硅酸盐通报, 2023, 42 (1): 213, 网络出版: 2023-03-16   

苎麻纤维增强磷建筑石膏复合材料耐水性能和力学性能研究

Water Resistance and Mechanical Properties of Ramie Fiber Reinforced Calcined Phosphogypsum Composite Materials
作者单位
1 武汉科技大学城市建设学院, 武汉 430065
2 武汉科技大学高性能工程结构研究院, 武汉 430065
3 华中农业大学植物科学技术学院, 武汉 430070
摘要
通过吸水率、软化系数、抗折强度和抗压强度试验, 并结合傅里叶红外光谱和扫描电子显微镜测试, 探究不同长度和掺量的苎麻纤维对苎麻纤维增强磷建筑石膏复合材料耐水性能和力学性能的影响。研究结果表明, 掺入适量苎麻纤维可改善苎麻纤维增强磷建筑石膏复合材料的耐水性能和力学性能, 以及提高复合材料的延性。掺入0.5%(体积分数, 下同)的10 mm苎麻纤维时, 复合材料的软化系数达到最大, 较空白组提高20.0%。苎麻纤维的掺入能有效提高复合材料的抗折强度, 28 d时, 掺入1.5%的10 mm苎麻纤维试样较空白组抗折强度提高39.5%。掺入小于20 mm的苎麻纤维会降低复合材料的抗压强度, 掺入不超过1.5%的30 mm苎麻纤维可提高复合材料的抗压强度, 28 d时, 掺入1.5%的30 mm苎麻纤维试样较空白组抗压强度提高10.1%。苎麻纤维在复合材料基体内会发生水解, 随龄期的增长水解程度加重, 表面逐渐粗糙。
Abstract
The effects of different length and content of ramie fibers on the water resistance and mechanical properties of ramie fiber reinforced calcined phosphogypsum composite materials were studied through the tests of water absorption, softening coefficient, flexural strength and compressive strength, combined with Fourier transform infrared spectroscopy and scanning electron microscopy. The results show that adding ramie fiber can improve the water resistance and mechanical properties of ramie fiber reinforced calcined phosphogypsum composite materials, and also promote the ductility of composite materials. Adding 0.5% (volume fraction, the same below) 10 mm ramie fiber makes the softening coefficient of composite materials reach the maximum, which increases by 20.0% compared with the control sample. The incorporation of ramie fiber can effectively improve the flexural strength of composite materials. At the age of 28 d, the flexural strength of composite materials with 1.5% 10 mm ramie fiber increases by 39.5% compared with the control sample. The compressive strength of composite materials with less than 20 mm ramie fiber decreases, but increases by addition of less than 1.5% 30 mm ramie fiber. At the age of 28 d, the compressive strength of composite materials with 1.5% 30 mm ramie fiber increases by 10.1% compared with the control sample. Ramie fiber hydrolyzes in the composite materials matrix. The degree of hydrolysis increases and the surface becomes rougher with the increase of age.
参考文献

[1] 杨再银.中国工业副产石膏利用现状及“十四五”展望[J].硫酸工业,2021 (7):1-4+23.

[2] 崔荣政,白海丹,高永峰,等.磷石膏综合利用现状及“十四五”发展趋势[J].无机盐工业,2022,54(4):1-4.

[3] YANG J K, LIU W C, ZHANG L L, et al. Preparation of load-bearing building materials from autoclaved phosphogypsum[J]. Construction and Building Materials, 2009, 23(2): 687-693.

[4] ZHANG Y Y, YANG J S, CAO X Y. Effects of several retarders on setting time and strength of building gypsum[J]. Construction and Building Materials, 2020, 240: 117927.

[5] 易 秋,陈红鸟,曾 洲,等.聚丙烯纤维增强磷石膏复合材料力学性能研究[J].贵州大学学报(自然科学版),2018,35(1):99-103.

[6] 吴 磊,赵志曼,朱伟民,等.短切玄武岩纤维对磷石膏抗折强度影响研究[J].非金属矿,2017,40(6):9-11.

[7] XIE L, ZHOU Y S, XIAO S H, et al. Research on basalt fiber reinforced phosphogypsum-based composites based on single factor test and RSM test[J]. Construction and Building Materials, 2022, 316: 126084.

