Shi Yu, Ye Chongyang, Liu Rong
School of Fashion and Textiles, The Hong Kong Polytechnic University, Hong Kong Special Administrative Region (SAR), Kowloon, Hong Kong SAR, China.
Laboratory for Artificial Intelligence in Design, Hong Kong Science Park, Kowloon, Hong Kong SAR, China.
Front Bioeng Biotechnol. 2024 Jul 12;12:1418047. doi: 10.3389/fbioe.2024.1418047. eCollection 2024.
Patient compliance and therapeutic precision of compression textiles (CTs) are frequently limited by the inaccurate pressure distributions along biological bodies in physical-based compression therapy. Therefore, the biomechanical influences of physiological tissue material characteristics of lower extremities on compression generations of CTs need to be explored systematically to improve pressure management efficacy. In this study, we developed three-dimensional (3D) homogenous finite element (FE) CT-leg systems to qualitatively compare the pressure diversities along lower limbs with different biomaterial tissue properties under each external compression level. Simultaneously, through the obtained leg circumferential displacement, a contact analysis model was applied to quantitatively explore the impact mechanisms of soft leg indentations on the pressure performance of CTs. Based on the experimental validation study, the proposed FE systems could be efficiently utilized for compression performance prediction (error ratio: 7.45%). Through the biomechanical simulation and theoretical calculations, the tissue stiffness characteristics of applied bodies showed significant correlations ( < 0.05) with the body circumferential displacements but no correlations ( > 0.05) with pressure delivery differences of CTs. This study facilitates the pressure fit design principle and leg mannequin material selection guidance for the development and experimental assessment of CTs. It also provides effective simulation methods for pressure prediction and property parametric optimization of compression materials.
在基于物理的压力治疗中,压缩织物(CTs)的患者依从性和治疗精度常常受到沿生物体压力分布不准确的限制。因此,需要系统地探究下肢生理组织材料特性对CTs压力产生的生物力学影响,以提高压力管理效果。在本研究中,我们开发了三维(3D)均匀有限元(FE)CT-腿部系统,以定性比较在每个外部压缩水平下,具有不同生物材料组织特性的下肢的压力差异。同时,通过获得的腿部周向位移,应用接触分析模型定量探究软腿压痕对CTs压力性能的影响机制。基于实验验证研究,所提出的有限元系统可有效用于压缩性能预测(误差率:7.45%)。通过生物力学模拟和理论计算,施加物体的组织刚度特性与身体周向位移显示出显著相关性(<0.05),但与CTs的压力传递差异无相关性(>0.05)。本研究有助于为CTs的开发和实验评估提供压力适配设计原则以及腿部人体模型材料选择指导。它还为压缩材料的压力预测和性能参数优化提供了有效的模拟方法。