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TRANSFORMER mohd hafiz ismail hafizism, january 2007.

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Presentation on theme: "TRANSFORMER mohd hafiz ismail hafizism, january 2007."— Presentation transcript:

1 TRANSFORMER mohd hafiz ismail hafizism, january 2007

2 1.0 Transformer Introduction to Transformer.
Applications of Transformer. Types and Constructions of Transformers. General Theory of Transformer Operation. The Ideal Transformer. Real Single-Phase Transformer. The Exact Equivalent Circuit of a Real Transformer. The Approximate Equivalent Circuit of a Transformer. Transformer Voltage Regulation and Efficiency. Open Circuit and Short Circuit. Three Phase Transformer. hafizism, january 2007

3 1.1 Introduction to Transformer.
Transformer is a device that changes ac electrical power at one voltage level to ac electric power at another voltage level through the action of magnetic field. Figure 1.1 is the block diagrams of; (a) transformer, (b) electric motor (c) generator. Figure 1.1: Block Diagrams of Transformer, an Electric Motor and a Generator.. hafizism, january 2007

4 Figure 1.1a: A 500 MVA Power Transformer. (left)
A Pole-Mount 15 kVA Distribution Transformer. (right) (Courtesy of ABB) hafizism, january 2007

5 1.2 Applications of Transformer.
Why do we need transformer ? Step Up. Step up transformer, it will decrease the current to keep the power into the device equal to the power out of it. In modern power system, electrical power is generated at voltage of 12kV to 25kV. Transformer will step up the voltage to between 110kV to 1000kV for transmission over long distance at very low lost. (b) Step Down. The transformer will stepped down the voltage to the 12kV to 34.5kV range for local distribution in the homes, offices and factories as low as 120V (America) and 240V (Malaysia). hafizism, january 2007

6 1.3 Types and Constructions of Transformer.
Power transformers are constructed on two types of cores; (i) Core form. (ii) Shell form. Figure 1.2: Core Form and Shell Form. hafizism, january 2007

7 The coils are usually not directly connected.
Core form. The core form construction consists of a simple rectangular laminated piece of steel with the transform winding wrapped around the two sides of the rectangle. Shell form. The shell form construction consists of a three-legged laminated core with the winding wrapped around the center leg. In both cases the core is constructed of thin laminations electrically isolated from each other in order to minimize eddy current. The coils are usually not directly connected. The common magnetic flux present within the coils connects the coils. hafizism, january 2007

8 The common magnetic flux present within the coils connects the coils.
Construction. Transformer consists of two or more coils of wire wrapped around a common ferromagnetic core. The coils are usually not directly connected. The common magnetic flux present within the coils connects the coils. There are two windings; (i) Primary winding (input winding); the winding that is connected to the power source. (ii) Secondary winding (output winding); the winding connected to the loads. hafizism, january 2007

9 Operation. When AC voltage is applied to the primary winding of the transformer, an AC current will result iL or i2 (current at load). The AC primary current i2 set up time varying magnetic flux f in the core. The flux links the secondary winding of the transformer. From the Faraday law, the emf will be induced in the secondary winding. This is known as transformer action. The current i2 will flow in the secondary winding and electric power will be transfer to the load. The direction of the current in the secondary winding is determined by Len’z law. The secondary current’s direction is such that the flux produced by this current opposes the change in the original flux with respect to time. hafizism, january 2007

10 Figure 1.4: Basic Transformer Components.
1.4 General Theory of Transformer Operation. According to the Faraday’s law of electromagnetic induction, electromagnetic force (emf’s) are induced in N1 and N2 due to a time rate of change of fM, Where, (1.1) e = instantaneous voltage induced by magnetic field (emf),  = number of flux linkages between the magnetic field and the electric circuit. f = effective flux Lenz’s Law states that the direction of e1 is such to produce a current that opposes the flux changes. Figure 1.4: Basic Transformer Components. hafizism, january 2007

11 If the winding resistance is neglected, then equation (1.1) become;
(1.2) Taking the voltage ratio in equation (1.2) results in, (1.3) Neglecting losses means that the instantaneous power is the same on both sides of the transformer; (1.4) Combining all the above equation we get the equation (1.5) where a is the turn ratio of the transformer. (1.5) hafizism, january 2007

