: experimental investigation and analytical modeling[J]. Composites Part B: Engineering, 2014, 67: 270-279. [9] WU Z M, LIU W Q, WANG L, et al. Theoretical and experimental study of foam-filled lattice composite panels under quasi-static compression loading[J]. Composites Part B: Engineering, 2014, 60: 329-340. [10] 徐丹洋, 方园, 方海, 等. 湿热环境下泡沫复合材料夹芯板的Ⅱ型界面剥离[J]. 材料科学与工程学报, 2018, 36(3): 487-491. [11] 韩娟, 刘伟庆, 方海. 纤维增强树脂基复合材料在土木基础设施领域中的应用[J]. 南京工业大学学报(自然科学版), 2020, 42(5): 543-554. [12] 胡程鹤. 纤维增强复合材料夹芯板的力学性能研究[J]. 新型建筑材料, 2015, 42(9): 64-66. [13] 刘伟庆, 方海, 方园. 纤维增强复合材料及其结构研究进展[J]. 建筑结构学报, 2019, 40(4): 1-16. [14] 杨曙兰, 刘伟庆, 方海, 等. 玻璃纤维夹芯泡桐木复合材料墙板承载性能研究[J]. 工业建筑, 2014, 44(10): 30-35. [15] 邹广平, 张冰, 唱忠良, 等. 复合材料泡沫夹芯板局部连接拉脱破坏试验与数值仿真[J]. 复合材料学报, 2019, 36(4): 881-891. [16] FAM A, SHARAF T. Flexural performance of sandwich panels comprising polyurethane core and GFRP skins and ribs of various configurations[J]. Composite Structures, 2010, 92(12): 2927-2935. [17] LEE J, KIM Y, JUNG J, et al. Experimental characterization of a pultruded GFRP bridge deck for light-weight vehicles[J]. Composite Structures, 2007, 80(1): 141-151. [18] MOON D Y, ZI G, LEE D H, et al. Fatigue behavior of the foam-filled GFRP bridge deck[J]. Composites Part B: Engineering, 2009, 40(2): 141-148. [19] ZI G, KIM B M, HWANG Y K, et al. An experimental study on static behavior of a GFRP bridge deck filled with a polyurethane foam[J]. Composite Structures, 2008, 82(2): 257-268. [20] 周强, 刘伟庆, 方海. 单向纤维腹板增强复合材料夹层结构的受弯性能试验研究[J]. 新型建筑材料, 2011, 38(8): 32-36. [21] 徐佳佳, 方海, 韩娟, 等. 格构腹板增强泡沫夹芯复合材料准静态压缩吸能特性[J]. 复合材料学报, 2022, 39(8): 3965-3981. [22] KELLER T, HAAS C, VALLEE T. Structural concept, design, and experimental verification of a glass fiber-reinforced polymer sandwich roof structure[J]. Journal of Composites for Construction, 2008, 12(4): 454-468. [23] ROBINSON M J, KOSMATKA J B. Light-weight fiber-reinforced polymer composite deck panels for extreme applications[J]. Journal of Composites for Construction, 2008, 12(3): 344-354. [24] 邹芳, 方海, 齐玉军, 等. 格构腹板增强轻木夹芯复合材料桥面板的制备与受弯分析[J]. 玻璃钢/复合材料, 2017(3): 44-48. [25] 韩娟, 方海, 吴鹏. 悬索桥轻质复材人行道板的研制及其受力性能[J]. 复合材料学报, 2022, 39(11): 5355-5366. [26] ASTM. Standard test method for tensile properties of polymer matrix composite materials: ASTM D3039[S]. West Conshohocken: ASTM International, 2017. [27] ASTM. Standard test method for in-plane shear response of polymer matrix composite materials by tensile test of a ±45° laminate: ASTM D3518[S]. West Conshohocken: ASTM International, 2018. [28] ASTM. Standard test method for compressive properties of polymer matrix composite materials with unsupported gage section by shear loading: ASTM D3410[S]. West Conshohocken: ASTM International, 2016. [29] ASTM. Standard test method for flatwise tensile strength of sandwich constructions: ASTM C297[S]. West Conshohocken: ASTM International, 2015. [30] ASTM. Standard test method for shear properties of sandwich core materials: ASTM C273[S]. West Conshohocken: ASTM International, 2020. [31] ASTM. Standard test method for flatwise compressive properties of sandwich cores: ASTM C365[S]. West Conshohocken: ASTM International, 2022. [32] 中华人民共和国住房和城乡建设部. 建筑结构荷载规范: GB 50009—2012[M]. 北京: 中国建筑工业出版社, 2012. [33] WANG L, LIU W Q, FANG H, et al. Behavior of sandwich wall panels with GFRP face sheets and a foam-GFRP web core loaded under four-point bending[J]. Journal of Composite Materials, 2015, 49(22): 2765-2778. [34] ALLEN H G. Analysis and design of structural sandwich panels[M]. London: Pergamon Press Ltd., 1969. |