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Electrical PE Exam - Per-Unit (Base Formulas) - YouTube
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In the power systems analysis field of electrical engineering, a per-unit system is the expression of system quantities as fractions of a defined base unit quantity. Calculations are simplified because quantities expressed as per-unit do not change when they are referred from one side of a transformer to the other. This can be a pronounced advantage in power system analysis where large numbers of transformers may be encountered. Moreover, similar types of apparatus will have the impedances lying within a narrow numerical range when expressed as a per-unit fraction of the equipment rating, even if the unit size varies widely. Conversion of per-unit quantities to volts, ohms, or amperes requires a knowledge of the base that the per-unit quantities were referenced to. The per-unit system is used in power flow, short circuit evaluation, motor starting studies etc.

The main idea of a per unit system is to absorb large difference in absolute values into base relationships. Thus, representations of elements in the system with per unit values become more uniform.

A per-unit system provides units for; power, voltage, current, impedance, and admittance. Except impedance and admittance, any two of these are independent and can be arbitrarily selected as base values, usually power and voltage. All quantities are specified as multiples of selected base values. For example, the base power might be the rated power of a transformer, or perhaps an arbitrarily selected power which makes power quantities in the system more convenient. The base voltage might be the nominal voltage of a bus. Different types of quantities are labeled with the same symbol (pu); it should be clear from context whether the quantity is a voltage, current, etc.


Video Per-unit system



Purpose

There are several reasons for using a per-unit system:

  • Similar apparatus (generators, transformers, lines) will have similar per-unit impedances and losses expressed on their own rating, regardless of their absolute size. Because of this, per-unit data can be checked rapidly for gross errors. A per unit value out of normal range is worth looking into for potential errors.
  • Manufacturers usually specify the impedance of apparatus in per unit values.
  • Use of the constant 3 {\displaystyle \scriptstyle {\sqrt {3}}} is reduced in three-phase calculations.
  • Per-unit quantities are the same on either side of a transformer, independent of voltage level
  • By normalizing quantities to a common base, both hand and automatic calculations are simplified.
  • It improves numerical stability of automatic calculation methods
  • Per unit data representation yields important information about relative magnitudes.

The per-unit system was developed to make manual analysis of power systems easier. Although power-system analysis is now done by computer, results are often expressed as per-unit values on a convenient system-wide base.


Maps Per-unit system



Base quantities

Generally base values of power and voltage are chosen. The base power may be the rating of a single piece of apparatus such as a motor or generator. If a system is being studied, the base power is usually chosen as a convenient round number such as 10 MVA or 100 MVA. The base voltage is chosen as the nominal rated voltage of the system. All other base quantities are derived from these two base quantities. Once the base power and the base voltage are chosen, the base current and the base impedance are determined by the natural laws of electrical circuits. Note the base value should only be magnitudes, while the per-unit values are phasors. The phase angles of complex power, voltage, current, impedance etc. are not affected by the conversion to per unit values. As we have already known, the purpose of introducing per-unit system is to simplify our conversion between different transformers. Hence, it is appropriate to illustrate the steps for finding per-unit values for voltage and impedance. First, let the base power (S_base) of each end of a transformer become the same. Once we set every S on the same base, we can get base voltage and base impedance for every transformer easily. The numbers we have until now are all based on the same unit. Next, substitute the real numbers of impedances and voltages into the per-unit calculation definition. We can get the answers for the per-unit system. In other case, if we have known the per-unit values at first, we can get the real values by multiplying by the base values.

By convention, we adopt the following two rules for base quantities:

  • The value of base power is the same for the entire power system of concern.
  • The ratio of the voltage bases on either side of a transformer is selected to be the same as the ratio of the transformer voltage ratings.

With these two rules, a per-unit impedance remains unchanged when referred from one side of a transformer to the other. This allows us to eliminate ideal transformer from a transformer model.


Problems on Per Unit System - 1 | Power Systems | Nikhil Nakka ...
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Relationship between units

The relationship between units in a per-unit system depends on whether the system is single-phase or three-phase.

Single-phase

Assuming that the independent base values are power and voltage, we have:

P base = 1 p u {\displaystyle P_{\text{base}}=1\mathrm {pu} }
V base = 1 p u {\displaystyle V_{\text{base}}=1\mathrm {pu} }

Alternatively, the base value for power may be given in terms of reactive or apparent power, in which case we have, respectively,

Q base = 1 p u {\displaystyle Q_{\text{base}}=1\mathrm {pu} }

or

S base = 1 p u {\displaystyle S_{\text{base}}=1\mathrm {pu} }

The rest of the units can be derived from power and voltage using the equations S = I V {\displaystyle S=IV} , P = S cos ( ? ) {\displaystyle P=S\cos(\phi )} , Q = S sin ( ? ) {\displaystyle Q=S\sin(\phi )} and V _ = I _ Z _ {\displaystyle {\underline {V}}={\underline {I}}{\underline {Z}}} (Ohm's law), Z {\displaystyle Z} being represented by Z _ = R + j X = Z cos ( ? ) + j Z sin ( ? ) {\displaystyle {\underline {Z}}=R+jX=Z\cos(\phi )+jZ\sin(\phi )} . We have:

