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首页> 外文期刊>RSC Advances >Fabrication and origin of flame retarding glass fiber/bismaleimide resin composites with high thermal stability, good mechanical properties, and a low dielectric constant and loss for high frequency copper clad laminates
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Fabrication and origin of flame retarding glass fiber/bismaleimide resin composites with high thermal stability, good mechanical properties, and a low dielectric constant and loss for high frequency copper clad laminates

机译:具有高热稳定性,良好机械性能的阻燃玻璃纤维/双聚酰胺树脂复合材料的制造和起源,以及高频铜包层压板的低介电常数和损耗

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摘要

Higher frequency, higher speed and smaller dimensions have been the developing trends for electric information products, so the key and basic materials, glass fiber (GF)/polymer composites (GFRPs), for high frequency copper clad laminates (HFCCLs), should have better integrated performances, especially high flame retardancy, outstanding thermal stability, good mechanical properties, and low dielectric constant and loss. However, almost all GFRPs do not have high flame retardancy. In order to overcome the problem, a new hyperbranched polysiloxane (aPHSi) with both phosphaphenanthrene and amino groups was designed and synthesized, which was then grafted on GF to prepare a novel hybridized GF (aPHSi-g-GF), or used to modify bismaleimide/diallylbisphenol A (BD) with different loadings. To evaluate the effect of the modification for GF and BD, eight composites were prepared using GF or aPHSi-g-GF as reinforcement, and BD or aPHSi modified BD (aPSiBD) as the matrix. The results show that the aPHSi-g-GF/5aPSiBD composite, in which the ratio of aPHSi to BD is 5 : 100, has the highest flame retardancy, and it has a 64% higher limited oxygen index, 39.6% lower peak heat release rate (PHRR), 6 s longer time to ignition (TTI) and 12 s shorter time of flameout (TOF) than the GF/BD composite. Besides, modified composites have an 11.3-14.3 degrees C higher initial thermal degradation temperature, higher flexural strengths, and lower dielectric constant and loss. Matrix modification plays greater roles in reducing the PHRR, TOF, dielectric constant and loss as well as improving the thermal stability and mechanical properties; while the grafting of GF is more active in lengthening the TTI. These remarkable improvements indicate that modified composites can meet the harsh requirements for fabricating HFCCLs.
机译:更高的频率,更高的速度和更小的尺寸是电信息产品的发展趋势,因此关键和基础材料,玻璃纤维(GF)/聚合物复合材料(GFRPS),用于高频铜包层压板(HFCCL),应该更好综合性能,尤其是高阻燃性,出色的热稳定性,机械性能良好,介电常数和损失低。然而,几乎所有GFRP都没有高阻燃性。为了克服该问题,设计并合成了具有磷虾和氨基的新的超支化聚硅氧烷(APHSI),然后在GF上接枝以制备新的杂交GF(APHSI-G-GF),或用于改变双聚酰亚胺/二烯丙基酚A(BD)具有不同的载荷。为了评估GF和Bd的改性的效果,使用GF或APHSI-G-GF作为增强剂制备八种复合材料,BD或APHSI改性BD(APSIBD)作为基质。结果表明,APHSI-G-GF / 5apsibd复合材料,其中APHSI与BD的比例为5:100,具有最高的阻燃性,并且具有64%的有限氧指数,较低的峰值热释放量为39.6%速率(PHRR),6秒钟点火(TTI)和12秒的熄火时间(TOF)比GF / BD复合。此外,改进的复合材料具有11.3-14.3摄氏度的初始热降解温度,更高的弯曲强度和更低的介电常数和损耗。矩阵修改在减少PHRR,TOF,介电常数和损耗以及提高热稳定性和机械性能方面起着更大的作用;虽然GF的接枝在延长TTI时更为活跃。这些显着的改进表明修改的复合材料可以满足制造HFCCL的严苛要求。

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  • 来源
    《RSC Advances》 |2016年第24期|共9页
  • 作者单位

    Soochow Univ State &

    Local Joint Engn Lab Novel Funct Polymer Jiangsu Key Lab Adv Funct Polymer Design &

    Applic Dept Mat Sci &

    Engn Coll Chem Chem Engn &

    Mat Sci Suzhou 215123 Peoples R China;

    Soochow Univ State &

    Local Joint Engn Lab Novel Funct Polymer Jiangsu Key Lab Adv Funct Polymer Design &

    Applic Dept Mat Sci &

    Engn Coll Chem Chem Engn &

    Mat Sci Suzhou 215123 Peoples R China;

    Soochow Univ State &

    Local Joint Engn Lab Novel Funct Polymer Jiangsu Key Lab Adv Funct Polymer Design &

    Applic Dept Mat Sci &

    Engn Coll Chem Chem Engn &

    Mat Sci Suzhou 215123 Peoples R China;

    Soochow Univ State &

    Local Joint Engn Lab Novel Funct Polymer Jiangsu Key Lab Adv Funct Polymer Design &

    Applic Dept Mat Sci &

    Engn Coll Chem Chem Engn &

    Mat Sci Suzhou 215123 Peoples R China;

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  • 正文语种 eng
  • 中图分类 化学;
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