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      2. west china medical publishers
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        find Keyword "Finite element method" 2 results
        • Influence of bionic texture coronary stent on hemodynamics after implantation

          To explore the influence of bionic texture coronary stents on hemodynamics, a type of bioabsorbable polylactic acid coronary stents was designed, for which a finite element analysis method was used to carry out simulation analysis on blood flow field after the implantation of bionic texture stents with three different shapes (rectangle, triangle and trapezoid), thus revealing the influence of groove shape and size on hemodynamics, and identifying the optimal solution of bionic texture groove. The results showed that the influence of bionic texture grooves of different shapes and sizes on the lower wall shear stress region had a certain regularity. Specifically, the improvement effect of grooves above 0.06 mm on blood flow characteristics was poor, and the effect of grooves below 0.06 mm was good. Furthermore, the smaller the size is, the better the improvement effect is, and the 0.02 mm triangular groove had the best improvement effect. Based on the results of this study, it is expected that bionic texture stents have provided a new method for reducing in-stent restenosis.

          Release date:2022-06-28 04:35 Export PDF Favorites Scan
        • A simulation study of photothermal effects in transcranial photobiomodulation

          Transcranial photobiomodulation (tPBM) is a non-invasive neuromodulation technique utilizing infrared or near-infrared light. Clarifying the energy deposition patterns and safe dose thresholds within realistic anatomical head structures is crucial for advancing its clinical application. However, existing studies often rely on simplified models for numerical simulation, which may fail to accurately capture the influence of cortical sulci and gyri on light propagation and thermal diffusion. This study established a high-resolution (1 mm3) anatomically realistic human head model using the finite element method, and developed an optical-thermal multiphysics coupling framework to systematically simulate and analyze key parameters, including power density and wavelength, to evaluate light penetration depth and tissue temperature elevation characteristics. The results demonstrated that approximately 0.05% of the incident optical power penetrated to the cortical gray matter. As the power density increased, scalp temperature elevation reached up to 5.22 °C, and brain temperature elevation reached up to 0.49 °C, with a distinct “halo” scattering effect observed within the cerebrospinal fluid layer. These simulation results systematically revealed the photothermal propagation characteristics and tissue thermal responses of tPBM in realistic head anatomy, providing an important theoretical basis for defining safe dose thresholds and optimizing individualized stimulation parameters.

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          2. 射丝袜