Electromechanical Systems

Electromechanical systems are integrated devices that couple electrical and mechanical components to sense, control, or produce motion, making them central to modern engineering. They operate through energy conversion and feedback: motors transform electrical power into mechanical motion, generators perform the reverse conversion, and sensors and controllers regulate performance in response to changing conditions. Engineers apply these systems in robotics, automation, transportation, manufacturing equipment, medical devices, and renewable-energy technologies. Studying their electrical circuits, mechanical dynamics, control algorithms, and materials helps researchers improve efficiency, precision, reliability, and safety while developing smarter machines and more sustainable infrastructure.

Electromechanical Systems - Related Videos

Research

JoVE Journal - Bioengineering

Revealing Electromechanical Control of Tissue Homeostasis Using a Two-Layer Microfluidic Device

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2025

Here, we present a protocol to fabricate a unique two-layer microfluidic device to study the electromechanical regulation of epithelial tissue homeostasis. The device applies static physiological electric currents perpendicular to the tissue plane, impacting cell-cell adhesion, proliferation, and extrusion. Live-cell imaging and mechanical stress measurements reveal mechanisms of these processes.

Research

JoVE Journal - Engineering
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Fabrication of Carbon-Based Ionic Electromechanically Active Soft Actuators

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Cited by 3 •

2020

This article describes a fast and simple manufacturing process of ionic electromechanically active composite materials for actuators in biomedical, biomimetic and soft robotics applications. The key fabrication steps, their importance for the actuators' final properties, and some of the main characterization techniques are described in detail.

Research

JoVE Journal - Engineering
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A Novel Method for In Situ Electromechanical Characterization of Nanoscale Specimens

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Cited by 2 •

2017

Isolating electrical and thermal effects on electrically assisted deformation (EAD) is very difficult using macroscopic samples. Metallic sample micro- and nanostructures together with a custom test procedure have been developed to evaluate the impact of applied current on the formation without joule heating and evolution of dislocations on these samples.

Research

JoVE Journal - Medicine
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Electromechanical Assessment of Optogenetically Modulated Cardiomyocyte Activity

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Cited by 7 •

2020

We present a protocol for evaluating the electromechanical effects of GtACR1 activation in rabbit cardiomyocytes. We provide detailed information on cell isolation, culturing and adenoviral transduction, and on functional experiments with the patch-clamp and carbon-fiber techniques.

The Use of Chemostats in Microbial Systems Biology

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Cited by 67 •

2013

Cell growth rate is a regulated process and a primary determinant of cell physiology. Continuous culturing using chemostats enables extrinsic control of cell growth rate by nutrient limitation facilitating the study of molecular networks that control cell growth and how those networks evolve to optimize cell growth.

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