Faculty of Mechanical Engineering, Institute of Machine Design, Poznan University of Technology, Poznań 60-965, Poland.
Faculty of Mechanical Engineering, Institute of Mechatronic Devices, Poznan University of Technology, Poznań 60-965, Poland.
J Biomech Eng. 2021 Aug 1;143(8). doi: 10.1115/1.4050649.
The aim of this research was to analyze the impact of the human body position changes caused by propelling a wheelchair with the pushrim propulsion on the value of motion resistance force. The discussed research works are in progress; therefore, the presented results should be treated as preliminary. The research was carried out in the group of six volunteers propelling a wheelchair of which frame was inclined, in respect to the horizontal plane, under the angle of 0 deg, 7 deg, and 14 deg. The area of the position variability of the human body center of gravity (COG) and the coefficients of wheelchair rolling resistance have been determined. Based on the measurements conducted, rolling resistance force FT and motion resistance force FR have been defined for three values of frame inclination angle. The determined force of rolling resistance Ft depended on the location of the COG of the human body and the value of the coefficients of rolling resistance of the front and rear wheels of a wheelchair. This force was a component of the resistance to motion FR, which also took into account the influence of gravity resulting from the inclination of the wheelchair on an inclined plane. For the tested inclination angles relative to the horizontal plane, the rolling resistance force ranged from 9.82 N to 22.81 N. Analyzing the variability of the rolling resistance force FT, it was found that for the final phase of the driving motion, it increased by 36% for the inclination angle of 0 deg and 43% for the inclination angle of 7 deg. Its increase was 48% for the inclination angle of 14 deg in relation to the human body position for the beginning of the driving motion. In the case of measuring the value of the resistance to motion FR, it was observed that, depending on the angle of the incline of the wheelchair, it ranged from 14.69 N to 256.33 N. The measurements conducted enabled the derivation of an analytical model for determining rolling resistance force depending on the position of the human body COG and the wheelchair inclination angle. The conducted research demonstrated the impact of the COG position on the changes of motion resistance force, thus expanding the state of knowledge, introducing a new parameter which, like a surface type and wheel type, affects motion resistances.
本研究旨在分析人体在推动轮椅时因推动动作导致的体位变化对运动阻力的影响。所讨论的研究工作正在进行中,因此呈现的结果应被视为初步结果。研究在六名志愿者推动轮椅的小组中进行,轮椅的框架相对于水平面倾斜 0°、7°和 14°。确定了人体重心(COG)位置变化区域和轮椅滚动阻力系数。基于进行的测量,确定了三个框架倾斜角度值下的滚动阻力 FT 和运动阻力 FR。确定的滚动阻力 Ft 取决于人体 COG 的位置和轮椅前轮和后轮的滚动阻力系数值。该力是 FR 运动阻力的一个组成部分,还考虑了轮椅在斜面上倾斜产生的重力的影响。对于测试的相对于水平面的倾斜角度,滚动阻力力范围从 9.82N 到 22.81N。分析滚动阻力力 FT 的可变性,发现对于驱动运动的最后阶段,0°倾斜角的滚动阻力力增加了 36%,7°倾斜角的滚动阻力力增加了 43%。对于人体位置开始的驱动运动,14°倾斜角的增加幅度为 48%。在测量 FR 运动阻力值时,观察到,根据轮椅倾斜角度的不同,它的范围从 14.69N 到 256.33N。进行的测量使我们能够推导出一个分析模型,用于根据人体 COG 的位置和轮椅倾斜角度确定滚动阻力力。进行的研究表明了 COG 位置对运动阻力变化的影响,从而扩展了知识状态,引入了一个新的参数,与表面类型和轮子类型一样,会影响运动阻力。