elveflow microfluidic pressure Search Results


96
Elveflow Inc pressure controller
Strain measurement and the strain relaxation time of the spheroids. A1. Schematic of a tumor spheroid before (yellow, dashed lines) and during (red, solid lines) compression. The piston moves down vertically compressing a tumor spheroid underneath, resulting in the change in cross-sectional radius of the tumor spheroid. A2. A micrograph of an uncompressed MCF-10A tumor spheroid imaged at vertical midplane. The yellow outline indicates the area of the uncompressed spheroid A o , and the redline indicates the area of the compressed spheroid, A c . The scale bar is 100 μm. B. Spheroid strain response to sinusoidal, square, and triangular pressure wave compression with a period of 20 seconds from the microrheometer. The blue dots show the strain of the tumor spheroid obtained from bright field images with respect to time and the red dots represent the pressure applied to the pressure <t>controller.</t> The sampling rate is 15.67 Hz. C. Strain response of MDA-MB-231 and MCF-10A tumor spheroids when subjected to square wave compression. The maximum pressure here is 10 kPa. D. Half-relaxation time of the MDA-MB-231 and MCF-10A spheroids. Half relaxation time was defined as the time it takes for the strain to decrease to 50% of its original value after the pressure is released.
Pressure Controller, supplied by Elveflow Inc, used in various techniques. Bioz Stars score: 96/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/elveflow+microfluidic+pressure/pmc12516695-141-16-18?v=Elveflow+Inc
Average 96 stars, based on 1 article reviews
pressure controller - by Bioz Stars, 2026-08
96/100 stars
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93
Elveflow Inc pressure gauge sensor
Strain measurement and the strain relaxation time of the spheroids. A1. Schematic of a tumor spheroid before (yellow, dashed lines) and during (red, solid lines) compression. The piston moves down vertically compressing a tumor spheroid underneath, resulting in the change in cross-sectional radius of the tumor spheroid. A2. A micrograph of an uncompressed MCF-10A tumor spheroid imaged at vertical midplane. The yellow outline indicates the area of the uncompressed spheroid A o , and the redline indicates the area of the compressed spheroid, A c . The scale bar is 100 μm. B. Spheroid strain response to sinusoidal, square, and triangular pressure wave compression with a period of 20 seconds from the microrheometer. The blue dots show the strain of the tumor spheroid obtained from bright field images with respect to time and the red dots represent the pressure applied to the pressure <t>controller.</t> The sampling rate is 15.67 Hz. C. Strain response of MDA-MB-231 and MCF-10A tumor spheroids when subjected to square wave compression. The maximum pressure here is 10 kPa. D. Half-relaxation time of the MDA-MB-231 and MCF-10A spheroids. Half relaxation time was defined as the time it takes for the strain to decrease to 50% of its original value after the pressure is released.
Pressure Gauge Sensor, supplied by Elveflow Inc, used in various techniques. Bioz Stars score: 93/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/elveflow+microfluidic+pressure/pmc10519618-88-6-11?v=Elveflow+Inc
Average 93 stars, based on 1 article reviews
pressure gauge sensor - by Bioz Stars, 2026-08
93/100 stars
  Buy from Supplier

94
Elveflow Inc microfluidic pressure sensor
Schematic showing liquid flow from one <t>microfluidic</t> chip to the other; the lateral expansion of the liquid bridge was prevented by capillary forces induced by the superhydrophobic (SH) coating.
Microfluidic Pressure Sensor, supplied by Elveflow Inc, used in various techniques. Bioz Stars score: 94/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/elveflow+microfluidic+pressure/pmc07978084-93-2-6?v=Elveflow+Inc
Average 94 stars, based on 1 article reviews
microfluidic pressure sensor - by Bioz Stars, 2026-08
94/100 stars
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93
Elveflow Inc high precision pressure device
Schematic showing liquid flow from one <t>microfluidic</t> chip to the other; the lateral expansion of the liquid bridge was prevented by capillary forces induced by the superhydrophobic (SH) coating.
High Precision Pressure Device, supplied by Elveflow Inc, used in various techniques. Bioz Stars score: 93/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/elveflow+microfluidic+pressure/arxiv__1608__03695-58-1-4?v=Elveflow+Inc
Average 93 stars, based on 1 article reviews
high precision pressure device - by Bioz Stars, 2026-08
93/100 stars
  Buy from Supplier

