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Image Search Results
Journal: Cyborg and Bionic Systems
Article Title: Noninvasive Intracranial Source Signal Localization and Decoding with High Spatiotemporal Resolution
doi: 10.34133/cbsystems.0206
Figure Lengend Snippet: Schematic diagram of the ultrasound modulated electroencephalography (USMEEG) principle. EEG, electroencephalography; tFUS, transcranial focused ultrasound; Chan., channel.
Article Snippet: The
Techniques:
Journal: Cyborg and Bionic Systems
Article Title: Noninvasive Intracranial Source Signal Localization and Decoding with High Spatiotemporal Resolution
doi: 10.34133/cbsystems.0206
Figure Lengend Snippet: Schematic of the flow of the decoding and localization algorithm for acoustoelectric signals, 3D transcranial single-source dipole localization simulation model, and schematic diagram of the ultrasound irradiation strategy and electrocorticography (ECoG) signal compared to the fitted signal. (A1) Flowchart of the envelope decoding and localization algorithm . (A2) Flowchart of the pulse repetition frequency (PRF) sideband localization algorithm. (B1) Numerical simulation model. (B2) Schematic diagram of the ultrasound irradiation strategy. (C1) S1 analog source signal. (C2) S2 analog source signal. (C3) S3 analog source signal. (C4) S4 analog source signal. AE, acoustoelectric effect.
Article Snippet: The
Techniques: Irradiation
Journal: Cyborg and Bionic Systems
Article Title: Noninvasive Intracranial Source Signal Localization and Decoding with High Spatiotemporal Resolution
doi: 10.34133/cbsystems.0206
Figure Lengend Snippet: (A) Schematic of the delay distribution of the array elements (the darker the color, the higher the delay). (B) Acoustic pressure field before and after transcranial modulation. (C) Comparison results of the focal acoustic pressure and mechanical index (MI). (D) Distribution of transcranial TR-modulated onset temperature field.
Article Snippet: The
Techniques: Comparison
Journal: Cyborg and Bionic Systems
Article Title: Noninvasive Intracranial Source Signal Localization and Decoding with High Spatiotemporal Resolution
doi: 10.34133/cbsystems.0206
Figure Lengend Snippet: Focal acoustic pressure and MI for each modulation method
Article Snippet: The
Techniques:
Journal: Nature Communications
Article Title: Production of a monolithic fuel cell stack with high power density
doi: 10.1038/s41467-022-28970-w
Figure Lengend Snippet: The graphs display the predictions of a multiphysics model on the pressure built-up inside the SRU monoliths (black lines/symbols) during the debinding step (red lines). Below the graphs, the photographs show the integrity of the corresponding SRU monoliths after heat treatment (debinding and sintering steps). a , Case of a SRU monolith manufactured using only graphite as sacrificial material to form the gas channels, b , Case of a SRU monolith manufactured using a 50–50 vol.% mixture of graphite–PMMA as sacrificial material to form the gas channels, and c , Case of a SRU monolith manufactured using only PMMA as sacrificial material to form the gas channels. The SRU presented in Fig. 2c reveals large cracks after debinding/sintering steps which is in good accordance with the model which predicted that SRU monolith manufactured using 100% PMMA would lead to the highest pressure (14 mbar around 200 °C) among the three pore-forming agents investigated, and therefore will be the most likely to fracture. Note that both PMMA and graphite are also contained the electrode tapes which explains why a pressure peak corresponding to graphite removal can also be found in the case of Fig. 2c, for example.
Article Snippet: To identify the process parameters required to achieve an optimized monolith (avoiding disintegration and warpage during debinding), a 3D model simulating the
Techniques:
Journal: Micromachines
Article Title: Design and Optimization of a BAW Magnetic Sensor Based on Magnetoelectric Coupling
doi: 10.3390/mi13020206
Figure Lengend Snippet: FEA models in COMSOL software. ( a ) Material: the magnetic composite, ( i ) a 3D model in an air-filled cavity for eddy current and magnetostriction simulation; ( ii ) magnetic composite—FeGaB inserted by alumina layers; ( iii ) suppression of eddy current loss—eddy current loops isolated by uniformly laminated alumina in FeGaB. ( b ) Structure: ME coupling effect of the piezomagnetic/piezoelectric heterostructure. ( c ) Device: resonance frequency matching between the FMR of the magnetic composite and the resonance frequency of the BAW resonator.
Article Snippet: As shown in a, a 3D simulation model of the magnetostrictive
Techniques: Software, Isolation