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EXAMPLE A pole mounted 100kVA distribution transformer has the following characteristics R 1 = 1.56 R 2 = 0.005 X 1 = 4.66 X 2 = 0.016 Volts Ratio = 6600 / 230
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(a)If the no load current is given by 0.251 - j0.9680, find R O and X M (b) For a full load current at 0.8pf lag, find the secondary voltage and voltage regulation (c) Find the efficiency of the transformer
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V 1 = 6600V, voltage turns ratio = 6600 / 230 = 28.7 Therefore V 2 = 230 R 2 is going from LV to HV side - it therefore increases in value. Since a 2 = (28.7) 2 R S = R 1 + (28.7) 2 R 2 = 5.68 X S = X 1 + (28.7) 2 X 2 = 17.84 (a) I NL = I 0 - I m = 0.251 - j0.9680 Amps R O = V 1 / I 0 = 6600 / 0.251 = 26.3k X M = V 1 / I m = 6600 / 0.9680 = 6.82k (b) A T/F at 100kVA
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For HV side, I FL1 = kVA / V 1 = 100 000 / 6 600 = 15.15 Amps For LV side, I FL2 = kVA / V 2 = 100 000 / 230 = 434.78 Amps Load current = 15.15 where = cos -1 pf = cos -1 0.8 = -36 o Therefore Load Current = 15.15 -36.9 o
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E 1 = V 1 - I L Z L E 1 = V 1 - I L ( R S + X S ) = ( 6600 + j0 ) – 15.15 -36.9 o ( 5.68 + j17.84 ) = ( 6600 + j0 ) – { [15.15 -36.9 o ] [ 18.72 o ] } = 6600 – { 283.6 o }= 6600 – 230.7 – j164.6 = 6369.3 – j164.6 V (6371.4 o V) E 2 = V 2 = E 1 / a = 6371.4 / 28.7 = 222 V Regulation = (V NL - V FL ) / V FL = 100 x (230 - 222) / 222 = 3.6%
![E 1 = V 1 - I L Z L E 1 = V 1 - I L ( R S + X S ) = ( j0 ) – o ( j17.84 ) = ( j0 ) – { [15.15 o ] [ o ] } = 6600 – { o }= 6600 – – j164.6 = – j164.6 V ( o V) E 2 = V 2 = E 1 / a = / 28.7 = 222 V Regulation = (V NL - V FL ) / V FL = 100 x ( ) / 222 = 3.6%](http://images.slideplayer.com/26/8729740/slides/slide_5.jpg "E 1 = V 1 - I L Z L E 1 = V 1 - I L ( R S + X S ) = ( j0 ) – o ( j17.84 ) = ( j0 ) – { [15.15 o ] [ o ] } = 6600 – { o }= 6600 – – j164.6 = – j164.6 V ( o V) E 2 = V 2 = E 1 / a = / 28.7 = 222 V Regulation = (V NL - V FL ) / V FL = 100 x ( ) / 222 = 3.6%")
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(c) Efficiency = P out / P in = (P in - Losses) / P in LOSSES No load losses = I O 2 R O = (0.251) 2 (26 300) = 1.66kW Cu Losses = I 1 2 R S = (15.15) 2 (5.68) = 1.3kW So Efficiency = 100 x [V 2 I 2 cos ] / [V 2 I 2 cos + sum of losses] For max efficiency P NL = P Cu
![(c) Efficiency = P out / P in = (P in - Losses) / P in LOSSES No load losses = I O 2 R O = (0.251) 2 (26 300) = 1.66kW Cu Losses = I 1 2 R S = (15.15) 2 (5.68) = 1.3kW So Efficiency = 100 x [V 2 I 2 cos ] / [V 2 I 2 cos + sum of losses] For max efficiency P NL = P Cu](http://images.slideplayer.com/26/8729740/slides/slide_6.jpg "(c) Efficiency = P out / P in = (P in - Losses) / P in LOSSES No load losses = I O 2 R O = (0.251) 2 (26 300) = 1.66kW Cu Losses = I 1 2 R S = (15.15) 2 (5.68) = 1.3kW So Efficiency = 100 x [V 2 I 2 cos ] / [V 2 I 2 cos + sum of losses] For max efficiency P NL = P Cu")
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= 100 x [ ( 6371) ( 15.15 ) ( cos –36.9 ) ] ________________________________________________________________ [( 6371 ) ( 15.15 ) ( cos –36.9 ) + 1660 + 1300 ] = 96.3% N.B. a transformer only has two losses, no load losses and cu losses.
![= 100 x [ ( 6371) ( ) ( cos –36.9 ) ] ________________________________________________________________ [( 6371 ) ( ) ( cos –36.9 ) ] = 96.3% N.B.](http://images.slideplayer.com/26/8729740/slides/slide_7.jpg "a transformer only has two losses, no load losses and cu losses..")
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