Department of Manufacturing Technology, Faculty of Innovative Design and Technology, Universiti Sultan Zainal Abidin, Kuala Terengganu, Malaysia.
Department of Biomedical Technology, College of Applied Medical Sciences, Prince Sattam bin Abdulaziz University, Al-Kharj, Saudi Arabia.
Disabil Rehabil Assist Technol. 2024 Aug;19(6):2178-2189. doi: 10.1080/17483107.2023.2272861. Epub 2023 Oct 25.
Steering a wheelchair while navigating through manual doors or against obstacles is challenging for some users. Previously, a low-cost, low-tech accessory made using off-the-shelf components, conventional manufacturing, and 3D-printed fasteners demonstrated the proof-of-concept for uncrossable positive obstacle pushing or gliding. Current work presents the fabrication and testing of an entirely 3D-printed prototype of the accessory.
The accessory was 3D-printed using ABS (10% fill density) in sections. A finite element stress analysis simulation was performed for the entire accessory. Prototype tests were done with the accessory installed on an unoccupied powered wheelchair against a door and an obstacle with ∼25 N and ∼50 N resistance forces, respectively.
The maximum stresses in none of the crucial components exceeded the break strength of ABS. Test results demonstrate the ability and mechanical robustness of the fully 3D-printed accessory to push open manual doors, allowing easy navigation through doors, and to push or glide against obstacles. The current prototype improves over the previous prototype in terms of manufacturability, weight, design, and safety.
To the best of our knowledge, this is the first demonstration of an entirely 3D-printed wheelchair accessory that pushes or glides against uncrossable positive obstacles. Future studies would involve end-user satisfaction assessment and functionality evaluation in different scenarios under clinical supervision. The pushing or gliding ability of the accessory could be beneficial to wheelchair users with neuromuscular disorders or paraplegia.
对于一些用户来说,在手动门或障碍物之间操纵轮椅是具有挑战性的。以前,使用现成组件、常规制造和 3D 打印紧固件制造的低成本、低技术附件证明了无法跨越的正障碍物推动或滑行的概念验证。目前的工作提出了该附件的完全 3D 打印原型的制造和测试。
该附件使用 ABS(填充密度为 10%)分部分 3D 打印。对整个附件进行了有限元应力分析模拟。在未占用的动力轮椅上安装附件,分别对门和障碍物施加约 25N 和 50N 的阻力进行原型测试。
没有一个关键部件的最大应力超过 ABS 的断裂强度。测试结果证明了完全 3D 打印附件打开手动门的能力和机械鲁棒性,使其能够轻松通过门进行导航,并能够推动或滑行越过障碍物。与以前的原型相比,当前的原型在制造、重量、设计和安全性方面都有所改进。
据我们所知,这是第一个演示完全 3D 打印轮椅附件能够推动或滑行越过无法跨越的正障碍物的实例。未来的研究将涉及在临床监督下不同场景下的最终用户满意度评估和功能评估。该附件的推动或滑行能力可能对患有神经肌肉疾病或截瘫的轮椅使用者有益。