The socket transfers body weight between the residual-limb tissues and the prosthetic structure, while the pylon and foot help transmit forces and support forward motion. Their interaction determines how effectively loads move through the prosthesis during walking. Bioengineering studies examine these relationships to identify alignment or design changes that may improve comfort, stability, gait symmetry, or energy efficiency.
The intact knee contributes to limb positioning and stability while the prosthesis supports the lower part of the limb. Its motion must be coordinated with socket loading and the behavior of the prosthetic foot. Evaluating this coordination helps researchers understand walking performance and develop rehabilitation or alignment strategies that support safer, more controlled movement.
Motion analysis tracks limb movement, while force measurements show how body weight and walking loads pass through the residual limb and prosthesis. Computational modeling can then examine these interactions, and user feedback adds information about comfort or perceived difficulty. Together, these sources provide complementary evidence for interpreting gait asymmetry and evaluating possible design or alignment improvements.
Researchers consider how residual-limb tissues interact with the socket, how the prosthesis transfers weight, and how the knee, pylon, and foot coordinate during walking. They also assess movement patterns, measured forces, and the user's feedback. Examining these factors together helps distinguish whether changes in alignment or device design improve comfort, reduce inefficient movement, or support more balanced gait.
An assessment can combine motion analysis, force measurements, computational modeling, and direct user feedback. Researchers first examine movement and loading during walking, then use models to interpret interactions among the residual limb and prosthetic components. User responses help connect measured behavior with practical experience, allowing the team to evaluate alignment, comfort, energy efficiency, and gait symmetry.
Findings from movement data, force measurements, computational models, and user feedback can guide adjustments to prosthetic alignment and design for individual needs. The same evidence can help shape safer rehabilitation strategies by identifying how a person controls the knee and transfers weight through the device. These applications aim to improve functional mobility rather than relying on one solution for every user.