A biomechanics-based conceptual design of spring knee-aids to reduce joint loading during high knee-flexion tasks

BackgroundOccupational activities that require high knee-flexion tasks are associated with a higher prevalence of knee osteoarthritis (OA) compared to the general population. Spring knee-aids have been used to protect the knee joints during dynamic high knee-flexion tasks.ObjectiveThis study was to develop a biomechanical model to analyze the knee joint mechanics during deep squatting while wearing various conceptually designed knee aids.MethodsThe musculoskeletal loadings in the knees were calculated using inverse dynamic modeling. Commercially available software AnyBody (version 7.2) was used for the analysis. In deep squatting, the back of the thighs will contact the calves, influencing the joint contact forces. An analytical approach to consider the effects of the thigh-calf contact interactions was derived and implemented in the AnyBody model. The knee joint loading for deep squatting tasks without knee aids was compared with those wearing knee aids of different spring stiffness levels.ResultsThe current biomechanical modeling predictions indicate that the use of typical commercial spring knee-aids helps to reduce the contact forces in the tibiofemoral (TF) and patellofemoral (PF) joints by approximately 7-8%, and that the effects of the knee aids in reducing musculoskeletal loading can be enhanced about four times by increasing the spring stiffness of the knee aids to 1-4 times of the original values.ConclusionThe current analysis provides a biomechanical basis for improving the design of commercially available knee aids, thereby reducing knee OA in workers frequently performing high knee-flexion tasks.

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Publication Details

Journal
Bio-Medical Materials and Engineering
Published
2026-09-21
DOI
https://doi.org/10.1177/09592989261487142
Primary Topic
Osteoarthritis Treatment and Mechanisms
Type
article
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article

A biomechanics-based conceptual design of spring knee-aids to reduce joint loading during high knee-flexion tasks

John Z. Wu, Ting Xia, Kevin D. Moore, Liying Zheng et al.
Bio-Medical Materials and Engineering
Osteoarthritis Treatment and Mechanisms
article

A biomechanics-based conceptual design of spring knee-aids to reduce joint loading during high knee-flexion tasks

John Z. Wu, Ting Xia, Kevin D. Moore, Liying Zheng, Donald R. Peterson
article en

Abstract

BackgroundOccupational activities that require high knee-flexion tasks are associated with a higher prevalence of knee osteoarthritis (OA) compared to the general population. Spring knee-aids have been used to protect the knee joints during dynamic high knee-flexion tasks.ObjectiveThis study was to develop a biomechanical model to analyze the knee joint mechanics during deep squatting while wearing various conceptually designed knee aids.MethodsThe musculoskeletal loadings in the knees were calculated using inverse dynamic modeling. Commercially available software AnyBody (version 7.2) was used for the analysis. In deep squatting, the back of the thighs will contact the calves, influencing the joint contact forces. An analytical approach to consider the effects of the thigh-calf contact interactions was derived and implemented in the AnyBody model. The knee joint loading for deep squatting tasks without knee aids was compared with those wearing knee aids of different spring stiffness levels.ResultsThe current biomechanical modeling predictions indicate that the use of typical commercial spring knee-aids helps to reduce the contact forces in the tibiofemoral (TF) and patellofemoral (PF) joints by approximately 7-8%, and that the effects of the knee aids in reducing musculoskeletal loading can be enhanced about four times by increasing the spring stiffness of the knee aids to 1-4 times of the original values.ConclusionThe current analysis provides a biomechanical basis for improving the design of commercially available knee aids, thereby reducing knee OA in workers frequently performing high knee-flexion tasks.

Bio-Medical Materials and Engineering
Northern Illinois University (US), National Institute for Occupational Safety and Health (US)
Good health and well-being
Openalex Percentile: Top 9%
Osteoarthritis Treatment and Mechanisms
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