纺织学报 ›› 2020, Vol. 41 ›› Issue (04): 26-32.doi: 10.13475/j.fzxb.20190404307
WANG Dengfeng, WANG Zongqian(), FAN Xiangyu, SONG Bo, LI Yu
摘要:
为探究萝藦种毛纤维在吸油领域的应用潜力,实现纤维的高值化利用,采用光学接触角测量仪测量了水及不同油剂在萝藦种毛纤维表面的静态接触角;利用纤维成像系统对比观察了吸油前后及重复吸油后纤维的形貌变化;同时分析了其对不同油剂的静态吸油、保油及重复吸油性能,并以该纤维为过滤层初步分析其对油水混合物的分离性能。结果表明:萝藦种毛纤维具有优异亲油疏水性,与纯水的静态接触角为151.12°;因纤维间隙及中空结构的吸油储油作用,其对植物油、机油和柴油具有较高的饱和吸油倍率,分别为81.52、77.62和57.22 g/g;经 12 h 重力沥干,保油率仍可达到79.1%、75.4%和72.0%;经8次循环使用后,纤维的吸油倍率分别下降了23.4%、22.2%和20.7%;经4次过滤后,纤维对植物油的分离效率达98.0%,可初步实现油水分离。
中图分类号:
[1] | WANG D C, SUN S H, SHI L N, et al. Chemical composition, antibacterial and antioxidant activity of the essential oils of metaplexis japonica and their antibacterial components[J]. International Journal of Food Science & Technology, 2015,50(2):449-457. |
[2] | JAMARKATTEL-PANDIT N, KIM H. Neuroprotective effects of metaplexis japonica against in vitro ischemia model[J]. Journal of Health and Allied Sciences, 2013,3(1):51-55. |
[3] | YAO H L, LIU Y, LIU X H, et al. Metajapogenins A-C, pregnane steroids from shells of metaplexis japo-nica[J]. Molecules, 2017.DOI: 10.3390/molecules22040646. |
[4] | WANG Z, WANG D, WANG M, et al. Metaplexis japonica seed hair fiber: a member of natural hollow fibers and its characterization[J]. Textile Research Journal, 2019,89(21/22):4363-4372. |
[5] | WANG J, ZHENG Y, WANG A. Effect of kapok fiber treated with various solvents on oil absorbency[J]. Industrial Crops and Products, 2012,40(6):178-184. |
[6] | HORI K, FLAVIER M E, KUGA S, et al. Excellent oil absorbent kapok [Ceiba pentandra (L.) Gaertn.] fiber: fiber structure, chemical characteristics, and applica-tion[J]. Journal of Wood Science, 2000,46(5):401-404. |
[7] | ABDULLAH M A, RAHMAH A U, MAN Z. Physicochemical and sorption characteristics of Malaysian Ceiba pentandra (L.) Gaertn. as a natural oil sorbent[J]. Journal of Hazardous Materials, 2010,177(1-3):683-691. |
[8] | HUSSEIN M, AMERR A A, SAWSAN I I. Heavy oil spill cleanup using law grade raw cotton fibers: trial for practical application[J]. Journal of Petroleum Technology and Alternative Fuels, 2011,2(8):132-140. |
[9] | 陈莉, 邹龙, 孙卫国. 废弃亚麻热解处理吸油材料的制备及其吸附性能[J]. 纺织学报, 2017,38(6):17-22. |
CHEN Li, ZOU Long, SUN Weiguo. Preparation and oil adsorption property of thermal-modified waste flax fibers[J]. Journal of Textile Research, 2017,38(6):17-22. | |
[10] |
RADETIC M M, JOCIC D M, JOVANCIC P M, et al. Recycled wool-based nonwoven material as an oil sorbent[J]. Environmental Science & Technology, 2003,37(5):1008-1012.
