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High velocity impact characteristics of MWNT added CFRP at LEO space environment

机译:MWNT的高速影响特征在Leo空间环境下添加CFRP

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In this paper, multi-wall carbon nanotube (MWNT) added carbon fiber reinforced plastics (CFRP) composites are suggested as solutions to improve the impact energy absorbing capability of CFRP for spacecraft application because it was proven that the resistance against LEO environment and the quasi-static material properties of CFRP can be improved by adding MWNT in previous papers. To verify the effect of MWNT on the impact energy absorbing capability of composite materials, normal CFRP and MWNT-reinforced CFRP were prepared and tested by using a two-stage light gas gun that can accelerate an aluminum ball of a diameter of 5.56 mm to 1 km/s. And the applicability of MWNT against hypervelocity impact of space debris was studied. In addition, accelerated ground simulation experiments were performed for each material model to simulate the aging of composite materials to verify the effect of LEO environmental aging on impact absorbing capability of composites. For the aging experiment, the impact specimens were simultaneously exposed to high vacuum, atomic oxygen, ultra violet light, and thermal cycling. After being exposed to simulated LEO environment, high velocity impact tests were performed for each material. As a result, MWNT did not have a significant improvement on the impact energy absorbing capability of CFRP under high velocity impact, even though the quasi static material properties are improved by adding MWNT. This is caused by the early generation of fiber breakages on the impact surface before enough generation of progressive failure which is one of the impact energy absorbing mechanism. Similarly, MWNT has less effect on the impact energy absorbing capability of CFRP under LEO environment.
机译:在本文中,建议多壁碳纳米管(MWNT)添加的碳纤维增强塑料(CFRP)复合材料作为改善航天器应用CFRP的冲击能量吸收能力的解决方案,因为它被证明是对Leo环境和准则的抵抗力通过在先前的论文中添加MWNT,可以提高CFRP的静态物质性质。为了验证MWNT对复合材料的冲击能量吸收能力的影响,通过使用可以加速5.56mm至1的铝球来制备和测试正常的CFRP和MWNT增强CFRP。 km / s。研究了MWNT对空间碎片的超高速影响的适用性。此外,对每个材料模型进行加速的地面模拟实验,以模拟复合材料的老化,以验证Leo环境老化对复合材料的抗冲击能力的影响。对于老化实验,冲击样品同时暴露于高真空,原子氧,紫外线和热循环。在暴露于模拟的Leo环境之后,对每种材料进行高速冲击试验。结果,即使通过加入MWNT,即使通过添加MWNT改善了准静态材料特性,MWNT对CFRP的影响能量吸收能力没有显着改善。这是由撞击表面上的早期产生纤维断裂引起的,在足够的逐步失效之前是一种冲击能量吸收机制之一。同样,MWNT对LEO环境下CFRP的影响能力吸收能力的影响较小。

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