Pressure-driven Control

Pressure-driven control is the use of applied pressure differences to regulate fluid movement, material transport, or mechanical behavior in an engineered system. In bioengineering, a pressure gradient forces liquid through channels or porous structures, while flow resistance, flexible membranes, valves, and feedback sensors determine how rapidly and accurately the system responds. This approach supports microfluidic handling, perfusion of engineered tissues, sample processing, and controlled delivery in biomedical devices. By translating pressure into predictable flow or deformation, it enables precise control of cellular and biomolecular environments, helping researchers reproduce physiological conditions, improve device performance, and scale laboratory processes.

Pressure-driven Control - Related Videos

Research

JoVE Journal - Engineering

Synthesis and Microdiffraction at Extreme Pressures and Temperatures

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Cited by 5 •

2013

The laser heated diamond anvil cell combined with synchrotron micro-diffraction techniques allows researchers to explore the nature and properties of new phases of matter at extreme pressure and temperature (PT) conditions. Heterogeneous samples can be characterized in situ under high pressure by 2D mapping and combined powder, single-crystal and multigrain diffraction approaches.

Research

JoVE Journal - Medicine
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Pressure Controlled Ventilation to Induce Acute Lung Injury in Mice

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Cited by 7 •

2011

A murine model for ventilator induced lung injury is an important tool to study an acute lung injury in vivo. Here, we report an easy applicable in situ model for acute lung injury using high-pressure mechanical ventilation to induce acute failure of the lung.

Sensitivity Enhancement of Soft Capacitive Pressure Sensors Using a Solvent Evaporation-Based Porosity Control Technique

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Cited by 1 •

2023

A simple and cost-efficient fabrication method based on the solvent evaporation technique is presented to optimize the performance of a soft capacitive pressure sensor, which is enabled by porosity control in the dielectric layer using different mass ratios of the molding PDMS/toluene solution.

Research

JoVE Journal - Chemistry
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Light-driven Enzymatic Decarboxylation

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Cited by 6 •

2016

We describe a protocol for the light-catalyzed generation of hydrogen peroxide — a cofactor for oxidative transformations.

Constant Pressure-controlled Extrusion Method for the Preparation of Nano-sized Lipid Vesicles

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Cited by 29 •

2012

This protocol describes an extrusion method for preparing lipid vesicles of sub-micron sizes with a high degree of homogeneity. This method uses a pressure-controlled system with controlled nitrogen flow rates for liposome preparation. The lipid preparation1,2, liposome extrusion, and size characterization will be presented herein.

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