12  = max sin t The flux varies sinusoidally such that;
The rms value of the induce voltage is;  = max sin t max hafizism, january 2007

13 Figure 1.5: A Magnetic Hysteresis or B-H Curve of Core Steel.
Losses are composed of two parts; (a) The Eddy-Current lost. (b) The Hysteresis loss. Eddy current lost is basically loss due to the induced current in the magnetic material. To reduce this lost, the magnetic circuit is usually made of a stack of thin laminations. Hysteresis lost is caused by the energy used in orienting the magnetic domains of the material along the field. The lost depends on the material used. Figure 1.5: A Magnetic Hysteresis or B-H Curve of Core Steel. hafizism, january 2007

14 For an ideal transformer with no losses,
Example 1: Transformer. How many turns must the primary and the secondary windings of a 220 V-110 V, 60 Hz ideal transformer have if the core flux is not allowed to exceed 5mWb? Solution: For an ideal transformer with no losses, From the emf equation, we have hafizism, january 2007

15 Figure 1.6: An Ideal Transformer and the Schematic Symbols.
1.5 The Ideal Transformer. An Ideal transformer is a lossless device with an input winding and an output winding. Zero resistance result in zero voltage drops between the terminal voltages and induced voltages Figure 1.6 shows the relationship of input voltage and output voltage of the ideal transformer. Figure 1.6: An Ideal Transformer and the Schematic Symbols. hafizism, january 2007

16 The relationship between voltage and the number of turns.
Np , number of turns of wire on its primary side. Ns , number of turns of wire on its secondary side. Vp(t), voltage applied to the primary side. Vs(t), voltage applied to the secondary side. where a is defined to be the turns ratio of the transformer. hafizism, january 2007

17 In term of phasor quantities;
The relationship between current into the primary side, Ip(t), of transformer versus the secondary side, Is(t), of the transformer; In term of phasor quantities; -Note that Vp and Vs are in the same phase angle. Ip and Is are in the same phase angle too. - the turn ratio, a, of the ideal transformer affects the magnitude only but not the their angle. hafizism, january 2007

18 The dot convention appearing at one end of each winding tell the polarity of the voltage and current on the secondary side of the transformer. If the primary voltage is positive at the dotted end of the winding with respect to the undotted end, then the secondary voltage will be positive at the dotted end also. Voltage polarities are the same with respect to the doted on each side of the core. If the primary current of the transformer flow into the dotted end of the primary winding, the secondary current will flow out of the dotted end of the secondary winding. hafizism, january 2007

19 1.5.1 Power in an Ideal Transformer.
Power supplied to the transformer by the primary circuit is given by ; where, qp is the angle between the primary voltage and the primary current. The power supplied by the transformer secondary circuit to its loads is given by the equation; where, qs is the angle between the secondary voltage and the secondary current. Voltage and current angles are unaffected by an ideal transformer , qs – qs = q. The primary and secondary windings of an ideal transformer have the same power factor. hafizism, january 2007

20 The power out of a transformer;
Apply Vs= Vp/a and Is= aIp into the above equation gives, The output power of an ideal transformer is equal to the input power. The reactive power, Q, and the apparent power, S; In term of phasor quantities; Note that Vp and Vs are in the same phase angle. Ip and Is are in the same phase angle too. The turn ratio, a, of the ideal transformer affects the magnitude only but not the their angle. hafizism, january 2007

21 Example 2: Ideal Transformer.
Consider an ideal, single-phase 2400V-240V transformer. The primary is connected to a 2200V source and the secondary is connected to an impedance of 2 W < 36.9o, find, (a) The secondary output current and voltage. (b) The primary input current. (c) The load impedance as seen from the primary side. (d) The input and output apparent power. (e) The output power factor. Solution: (a) The ratio of rated terminal voltage equal to the actual turns-ratio as; hafizism, january 2007

