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multiphysics simulation of the flow rate through the microfluidic channel layer  (COMSOL Inc)

 
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    Structured Review

    COMSOL Inc multiphysics simulation of the flow rate through the microfluidic channel layer
    Diagram of the <t>microfluidics-based</t> laser guided cell-micropatterning system.
    Multiphysics Simulation Of The Flow Rate Through The Microfluidic Channel Layer, 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/multiphysics+simulation+of+the+flow+rate+through+the+microfluidic+channel+layer/multiphysics+simulation+of+the+flow+rate+through+the+microfluidic+channel+layer/pmc04354940-311-10-1
    Average 90 stars, based on 1 article reviews
    multiphysics simulation of the flow rate through the microfluidic channel layer - by Bioz Stars, 2026-09
    90/100 stars

    Images

    1) Product Images from "Microfluidics-Based Laser Guided Cell-Micropatterning System"

    Article Title: Microfluidics-Based Laser Guided Cell-Micropatterning System

    Journal: Biofabrication

    doi: 10.1088/1758-5082/6/3/035025

    Diagram of the microfluidics-based laser guided cell-micropatterning system.
    Figure Legend Snippet: Diagram of the microfluidics-based laser guided cell-micropatterning system.

    Techniques Used:

    An exploded assembly and overall diagram of the microfluidics-based cell-delivery biochip and cell-culture substrate.
    Figure Legend Snippet: An exploded assembly and overall diagram of the microfluidics-based cell-delivery biochip and cell-culture substrate.

    Techniques Used: Cell Culture

    (A) 2D schematic of the microfluidic biochip flow-channel layer (depth is 50 μm). (B) Phase contrast image (20×) of a microchannel cross-section. Scale bar 50 μm.
    Figure Legend Snippet: (A) 2D schematic of the microfluidic biochip flow-channel layer (depth is 50 μm). (B) Phase contrast image (20×) of a microchannel cross-section. Scale bar 50 μm.

    Techniques Used:

    A single CFN at 16 hours: It was selected from the microfluidic cell-delivery channel and laser-micropatterned onto a PDMS-based cell-culture substrate.
    Figure Legend Snippet: A single CFN at 16 hours: It was selected from the microfluidic cell-delivery channel and laser-micropatterned onto a PDMS-based cell-culture substrate.

    Techniques Used: Cell Culture

    COMSOL simulation for the flow rate of cell-suspensions through the microfluidic biochip.
    Figure Legend Snippet: COMSOL simulation for the flow rate of cell-suspensions through the microfluidic biochip.

    Techniques Used:

    Fluorescence and phase contrast combined image (40x) of a laser-micropatterned CFN array. The two DiI live-stained cells (red) were from one microfluidics-cell-delivery channel, the remainders were from the other channel. Scale bar 25 μm.
    Figure Legend Snippet: Fluorescence and phase contrast combined image (40x) of a laser-micropatterned CFN array. The two DiI live-stained cells (red) were from one microfluidics-cell-delivery channel, the remainders were from the other channel. Scale bar 25 μm.

    Techniques Used: Fluorescence, Staining

    Related Articles

    Cell Culture:

    Article Title: Microfluidics-Based Laser Guided Cell-Micropatterning System
    Article Snippet: A COMSOL multiphysics simulation of the flow rate through the microfluidic channel layer ( ) was conducted to determine the exit velocity of cell-suspensions from the microchannels. shows the simulation results based on the rectangular dimensions described in Section 2.2.1.

    Fluorescence:

    Article Title: Microfluidics-Based Laser Guided Cell-Micropatterning System
    Article Snippet: A COMSOL multiphysics simulation of the flow rate through the microfluidic channel layer ( ) was conducted to determine the exit velocity of cell-suspensions from the microchannels. shows the simulation results based on the rectangular dimensions described in Section 2.2.1.

    Staining:

    Article Title: Microfluidics-Based Laser Guided Cell-Micropatterning System
    Article Snippet: A COMSOL multiphysics simulation of the flow rate through the microfluidic channel layer ( ) was conducted to determine the exit velocity of cell-suspensions from the microchannels. shows the simulation results based on the rectangular dimensions described in Section 2.2.1.



    Similar Products

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    COMSOL Inc multiphysics simulation of the flow rate through the microfluidic channel layer
    Diagram of the <t>microfluidics-based</t> laser guided cell-micropatterning system.
    Multiphysics Simulation Of The Flow Rate Through The Microfluidic Channel Layer, 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/multiphysics+simulation+of+the+flow+rate+through+the+microfluidic+channel+layer/multiphysics+simulation+of+the+flow+rate+through+the+microfluidic+channel+layer/pmc04354940-311-10-1
    Average 90 stars, based on 1 article reviews
    multiphysics simulation of the flow rate through the microfluidic channel layer - by Bioz Stars, 2026-09
    90/100 stars
      Buy from Supplier

    Image Search Results


    Diagram of the microfluidics-based laser guided cell-micropatterning system.

