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Relationship between the Pedaling Biomechanics and Strain of Bicycle Frame during Submaximal Tests

机译:次最大测试过程中踏板生物力学与自行车车架应变之间的关系

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摘要

The aim of this study was to analyse the effect of forces applied to pedals and cranks on the strain imposed to an instrumented bicycle motocross (BMX) frame. Using results from a finite element analysis to determine the localisation of highest stress, eight strain gauges were located on the down tube, the seat tube and the right chain stay. Before the pedaling tests, static loads were applied to the frame during bench tests. Two pedaling conditions have been analysed. In the first, the rider was in static standing position on the pedals and applied maximal muscular isometric force to the right pedal. The second pedaling condition corresponds to three pedaling sprint tests at submaximal intensities at 150, 300 and 550 W on a cycle-trainer. The results showed that smaller strain was observed in the pedaling condition than in the rider static standing position condition. The highest strains were located in the seat tube and the right chain stay near the bottom bracket area. The maximum stress observed through all conditions was 41 MPa on the right chain stay. This stress was 11 times lower than the yield stress of the frame material (460 MPa). This protocol could help to adapt the frame design to the riders as a function of their force and mechanical power output. These results could also help design BMX frames for specific populations (females) and rider morphology.
机译:这项研究的目的是分析施加在踏板和曲柄上的力对施加于仪器化的摩托车越野赛(BMX)框架上的应变的影响。使用有限元分析的结果确定最高应力的位置,在下管,座管和右链条上安装了八个应变仪。在踩踏测试之前,在长凳测试期间将静态载荷施加到车架。已经分析了两个踩踏条件。首先,骑手处于踏板的静态站立位置,并向右踏板施加最大的肌肉等距力。第二踩踏条件对应于在循环训练器上以150 W,300 W和550 W处于次最大强度下的三个踩踏冲刺测试。结果表明,在踩踏条件下观察到的应变小于在骑手静态站立位置条件下的应变。最高的应变位于座管中,右链保持在底部支架附近。在所有条件下,右侧链条上观察到的最大应力为41 MPa。该应力比框架材料的屈服应力(460 MPa)低11倍。该规程可以根据骑手的力量和机械功率输出来帮助他们适应车架设计。这些结果还可以帮助设计针对特定人群(女性)和骑手形态的BMX车架。

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