22 hafizism, january 2007

23 1.6 Real Single-Phase Transformer.
The ideal transformer in Section 1.5 can never been made. The real transformer has many imperfections. The real transformers consists of two or more coils of wire physically wrapped around the ferromagnetic core. The real transformer approximate the characteristic of the ideal transformer. Operation if the real transformer; (i) It consists of two coils of wire wrapped around a transformer core. (ii) The primary of the transformer is connected to an ac power source, and the secondary winding is an open-circuited. (iii) Figure 1.5 is the hysteresis of the transformer. (iv) Basic operation from the faraday law, hafizism, january 2007

24 The average flux per turns is given by ;
l is the flux linkage in the coil across which the voltage is being induced. The sum of the flux passing through each turn in the coil added over all the turns of the coil is; The average flux per turns is given by ; And Faraday’s law can be written as , hafizism, january 2007

25 1.7 The Exact Equivalent Circuit of a Real Transformer.
Copper losses are resistive loses in the primary and the secondary windings of the transformer core. Copper losses are modeled by placing a resistor Rp in the primary circuit of the transformer and a resistor Rs in the secondary circuit. The leakage flux in the primary windings is, Figure 1.7 is an exact model of a transformer. To analyze the transformer it is necessary to convert the entire circuit to an equivalent circuit at a single voltage level as in Figure 1.8. hafizism, january 2007

26 Figure 1.7: Model of a Real Transformer.
Figure 1.8: (a) The Transformer Model Referred to its Primary Windings (top). (b) The Transformer Model Referred to its Secondary Voltage Level (bottom). hafizism, january 2007

27 Symbols used for the Exact Equivalent Circuit above;
hafizism, january 2007

28 The major use of the exact equivalent circuit of a transformer is to determine the characteristics such as voltage regulation and efficiency. A phasor diagram for the circuit of Figure 1.8, for lagging power factor can be obtained by using the following equations: Based on the above equations and assuming a zero degree reference angle for V2, the phasor diagram is shown in Figure 1.9 for the exact equivalent circuit model of a transformer. Figure 1.9: RMS Phasor Diagram for the Exact Equivalent Circuit Model of a Transformer. hafizism, january 2007

29 1.8 The Approximate Equivalent Circuit of a Transformer.
The Exact transformer in Section 1.6 is complex for a practical engineering applications. In the Approximate model the voltage drop in Rp and Xp is negligible because the current is very small. Figure 1.10 is the Approximate equivalent circuit referred to the primary side. Figure 1.10: Approximate Transformer Model Referred to the Primary Side. hafizism, january 2007

30 The equivalent impedance for the circuit in Figure 1.11 is;
The voltage in the primary series impedance (r1 + jx1) is small, even at full load. Also, the no load current (I0) is so small that its effect on the voltage drop in the primary series impedance is negligible. Therefore, it matters little if the shunt branch of Rc in parallel with Xm is connected before the primary series impedance or after it. The core loss and magnetizing currents are not greatly affected by the move. Connecting the shunt components right at the input terminals has the great advantage of permitting the two series impedance to be combined into one complex impedance. The equivalent impedance for the circuit in Figure 1.11 is; hafizism, january 2007

31 The equivalent impedance for the circuit in Figure 1.12 is;
The value of this equivalent impedance of a particular transformer depends, of course, on whether the model used is referred to the primary or secondary. Figure 1.11 shows the approximate equivalent circuit of transformer referred to the secondary side. Figure 1.11: Approximate Circuit Model of a Transformer Referred to the Secondary. The equivalent impedance for the circuit in Figure 1.12 is; hafizism, january 2007

32 1.9 Transformer Voltage Regulation and Efficiency.
Voltage regulation is a measure of the change in the terminal voltage of the transformer with respect to loading. Therefore the voltage regulation is defined as: At no load, Vs = Vp/a and the voltage regulation can also be express as; In the per-unit system; For ideal transformer VR=0. It is a good practice to have as small voltage regulator as possible. hafizism, january 2007

33 Figure 1.12: Example of Transformer Voltage Regulation.
hafizism, january 2007

34 Transformer Efficiency, efficiency of a transformer is defined as follows;
For Non-Ideal transformer, the output power is less than the input power because of losses. These losses are the winding or I2R loss (copper losses) and the core loss (hysteresis and eddy-current losses). Thus, in terms of the total losses, Plosses, the above equation may be expressed as; The winding or copper loss is load dependent, whereas the core loss is constant and almost independent of the load on the transformer. hafizism, january 2007

