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5.1 Name TWO parts of the cooling system in three-phase transformers - NSC Electrical Technology Power Systems - Question 5 - 2023 - Paper 1

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5.1 Name TWO parts of the cooling system in three-phase transformers. 5.2 Name the type of loss that contributes the most to heat in three-phase transformers. 5.3 ... show full transcript

Worked Solution & Example Answer:5.1 Name TWO parts of the cooling system in three-phase transformers - NSC Electrical Technology Power Systems - Question 5 - 2023 - Paper 1

Step 1

Name TWO parts of the cooling system in three-phase transformers.

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Answer

The two parts of the cooling system in three-phase transformers are:

  1. Radiator
  2. Oil conservator (also referred to as a tank)

Step 2

Name the type of loss that contributes the most to heat in three-phase transformers.

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Answer

The type of loss that contributes the most to heat in three-phase transformers is copper losses, which arise due to the resistance in the windings.

Step 3

State ONE application of a star-delta transformer in a transmission network.

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Answer

A star-delta transformer is commonly used in high voltage supplies to step down voltage levels, ensuring safe distribution to industrial and residential loads.

Step 4

State how eddy current losses are reduced in transformers.

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Answer

Eddy current losses are reduced in transformers by constructing the core out of thin laminations of silicon steel, which minimizes the circulating currents.

Step 5

Explain why heat should be dissipated in transformers.

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Answer

Heat should be dissipated in transformers to maintain the operational efficiency and reliability of the equipment. Excessive heat can degrade insulation materials, leading to failures, reduced lifespan, and potential safety hazards.

Step 6

Name the cooling method preferred for very large transformers of several hundred MVA (megavolt ampere).

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Answer

The preferred cooling method for very large transformers is oil forced, water forced (OFWF) cooling, where oil circulates through radiators to enhance heat dissipation.

Step 7

State the function of the Buchholz relay in a transformer.

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Answer

The Buchholz relay monitors the gas formation inside the oil of a transformer. It serves to sound an alarm when gas is formed, isolate the transformer when gas exceeds a certain level, and protect the transformer from damage.

Step 8

Calculate the: 5.8.1 Primary line current

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Answer

To calculate the primary line current (IL1I_{L1}):

IL1=S3VL1=100kVA311kV5.25AI_{L1} = \frac{S}{\sqrt{3} V_{L1}} = \frac{100\, \text{kVA}}{\sqrt{3} \cdot 11\, \text{kV}} \approx 5.25\, \text{A}

Step 9

Calculate the: 5.8.2 Secondary phase voltage

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Answer

To determine the secondary phase voltage (VPH2V_{PH2}):

Using the transformer ratio: N1N2=VPH1VPH2\frac{N_{1}}{N_{2}} = \frac{V_{PH1}}{V_{PH2}}

Calculating: VPH2=VL1NR=11kV48229.17VV_{PH2} = \frac{V_{L1}}{N_{R}} = \frac{11\, \text{kV}}{48} \approx 229.17\, \text{V}

Step 10

Calculate the: 5.8.3 Active (true) power

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Answer

The active (true) power (PP) can be calculated as:

P=Spf=1000000.9=90kWP = S \cdot \text{pf} = 100000 \cdot 0.9 = 90\, \text{kW}

Step 11

Draw a diagrammatic representation of the transformer coils.

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Answer

Here is a simple diagrammatic representation of the transformer coils:

L1    L1    L2    L2    L3    L3
  |------|    |------|    |------|
  |      |    |      |    |      |
  N      N    N      N    N      N

In this representation, the lines indicate connections and the primary coils are denoted accordingly.

Step 12

Explain whether it is a step-down or step-up transformer.

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Answer

This is a step-down transformer because the winding ratio is 48:1, meaning the primary voltage is higher than the secondary voltage.

Step 13

Explain, with a reason, the relationship between voltage and current of a step-down transformer.

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Answer

In a step-down transformer, the voltage is reduced while the current is increased to maintain power conservation. This is a consequence of the transformer equation, where the power input equals the power output, leading to the relationship: Pin=PoutVinIin=VoutIoutP_{in} = P_{out} \Rightarrow V_{in}I_{in} = V_{out}I_{out}

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