[8] 鞠丽艳,张 雄.玻璃纤维在建筑材料领域中的应用[J].玻璃纤维,2003(5):15-20.

[9] LI M, PU Y Q, THOMAS V M, et al. Recent advancements of plant-based natural fiber-reinforced composites and their applications[J]. Composites Part B: Engineering, 2020, 200: 108254.

[10] DEREJE K D.通过纤维表面改性和复合热退火提高苎麻纤维增强聚乳酸生物复合材料的纤维基质界面强度的研究(英文版)[D].上海: 东华大学, 2018.

[11] 李 丹,赵志曼,全思臣,等.磷建筑石膏纤维复合体耐水性能研究[J].非金属矿,2019,42(4):44-46.

[12] MITTAL V, SAINI R, SINHA S. Natural fiber-mediated epoxy composites: a review[J]. Composites Part B: Engineering, 2016, 99: 425-435.

[13] KANG H L, LIU R G, HUANG Y. Graft modification of cellulose: methods, properties and applications[J]. Polymer, 2015, 70: A1-A16.

[14] 张 显,蔡 明,孙宝忠.植物纤维增强复合材料的湿热老化研究进展[J].材料导报,2022,36(5):226-236.

[15] LIU Y J, WANG Y, YUAN X H, et al. The function of water absorption and purification of lotus fiber[J]. Materials Science Forum, 2020, 980: 162-167.

[16] 李晓丹,唐 莹,冯佳成,等.天然纤维增强复合材料性能的研究及应用[J].化工新型材料,2021,49(6):231-235.

[17] 石宗利,黎良元.维尼纶纤维增强石膏基复合材料力学性能研究[J].湖南大学学报(自然科学版),2007,34(6):49-53.

[18] PRASAD V, JOSEPH M A, SEKAR K. Investigation of mechanical, thermal and water absorption properties of flax fibre reinforced epoxy composite with nano TiO2 addition[J]. Composites Part A: Applied Science and Manufacturing, 2018, 115: 360-370.

[19] 全国墙体屋面及道路用建筑材料标准化技术委员会.建筑用轻质隔墙条板:GB/T 23451—2009[S].北京:中国标准出版社,2010.

[20] 刘高鹏,廖宜顺,刘立军,等.苎麻纤维水泥基材料的力学性能与自收缩试验研究[J].功能材料,2019,50(7):7176-7181.

[21] 谢 浪,罗 双,付汝宾,等.纤维-建筑石膏基复合材料力学及耐水性能研究进展[J].新型建筑材料,2021,48(6):34-39.

[22] HOLKOV M, VAVNOV N, LONGAUEROV V. Mechanical properties of the gypsum composite reinforcement with wooden fibers[J]. International Review of Applied Sciences and Engineering, 2019, 10(1): 15-21.

[23] IUCOLANO F, CAPUTO D, LEBOFFE F, et al. Mechanical behavior of plaster reinforced with abaca fibers[J]. Construction and Building Materials, 2015, 99: 184-191.

[24] 杨政险,李 慷,张 勇,等.天然植物纤维预处理方法对水泥基复合材料性能的影响研究进展[J].硅酸盐学报,2022,50(2):522-532.

[25] 施苏薇,马培勇,邢献军,等.pH值对微晶纤维素水热炭化影响研究[J].太阳能学报,2021,42(8):449-453.

[26] 熊 磊,于伟东.酸处理后纤维素分子结构的显微红外光谱分析[J].纤维素科学与技术,2013,21(2):59-62.

[27] 王清梦.植物纤维在水泥孔隙溶液碱性环境下的劣化行为研究[D].绵阳:西南科技大学,2022.

张天潇, 廖宜顺, 刘立军, 王海宝, 董淇. 苎麻纤维增强磷建筑石膏复合材料耐水性能和力学性能研究[J]. 硅酸盐通报, 2023, 42(1): 213. ZHANG Tianxiao, LIAO Yishun, LIU Lijun, WANG Haibao, DONG Qi. Water Resistance and Mechanical Properties of Ramie Fiber Reinforced Calcined Phosphogypsum Composite Materials[J]. Bulletin of the Chinese Ceramic Society, 2023, 42(1): 213.

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