    Journal: Biofabrication

    Article Title: Microfluidics-Based Laser Guided Cell-Micropatterning System

    doi: 10.1088/1758-5082/6/3/035025

    Figure Lengend Snippet: Diagram of the microfluidics-based laser guided cell-micropatterning system.

    Article Snippet: A COMSOL multiphysics simulation of the flow rate through the microfluidic channel layer ( ) was conducted to determine the exit velocity of cell-suspensions from the microchannels. shows the simulation results based on the rectangular dimensions described in Section 2.2.1.

    Techniques:

    An exploded assembly and overall diagram of the microfluidics-based cell-delivery biochip and cell-culture substrate.

    Journal: Biofabrication

    Article Title: Microfluidics-Based Laser Guided Cell-Micropatterning System

    doi: 10.1088/1758-5082/6/3/035025

    Figure Lengend Snippet: An exploded assembly and overall diagram of the microfluidics-based cell-delivery biochip and cell-culture substrate.

    Article Snippet: A COMSOL multiphysics simulation of the flow rate through the microfluidic channel layer ( ) was conducted to determine the exit velocity of cell-suspensions from the microchannels. shows the simulation results based on the rectangular dimensions described in Section 2.2.1.

    Techniques: Cell Culture

    (A) 2D schematic of the microfluidic biochip flow-channel layer (depth is 50 μm). (B) Phase contrast image (20×) of a microchannel cross-section. Scale bar 50 μm.

    Journal: Biofabrication

    Article Title: Microfluidics-Based Laser Guided Cell-Micropatterning System

    doi: 10.1088/1758-5082/6/3/035025

    Figure Lengend Snippet: (A) 2D schematic of the microfluidic biochip flow-channel layer (depth is 50 μm). (B) Phase contrast image (20×) of a microchannel cross-section. Scale bar 50 μm.

    Article Snippet: A COMSOL multiphysics simulation of the flow rate through the microfluidic channel layer ( ) was conducted to determine the exit velocity of cell-suspensions from the microchannels. shows the simulation results based on the rectangular dimensions described in Section 2.2.1.

    Techniques:

    A single CFN at 16 hours: It was selected from the microfluidic cell-delivery channel and laser-micropatterned onto a PDMS-based cell-culture substrate.

    Journal: Biofabrication

    Article Title: Microfluidics-Based Laser Guided Cell-Micropatterning System

    doi: 10.1088/1758-5082/6/3/035025

    Figure Lengend Snippet: A single CFN at 16 hours: It was selected from the microfluidic cell-delivery channel and laser-micropatterned onto a PDMS-based cell-culture substrate.

    Article Snippet: A COMSOL multiphysics simulation of the flow rate through the microfluidic channel layer ( ) was conducted to determine the exit velocity of cell-suspensions from the microchannels. shows the simulation results based on the rectangular dimensions described in Section 2.2.1.

    Techniques: Cell Culture

    COMSOL simulation for the flow rate of cell-suspensions through the microfluidic biochip.

    Journal: Biofabrication

    Article Title: Microfluidics-Based Laser Guided Cell-Micropatterning System

    doi: 10.1088/1758-5082/6/3/035025

    Figure Lengend Snippet: COMSOL simulation for the flow rate of cell-suspensions through the microfluidic biochip.

    Article Snippet: A COMSOL multiphysics simulation of the flow rate through the microfluidic channel layer ( ) was conducted to determine the exit velocity of cell-suspensions from the microchannels. shows the simulation results based on the rectangular dimensions described in Section 2.2.1.

    Techniques:

    Fluorescence and phase contrast combined image (40x) of a laser-micropatterned CFN array. The two DiI live-stained cells (red) were from one microfluidics-cell-delivery channel, the remainders were from the other channel. Scale bar 25 μm.

    Journal: Biofabrication

    Article Title: Microfluidics-Based Laser Guided Cell-Micropatterning System

    doi: 10.1088/1758-5082/6/3/035025

    Figure Lengend Snippet: Fluorescence and phase contrast combined image (40x) of a laser-micropatterned CFN array. The two DiI live-stained cells (red) were from one microfluidics-cell-delivery channel, the remainders were from the other channel. Scale bar 25 μm.

    Article Snippet: A COMSOL multiphysics simulation of the flow rate through the microfluidic channel layer ( ) was conducted to determine the exit velocity of cell-suspensions from the microchannels. shows the simulation results based on the rectangular dimensions described in Section 2.2.1.

    Techniques: Fluorescence, Staining