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JEE Physics
Maximum Power Transfer Theorem

Maximum Power Transfer Theorem

The Maximum Power Transfer Theorem affirms that for maximum power to be transferred from a source to a load, the resistance of the load matches to the resistance of the source. This theorem is important in electrical engineering as it helps in designing circuits where power efficiency is critical, such as in audio systems, communication devices, and power electronics. The theorem is particularly useful in matching impedances in AC circuits and analyzing power efficiency in various systems.

1.0Statement of Maximum Power Transfer Theorem

This theorem states that output power will be maximum if external resistance connected to the source matches to the internal resistance of the source.

2.0Formula And Circuit Diagram For Maximum Power Transfer Theorem

maximum power transfer circuit diagram

Circuit having battery of emf E having internal resistance r be connected across the load R. Let I be the current flowing through the resistance R then power dissipated in the form of heat energy.

3.0Proof of Maximum Power Transfer Theorem

P=I2R

I=R+rE​

P=(R+r)2E2​………….(1)

Output Power will be maximum if

dRdP​=0

dRd​[(R+r)2E2R​]=0

dRE2d​[(R+r)2R​]

dRE2d​[R(R+r)−2]=0

E2[(R+r)−2×1−2R(R+r)−3]=0

E2[(R+r)21​−(R+r)32R​]=0            Since E2=0 

(R+r)21​−(R+r)32R​=0

(R+r)21​=(R+r)32R​

1=(R+r)2R​

R+r=2R

R=r

⇒ For maximum transfer of power the external resistance connected to the source should be equal to the internal resistance of the source R=r

PMax​=(R+r)2E2R​=4R2E2R​

PMax ​=4RE2​


Illustration: A 20 V battery of internal resistance of 4 is connected to a rheostat. Find the value of the current drawn from the battery to produce maximum power in the rheostat.

Solution: Rate of Heat Produced

P=I2R=( Total Resistance EMF​)2×R=(R+r20​)2×R

For P to be maximum, dRdP​=0

dRd​[(R+420​)2R]=0

dRd​[R×(R+4)−2]=0

R+42R​=1

R=4Ω

Current Drawn 

I=R+420​=4+420​=2.5 A

Rate of heat produced is maximum when external resistance matches to the internal resistance of the battery.  (R=r)

4.0Advantage of Maximum Power Transfer Theorem

  1. The theorem is widely used in designing circuits for maximum energy transfer, particularly in audio, communication, and RF systems.
  2. In power systems, understanding the load-resistance matching helps in the effective distribution of power from sources to various loads.
  3. The Maximum Power Transfer Theorem is crucial in impedance matching for AC circuits, where maximum power is transferred when the load impedance matches the source impedance. This is particularly important in radio frequency (RF) and audio applications, such as antenna design and speaker matching.

5.0Limitation of Maximum Power Transfer Theorem

  • The efficiency of power transfer (R=r) is only 50%. This means that half of the power is dissipated in the source resistance​ as heat, and only the remaining 50% reaches the load. 

Maximum Power Transfer Theorem

  • Source having battery or generator of EMF E having internal resistance r, this source is connected with load resistance R known as load resistance.
  • If current I flowing through the R and V be the voltage across the resistance, then power delivered to the load resistance, output power of the source is given as, Pout ​=VI
  • Since the battery has an internal resistance (r),there is a potential drop across the internal resistance =I r

V=E-I r

Pout ​=(E−Ir)I

Pout ​=(EI−I2r)

Here E I is the power supplied by the source or battery.

  • Input Power Pin​=EI 

⇒I2r is the difference between input and output powers and is dissipated as heat in the source itself.

  • Efficiency of the source is given as,

η= Input Power  Output Power ​=IEVI​=EV​

V=IR=(R+r)ER​ (∴I=R+rE​)     

η=E(R+r)ER​=(R+r)R​

η=EV​=(R+r)R​

A source or a battery delivers maximum power when R=r 

%η=2RR​×100%=50%

Efficiency of a source delivering maximum power is 50 %.

6.0Sample Questions On Maximum Power Transfer Theorem

Q-1.State the condition for maximum power transfer theorem?

Solution: When the load resistance equals the source resistance, the power delivered to the load is maximized (RL​=RS​)


Q-2.If the source resistance is 50 Ω, but the load resistance is much smaller or larger than 50 Ω, what happens to the power transferred to the load?

Solution:

  • When RL​ ​ is much smaller than RS​​, most of the voltage is dropped across the source resistance, and less power is transferred to the load.
  • When RL​ ​ is much larger than RS​, the current through the load is very small, again leading to lower power transfer.
  • The power transferred to the load will be less than the maximum power that can be transferred when (RL​=RS​).

Table of Contents


  • 1.0Statement of Maximum Power Transfer Theorem
  • 2.0Formula And Circuit Diagram For Maximum Power Transfer Theorem
  • 3.0Proof of Maximum Power Transfer Theorem
  • 4.0Advantage of Maximum Power Transfer Theorem
  • 5.0Limitation of Maximum Power Transfer Theorem
  • 6.0Sample Questions On Maximum Power Transfer Theorem

Frequently Asked Questions

The efficiency of power transfer (R=r) is only 50%. This means that half of the power is dissipated in the source resistance​ as heat, and only the remaining 50% reaches the load.

This theorem states that output power will be maximum if external resistance connected to the source is equal to the internal resistance of the source.The Maximum Power Transfer Theorem suggests that for maximum loudness (which can be a design goal), the speaker impedance should match the amplifier's output impedance.

Maximum Power Transfer Theorem ensures the maximum power is transferred to the load, it results in 50% efficiency, as half of the power is dissipated in the source resistance. In most practical applications (such as power transmission, electric motors, and communication systems), efficiency is prioritized over maximum power transfer, so the load resistance is often designed to be much higher than the source resistance.

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