Search PubMed⌕ Search

Biomedical subjects

J Carmeliet

Publications and source records attributed to J Carmeliet.

7 recordsLinked to original sources

Resonant bar simulations in media with localized damage.

As a rule, problems of wave propagation in finite media with non-uniform spatial distribution of material properties can only be tackled by numerical models. In addition, the modeling of damage features in a material requires the introduction of locally non-linear and--more important--non-unique equations of state. Using a multiscale approach, we have implemented a non-linear hysteretic stress-strain relation based on the Preisach-Mayergoyz (PM) model, into a numerical elastodynamic finite integration technique program, which has originally been developed for linearly elastic wave propagation in inhomogeneous media. The simulation results show qualitatively good agreement with data of non-linear resonant bar experiments in homogeneously non-linear and hysteretic media. When the PM density distribution of hysteretic units at the mesoscopic level is not uniform and/or confined to a finite area in stress-stress space, the response at high amplitude excitation tend to deviate from the quasi-analytical results obtained in the case of a uniform PM-space density. Localized microdamage features in an intact medium can be modeled by conceiving finite zones with pronounced hysteretic stress-strain relations within a "linear" surrounding. Forward calculations reveal a significant influence of the amplitude dependent resonance behavior on the location (edge versus center of a bar), the extend (width of the zone) and the degree (density of hysteretic units) of damage.

Journal Article↗

Unexpected latency shifts of the stationary P9 somatosensory evoked potential far field with changes in shoulder position.

Early somatosensory evoked potential (SEP) components to median nerve stimulation were recorded with non-cephalic reference from scalp, neck and oesophagus in normal young adults. The nerve volley was recorded from the arm and Erb's point. The latencies of the stationary P9 far field were increased significantly by supporting the shoulder in a high position. This manoeuvre was shown in X-rays to change the axis of the nerve at levels between lateral and middle parts of the clavicle. This suggests that the far field is not related to inhomogeneities of the medium surrounding the nerve whereby abrupt changes in extracellular current flow might be produced as the volley arrives at a certain level. Rather, the axial orientation of the propagated dipole appears as a major factor determining the features of the stationary P9 far field. The reversible effect described does not significantly influence the conduction of the volley itself nor the latencies of the subsequent SEP components.

Adult↗