tan delta test

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Tan Delta Test A pure insulator when is connected across line and earth, it behaves as a capacitor. In an ideal insulator, as the insulating material which acts as dielectric too, is 100 % pure, the electric current passing through the insulator, only have capacitive component. There is no resistive component of the current, flowing from line to earth through insulator as in ideal insulating material, there is zero percent impurity. In pure capacitor, the capacitive electric current leads the applied voltage by 90°. In practice, the insulator cannot be made 100% pure. Also due to ageing of insulator the impurities like, dirt and moisture enter into it. These impurities provide conductive path to the current. Consequently, leakage electric current flowing from line earth through insulator has also resistive component. Hence, it is needless to say that, for good insulator, this resistive component of leakageelectric current is quite low. In other way the healthiness of an electrical insulator can be determined by ratio of resistive component to capacitive component. For good insulator this ratio would be quite low. This ratio is commonly known as tanδ or tan delta. Sometimes it is also referred as dissipation factor.

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Page 1: Tan Delta Test

Tan Delta Test

A pure insulator when is connected across line and earth, it behaves as a capacitor. In an ideal insulator, as the insulating material which acts as dielectric too, is 100 % pure, theelectric current passing through the insulator, only have capacitive component. There is no resistive component of the current, flowing from line to earth through insulator as in ideal insulating material, there is zero percent impurity.

In pure capacitor, the capacitive electric current leads the applied voltage by

90°.

In practice, the insulator cannot be made 100% pure. Also due to ageing of

insulator the impurities like, dirt and moisture enter into it. These impurities

provide conductive path to the current. Consequently, leakage electric

current flowing from line earth through insulator has also resistive

component.

Hence, it is needless to say that, for good insulator, this resistive component

of leakageelectric current is quite low. In other way the healthiness of an

electrical insulator can be determined by ratio of resistive component to

capacitive component. For good insulator this ratio would be quite low. This

ratio is commonly known as tanδ or tan delta. Sometimes it is also referred

as dissipation factor.

Page 2: Tan Delta Test

In the vector diagram above, the systemvoltage is drawn along x-axis.

Conductiveelectric current i.e. resistive component of leakage current, IR will

also be along x-axis.

As the capacitive component of leakageelectric current IC leads

system voltage by 90°, it will be drawn along y-axis.

Now, total leakage electric current IL(Ic + IR) makes an angle δ (say) with y-

axis.

Now, from the diagram above, it is cleared, the ratio, IR to IC is nothing but

tanδ or tan delta.

NB: This δ angle is known as loss angle.

Method of Tan Delta Testing

The cable, winding, current transformer, potential transformer, transformer

bushing, on which tan delta test or dissipation factor test to be

conducted, is first isolated from the system. A very low frequency

Page 3: Tan Delta Test

test voltage is applied across the equipment whose insulation to be tested.

First the normal voltage is applied. If the value of tan delta appears good

enough, the applied voltage is raised to 1.5 to 2 times of normal voltage, of

the equipment. The tan delta controller unit takes measurement of tan delta

values. A loss angle analyser is connected with tan delta measuring unit to

compare the tan delta values at normal voltage and higher voltages, and

analyse the results.

During test it is essential to apply test voltage at very low frequency.

Reason of applying Very Low Frequency

If frequency of applied voltage is high, then capacitive reactance of the

insulator becomes low, hence capacitive component of electric current is

high. The resistive component is nearly fixed, it depends upon

applied voltage and conductivity of the insulator. At high frequency as

capacitive current, is large, hence, the amplitude of vector sum of capacitive

and resistive components of electric current becomes large too.

Therefore, required apparent power for tan delta test would become high

enough which is not practical. So to keep the power requirement for

this dissipation factor test, very low frequency test voltage is required.

The frequency range for tan delta test is generally from 0.1 to 0.01 Hz

depending upon size and nature of insulation.

There is another reason for which it is essential to keep the input frequency

of the test as low as possible.

As we know,

That means, dissipation factor tanδ ∝ 1 / f.

Hence, at low frequency, the tan delta number is high, the measurement

becomes easier.

Page 4: Tan Delta Test

How to predict the Result of Tan Delta Testing

There are two ways to predict the condition of an insulation system during

tan delta or dissipation factor test.

First one is, comparing the results of previous tests to determine, the

deterioration of the condition of insulation due ageing affect.

Second one is, determining the condition of insulation from the value of tanδ,

directly. No requirement of comparing previous results of tan delta test.

If the insulation is perfect, the loss factor will be approximately same for all

range of test voltages. But if the insulation is not good enough, the value of

tan delta increases in higher range of test voltage.

From the graph it is clear that, the tan&delta number non linearly increases

with increasing test very low frequency voltage. The increasing tan&delta,

means, high resistive electric current component, in the insulation. These

Page 5: Tan Delta Test

results can be compared with the results of previously tested insulators, to

take proper decision whether the equipment would be replaced or not.