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  • Biomechanical
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Material Properties Of The Infant Skull And Application

Material Properties Of The Infant Skull And Application

This biomechanical study characterizes the age-dependent material properties of infant skull and suture tissue through mechanical testing and integrates this data into three-dimensional finite element models of the pediatric head. These models simulate impact scenarios to investigate the sensitivity of skull and brain strains to impact direction, thereby advancing the understanding of pediatric head injury biomechanics and fracture risk.

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Musculotendon variability influences tissue strains

Musculotendon variability influences tissue strains

Niccolo M. Fiorentinoa and Silvia S. Blemker

"Musculotendon variability influences tissue strains experienced by the biceps femoris long head muscle during high-speed running"

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THE EFFECTS OF APONEUROSIS GEOMETRY ON STRAIN INJURY SUSCEPTIBILITY EXPLORED WITH A 3D MUSCLE MODEL

THE EFFECTS OF APONEUROSIS GEOMETRY ON STRAIN INJURY SUSCEPTIBILITY EXPLORED WITH A 3D MUSCLE MODEL

Michael Rehorn, Silvia Blemker

This biomechanical study investigates how the geometry of aponeuroses affects strain distributions and injury susceptibility in the biceps femoris longhead muscle. Through 3D finite element modeling, it was found that narrower proximal aponeuroses lead to increased fiber strain near injury-prone regions. The work provides new insights into the architectural basis for common hamstring injuries.

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Multiscale models of skeletal muscle

Multiscale models of skeletal muscle

"Multiscale models of skeletal muscle reveal the complex effects of muscular dystrophy on tissue mechanics and damage susceptibility" This study uses a multiscale biomechanical model to reveal how DMD-driven microstructural changes affect muscle tissue mechanics and damage vulnerability. By linking fiber-level alterations to tissue strain patterns, it highlights key biomechanical mechanisms underlying disease progression and muscle fragility.

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Contributions of the deltoid and rotator cuff to shoulder mobility and stability

Contributions of the deltoid and rotator cuff to shoulder mobility and stability

Joshua Dale Webb

This paper uses biomechanical modeling to assess how the deltoid and rotator cuff muscles contribute to shoulder mobility and stability. The study quantifies muscle forces and joint mechanics, revealing the distinct yet interdependent roles these muscles play in controlling shoulder motion and centering the joint. Its findings support biomechanically informed approaches to rehabilitation and clinical intervention.

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