• an instrumented tissue tester for measuring soft tissue property under the metatarsal heads in relation to metatarsophalangeal joint angle

    جزئیات بیشتر مقاله
    • تاریخ ارائه: 1390/06/01
    • تاریخ انتشار در تی پی بین: 1390/06/01
    • تعداد بازدید: 307
    • تعداد پرسش و پاسخ ها: 0
    • شماره تماس دبیرخانه رویداد: -

    identification of the localized mechanical response of the plantar soft tissue pads underneath the metatarsal heads (i.e., sub-mth pad) to external loading is key to understand and predict how it functions in a gait cycle. the mechanical response depends on various parameters, such as the external load (direction and rate), the sub-mth tissue properties (anisotropy and viscoelasticity), and the configuration of the metatarsophalangeal (mtp) joint overlying the tissue. in this study, an instrument-driven tissue tester that incorporates a portable motorized indentor within a special foot positioning apparatus was developed for realistic in vivo mechanical characterization (i.e. tissue stiffness and force relaxation behavior) of the local sub-mth pad with the mtp joint configured at various dorsiflexion angles associated with gait. the tester yields consistent results for tests on the 2nd sub-mth pad. measurement errors for the initial stiffness (for indentation depths ≤1 mm), end-point stiffness, and percentage force relaxation were less than 0.084 n/mm, 0.133 n/mm, and 0.127%, respectively, across all test configurations. the end-point tissue stiffness, which increased by 104.2% due to a 50° mtp joint dorsiflexion, also agreed with a previous investigation. in vivo tissue's force relaxation was shown to be pronounced (avg.=8.1%), even for a short holding-time interval. the proposed technique to facilitate study of the dependence of the local sub-mth pad and tissue response on the mtp joint angle might be preferable to methods that focus solely on measurement of tissue property because under physiologic conditions the sub-mth pad elasticity may vary in gait, to adapt to drastically changing mechanical demands in the sub-mth region of the terminal stance-phase, where mtp joint dorsiflexion occurs.

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