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Electrical Power Systems

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46 <strong>Electrical</strong> <strong>Power</strong> <strong>Systems</strong><br />

Example 2.14: A split phase, single phase transmission line is shown in ig. 2.24. Conductors<br />

a and b in parallel form one path while conductors a¢ and b¢ in parallel form return path. The<br />

current is equally shared by the two parallel conductors. Determine the total inductance per km<br />

of the line. The radius of each conductor is 1.2 cm.<br />

Solution:<br />

Using eqn. (2.32), total inductance<br />

L = 0.9211 log D<br />

D<br />

<br />

HG<br />

Ds = 0. 7788<br />

ig. 2.24<br />

<br />

HG<br />

m<br />

s<br />

I<br />

12 .<br />

´ ´ 02 .<br />

100<br />

KJ mH/km<br />

12 / I m = 0.0432 m KJ<br />

D m = {1.6 × 1.4 × 1.2 × 1.4} 1/4 = 1.3928 m<br />

\ L = 0.921 log 13928 .<br />

0. 0432<br />

I mH/km = 1.389 mH/km.<br />

HG KJ<br />

Example 2.15: A single phase double circuit transmission line is shown in ig. 2.25. Determine<br />

the total inductance per km of the line. The radius of each conductor is 1.26 cm.<br />

Solution:<br />

Total inductance<br />

ig. 2.25<br />

<br />

HG<br />

<br />

HG<br />

L = 0.921 log D<br />

D<br />

1<br />

DS = ( r . d)<br />

2 .<br />

m<br />

s<br />

I<br />

KJ mH/km<br />

. 2<br />

¢ = 0 7788 ´ ´<br />

126<br />

1 m = 0.099 m<br />

100<br />

I KJ<br />

1

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