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Motional Emf01:22

Motional Emf

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Magnetic flux depends on three factors: the strength of the magnetic field, the area through which the field lines pass, and the field's orientation with respect to the surface area. If any of these quantities vary, a corresponding variation in magnetic flux occurs. If the area through which the magnetic field lines are passing changes, then the magnetic flux also changes. This change in the area can be of two types: the flux through the rectangular loop increases as it moves into the...
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Electro-mechanical Systems01:19

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Electromechanical systems are intricate configurations that effectively combine electrical and mechanical elements to achieve a desired outcome. Central to many of these systems is the DC motor, a device that converts electrical energy into mechanical motion, enabling various applications ranging from simple fans to complex robotic mechanisms.
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Magnetic Damping01:17

Magnetic Damping

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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.
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Magnetic Force01:18

Magnetic Force

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In addition to the electric forces between electric charges, moving electric charges exert magnetic forces on each other. A magnetic field is created by a moving charge or a group of moving charges known as the electric current. A magnetic force is experienced by a second current or moving charge in response to this magnetic field. Fundamentally, interactions between moving electrons in the atoms of two bodies produce magnetic forces between them.
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Induction01:16

Induction

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An emf is induced when the magnetic field in a coil is changed by pushing a bar magnet into or out of the coil. emfs of opposite signs are produced by motion in opposite directions, and the directions of emfs are also reversed by reversing poles. The same results are produced if the coil is moved rather than the magnet—it is the relative motion that is important. The faster the motion, the greater the emf. Additionally, there is no emf when the magnet is stationary relative to the coil.
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Force On A Current Loop In A Magnetic Field01:17

Force On A Current Loop In A Magnetic Field

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Magnetic forces on wires carrying current are most frequently applied in motors. A DC motor is a device that converts electrical energy into mechanical work. In motors, wire loops are enclosed in a magnetic field. When current flows through the loops, the magnetic field applies torque, which causes the shaft to rotate. The direction of the current is reversed once the loop's surface area is lined up with the magnetic field, causing a constant torque on the loop. During the process,...
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Related Experiment Video

Updated: Aug 10, 2025

High-Speed Magnetic Tweezers for Nanomechanical Measurements on Force-Sensitive Elements
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Towards a MEMS Force Sensor via the Electromagnetic Principle.

Rene Hartansky1, Martin Mierka1, Vladimir Jancarik1

  • 1Faculty of Electrical Engineering and Information Technology, Institute of Electrical Engineering, Slovak University of Technology, Ilkovicova 3, 812 19 Bratislava, Slovakia.

Sensors (Basel, Switzerland)
|February 11, 2023
PubMed
Summary

This study introduces a novel force measurement method using micro electromechanical systems (MEMS) and a compact compliant mechanical body (CCMB). The technique converts applied force into a time-delay, enabling precise measurements up to 2.5 N.

Keywords:
MEMSelectromagnetic fieldradiatorvoltage controlled oscillator

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Area of Science:

  • Physics
  • Electrical Engineering
  • Materials Science

Background:

  • Advancements in force measurement are driven by new materials and sensor technologies.
  • Emerging demands necessitate miniaturized and easily applicable force sensors, such as micro electromechanical systems (MEMS).
  • Existing force sensors operate on diverse principles and find applications across various industries, including medicine.

Purpose of the Study:

  • To propose and validate a novel force measurement principle based on force-to-time-delay conversion.
  • To investigate the use of micro electromechanical systems (MEMS) and compact compliant mechanical bodies (CCMB) as force transducers.
  • To analyze the reverse influence of a transducer's resonant frequency on the surrounding electromagnetic field.

Main Methods:

  • Developed a force measurement system utilizing a compact compliant mechanical body (CCMB) with an embedded parallel resonant circuit (PRC) as a transducer.
  • Employed a force-to-time-delay conversion principle, measuring force by observing the transducer's influence on a voltage-controlled oscillator (VCO) DC supply current.
  • Validated the proposed method through mathematical analysis, simulation, and prototype measurements.

Main Results:

  • Demonstrated that the transducer's resonant frequency has a detectable reverse influence on the VCO DC supply current.
  • Determined applied force by analyzing the position of the DC supply current ripple during the VCO frequency sweep.
  • Validated the CCMB prototype for forces up to approximately 2.5 N at a sampling frequency of 23 kHz, with measured time-delays ranging from 14.5 µs to 27.4 µs.

Conclusions:

  • The proposed force-to-time-delay conversion principle offers a viable method for precise force measurement.
  • The integration of MEMS and CCMB with PRC transducers shows promise for miniaturized and effective force sensing.
  • The study successfully verified the method's functionality through simulation and prototype testing, paving the way for practical applications.