Chen Jian-Bin, Liu Bo, Shen Tao, Hou Wen-Tao, He Yong
Faculty of Mechanical Engineering and Mechanics, Ningbo University, Ningbo, PR China.
Key Laboratory of Fluid Power and Mechatronic Systems, College of Mechanical Engineering, Zhejiang University, Hangzhou, China.
Comput Methods Biomech Biomed Engin. 2024 Jul 4:1-11. doi: 10.1080/10255842.2024.2373934.
The fundamental function of an optimal cervical pillow is to provide sufficient support to maintain normal spinal alignment and minimize biological stress on the contact surface throughout sleep. The recent advancements in cervical pillows have mainly focused on the subjective and objective evaluations of support comfort, as well as the relationship between pillow height and cervical vertebrae posture. However, only a few studies have addressed shape design guidelines and mechanical performances of the pillows themselves. In this study, a two-sectional contour cervical pillow comprising an arc and a Bezier curve is designed to support the head and neck. The design of the arc-shaped neck section incorporates the Cobb's angle and Borden value from healthy individuals to reflect the consistency of normal cervical anatomical features. The Bezier curve-based head section takes the head length and neck depth into account as significant individual differences. Static analysis and lattice optimization are performed in ANSYS Workbench to develop a variable-density cellular structure, aimed at improving air permeability and reducing the risk of pressure ulcers associated with the cervical pillow. The rapid prototyping technique fused deposition modeling (FDM) and thermoplastic material polylactic acid (PLA) are employed for fabricating different cellular structures. The results demonstrate that the neck section experiences less stress and greater deformation in comparison to the head section, indicating good comfort and support provided by the designed cervical pillow. Additionally, the compressive, bending, and cushion properties of the 3D-printed cervical pillow with variable-density cellular structure are experimentally validated, further confirming its effectiveness.
一个理想的颈椎枕的基本功能是提供足够的支撑,以保持脊柱正常排列,并在整个睡眠过程中使接触表面的生物压力最小化。颈椎枕的最新进展主要集中在支撑舒适度的主观和客观评估,以及枕头高度与颈椎姿势之间的关系。然而,只有少数研究涉及枕头本身的形状设计指南和力学性能。在本研究中,设计了一种由一段弧线和一条贝塞尔曲线组成的两段式轮廓颈椎枕,用于支撑头部和颈部。弧形颈部的设计纳入了健康个体的 Cobb 角和 Borden 值,以反映正常颈椎解剖特征的一致性。基于贝塞尔曲线的头部部分考虑了头长和颈深,因为它们存在显著的个体差异。在 ANSYS Workbench 中进行静态分析和晶格优化,以开发一种可变密度的蜂窝结构,旨在提高透气性并降低与颈椎枕相关的压疮风险。采用快速成型技术熔融沉积建模(FDM)和热塑性材料聚乳酸(PLA)来制造不同的蜂窝结构。结果表明,与头部相比,颈部承受的应力更小,变形更大,这表明所设计的颈椎枕具有良好的舒适度和支撑性。此外,对具有可变密度蜂窝结构的 3D 打印颈椎枕的压缩、弯曲和缓冲性能进行了实验验证,进一步证实了其有效性。