Literature DB >> 14636100

Effect of knee position on hip and knee torques during the barbell squat.

Andrew C Fry1, J Chadwick Smith, Brian K Schilling.   

Abstract

UNLABELLED: Some recommendations suggest keeping the shank as vertical as possible during the barbell squat, thus keeping the knees from moving past the toes. This study examined joint kinetics occurring when forward displacement of the knees is restricted vs. when such movement is not restricted. Seven weight-trained men (mean +/- SD; age = 27.9 +/- 5.2 years) were videotaped while performing 2 variations of parallel barbell squats (barbell load = body weight). Either the knees were permitted to move anteriorly past the toes (unrestricted) or a wooden barrier prevented the knees from moving anteriorly past the toes (restricted). Differences resulted between static knee and hip torques for both types of squat as well as when both squat variations were compared with each other (p < 0.05). For the unrestricted squat, knee torque (N.m; mean +/- SD) = 150.1 +/- 50.8 and hip torque = 28.2 +/- 65.0. For the restricted squat, knee torque = 117.3 +/- 34.2 and hip torque = 302.7 +/- 71.2. Restricted squats also produced more anterior lean of the trunk and shank and a greater internal angle at the knees and ankles. The squat technique used can affect the distribution of forces between the knees and hips and on the kinematic properties of the exercise. PRACTICAL APPLICATIONS: Although restricting forward movement of the knees may minimize stress on the knees, it is likely that forces are inappropriately transferred to the hips and low-back region. Thus, appropriate joint loading during this exercise may require the knees to move slightly past the toes.

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Mesh:

Year:  2003        PMID: 14636100     DOI: 10.1519/1533-4287(2003)017<0629:eokpoh>2.0.co;2

Source DB:  PubMed          Journal:  J Strength Cond Res        ISSN: 1064-8011            Impact factor:   3.775


  25 in total

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Review 3.  Analysis of the load on the knee joint and vertebral column with changes in squatting depth and weight load.

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4.  The back squat: A proposed assessment of functional deficits and technical factors that limit performance.

Authors:  Gregory D Myer; Adam M Kushner; Jensen L Brent; Brad J Schoenfeld; Jason Hugentobler; Rhodri S Lloyd; Al Vermeil; Donald A Chu; Jason Harbin; Stuart M McGill
Journal:  Strength Cond J       Date:  2014-12-01       Impact factor: 2.143

5.  Effects of Changing Center of Pressure Position on Knee and Ankle Extensor Moments During Double-Leg Squatting.

Authors:  Tomoya Ishida; Mina Samukawa; Daisuke Endo; Satoshi Kasahara; Harukazu Tohyama
Journal:  J Sports Sci Med       Date:  2022-09-01       Impact factor: 4.017

6.  The center of pressure position in combination with ankle dorsiflexion and trunk flexion is useful in predicting the contribution of the knee extensor moment during double-leg squatting.

Authors:  Tomoya Ishida; Mina Samukawa; Satoshi Kasahara; Harukazu Tohyama
Journal:  BMC Sports Sci Med Rehabil       Date:  2022-07-14

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Authors:  Uri Obolski; Israel Halperin; Aviv Emanuel; Itai Har-Nir
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8.  Lower extremity strength and the range of motion in relation to squat depth.

Authors:  Si-Hyun Kim; Oh-Yun Kwon; Kyue-Nam Park; In-Cheol Jeon; Jong-Hyuck Weon
Journal:  J Hum Kinet       Date:  2015-04-07       Impact factor: 2.193

9.  Lower Extremity Joint Angle Tracking with Wireless Ultrasonic Sensors during a Squat Exercise.

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10.  Analysis of muscle activations in lower extremities muscles at various angles of ankle flexion using wedges during static squat exercise.

Authors:  Chang-Hwan Bae; Yeon-Woo Jeong; Jung-Ho Lee
Journal:  J Phys Ther Sci       Date:  2015-09-30
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