首先将废弃聚苯硫醚(PPS)过滤材料进行碱洗烘干处理,然后将处理后样品与热熔纤维网(PA)进行热风加固定型,制备多层吸音复合材料,并对复合材料的形态结构、力学性能以及吸音隔音性能进行研究。结果表明:碱洗处理过的废弃PPS滤料表面仍然残留微量粉尘颗粒,PPS纤维未出现明显的破损断裂现象;复合材料的经纬向断裂强力及断裂伸长率与层数呈正相关;在低频阶段复合材料的吸声系数与层数呈正相关,在高频阶段却呈现先升高后降低趋势,在6300Hz频率时,三层吸音复合材料吸音系数可达0.55;多层复合材料的隔声性能与层数呈正相关,在6300Hz频率时,五层吸音复合材料的声波传递损失可达32dB。
The waste polyphenylene sulfide (PPS) filter materials were treated by alkali washing and drying,and then the treated samples and hot-melt fiber mesh (PA) were reinforced by hot air to prepare multi-layer sound-absorbing composite materials.The morphology,mechanical properties,sound absorption and isolation properties of the composite materials were studied.The results shown that there were still a few dust particles on the surface of waste PPS filter after alkali washing,and PPS fiber did not appear obvious breakage phenomenon.The tensile strength and elongation at break of the composites were positively correlated with the number of layers.At low frequency,the sound absorption coefficient of the composite was positively correlated with the number of layers.But at high frequency,it first increased and then decreased.At 6300Hz,the sound absorption coefficient of the three-layer composite can reach 0.55.At 6300Hz,the sound transmission loss of the five layer sound-absorbing composite can reach 32dB.
[1] 相鹏伟,姜春阳,戚晓兵,等.聚苯硫醚长丝的研究现状及其应用进展[J].合成纤维工业,2018,41(6):54-58.
[2] 杨振生,潘浩男,李春利,等.高性能聚苯硫醚过滤材料研究进展[J].化工新型材料,2019,47(10):216-218,223.
[3] 古俊飞,徐辉,周冠辰,等.PPS无基布除尘滤料的性能研究[J].化纤与纺织技术,2018,47(4):11-16.
[4] Li Tao,Liu Meng,Duan Yufeng,et al.Performance and reaction mechanism for low-temperatur NOx catalytic synergistic HgO oxidation of catalytic polyphenylene sulfide filter materials[J].Asia-Pacific Journal of Chemical Engineering,2020,15(1):e2403-e2405.
[5] Mohammad Irwan Fatkhur Rozy,Keiya Ito,Kazuki Une,et al.A continuous-flow exposure method to determine degradation of polyphenylene sulfide non-woven bag-filter media by NO2 gas at high temperature[J].Advanced Powder Technology,2019,30(12):2881-2889.
[6] 白媛,马新安,杨家密.耐高温除尘过滤材料的研发现状及趋势[J].棉纺织术,2019,47(10):78-81.
[7] 曾晓芳.燃煤电厂废弃滤袋的回收利用[J].节能与环保,2017(9):71-73.
[8] 叶晋浦.燃煤电厂废旧滤袋的回收再利用概述[J].纺织科学研究,2019(11):74-76.
[9] 倪箐,魏峰,张明昌,等.废旧滤袋来源及回收再利用方法[J].产业用纺织品,2018,36(9):29-32.
[10] 陈言胜.蜜胺基吸音绵吸声性能研究[J].河南化工,2019,36(2):25-28.
[11] Jabłońska Joanna.Urban noise pollution prevention—Tokyo case study[J].Polish Political Science Review,2020,8(2):101-109.
[12] 王承宾.试论城市噪音污染问题与治理措施[J].科技创新与应用,2019(13):151-152.
[13] 方晓明.噪声污染的危害及防治措施[J].科学技术创新,2019(15):41-42.
[14] Münzel T,Schmidt F P,Steven S,et al.Environmental noise and the cardiovascular system[J].Journal of the American College of Cardiology,2018,71:688-697.
[15] Kim K,Shin J,Oh M,Jung J.Economic value of raffic noise reduction depending on residents' annoyance level[J].Environmental Science and Pollution Research,2019,26:7243-7255.
[16] Caddick Z A,Gregory K,Arsintescu L,et al.A review of the environmental parameters necessary for an optimal sleep environment[J].Building and Environment,2018,132:11-20.
[17] Schmidt F P,Basner M,Kroger G,et al.Effect of nighttime aircraft noise exposure on endothelial function and stress hormone release in healthy adults[J].European Heart Journal,2013,34:3508-3514.
[18] 黎金,张晗.城市环境噪声污染与监测技术探析[J].低碳世界,2021,11(2):56-57.
[19] 崔锦峰,文泽东,白常宁.聚四氟乙烯改性研究进展[J].塑料工业,2020,48(11):8-13.
[20] 林希宁.玄武岩纤维制备吸音/隔音复合材料的研究[D].广州:广东工业大学,2012.
[21] 苏文,李新禹,刘树森.厚度和容重对非织造布吸声材料吸声性能的影响[J].天津工业大学学报,2009,28(3):34-36.
基金资助
安徽高校自然科学研究项目(KJ2019A0154);安徽省自然科学基金项目(1908085QE181)