Gruber K, Denoth J, Ruder H, Stüssi E
Laboratorium für Biomechanik ETH Zürich.
Z Orthop Ihre Grenzgeb. 1991 May-Jun;129(3):260-7. doi: 10.1055/s-2008-1040193.
The calculation of the possible load on human joints is of great importance in orthopedics. The magnitude of the force transmitted in the joints during the process of movement, whether in everyday life or in athletics, plays a decisive role. Especially at moments of impact, as in sports, high accelerations are transmitted through the human body. Bones and tissue (muscles, tendons and ligaments) react quite differently in this phase, and their reactions have a large influence on the magnitude and course of the forces working within the body, particularly in the joints. In previously developed methods of load-determination on joints during dynamic movements, these reactions were not considered. In the following paper, however, we will introduce a physical model that takes the various materials of the body's constitution into account. By introducing "wobbling mass", which, elastically damped, is coupled to the bony parts of the body, we can simulate the reaction of the body tissues, and a realistic calculation of the forces and moments transported through the body can be reached. The temporal sequence of these magnitudes for the knee and hip joints will be illustrated using an exemplary selected movement and interpreted using simplified joint structures. The main features of the method of calculation, using simple examples from statics, will be shown in Part One of this paper.
人体关节可能承受的负荷计算在骨科领域极为重要。在运动过程中,无论是在日常生活还是体育活动中,关节所传递的力的大小都起着决定性作用。特别是在冲击时刻,如在体育运动中,高加速度会通过人体传递。在此阶段,骨骼和组织(肌肉、肌腱和韧带)的反应截然不同,它们的反应对体内作用力的大小和过程有很大影响,尤其是在关节处。在先前动态运动过程中关节负荷测定的方法中,并未考虑这些反应。然而,在接下来的论文中,我们将介绍一个考虑到人体构成的各种材料的物理模型。通过引入“摆动质量”,它通过弹性阻尼与身体的骨骼部分相耦合,我们可以模拟身体组织的反应,从而实现对通过身体传递的力和力矩的实际计算。将使用一个选定的示例运动来说明膝关节和髋关节这些量的时间序列,并使用简化的关节结构进行解释。本文第一部分将通过静力学的简单示例展示计算方法的主要特征。