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Mechanical Systems01:22

Mechanical Systems

678
Mechanical systems are analogous to to electrical networks where springs and masses play similar roles to inductors and capacitors, respectively. A viscous damper in mechanical systems functions similarly to a resistor in electrical networks, dissipating energy. The forces acting on a mass in such systems include an applied force in the direction of motion, counteracted by forces from the spring, a viscous damper, and the mass's acceleration. This interplay of forces is mathematically...
678
Frequency of Spring-Mass System01:17

Frequency of Spring-Mass System

7.9K
One interesting characteristic of the simple harmonic motion (SHM) of an object attached to a spring is that the angular frequency, and the period and frequency of the motion, depend only on the mass and the force constant of the spring, and not on other factors such as the amplitude of the motion or initial conditions. We can use the equations of motion and Newton's second law to find the angular frequency, frequency, and period.
Consider a block on a spring on a frictionless surface. There...
7.9K
Forced Oscillations01:06

Forced Oscillations

8.1K
When an oscillator is forced with a periodic driving force, the motion may seem chaotic. The motions of such oscillators are known as transients. After the transients die out, the oscillator reaches a steady state, where the motion is periodic, and the displacement is determined.
8.1K
Sound Waves: Resonance01:14

Sound Waves: Resonance

3.5K
Resonance is produced depending on the boundary conditions imposed on a wave. Resonance can be produced in a string under tension with symmetrical boundary conditions (i.e., has a node at each end). A node is defined as a fixed point where the string does not move. The symmetrical boundary conditions result in some frequencies resonating and producing standing waves, while other frequencies interfere destructively. Sound waves can resonate in a hollow tube, and the frequencies of the sound...
3.5K
Concept of Resonance and its Characteristics01:19

Concept of Resonance and its Characteristics

6.8K
If a driven oscillator needs to resonate at a specific frequency, then very light damping is required. An example of light damping includes playing piano strings and many other musical instruments. Conversely, to achieve small-amplitude oscillations as in a car's suspension system, heavy damping is required. Heavy damping reduces the amplitude, but the tradeoff is that the system responds at more frequencies. Speed bumps and gravel roads prove that even a car's suspension system is not...
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Magnetic Damping01:17

Magnetic Damping

1.1K
Eddy currents can produce significant drag on motion, called magnetic damping. For instance, when a metallic pendulum bob swings between the poles of a strong magnet, significant drag acts on the bob as it enters and leaves the field, quickly damping the motion.
If, however, the bob is a slotted metal plate, the magnet produces a much smaller effect. When a slotted metal plate enters the field, an emf is induced by the change in flux; however, it is less effective because the slots limit the...
1.1K

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Related Experiment Video

Updated: Feb 16, 2026

Fabrication and Testing of Microfluidic Optomechanical Oscillators
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Strong forces in optomechanically actuated resonant mass sensor.

Jesper Håkansson, Bart Kuyken, Dries Van Thourhout

    Optics Express
    |December 17, 2017
    PubMed
    Summary

    This study presents an all-photonically transduced resonant mass sensor. It overcomes limitations of traditional methods, achieving high sensitivity for small mass detection using optomechanical forces.

    Area of Science:

    • Optomechanics
    • Nanotechnology
    • Photonics

    Background:

    • Resonance mass sensors are crucial for sensitive detection but face challenges with miniaturization.
    • Increasing resonance frequencies and decreasing sensor sizes strain traditional transduction and readout methods.

    Purpose of the Study:

    • To demonstrate an all-photonically transduced resonant mass sensor.
    • To overcome the limitations of conventional methods in miniaturized sensors.

    Main Methods:

    • Utilizing strong optomechanical forces within slot waveguides to drive the mechanical resonator.
    • Employing low optical power for efficient signal transduction.

    Main Results:

    • Achieved a good signal-to-noise ratio at low optical powers (120 µW).

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  • Demonstrated frequency noise resolution equivalent to detecting 500 kDa masses.
  • Conclusions:

    • All-photonics transduction offers a viable solution for highly sensitive, miniaturized resonant mass sensors.
    • Optomechanical forces in slot waveguides provide effective transduction for mass sensing applications.