Sign In

7.9 : The Maximum Power Transfer Theorem

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.

Equation 1

Equation 2

The maximum power transfer delivered to the load is determined by calculating the power derivative with respect to the load resistance. The derivative is then equated to zero for the maximum condition. So, for maximum average power transfer, the load impedance's reactance is the negative of the Thevenin impedance's reactance, and its resistance equals the Thevenin impedance's resistance. When these conditions are met, the load impedance is said to be the complex conjugate of the circuit's Thevenin impedance. The maximum power is obtained when the load impedance meets the above mentioned condition.

Equation 3

Equation 4

Equation 5

According to the maximum average power theorem, the load impedance equals the complex conjugate of the Thevenin impedance. For purely resistive loads, maximum average power transfer occurs when the load impedance equals the magnitude of Thevenin impedance.

In wireless communications, the antenna's impedance is matched to the transmission line or receiver circuit's impedance, maximizing power transfer, ensuring optimal signal strength and enhancing communication quality and range.

Tags
Maximum Power Transfer TheoremThevenin Equivalent CircuitLoad ImpedanceAverage PowerPower DerivativeReactanceResistive LoadsComplex ConjugateImpedance MatchingWireless CommunicationsSignal StrengthTransmission LineReceiver Circuit

From Chapter 7:

article

Now Playing

7.9 : The Maximum Power Transfer Theorem

AC Steady State Power

136 Views

article

7.1 : Instantaneous Power

AC Steady State Power

88 Views

article

7.2 : Average Power

AC Steady State Power

316 Views

article

7.3 : Effective Value of a Periodic Waveform

AC Steady State Power

147 Views

article

7.4 : Complex Power

AC Steady State Power

78 Views

article

7.5 : Conservation of AC Power

AC Steady State Power

75 Views

article

7.6 : Power Factor

AC Steady State Power

60 Views

article

7.7 : Power Factor Correction

AC Steady State Power

42 Views

article

7.8 : The Power Superposition Principle

AC Steady State Power

38 Views

JoVE Logo

Privacy

Terms of Use

Policies

Research

Education

ABOUT JoVE

Copyright © 2025 MyJoVE Corporation. All rights reserved