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A novel underwater acoustically transparent material: Fluorosilicone polyester polyurethane

机译:一种新型水下声学透明材料:氟硅氧烷聚酯聚氨酯

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摘要

A novel fluorosilicone polyester polyurethane (FSPU) was successfully synthesized with polycaprolactone diol, toluene diisocyanate, hydroxyl fluorosilicone oil (FSO), and a chain extender, 2,4-diamino-3,5-dimethyl thiotoluene (E-300). It was characterized by Fourier transform infrared spectroscopy, dynamic mechanical analysis, and scanning electron microscopy. The water resistance, mechanics, and acoustic properties of the material were tested with an optical contact angle measuring device, an electronic universal testing machine, and sound field measurement, respectively. The results show that the water resistance of FSPU gradually improved with increasing FSO. Compared to that of polyurethane (PU), the water contact angle of FSPU at 50 wt % FSO increased to 111.7 degrees, and the water absorption reached a minimum of 0.8%. The glass-transition temperature of FSPU reached -44.1 degrees C; this was lower than that of PU. Moreover, the insertion losses of this material at 600 and 1000 kHz were only 129.2 and 267.3 dB/m, respectively; these values were 20.5 and 13.6% lower, respectively, than that of PU. The results indicate that FSPU had an excellent water resistance and acoustic performance and a low glass-transition temperature and is an ideal material for underwater acoustically transparent materials. (c) 2019 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2019, 136, 47894.
机译:用聚己内酯二醇,甲苯二异氰酸酯,羟基氟硅氧烷(FSO)成功地合成了一种新型氟硅氧烷聚酯聚氨酯(FSPU),以及链增量剂,2,4-二氨基-3,5-二甲基苯甲酸(E-300)。它的特征在于傅里叶变换红外光谱,动态机械分析和扫描电子显微镜。用光接触角测量装置,电子通用试验机和声场测量来测试材料的耐水性,力学和声学性质。结果表明,由于FSO增加,FSPU的耐水性逐渐提高。与聚氨酯(PU)相比,FSPU 50wt%FSO的FSPU的水接触角增加至111.7度,吸水率达到最低0.8%。 FSPU的玻璃化温度达到-44.1摄氏度;这低于PU。此外,该材料在600和1000 kHz处的插入损耗分别仅为129.2和267.3dB / m;这些值分别比PU分别为20.5%和13.6%。结果表明,FSPU具有出色的耐水性和声学性能以及低玻璃化转变温度,是一种用于水下声学透明材料的理想材料。 (c)2019 Wiley期刊,Inc.J.Phill。聚合物。 SCI。 2019,136,47894。

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