35 The efficiency can also be obtained by using the per-unit system.
hafizism, january 2007

36 1.10 Open Circuit and Short Circuit.
Open Circuit Test. The open circuit test is conducted by applying rated voltage at rated frequency to one of the windings, with the other windings open circuited. The input power and current are measured. For reasons of safety and convenience, the measurements are made on the low-voltage (LV) side of the transformer. hafizism, january 2007

37 Figure 1.13 is the equivalent circuit for the open-circuit test.
Figure 1.13: Equivalent Circuit of the Open-Circuit Test. Figure 1.13 is the equivalent circuit for the open-circuit test. The high voltage (HV) side is open, the input current is equal to the no load current or exciting current (I0), and is quite small. The voltage drops in the primary leakage reactance and winding resistance may be neglected and so may the primary loss (I12r1). The input power is almost equal to the core loss at rated voltage and frequency. hafizism, january 2007

38 qoc is the angle by which Io_LV lags Voc
qoc is the angle by which Io_LV lags Voc. The core loss current, Ic is in phase with Voc while Im lags Voc by 90°. Then; The core-loss current, Ic, may be found from above equation, then Rc_LV may be calculated by the equation below, The magnetization current Im is given by the above equation or may be found from Ioc and Ic using hafizism, january 2007

39 Short Circuit Test. The short-circuit test is used to determine the equivalent series resistance and reactance. One winding is shorted at its terminals, and the other winding is connected through proper meters to a variable, low-voltage, high-current source of rated frequency. The source voltage is increased until the current into the transformer reaches rated value. To avoid unnecessary high currents, the short-circuit measurements are made on the high-voltage side of the transformer. The test circuit with the effective equivalent circuit is shown in Figure 1.14. hafizism, january 2007

40 Figure 1.14: Equivalent Circuit of the Short-Circuit Test.
Neglecting I0, the input power during this test is consumed in the equivalent resistance referred to the primary or high-voltage side, Req_HV. Then hafizism, january 2007

41 hafizism, january 2007

42 1.11 Three Phase Transformer.
Almost all the major power generation and distribution systems in the world today are three-phase ac system. Two ways of constructing transformer of three-phase circuit; (i) Three single phase transformers are connected in three-phase bank. (ii) Make a three-phased transformer consisting of three sets of windings wrapped on a common core. The three-phased transformer on a common core (ii) is preferred because it is lighter, smaller, cheaper and slightly more efficient. hafizism, january 2007

43 1.11.1 Three-Phase Transformer Connections.
A three-phase transformer consists of three transformers either separate or combined on one core. There are four possible connections between the secondary and primary of a three-phase transformer. (1) Wye-Wye (Y-Y). (2) Wye-Delta (Y-D). (3) Delta-Wye (D-Y). (4) Delta-Delta (D -D). Figure 1.15 are these four possible transformer connections. hafizism, january 2007

44 Figure 1.15: Three-Phase Transformer Connections and Wiring Diagram.
hafizism, january 2007

45 (2) Wye-Delta Connection.
(1) Wye-Wye Connection. (2) Wye-Delta Connection. A three-phase transformer consists of three transformers either separate or combined on one core. (3) Delta-Wye Connection. (4) Delta-Delta Connection. hafizism, january 2007

46 Example 5: Three-Phase Transformer.
What should be the ratings (voltages and currents) and turns ratio of a three-phase transformer to transform 10 MVA from 230 kV to 4160 V, if the transformer is to be connected: wye-delta, delta-wye, and c) delta-delta? hafizism, january 2007

47 Example 6: Voltage Regulation at Full Load.
A 7200V/208V, 50kVA, three-phase distribution transformer is connected delta-wye. The transformer has 1.2% resistance and 5% reactance. Find the voltage regulation at full load, 0.8 power factor lagging. hafizism, january 2007

48 Example 7: Transformer Efficiency.
If the core loss of the transformer in Example 7 is 1kW, find the efficiency of this transformer at full load and 0.8 power factor. hafizism, january 2007


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