doi: 10.1021/es0201303 pmid: 12666933 |
[11] | 王锦涛, 王爱勤. N-溴代丁二亚酰胺催化制备乙酰化木棉纤维及吸油性能研究[J]. 材料导报, 2015,29(22):39-42. |
WANG Jintao, WANG Aiqin. Preparation of acetylated kapok fiber using N-bromosuccinimide as a catalyst and its oil sorption property investigation[J]. Materials Review, 2015,29(22):39-42. | |
[12] | WANG J, ZHENG Y, WANG A. Coated kapok fiber for removal of spilled oil[J]. Marine Pollution Bulletin, 2013,69(1/2):91-96. |
[13] | CUI Y, XU G, LIU Y. Oil sorption mechanism and capability of cattail fiber assembly[J]. Journal of Industrial Textiles, 2014,43(3):330-337. |
[14] | DONG T, XU G, WANG F. Oil spill cleanup by structured natural sorbents made from cattail fibers[J]. Industrial Crops and Products, 2015,76:25-33. |
[15] | CHEN X, LIANG Y N, TANG X Z, et al. Additive-free poly (vinylidene fluoride) aerogel for oil/water separation and rapid oil absorption[J]. Chemical Engineering Journal, 2017,308:18-26. |
[16] | ZHANG W, ZHAI X, XIANG T, et al. Superhydrophobic melamine sponge with excellent surface selectivity and fire retardancy for oil absorp-tion[J]. Journal of Materials Science, 2017,52(1):73-85. |
[17] | 刘雷艮, 林振锋, 沈忠安, 等. 静电纺多孔超细纤维膜的吸油性能[J]. 纺织学报, 2018,39(2):7-13. |
LIU Leigen, LIN Zhenfeng, SHEN Zhongan, et al. Oil absorption property of electrospun superfine fibrous membrane[J]. Journal of Textile Research, 2018,39(2):7-13. | |
[18] |
ZHENG Y, CAO E, TU L, et al. A comparative study for oil-absorbing performance of octadecyltrichlorosilane treated calotropis gigantea fiber and kapok fiber[J]. Cellulose, 2017,24(1/2):1-12.
doi: 10.1007/s10570-016-1105-9 |
[19] | WAHI R, CHUAH L A, CHOONG T S Y, et al. Oil removal from aqueous state by natural fibrous sorbent: an overview[J]. Separation & Purification Technology, 2013,113:51-63. |
[20] |
DONG T, XU G, WANG F. Adsorption and adhesiveness of kapok fiber to different oils[J]. Journal of Hazardous Materials, 2015,296:101-111.
doi: 10.1016/j.jhazmat.2015.03.040 pmid: 25913676 |
[21] |
LIANG J, ZHOU Y, JIABNG G, et al. Transformation of hydrophilic cotton fabrics into superhydrophobic surfaces for oil/water separation[J]. Journal of The Textile Institute, 2013,104(3):305-311.
doi: 10.1080/00405000.2012.721207 |
[22] | 江茂生, 黄彪, 蔡向阳, 等. 红麻杆高吸油材料吸油特性的研究[J]. 中国麻业科学, 2007,29(6):344-348. |
JIANG Maosheng, HUANG Biao, CAI Xiangyang, et al. Characterization of the oil absorbent from pyrolyzed kenaf cores[J]. Plant Fiber Sciences in China, 2007,29(6):344-348. | |
[23] | ZHANG X, WANG C, CHAI W, et al. Kapok fiber as a natural source for fabrication of oil absorbent[J]. Journal of Chemical Technology & Biotechnology, 2017,92(7):1613-1619. |
[24] | 阮一平, 历伟, 侯琳熙, 等. 高吸油材料研究进展[J]. 高分子通报, 2013(5):1-8. |
RUAN Yiping, LI Wei, HOU Linxi, et al. Research of oil high-absorption materials[J]. Polymer Bulletin, 2013(5):1-8. | |
[25] | CHOI H M, MOREAU J P. Oil sorption behavior of various sorbents studied by sorption capacity measurement and environmental scanning electron microscopy[J]. Microscopy Research & Technique, 1993,25(5/6):447-455. |
[26] |
ABDElWAHAB O. Assessment of raw luffa as a natural hollow oleophilic fibrous sorbent for oil spill cleanup[J]. Alexandria Engineering Journal, 2014,53(1):213-218.
doi: 10.1016/j.aej.2013.11.001 |
[27] |
MU L, YANG S, HAO B, et al. Ternary silicone sponge with enhanced mechanical properties for oil-water separation[J]. Polymer Chemistry, 2015,6(32):5869-5875.
doi: 10.1039/C5PY00861A |
[28] |
DONG T, WANG F, XU G. Theoretical and experimental study on the oil sorption behavior of kapok assemblies[J]. Industrial Crops and Products, 2014,61:325-330.
doi: 10.1016/j.indcrop.2014.07.020 |
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