Mechanical Dynamics

Mechanical dynamics is the study of how forces, mass, and energy govern the motion of physical systems over time, making it central to predicting and controlling engineered behavior. Its analysis uses Newton’s laws and equations of motion to relate applied loads to acceleration, while accounting for effects such as inertia, stiffness, damping, and vibration. Engineers apply these principles to model machines, vehicles, structures, and robotic systems, evaluate transient and oscillatory responses, identify resonance or instability, and improve safety, efficiency, and performance. Mechanical dynamics also supports simulation and design decisions before prototypes are built.

Mechanical Dynamics - Related Videos

Research

JoVE Journal - Bioengineering

Microfabricated Platforms for Mechanically Dynamic Cell Culture

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Cited by 3 •

2010

In this protocol, we demonstrate the fabrication of a microactuator array of vertically displaced posts on which the technology is based, and how this base technology can be modified to conduct high-throughput mechanically dynamic cell culture in both two-dimensional and three-dimensional culture paradigms.

Mechanical Stimulation of Chondrocyte-agarose Hydrogels

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Cited by 29 •

2012

The biosynthesis of cartilaginous extracellular matrix by chondrocytes can be affected by application of mechanical stimuli. This method describes the technique of applying dynamic compressive strains to chondrocytes encapsulated in 3D constructs and the evaluation of induced changes in chondrocyte metabolism.

Environmental Dynamic Mechanical Analysis to Predict the Softening Behavior of Neural Implants

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Cited by 4 •

2019

To allow reliable predictions of the softening of polymeric substrates for neural implants in an in vivo environment, it is important to have a reliable in vitro method. Here, the use of dynamic mechanical analysis in phosphate buffered saline at body temperature is presented.

Visualization of Cortex Organization and Dynamics in Microorganisms, using Total Internal Reflection Fluorescence Microscopy

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Cited by 12 •

2012

Total Internal Reflection Fluorescence (TIRF) microscopy is a powerful approach to observe structures close to the cell surface at high contrast and temporal resolution. We demonstrate how TIRF can be employed to study protein dynamics at the cortex of cell wall-enclosed bacterial and fungal cells.

Education

JoVE Science Education - Engineering

Dynamics of Structures

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2023

Source: Roberto Leon, Department of Civil and Environmental Engineering, Virginia Tech, Blacksburg, VA It is rare nowadays that a whole year goes by without a major earthquake event wreaking havoc somewhere around the world. In some cases, like the 2005 Banda Ache earthquake in Indonesia, the damage involved large geographic areas and casualties in the six figures. In general, the number and intensity of earthquakes is not increasing, however, the vulnerability of the built environment is...

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