Image Search Results


Strain measurement and the strain relaxation time of the spheroids. A1. Schematic of a tumor spheroid before (yellow, dashed lines) and during (red, solid lines) compression. The piston moves down vertically compressing a tumor spheroid underneath, resulting in the change in cross-sectional radius of the tumor spheroid. A2. A micrograph of an uncompressed MCF-10A tumor spheroid imaged at vertical midplane. The yellow outline indicates the area of the uncompressed spheroid A o , and the redline indicates the area of the compressed spheroid, A c . The scale bar is 100 μm. B. Spheroid strain response to sinusoidal, square, and triangular pressure wave compression with a period of 20 seconds from the microrheometer. The blue dots show the strain of the tumor spheroid obtained from bright field images with respect to time and the red dots represent the pressure applied to the pressure controller. The sampling rate is 15.67 Hz. C. Strain response of MDA-MB-231 and MCF-10A tumor spheroids when subjected to square wave compression. The maximum pressure here is 10 kPa. D. Half-relaxation time of the MDA-MB-231 and MCF-10A spheroids. Half relaxation time was defined as the time it takes for the strain to decrease to 50% of its original value after the pressure is released.

Journal: Lab on a Chip

Article Title: A microfluidic rheometer for tumor mechanics and invasion studies

doi: 10.1039/d5lc00504c

Figure Lengend Snippet: Strain measurement and the strain relaxation time of the spheroids. A1. Schematic of a tumor spheroid before (yellow, dashed lines) and during (red, solid lines) compression. The piston moves down vertically compressing a tumor spheroid underneath, resulting in the change in cross-sectional radius of the tumor spheroid. A2. A micrograph of an uncompressed MCF-10A tumor spheroid imaged at vertical midplane. The yellow outline indicates the area of the uncompressed spheroid A o , and the redline indicates the area of the compressed spheroid, A c . The scale bar is 100 μm. B. Spheroid strain response to sinusoidal, square, and triangular pressure wave compression with a period of 20 seconds from the microrheometer. The blue dots show the strain of the tumor spheroid obtained from bright field images with respect to time and the red dots represent the pressure applied to the pressure controller. The sampling rate is 15.67 Hz. C. Strain response of MDA-MB-231 and MCF-10A tumor spheroids when subjected to square wave compression. The maximum pressure here is 10 kPa. D. Half-relaxation time of the MDA-MB-231 and MCF-10A spheroids. Half relaxation time was defined as the time it takes for the strain to decrease to 50% of its original value after the pressure is released.

Article Snippet: Then, a tubing (OD and ID of 1/16′′ and 1/32′′, respectively) pre-filled with water from the pressure controller (Elveflow OB1 MK4, Paris, France) was connected to the 1.5 mm inlet on the device.

Techniques: Sampling

Schematic showing liquid flow from one microfluidic chip to the other; the lateral expansion of the liquid bridge was prevented by capillary forces induced by the superhydrophobic (SH) coating.

Journal: Journal of microelectromechanical systems : a joint IEEE and ASME publication on microstructures, microactuators, microsensors, and microsystems

Article Title: Microfluidic gasketless interconnects sealed by superhydrophobic surfaces

doi: 10.1109/jmems.2020.3000325

Figure Lengend Snippet: Schematic showing liquid flow from one microfluidic chip to the other; the lateral expansion of the liquid bridge was prevented by capillary forces induced by the superhydrophobic (SH) coating.

Article Snippet: A commercial microfluidic pressure sensor (MPS, Elveflow, Paris, France) was connected to the test platform to measure the fluid leakage pressure of the gasketless interconnects.

Techniques:

Microfluidic superhydrophobic fluid interconnects with microchannels in the upper and lower chips (left) and a close-up view of a gasketless interconnect (right), which show no leakage at the gap between two chips of the multi-port chip system.

Journal: Journal of microelectromechanical systems : a joint IEEE and ASME publication on microstructures, microactuators, microsensors, and microsystems

Article Title: Microfluidic gasketless interconnects sealed by superhydrophobic surfaces

doi: 10.1109/jmems.2020.3000325

Figure Lengend Snippet: Microfluidic superhydrophobic fluid interconnects with microchannels in the upper and lower chips (left) and a close-up view of a gasketless interconnect (right), which show no leakage at the gap between two chips of the multi-port chip system.

Article Snippet: A commercial microfluidic pressure sensor (MPS, Elveflow, Paris, France) was connected to the test platform to measure the fluid leakage pressure of the gasketless interconnects.

Techniques: