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SolidWorks Corp serpentine micromixer (sm
Serpentine Micromixer (Sm, supplied by SolidWorks Corp, 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/result/serpentine micromixer (sm/product/SolidWorks Corp
Average 90 stars, based on 1 article reviews
serpentine micromixer (sm - by Bioz Stars, 2026-06
90/100 stars

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( a ) Structure of a microfluidic chip designed in SolidWorks, where positions 1, 2, and 3 are the locations of the highest shear stress. The shear stresses at these three positions are nearly identical. ( b ) Polydimethylsiloxane (PDMS) microfluidic chip for applying high shear stress with two bubble trappers

Journal: Biomedical Microdevices

Article Title: Quantitative investigation of a 3D bubble trapper in a high shear stress microfluidic chip using computational fluid dynamics and L*A*B* color space

doi: 10.1007/s10544-024-00727-w

Figure Lengend Snippet: ( a ) Structure of a microfluidic chip designed in SolidWorks, where positions 1, 2, and 3 are the locations of the highest shear stress. The shear stresses at these three positions are nearly identical. ( b ) Polydimethylsiloxane (PDMS) microfluidic chip for applying high shear stress with two bubble trappers

Article Snippet: Fig. 1 ( a ) Structure of a microfluidic chip designed in SolidWorks, where positions 1, 2, and 3 are the locations of the highest shear stress.

Techniques: Shear

Fabrication process of a microfluidic chip using polydimethylsiloxane (PDMS) soft lithography. ( a ) PDMS is poured into the acrylic block at the position of the magnet bubble trapping zones after the entrance and before the exit in the microfluidic chip. ( b ) Pouring of PDMS into the acrylic block is completed. ( c ) The PDMS mold is peeled off. ( d ) PDMS mold is cut. ( e ) Plasma bonding is performed between glass slides with PDMS. ( f ) The laboratory setup for testing microfluidic chip leakage is completed

Journal: Biomedical Microdevices

Article Title: Quantitative investigation of a 3D bubble trapper in a high shear stress microfluidic chip using computational fluid dynamics and L*A*B* color space

doi: 10.1007/s10544-024-00727-w

Figure Lengend Snippet: Fabrication process of a microfluidic chip using polydimethylsiloxane (PDMS) soft lithography. ( a ) PDMS is poured into the acrylic block at the position of the magnet bubble trapping zones after the entrance and before the exit in the microfluidic chip. ( b ) Pouring of PDMS into the acrylic block is completed. ( c ) The PDMS mold is peeled off. ( d ) PDMS mold is cut. ( e ) Plasma bonding is performed between glass slides with PDMS. ( f ) The laboratory setup for testing microfluidic chip leakage is completed

Article Snippet: Fig. 1 ( a ) Structure of a microfluidic chip designed in SolidWorks, where positions 1, 2, and 3 are the locations of the highest shear stress.

Techniques: Blocking Assay

( a ) Experimental setup for recording video of the side and top of the bubble trap. ( b ) Side view of the bubble trap in the microfluidic chip

Journal: Biomedical Microdevices

Article Title: Quantitative investigation of a 3D bubble trapper in a high shear stress microfluidic chip using computational fluid dynamics and L*A*B* color space

doi: 10.1007/s10544-024-00727-w

Figure Lengend Snippet: ( a ) Experimental setup for recording video of the side and top of the bubble trap. ( b ) Side view of the bubble trap in the microfluidic chip

Article Snippet: Fig. 1 ( a ) Structure of a microfluidic chip designed in SolidWorks, where positions 1, 2, and 3 are the locations of the highest shear stress.

Techniques:

Shear stress throughout the microfluidic chip. ( a ) Stress distribution and ( b ) maximum shear stress area for a flow rate of 50 µL/min. ( c ) Stress distribution and ( d ) maximum shear stress area for a flow rate of 100 µL/min. ( e ) Stress distribution and ( f ) maximum shear stress area for a flow rate of 150 µL/min. The three high shear stress positions are those in Fig. (a)

Journal: Biomedical Microdevices

Article Title: Quantitative investigation of a 3D bubble trapper in a high shear stress microfluidic chip using computational fluid dynamics and L*A*B* color space

doi: 10.1007/s10544-024-00727-w

Figure Lengend Snippet: Shear stress throughout the microfluidic chip. ( a ) Stress distribution and ( b ) maximum shear stress area for a flow rate of 50 µL/min. ( c ) Stress distribution and ( d ) maximum shear stress area for a flow rate of 100 µL/min. ( e ) Stress distribution and ( f ) maximum shear stress area for a flow rate of 150 µL/min. The three high shear stress positions are those in Fig. (a)

Article Snippet: Fig. 1 ( a ) Structure of a microfluidic chip designed in SolidWorks, where positions 1, 2, and 3 are the locations of the highest shear stress.

Techniques: Shear