MacLeish M S, Cooper R A, Harralson J, Ster J F
Human Engineering Laboratory, School of Engineering and Computer Science, California State University, Sacramento 95819-6019.
J Rehabil Res Dev. 1993;30(2):233-49.
Design of present-day racing wheelchairs developed out of necessity and common sense. The chairs first used in racing were everyday chairs; through years of trial and modification the racing chairs of today evolved. Very little advanced engineering has been applied to the design of racing chairs. The Finite Element Analysis model executed on a computer provided insight into structural problem areas in the design of unibody frame racing chairs. Slight modifications to the model can be used to investigate new shapes, loads, or materials without investing large amounts of time and money. Wind tunnel testing with scale models provided perspectives on different improvements to reduce drag. Shape improvements may play an important role in reducing the racer's time during competition. Shape may help to decrease drag for the user in either the upright or down position. Considering that the frontal area increases around 30% in the up position with current strut and chassis frames, monocoque shapes should excel. Finite element analysis and air drag analysis are important to the design of a composite racing wheelchair. Composite materials may promote more efficient and ergonomic racing wheelchairs.
当今赛车轮椅的设计是出于必要性和常识而发展起来的。最初用于比赛的轮椅就是日常使用的椅子;经过多年的试验和改进,才有了如今的赛车轮椅。在赛车椅的设计中应用的先进工程技术非常少。在计算机上执行的有限元分析模型为一体式框架赛车椅的设计中的结构问题区域提供了深入了解。对模型进行轻微修改就可以用来研究新的形状、载荷或材料,而无需投入大量的时间和金钱。使用比例模型进行风洞测试为减少阻力的不同改进措施提供了视角。形状的改进可能在比赛中缩短赛车手的用时方面发挥重要作用。形状可能有助于在使用者处于直立或俯身位置时降低阻力。考虑到当前支柱和底盘框架在直立位置时正面面积会增加约30%,整体式形状应该更具优势。有限元分析和空气阻力分析对于复合赛车轮椅的设计很重要。复合材料可能会推动更高效且符合人体工程学的赛车轮椅的发展。