Jang Joon-Hyeok, Hong Seok-Bin, Kim Jin-Gyun, Goo Nam-Seo, Yu Woong-Ryeol
Department of Materials Science and Engineering and Research Institute of Advanced Materials (RIAM), Seoul National University, Seoul 08826, Korea.
Department of Mechanical Engineering (Integrated Engineering), Kyung Hee University, Seoul 17104, Korea.
Polymers (Basel). 2021 May 17;13(10):1628. doi: 10.3390/polym13101628.
Carbon fiber-reinforced shape memory polymer composites (CF-SMPCs) have been researched as a potential next-generation material for aerospace application, due to their lightweight and self-deployable properties. To this end, the mechanical properties of CF-SMPCs, including long-term durability, must be characterized in aerospace environments. In this study, the storage modulus of CF-SMPCs was investigated in a simulation of a low Earth orbit (LEO) environment involving three harsh conditions: high vacuum, and atomic oxygen (AO) and ultraviolet (UV) light exposure. CF-SMPCs in a LEO environment degrade over time due to temperature extremes and matrix erosion by AO. The opposite behavior was observed in our experiments, due to crosslinking induced by AO and UV light exposure in the LEO environment. The effects of the three harsh conditions on the properties of CF-SMPCs were characterized individually, using accelerated tests conducted at various temperatures in a space environment chamber, and were then combined using the time-temperature superposition principle. The long-term mechanical behavior of CF-SMPCs in the LEO environment was then predicted by the linear product of the shift factors obtained from the three accelerated tests. The results also indicated only a slight change in the shape memory performance of the CF-SMPCs.
碳纤维增强形状记忆聚合物复合材料(CF-SMPCs)因其轻质和可自展开特性,已被作为航空航天应用的潜在下一代材料进行研究。为此,CF-SMPCs的机械性能,包括长期耐久性,必须在航空航天环境中进行表征。在本研究中,在模拟低地球轨道(LEO)环境下研究了CF-SMPCs的储能模量,该环境涉及三个苛刻条件:高真空、原子氧(AO)和紫外线(UV)照射。在LEO环境中的CF-SMPCs会因极端温度和AO对基体的侵蚀而随时间降解。但在我们的实验中观察到了相反的现象,这是由于LEO环境中的AO和UV照射引起了交联。使用在空间环境试验箱中不同温度下进行的加速试验分别表征了这三个苛刻条件对CF-SMPCs性能的影响,然后利用时间-温度叠加原理将其组合。然后通过从三个加速试验获得的位移因子的线性乘积预测了CF-SMPCs在LEO环境中的长期力学行为。结果还表明CF-SMPCs的形状记忆性能仅发生了轻微变化。