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四川大学化学学院 环保型高分子材料国家地方联合工程实验室 环境友好高分子材料教育部工程研究中心 成都 610064
Xiu-li Wang, E-mail: xiuliwang1@163.com, wangxiuli@scu.edu.cn
Received:11 April 2024,
Accepted:2024-05-15,
Published Online:25 July 2024,
Published:20 November 2024
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马晶, 龚岳, 郑冠祺, 付腾, 汪秀丽.“三源一体”皮革基膨胀阻燃剂的制备及其在热塑性聚氨酯弹性体中的应用研究. 高分子学报, 2024, 55(11), 1575-1585
Ma, J.; Gong, Y.; Zheng, G. Q.; Fu, T.; Wang, X. L. Preparation of “three sources in one” leather-based intumescent flame retardant and its application in thermoplastic polyurethane elastomer. Acta Polymerica Sinica,2024, 55(11), 1575-1585
马晶, 龚岳, 郑冠祺, 付腾, 汪秀丽.“三源一体”皮革基膨胀阻燃剂的制备及其在热塑性聚氨酯弹性体中的应用研究. 高分子学报, 2024, 55(11), 1575-1585 DOI: 10.11777/j.issn1000-3304.2024.24109. CSTR: 32057.14.GFZXB.2024.7260.
Ma, J.; Gong, Y.; Zheng, G. Q.; Fu, T.; Wang, X. L. Preparation of “three sources in one” leather-based intumescent flame retardant and its application in thermoplastic polyurethane elastomer. Acta Polymerica Sinica,2024, 55(11), 1575-1585 DOI: 10.11777/j.issn1000-3304.2024.24109. CSTR: 32057.14.GFZXB.2024.7260.
将皮革固体废弃物(LW)直接回收成为高附加值的产品一直是困扰制革工业的难题. 本文工作以富含氮/碳元素的LW作为炭源/气源,聚磷酸铵(APP)为酸源,通过静电作用在水溶液中制备了“三源一体”皮革基膨胀阻燃剂PA@LW@APP,并通过熔融共混方式将其引入到热塑性聚氨酯弹性体(TPU)中. 研究发现,当添加量为5 wt%时,TPU5便能达到UL-94 V-0级. 在锥形量热测试中,阻燃TPU能够形成阻隔外部火源和可燃气体的膨胀炭层,表现出优异的抑热、抑烟及成炭能力. 含有15 wt% PA@LW@APP的阻燃TPU的峰值热释放速率、总热释放量和总烟释放量相比于纯TPU分别降低了71.1%、36.0%和51.4%. 另外,PA@LW@APP的包覆型结构使得它在TPU基材中分散良好,不易团聚,所制备的阻燃TPU均保持了良好的拉伸韧性. 本工作通过绿色简单的方法不仅实现了皮革废弃物的高值化利用,而且还赋予了TPU优异的阻燃性能.
Direct recycling of leather waste (LW) into high value-added products has always been a challenge for the leather industry. In this study
a "three sources in one" leather-based intumescent flame retardant (PA@LW@APP) was prepared in aqueous solution by electrostatic interaction
using LW rich in nitrogen/carbon elements as a carbon/gas source and ammonium polyphosphate (APP) as an acid source. Then PA@LW@APP was introduced into thermoplastic polyurethane elastomer (TPU) by melt blending. It was found that when the addition content of PA@LW@APP is 5 wt%
TPU5 can achieve UL-94 V-0 rating. The flame retardant TPU forms an intumescent char layer during cone test that blocked the external fire source and combustible gas
showing excellent heat suppression
smoke suppression and char-forming abilities. Compared with pure TPU
the peak heat release rate (pHRR)
total heat release (THR) and total smoke production (TSP) of flame retardant TPU containing 15 wt% PA@LW@APP were reduced by 71.1%
36.0% and 51.4%
respectively. In addition
the encapsulated structure of PA@LW@APP made it well dispersed in the TPU substrate and not easy to agglomerate
and the flame retardant TPU maintained good tensile toughness. This work not only realizes the high-value recycling of leather waste through a green and simple method
while also giving TPU excellent flame retardant properties.
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