Hermann Aljoscha, Senner Veit
Professorship of Sport Equipment and Materials, Department of Mechanical Engineering, Technical University of Munich, Germany.
J Sci Med Sport. 2021 Oct;24(10):1038-1043. doi: 10.1016/j.jsams.2020.06.009. Epub 2020 Jun 20.
Skiing can be beneficial for the sense of delight and wellbeing. Nonetheless, the risk of injury should not be ignored. The traditional ski binding, working solely on a mechanical principle, performs well with regards to a prevention of mid-shaft tibia fracture. However, with respect to knee injuries, it is not able to provide protection. Future concepts, such as mechatronic binding designs have the potential to decrease knee injuries that traditional bindings cannot prevent. In addition to mechanical loads, this kind of binding design uses additional parameters, e.g. knee kinematics and the skier's muscle state, to control the binding release.
This paper provides a review about our knowledge of injury mechanisms in recreational alpine skiing and previous work regarding mechatronic ski binding concepts. Also, our own biomechanical approach towards a mechatronic ski binding is described. Four input variables for an algorithm are discussed with respect to existing sensor solutions and designs of our own. A concept for an algorithm, based on our current knowledge in injury mechanisms is presented.
Though first designs were described in the 80s, for decades the idea of a mechatronic ski binding was not further pursued by research. Technological improvements in the field of micro-electronics and wearable sensors, as well as decreasing costs of these devices, make a mechatronic concept feasible. Main challenge is still the missing knowledge about injury mechanisms in alpine skiing and hence the quantification of the influence of possible input variables for the mechatronic system on those injuries.
滑雪对愉悦感和幸福感有益。然而,受伤风险也不容忽视。传统的滑雪固定器仅基于机械原理工作,在预防胫骨干骨折方面表现良好。然而,对于膝关节损伤,它无法提供保护。诸如机电一体化固定器设计等未来概念有可能减少传统固定器无法预防的膝关节损伤。除了机械负荷外,这种固定器设计还使用额外的参数,例如膝关节运动学和滑雪者的肌肉状态,来控制固定器的释放。
本文综述了我们对高山休闲滑雪损伤机制的认识以及以往关于机电一体化滑雪固定器概念的研究工作。此外,还描述了我们自己对机电一体化滑雪固定器的生物力学研究方法。针对现有的传感器解决方案和我们自己的设计,讨论了算法的四个输入变量。基于我们目前对损伤机制的认识,提出了一种算法概念。
尽管在80年代就描述了最初的设计,但几十年来,机电一体化滑雪固定器的概念并未得到进一步研究。微电子和可穿戴传感器领域的技术进步以及这些设备成本的降低,使机电一体化概念变得可行。主要挑战仍然是缺乏对高山滑雪损伤机制的了解,因此难以量化机电一体化系统可能的输入变量对这些损伤的影响。