Kim Jae-Hong, Jung Yong-Hun, Lambiase Francesco, Moon Young-Hoon, Ko Dae-Cheol
ERC for Innovative Technology on Advanced Forming, Pusan National University, Busan 46241, Korea.
Department of Industrial and Information Engineering and Economics, University of L'Aquila, 67100 L'Aquila, Italy.
Materials (Basel). 2022 Jul 6;15(14):4743. doi: 10.3390/ma15144743.
The use of carbon fiber-reinforced plastics (CFRP) is markedly increasing, particularly for the manufacturing of automotive parts, to achieve better mechanical properties and a light weight. However, it is difficult to manufacture multi-material products because of the problems due to the adhesive between CFRP and steel. The prepreg compression molding (PCM) of laminated CFRP can reduce the production time and increase the flexibility of the manufacturing process. In this study, a new manufacturing process is proposed for CFRP reinforcement on a hot stamped B-pillar using PCM. A finite element (FE) simulation of the hot stamping process is conducted to predict the dimensions of the B-pillar. The feasibility of PCM manufacturing is explored by the simulation of the thermoforming of a CFRP set on a shaped B-pillar. The temperature conditions of the CFRP and B-pillar for the PCM are determined by considering the heat transfer between the CFRP and steel. Finally, the PCM of the B-pillar consisting of steel and CFRP was performed to compare with the analytical results for verification. The evaluation of the B-pillar was conducted by the observation of the cross-section for the B-pillar and interlayer by scanning electron microscopy (SEM). As a result, a steel/CFRP B-pillar assembly could be efficiently manufactured using the PCM process without an additional adhesive process.
碳纤维增强塑料(CFRP)的使用正在显著增加,特别是在汽车零部件制造方面,以实现更好的机械性能和减轻重量。然而,由于CFRP与钢之间的粘合剂问题,制造多材料产品很困难。层压CFRP的预浸料压缩成型(PCM)可以减少生产时间并提高制造过程的灵活性。在本研究中,提出了一种使用PCM在热冲压B柱上进行CFRP增强的新制造工艺。对热冲压过程进行有限元(FE)模拟,以预测B柱的尺寸。通过对设置在成型B柱上的CFRP热成型模拟,探索PCM制造的可行性。考虑CFRP与钢之间的热传递,确定PCM中CFRP和B柱的温度条件。最后,对由钢和CFRP组成的B柱进行PCM,以与分析结果进行比较以进行验证。通过扫描电子显微镜(SEM)观察B柱和中间层的横截面来对B柱进行评估。结果,使用PCM工艺可以有效地制造钢/CFRP B柱组件,而无需额外的粘合工艺。