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In magnetically coupled coils, what is the difference between coefficient of coupling and the percentage of a flux linked to the other coil?

Electrical Engineering Asked on January 17, 2021

I have encountered this problem.

A coil A of 400 turns and another coil B of 500 turns lie near each other so that 20% of the flux produced in A links with B. It is found that a current of 5 A in coil A produces a flux of 0.33 Wb, while the same current in coil B produces a flux of 0.15 Wb. Determine the coefficient of coupling between the coils.

The solution given to me had the coefficient of coupling being different as it had to be computed. L1, L2 and M were all computed first and then solving for k.

I have not seen any source clear up this confusion. This is because an alternative formula for k is the ratio between the number of flux linkages between A and B over the flux linkage of A. So what is supposed to be the difference?

One Answer

The ratio of mutual flux to primary flux is the same as the coefficient of coupling. However, the flux linkage of the secondary is the mutual flux multiplied by the number of turns of the secondary. Therefore the flux linkage ratio is not the same as the coefficient of coupling and may have a value greater than 1 unlike the coefficient of coupling which is always less than 1 and greater than 0. Lets prove that out from some known laws.

So from Faraday's law we can derive the following relationship between the mutual inductance and the mutual flux:

$ L_m = N_s cdot frac{delta phi_m}{delta i_p} $

the mutual flux is the portion of the flux from the primary that overlaps with the secondary. Therefore the following is always true:

$ phi_m leq phi_p$

We also know flux as a function of current can be derived from the following equation:

$ L = frac{phi cdot N}{i} $

Solving for the flux we get:

$ phi = frac{L cdot i}{N}$

Lets also define the ratio of flux linkage with the secondary coil to primary coils flux:

$ R_lambda = frac{lambda_s}{phi_p} $

Solving for the flux linkage and substituting the primary flux with the earlier equation we get:

$ lambda_s = R_lambda cdot phi_p $

$ lambda_s = R_lambda cdot frac{L_p cdot i_p}{N_p} $

$ lambda_s = frac{R_lambda cdot L_p}{N_p} cdot i_p $

It is important to note here that the flux linkage, $lambda_s$, is the mutual flux multiplied by the number of turns of the secondary winding:

$lambda_s = N_s cdot phi_m$

Alternatively:

$phi_m = frac{lambda_s}{N_s}$

Since we know that flux linkage of the secondary is the portion of the primaries flux which is mutual multiplied by the number of turns in the secondary, then it stands to reason the ratio between the flux linkage and the primary flux can be any positive value, including values greater than 1.

Next we can take the derivative of our first equation by substitution:

$ L_m = N_s cdot frac{delta}{delta i_p} (frac{lambda_s}{N_s}) $

$ L_m = N_s cdot frac{delta}{delta i_p} (frac{frac{R_lambda cdot L_p}{N_p} cdot i_p}{N_s}) $

$ L_m = N_s cdot frac{delta}{delta i_p} (frac{R_lambda cdot L_p}{N_p cdot N_s} cdot i_p) $

$ L_m = N_s cdot frac{R_lambda cdot L_p}{N_p cdot N_s} $

$ L_m = frac{R_lambda cdot L_p}{N_p} $

We also know the relationship between mutual inductance and the coefficient of coupling with this equation:

$ L_m = k cdot sqrt{L_p cdot L_s} $

We can now substitute this in to get an equation showing the relationship between the flux link ratio and the coefficient of coupling:

$ k cdot sqrt{L_p cdot L_s} = frac{R_lambda cdot L_p}{N_p} $

Now we can solve for the flux linking ratio and simplify:

$ k cdot sqrt{L_p cdot L_s} = R_lambda cdot frac{L_p}{N_p} $

$ k cdot sqrt{L_p cdot L_s} cdot frac{N_p}{L_p} = R_lambda$

$ k cdot frac{N_p cdot sqrt{L_p cdot L_s}}{L_p} = R_lambda$

Since all of the constants here are positive values we can further reduce this to:

$ k cdot N_p cdot sqrt{frac{L_s}{L_p}} = R_lambda$

It should now be clear that the flux link percentage ($R_lambda$) is not the same value as the Coefficient of Coupling ($k$).

While most of the derivations above I did myself you can find most of the equations I pulled in as laws (Like Faraday's Law in the first equation) in this wonderful online book that is worth taking a read for a deeper explanation of the subject.

Correct answer by Jeffrey Phillips Freeman on January 17, 2021

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