IEEE Trans Neural Syst Rehabil Eng. 2022;30:2661-2670. doi: 10.1109/TNSRE.2022.3205507. Epub 2022 Sep 22.
Manual wheelchair users are exposed to whole-body vibrations as a direct result of using their wheelchair. Wheels, tires, and caster forks have been developed to reduce or attenuate the vibration that transmits through the frame and reaches the user. Five of these components with energy-absorbing characteristics were compared to standard pneumatic drive wheels and casters. This study used a robotic wheelchair propulsion system to repeatedly drive an ultra-lightweight wheelchair over four common indoor and outdoor surfaces: linoleum tile, decorative brick, poured concrete sidewalk, and expanded aluminum grates. Data from the propulsion system and a seat-mounted accelerometer were used to evaluate the energetic efficiency and vibration exposure of each configuration. Equivalence test results identified meaningful differences in both propulsion cost and seat vibration. LoopWheels and SoftWheels both increased propulsion costs by 12-16% over the default configuration without reducing vibration at the seat. Frog Legs suspension caster forks increased vibration exposure by 16-97% across all four surfaces. Softroll casters reduced vibration by 11% over metal grates. Wide pneumatic 'mountain' tires showed no difference from the default configuration. All vibration measurements were within acceptable ranges compared to health guidance standards. Out of the component options, softroll casters show the most promising results for ease of efficiency and effectiveness at reducing vibrations through the wheelchair frame and seat cushion. These results suggest some components with built-in suspension systems are ineffective at reducing vibration exposure beyond standard components, and often introduce mechanical inefficiencies that the user would have to overcome with every propulsion stroke.
手动轮椅使用者在使用轮椅时会直接受到全身振动的影响。轮子、轮胎和转向叉已被开发出来,以减少或衰减通过车架传递并到达使用者的振动。对具有能量吸收特性的这五个部件与标准气动驱动轮和转向叉进行了比较。本研究使用机器人轮椅推进系统反复在四个常见的室内和室外表面(油毡砖、装饰砖、浇注混凝土人行道和扩展的铝格栅)上驱动超轻轮椅。推进系统和座椅安装的加速度计的数据用于评估每种配置的能量效率和振动暴露。等效性测试结果表明,推进成本和座椅振动方面都存在有意义的差异。LoopWheels 和 SoftWheels 都使默认配置的推进成本增加了 12-16%,而没有降低座椅处的振动。Frog Legs 悬架转向叉在所有四个表面上都将振动暴露增加了 16-97%。Softroll 转向轮将振动降低了 11%,而金属格栅则降低了 11%。宽型气动“山地”轮胎与默认配置没有区别。与健康指导标准相比,所有振动测量值均在可接受范围内。在这些部件选项中,软轮转向轮在通过轮椅车架和座椅垫减轻振动方面显示出最有希望的结果,因为它在提高效率和效果方面具有优势。这些结果表明,一些具有内置悬架系统的部件在降低振动暴露方面并不比标准部件有效,而且通常会引入机械效率低下的问题,用户在每次推进时都必须克服这些问题。