College of Mechanical Engineering, The Key Laboratory of Integrated Design and On-Line Monitoring of Light Industrial and Food Engineering Machinery and Equipment in Tianjin, Tianjin University of Science and Technology, No. 1038, Dagu Nanlu, Hexi District, Tianjin, 300222, China.
Key Laboratory of Rehabilitation Aids Technology and System of the Ministry of Civil Affairs, National Research Center for Rehabilitation Technical Aids, Beijing, 100176, China.
Med Biol Eng Comput. 2023 Jun;61(6):1439-1448. doi: 10.1007/s11517-023-02774-6. Epub 2023 Feb 1.
Existing studies lack a clear understanding of the interaction of the joint capsule with surrounding tissues and the local mechanical environment. Particularly, a finite element model of human elbow joint incorporating active behavior of muscle was constructed. The simulation was performed during the elbow joint flexion movement under different injury conditions of capsule (anterior capsule, posterior capsule, medial anterior capsule, lateral anterior capsule, medial posterior capsule, and lateral posterior capsule). The stress distribution and transfer of the joint capsule, ulnar cartilage, and ligaments were obtained under different injuries and flexion angles, to explore the influence of capsule injures on the stability of the elbow joint. In medial injury posterior capsule, the peak stress of the ulnar cartilage occurred at 60° flexion and shifted from posteromedial to anteromedial. And the stress was about 1.8 times that of no injury capsule. In several cases of posterior capsule injury, the stress of capsule decreased significantly and the peak stress was 40% of that in no injury joint capsule. In the case of anterior capsular injury, the cartilage stress did not change significantly, and the stress of anterior bundle and annular ligament changed slightly in the late flexion movement. These findings provide some help for doctors to treat elbow injury and understand the interaction of tissues around the joint after trauma.
现有研究对关节囊与周围组织的相互作用以及局部力学环境缺乏清晰的认识。特别是,构建了包含肌肉主动行为的人体肘关节的有限元模型。在不同的囊损伤(前囊、后囊、前内侧囊、前外侧囊、后内侧囊和后外侧囊)条件下,对肘关节弯曲运动进行了模拟。在不同的损伤和弯曲角度下,获得了关节囊、尺骨软骨和韧带的应力分布和传递,以探讨囊损伤对肘关节稳定性的影响。在后部内侧囊损伤中,尺骨软骨的峰值应力出现在 60°弯曲时,从后内侧转移到前内侧。并且应力大约是无损伤囊的 1.8 倍。在后囊损伤的几种情况下,囊的应力显著降低,峰值应力为无损伤关节囊的 40%。在前囊损伤的情况下,软骨的应力没有明显变化,在前部束和环状韧带的应力在后期弯曲运动中略有变化。这些发现为医生治疗肘部损伤以及了解创伤后关节周围组织的相互作用提供了一些帮助。