Yahaya Suleiman Abimbola, Ripin Zaidi Mohd, Ridzwan Mohamad Ikhwan Zaini
School of Mechanical Engineering, Engineering Campus, Universiti Sains Malaysia, Nibong Tebal, Malaysia.
Department of Biomedical Engineering, University of Ilorin, Ilorin, Nigeria.
3D Print Addit Manuf. 2023 Oct 1;10(5):971-983. doi: 10.1089/3dp.2021.0014. Epub 2023 Oct 10.
Fused deposition modeling has provided a cheap and effective method for the rapid production of prototypes and functional products in many spheres of life. In this study, three-dimensional (3D) printing techniques to produce and optimize a hip protector that will assure clinical efficacy are presented. The I-Optimal design was used to optimize the hip protector's significant parameters (infill density, shell thickness, and material shore hardness) to obtain maximum femoral neck force attenuation of the 3D-printed hip protector. A drop impact tower device simulates the impact force at the hip's parasagittal plane during a fall. The results show that the infill density has the most significant influence on attenuation properties, followed by the infill density combined with the material shore hardness. By maximizing all the parameters, it is demonstrated that using an additive manufacturing technique to print hip protectors could be an effective strategy in curbing hip fractures.
熔融沉积建模为在生活的许多领域快速生产原型和功能性产品提供了一种廉价且有效的方法。在本研究中,介绍了用于生产和优化一种能确保临床疗效的髋部保护器的三维(3D)打印技术。采用I - 最优设计来优化髋部保护器的重要参数(填充密度、外壳厚度和材料邵氏硬度),以实现3D打印髋部保护器对股骨颈力的最大衰减。一个落锤冲击塔装置模拟跌倒时髋部矢状旁平面的冲击力。结果表明,填充密度对衰减性能影响最为显著,其次是填充密度与材料邵氏硬度的组合。通过最大化所有参数,证明使用增材制造技术打印髋部保护器可能是遏制髋部骨折的有效策略。