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The Maximum Power Transfer Theorem01:20

The Maximum Power Transfer Theorem

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Consider a linear AC Thevenin equivalent circuit connected to a load impedance.
The load connected draws the current, and the circuit delivers the power to the load. The alternating current flowing through the load is determined using the rectangular form of voltages, currents, network impedance, and load impedance. The average power delivered to the load is obtained from the product of the square of current and load resistance.
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Design Example: Resistive Touchscreen01:14

Design Example: Resistive Touchscreen

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A device engineer plays a crucial role in designing user interfaces for mobile devices. One such interface is the resistive touchscreen, which fundamentally consists of two metallic layers: a flexible upper layer and a rigid lower layer, separated by a narrow gap. The high resistance between these two layers is a key characteristic of this design.
When a user touches the screen, the two layers make contact at a specific point known as the touchpoint. This contact reduces the resistance between...
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Maximum Power Transfer01:16

Maximum Power Transfer

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Numerous practical applications within engineering disciplines, such as telecommunications, necessitate optimizing power delivery to a connected load. This pursuit, however, entails inherent internal losses, which can either equal or exceed the power supplied to the load. The Thevenin equivalent circuit is helpful in finding the maximum power a linear circuit can deliver to a load. It is assumed in this context that the load resistance can be adjusted.
By substituting the entire circuit with...
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Generating Electromagnetic Radiations01:10

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The German physicist Heinrich Hertz (1857–1894) was the first to generate and detect certain types of electromagnetic waves in the laboratory. Starting in 1887, he performed a series of experiments that confirmed the existence of electromagnetic waves and verified that they travel at the speed of light. Hertz used an alternating-current RLC (resistor-inductor-capacitor) circuit that resonated at a known frequency and connected it to a loop of wire. High voltages induced across the gap in...
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Energy Stored In A Coaxial Cable01:31

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A coaxial cable consists of a central copper conductor used for transmitting signals, followed by an insulator shield, a metallic braided mesh that prevents signal interference, and a plastic layer that encases the entire assembly.
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The Power Superposition Principle01:19

The Power Superposition Principle

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Consider a circuit with two sinusoidal voltage sources. Each one influences the circuit independently, and the superposition principle helps us understand the combined effect by adding up the responses from each source.
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Related Experiment Video

Updated: Aug 10, 2025

Construction of a Wireless-Enabled Endoscopically Implantable Sensor for pH Monitoring with Zero-Bias Schottky Diode-based Receiver
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Resonant-Based Wireless Power Transfer System Using Electric Coupling for Transparent Wearable Devices and Null Power

Kyeungwon Bang1, Hongguk Bae1, Sangwook Park1

  • 1Department of Electronic Engineering, Daegu University, Gyeongsan 38453, Republic of Korea.

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

Metal mesh sheets offer comparable performance to copper plates in wireless power transfer systems. This study analyzes coupler efficiency and identifies structural factors influencing null-power points in electrical resonance systems.

Keywords:
electric couplingmetal meshnull power pointresonant-based WPT

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Area of Science:

  • Electrical Engineering
  • Materials Science
  • Electromagnetics

Background:

  • Wireless power transfer (WPT) systems require efficient energy transmission components.
  • Copper plates are commonly used as couplers, but alternative materials are sought for improved performance and cost-effectiveness.
  • Understanding null-power points is crucial for optimizing WPT system efficiency.

Purpose of the Study:

  • To evaluate the transfer efficiency of four-plate-structured copper plate and metal mesh sheet couplers.
  • To identify the primary causes of the null-power point phenomenon in electrical resonance WPT systems.
  • To compare the performance of metal mesh couplers against traditional copper plate couplers.

Main Methods:

  • Equivalent circuit model analysis was employed to understand coupler behavior.
  • Experimental fabrication and testing of both copper plate and metal mesh couplers were conducted.
  • High-Frequency Structure Simulator (HFSS) was used for detailed electromagnetic simulations.

Main Results:

  • Metal mesh sheet couplers demonstrated performance equivalent to copper plate couplers.
  • The null-power point phenomenon was found to be predominantly influenced by the coupler structure.
  • Both main and cross-coupling between transmitter and receiver dictate the null-power point.

Conclusions:

  • Metal mesh material is a viable and effective alternative to copper plates for WPT couplers.
  • The coupler's structural design is the key determinant of performance and the occurrence of null-power points.
  • Optimizing coupler structure can mitigate null-power points, enhancing overall WPT system efficiency.