Lashgaroo Mojtaba, Dadrasi Ali, Parvaneh Vali, Taghipoor Hossein
Department of Mechanical Engineering, Islamic Azad University of Shahrood, Shahrood, Iran.
Department of Mechanical Engineering, Technical and Vocational University, Tehran, Iran.
Sci Rep. 2024 Oct 25;14(1):25371. doi: 10.1038/s41598-024-76235-x.
Sandwich panels with trapezoidal metal/glass fiber cores are increasingly popular due to their lightweight and energy-absorption properties. This study employs response surface methodology (RSM) and Box-Behnken design to investigate the effects of core angle, fiber orientation, and MCM-48 nanoparticles on the panels' energy absorption and peak force, developing regression models with high R values of 0.9027 and 0.9228, respectively. Experimental tests were conducted to validate these models, showing minimal deviation from predicted values. Results indicate that increasing the fiber orientation angle from 30° to 90° enhances energy absorption and peak force by 72.18 and 46.9%, respectively, and adding MCM-48 nanoparticles up to 0.25% weight improves energy absorption by 60.8%. A core angle of 52° balances energy absorption and peak force, while integrating a metal wire mesh within the panels significantly enhances energy absorption and reduces core brittleness. The optimal parameters for maximum energy absorption and minimum peak force include a core angle of 58°, fiber orientation of 73.5°, and no nanoparticles. These findings provide valuable insights into the design and optimization of sandwich panels for various applications.
具有梯形金属/玻璃纤维芯的夹芯板因其轻质和能量吸收特性而越来越受欢迎。本研究采用响应面方法(RSM)和Box-Behnken设计来研究芯角、纤维取向和MCM-48纳米颗粒对面板能量吸收和峰值力的影响,分别建立了R值高达0.9027和0.9228的回归模型。进行了实验测试以验证这些模型,结果表明与预测值的偏差最小。结果表明,将纤维取向角从30°增加到90°,能量吸收和峰值力分别提高72.18%和46.9%,添加重量百分比高达0.25%的MCM-48纳米颗粒可使能量吸收提高60.8%。52°的芯角可平衡能量吸收和峰值力,而在面板内集成金属丝网可显著提高能量吸收并降低芯的脆性。实现最大能量吸收和最小峰值力的最佳参数包括58°的芯角、73.5°的纤维取向且不添加纳米颗粒。这些发现为各种应用的夹芯板设计和优化提供了有价值的见解。