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COMSOL Inc numerical simulation model
Numerical Simulation Model, supplied by COMSOL Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/numerical+simulation+model/numerical+model/pmc12042242-153-2-8
Average 90 stars, based on 1 article reviews
numerical simulation model - by Bioz Stars, 2026-09
90/100 stars

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Article Title: Research on the suppression method of sensor impact vibration parasitic effects in surface reflection pressure measurement.
Article Snippet: A numerical simulation model based on multi-physics was developed using COMSOL, and the effectiveness of the suppression device was experimentally validated using actual tests.

Article Title: On the Investigation of Frequency Characteristics of a Novel Inductive Debris Sensor
Article Snippet: Numerical simulations are carried out using COMSOL to analyze the perturbation of the magnetic field at different frequencies as the metal debris passes through the sensor.

Article Title: Droplet capture mechanism and sustainable drug release of a titanium mandibular drug reservoir modified by laser grid texturing and silicone oil heat treatment.
Article Snippet: Customized titanium implants are commonly used for repairing mandibular defects caused by accidents.. However, the semi-open nature of the oral environment increases the likelihood of inflammation around the implant, which has a significant impact on the therapeutic outcomes.. Most existing research tackles this issue by achieving drug loading through surface modifications to create local drug delivery systems.

Article Title: Numerical simulation of magnetic drug targeting for lung cancer therapy using a bulk superconducting magnet
Article Snippet: A three-dimensional numerical simulation model was built in COMSOL Multiphysics, based on the Weibel model of the lung, interacting with a magnetized bulk superconductor.

Article Title: Non-uniform temperature fields in steel tubes with different inclinations under solar radiation
Article Snippet: The temperature distribution within steel tubes is subject to non-uniformity due to the influence of surrounding environmental factors, which could pose safety concerns for steel structures.. In response, this study undertook a comprehensive long-term experimental investigation, aimed at elucidating the temperature distribution characteristics of inclined steel tubes.. The results underscored the non-uniform distribution of temperature fields in steel tubes under the influence of solar radiation, with notable sensitivity to their inclinations and orientations.

Article Title: Research on the suppression method of sensor impact vibration parasitic effects in surface reflection pressure measurement.
Article Snippet: To understand the attenuation characteristics of stress intensity in commonly used shock vibration-resistant materials, a numerical simulation model was developed using COMSOL, which accounts for multiple physical fields.

Article Title: High-efficiency and precision gas extraction in intelligent mining faces: Application of a comprehensive three-dimensional extraction system
Article Snippet: As intelligent mining operations evolve, stringent standards for gas management and extraction are imperative.. To mitigate the risks associated with coal and gas outburst and to prevent gas concentration from exceeding safe limits, a comprehensive three-dimensional gas extraction system is introduced.. This method, exemplified by the 1075 intelligent working face at the Yangliu coal mine, integrates temporal and spatial considerations for comprehensive extraction.

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Article Title: Numerical simulation of magnetic drug targeting for lung cancer therapy using a bulk superconducting magnet.
Article Snippet: .. Conclusion in this work, magnetic drug targeting (MDt) using a bulk superconducting magnet has been explored for the treatment of primary bronchial cancer. a three-dimensional numerical simulation model was built in cOMsOl Multiphysics, based on the Weibel model of the lung, interacting with a magnetized bulk superconductor. the model was used to study the influence of lung-magnet distance, bulk superconductor properties, particle properties, and physiological or tumor structural parameters on capture efficiency. the results show that the use of the bulk superconducting magnet can effectively improve the capture efficiency of magnetic drugs or drug carriers within a suitable distance (especially 40–80 mm away from the lesion area). a particle deposition efficiency (PDe) value of over 10% can be readily achieved when d = 40 mm, whereas the no-magnet PDe is usually less than 1–2%. the results prove that bulk superconducting magnets have great potential to realize the guidance of magnetic drugs or drug carriers from outside the body, which could achieve safer noninvasive magnetic-targeted medical treatment for lung cancer. in addition, the distribution and deposition patterns of particles are discussed for the various cases investigated. the results also illustrate that when the bulk superconducting magnet is directly opposite the tumor, although the magnetic field strength can be modified by changing the magnet properties (e.g. dimensions or cryogenic operating temperature), the PDe does not always increase due to the fact that a stronger magnet force could actually gather particles before the cancerous area. however, a stronger magnetic field increases the effective distance d. in summary, this numerical simulation framework provides a basis for more detailed design and optimization of MDt Figure 9. (a) The effect of distance d and bulk superconducting magnet dimensions on the PDe value. ..



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Schematic diagram of the ultrasound modulated electroencephalography (USMEEG) principle. EEG, electroencephalography; tFUS, transcranial focused ultrasound; Chan., channel.

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 3D transcranial single-source dipole numerical simulation model was constructed based on the above skull model and COMSOL 6.0 as shown in Fig. B1, and the ultrasound raster scanning area is shown in Fig. B2, with the yellow star shape as the neuron setting position and the red dots as the ultrasound irradiation point positions.

Techniques:

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.

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 3D transcranial single-source dipole numerical simulation model was constructed based on the above skull model and COMSOL 6.0 as shown in Fig. B1, and the ultrasound raster scanning area is shown in Fig. B2, with the yellow star shape as the neuron setting position and the red dots as the ultrasound irradiation point positions.

Techniques: Irradiation

(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.

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 3D transcranial single-source dipole numerical simulation model was constructed based on the above skull model and COMSOL 6.0 as shown in Fig. B1, and the ultrasound raster scanning area is shown in Fig. B2, with the yellow star shape as the neuron setting position and the red dots as the ultrasound irradiation point positions.

Techniques: Comparison

Focal acoustic pressure and MI for each modulation method

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 3D transcranial single-source dipole numerical simulation model was constructed based on the above skull model and COMSOL 6.0 as shown in Fig. B1, and the ultrasound raster scanning area is shown in Fig. B2, with the yellow star shape as the neuron setting position and the red dots as the ultrasound irradiation point positions.

Techniques: