University of Pittsburgh.
J Appl Biomech. 2021 Aug 1;37(4):343-350. doi: 10.1123/jab.2020-0340. Epub 2021 May 29.
The objective was to examine the interactive effects of load magnitude and locomotion pattern on lower-extremity joint angles and intralimb coordination in recruit-aged women. Twelve women walked, ran, and forced marched at body weight and with loads of +25%, and +45% of body weight on an instrumented treadmill with infrared cameras. Joint angles were assessed in the sagittal plane. Intralimb coordination of the thigh-shank and shank-foot couple was assessed with continuous relative phase. Mean absolute relative phase (entire stride) and deviation phase (stance phase) were calculated from continuous relative phase. At heel strike, forced marching exhibited greater (P < .001) hip flexion, knee extension, and ankle plantar flexion compared with running. At mid-stance, knee flexion (P = .007) and ankle dorsiflexion (P = .04) increased with increased load magnitude for all locomotion patterns. Forced marching (P = .009) demonstrated a "stiff-legged" locomotion pattern compared with running, evidenced by the more in-phase mean absolute relative phase values. Running (P = .03) and walking (P = .003) had greater deviation phase than forced marching. Deviation phase increased for running (P = .03) and walking (P < .001) with increased load magnitude but not for forced marching. With loads of >25% of body weight, forced marching may increase risk of injury due to inhibited energy attenuation up the kinetic chain and lack of variability to disperse force across different supportive structures.
目的是研究负荷大小和运动模式对年轻女性下肢关节角度和肢体间协调性的交互影响。12 名女性在装有红外摄像机的仪器化跑步机上分别以步行、跑步和强制行军的方式,以体重和体重 25%、45%的负荷进行测试。关节角度在矢状面评估。通过连续相对相位评估大腿-小腿和小腿-脚对的肢体间协调。从连续相对相位计算平均绝对相对相位(整个步幅)和偏差相位(支撑相)。在脚跟接触时,与跑步相比,强制行军表现出更大的(P<0.001)髋关节屈曲、膝关节伸展和踝关节跖屈。在中足支撑期,所有运动模式的膝关节屈曲(P=0.007)和踝关节背屈(P=0.04)随负荷增加而增加。与跑步相比,强制行军(P=0.009)表现出“刚性腿”的运动模式,这表现为更同相的平均绝对相对相位值。与强制行军相比,跑步(P=0.03)和步行(P=0.003)的偏差相位更大。随着负荷的增加,跑步(P=0.03)和步行(P<0.001)的偏差相位增加,但强制行军则不然。在负荷超过体重的 25%时,由于动能链中能量衰减受到抑制以及缺乏将力分散到不同支撑结构的可变性,强制行军可能会增加受伤的风险。