Entrainment Devices

Entrainment devices are systems that synchronize the timing or frequency of an oscillator with an external periodic signal, a phenomenon central to the physics of coupled oscillations. They work by applying a driving force, such as mechanical motion, sound, light, or an electrical signal, whose frequency interacts with the oscillator’s natural frequency and can gradually lock its phase and rate. This response depends on factors including coupling strength, frequency difference, damping, and resonance. Entrainment devices support precise timing and frequency control in applications such as clocks, sensors, communications, laboratory experiments, and the study of synchronization in physical and biological systems.

Entrainment Devices - Related Videos

Education

JoVE Core - Civil Engineering

Air-entraining Agents

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2024

Air-entraining agents improve the durability and workability of concrete in climates with frequent freezing and thawing. These agents prevent cracks by introducing small air bubbles into the mix, creating spaces accommodating water expansion when temperatures drop. The air-entraining agents lower the surface tension of water, forming stable, small air bubbles. This method is more effective than having accidental large voids, as the intentional, smaller, and evenly distributed air voids improve...

Effects of Air-entrainment in Concrete

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2024

Air entrainment in concrete significantly enhances the material's durability, especially in environments subjected to freeze-thaw cycles. Introducing small air bubbles into the concrete mix acts as internal voids that accommodate the expansion of water when it freezes, thereby alleviating internal stress and preventing structural cracks. This function is crucial in climates with significant freezing and thawing, as it protects the concrete from repeated stresses that could lead to premature...

Research

JoVE Journal - Biology
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Circadian Entrainment of Drosophila Melanogaster

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Cited by 1 •

2020

Here, we detail how to synchronize Drosophila to a circadian day. This is the first, and most important step necessary for studying biological rhythms and chronobiology.

Optogenetic Entrainment of Hippocampal Theta Oscillations in Behaving Mice

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Cited by 4 •

2018

We describe the use of optogenetics and electrophysiological recordings for selective manipulations of hippocampal theta oscillations (5-10 Hz) in behaving mice. The efficacy of the rhythm entrainment is monitored using local field potential. A combination of opto- and pharmacogenetic inhibition addresses the efferent readout of hippocampal synchronization.

Thermal Measurement Techniques in Analytical Microfluidic Devices

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Cited by 6 •

2015

Here, we present three protocols for thermal measurements in microfluidic devices.

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