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Ameliorated Mechanical and Dielectric Properties of Heat-Resistant Radome Cyanate Composites

机译:耐热弧形氰化物复合材料的改善机械和介电性能

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摘要

In order to improve the mechanical and dielectric properties of radome cyanate, a synergistic reinforcement method is employed to develop a resin-based ternary-composite with high heat-resistance and preferable radar-band transmission, which is expected to be applied to fabricate radomes capable of resisting high temperature and strong electric field. According to copolymerization characteristics and self-curing mechanism, epoxy resin (EP) and bismaleimide (BMI) are employed as reinforcements mixed into a cyanate ester (CE) matrix to prepare CE/BMI/EP composites of a heat-resistant radome material by high-temperature viscous-flow blending methods under the catalysis of aluminum acetylpyruvate. The crystallization temperature, transition heat, and reaction rate of cured polymers were tested to analyze heat-resistance characteristics and evaluate material synthesis processes. Scanning electron microscopy was used to characterize the micro-morphology of tensile fracture, which was combined with the tensile strength test and dynamic thermomechanical analysis to investigate the composite modifications on tenacity and rigidity. Weibull statistics were performed to analyze the experimental results of the dielectric breakdown field, and the dielectric-polarization and wave-transmission performances were investigated according to alternative current dielectric spectra. Compared with the pure CE and the CE composites individually reinforced by EP or BMI, the CE/BMI/EP composite acquires the most significant amelioration in both the mechanical and electrical insulation performances as indicated by the breaking elongation and dielectric breakdown strength being simultaneously improved by 40%, which are consistently manifested by the obviously increased transverse lines uniformly distributed on the fracture cross-section. Furthermore, the glass-transition temperature of CE/BMI/EP composite reaches the highest values of nearly 300 °C, with the relative dielectric constant and dielectric loss being mostly reduced to less than 3.2 and 0.01, respectively. The experimental results demonstrate that the CE/BMI/EP composite is a highly-qualified wave-transmission material with preferences in mechanical, thermostability, and electrical insulation performances, suggesting its prospective applications in low-frequency transmittance radomes.
机译:为了改善含弧菌氰酸酯的机械和介电性能,采用协同增强法,采用具有高耐热性和优选的雷达带传递的基于树脂的三元复合材料,这预计将应用于制造能力的放射线抗高温和强电场。根据共聚特征和自固化机理,使用环氧树脂(EP)和双聚酰亚胺(BMI)作为混合成氰酸酯(Ce)基质的增强物,以通过高分式制备耐热的弧形材料的Ce / BMI / EP复合材料 - 乙酰丙酮酸铝催化下的温度粘性流动方法。测试固化聚合物的结晶温度,转变热和反应速率,分析耐热特性并评估材料合成方法。扫描电子显微镜用于表征拉伸骨折的微观形态,与拉伸强度试验和动态热机械分析相结合,研究了对韧性和刚性的复合修改。进行威布尔统计,以分析介电击穿场的实验结果,并且根据替代电流介电光谱研究了介质极化和波传输性能。与EP或BMI单独加强的纯CE和CE复合材料相比,CE / BMI / EP Compopite在机械和电绝缘性能中获得最显着的改善,如断裂伸长率和介电击穿强度所示40%,这一直表现出明显增加的横向线均匀地分布在断裂横截面上。此外,CE / BMI / EP复合材料的玻璃化转变温度达到近300℃的最高值,相对介电常数和介电损耗分别达到小于3.2和0.01。实验结果表明,CE / BMI / EP复合材料是具有机械,热性和电绝缘性能的偏好的高合格波传输材料,表明其在低频透射率下方的前瞻性应用。

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