I base = S base V base = 1 p u {\displaystyle I_{\text{base}}={\frac {S_{\text{base}}}{V_{\text{base}}}}=1\mathrm {pu} }
Z base = V base I base = V base 2 I base V base = V base 2 S base = 1 p u {\displaystyle Z_{\text{base}}={\frac {V_{\text{base}}}{I_{\text{base}}}}={\frac {V_{\text{base}}^{2}}{I_{\text{base}}V_{\text{base}}}}={\frac {V_{\text{base}}^{2}}{S_{\text{base}}}}=1\mathrm {pu} }
Y b a s e = 1 Z b a s e = 1 p u {\displaystyle Y_{\mathrm {base} }={\frac {1}{Z_{\mathrm {base} }}}=1\mathrm {pu} }

Three-phase

Power and voltage are specified in the same way as single-phase systems. However, due to differences in what these terms usually represent in three-phase systems, the relationships for the derived units are different. Specifically, power is given as total (not per-phase) power, and voltage is line-to-line voltage. In three-phase systems the equations P = S cos ( ? ) {\displaystyle P=S\cos(\phi )} and Q = S sin ( ? ) {\displaystyle Q=S\sin(\phi )} also hold. The apparent power S {\displaystyle S} now equals S b a s e = 3 V b a s e I b a s e {\displaystyle S_{\mathrm {base} }={\sqrt {3}}V_{\mathrm {base} }I_{\mathrm {base} }}

I b a s e = S b a s e V b a s e × 3 = 1 p u {\displaystyle I_{\mathrm {base} }={\frac {S_{\mathrm {base} }}{V_{\mathrm {base} }\times {\sqrt {3}}}}=1\mathrm {pu} }
Z b a s e = V b a s e I b a s e × 3 = V b a s e 2 S b a s e = 1 p u {\displaystyle Z_{\mathrm {base} }={\frac {V_{\mathrm {base} }}{I_{\mathrm {base} }\times {\sqrt {3}}}}={\frac {V_{\mathrm {base} }^{2}}{S_{\mathrm {base} }}}=1\mathrm {pu} }
Y b a s e = 1 Z b a s e = 1 p u {\displaystyle Y_{\mathrm {base} }={\frac {1}{Z_{\mathrm {base} }}}=1\mathrm {pu} }

PER UNIT REPRESENTATION - PART - 03 - THREE PROBLEMS IN PER UNIT ...
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Example of per-unit

As an example of how per-unit is used, consider a three-phase power transmission system that deals with powers of the order of 500 MW and uses a nominal voltage of 138 kV for transmission. We arbitrarily select S b a s e = 500 M V A {\displaystyle S_{\mathrm {base} }=500\,\mathrm {MVA} } , and use the nominal voltage 138 kV as the base voltage V b a s e {\displaystyle V_{\mathrm {base} }} . We then have:

I base = S base V base × 3 = 2.09 k A {\displaystyle I_{\text{base}}={\frac {S_{\text{base}}}{V_{\text{base}}\times {\sqrt {3}}}}=2.09\,\mathrm {kA} }
Z base = V base I base × 3 = V base 2 S base = 38.1 ? {\displaystyle Z_{\text{base}}={\frac {V_{\text{base}}}{I_{\text{base}}\times {\sqrt {3}}}}={\frac {V_{\text{base}}^{2}}{S_{\text{base}}}}=38.1\,\Omega }
Y b a s e = 1 Z b a s e = 26.3 m S {\displaystyle Y_{\mathrm {base} }={\frac {1}{Z_{\mathrm {base} }}}=26.3\,\mathrm {mS} }

If, for example, the actual voltage at one of the buses is measured to be 136 kV, we have:

V p u = V V b a s e = 136 k V 138 k V = 0.9855 p u {\displaystyle V_{\mathrm {pu} }={\frac {V}{V_{\mathrm {base} }}}={\frac {136\,\mathrm {kV} }{138\,\mathrm {kV} }}=0.9855\,\mathrm {pu} }

ELECTRICAL SYSTEM TECHNOLOGY - ppt video online download
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Per-unit system formulas

The following tabulation of per-unit system formulas is adapted from Beeman's Industrial Power Systems Handbook.


power System perunit part 1 by ahmad tabaza - YouTube
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In transformers

It can be shown that voltages, currents, and impedances in a per-unit system will have the same values whether they are referred to primary or secondary of a transformer.

For instance, for voltage, we can prove that the per unit voltages of two sides of the transformer, side 1 and side 2, are the same. Here, the per-unit voltages of the two sides are E1p.u. and E2p.u. respectively.

E 1 , p u = E 1 V b a s e 1 = N 1 E 2 N 2 V b a s e 1 = N 1 E 2 N 2 N 1 N 2 V b a s e 2 = E 2 V b a s e 2 = E 2 , p u {\displaystyle {\begin{aligned}E_{1,pu}&={\frac {E_{1}}{V_{base1}}}\\&={\frac {N_{1}E_{2}}{N_{2}V_{base1}}}\\&={\frac {N_{1}E_{2}}{N_{2}{\frac {N_{1}}{N_{2}}}V_{base2}}}\\&={\frac {E_{2}}{V_{base2}}}\\&=E_{2,pu}\\\end{aligned}}}

  (source: Alexandra von Meier Power System Lectures, UC Berkeley)  

'E1 and E2 are the voltages of sides 1 and 2 in volts. N1 is the number of turns the coil on side 1 has. N2 is the number of turns the coil on side 2 has. Vbase1 and Vbase2 are the base voltages on sides 1 and 2. V b a s e 1 = N 1 N 2 V b a s e 2 {\displaystyle V_{base1}={\frac {N_{1}}{N_{2}}}V_{base2}}

For current, we can prove that the per-unit currents of the two sides are the same below. I 1 , p u = I 1 I b a s e 1 = N 2 I 2 N 1 I b a s e 1 = N 2 I 2 N 1 N 2 N 1 I b a s e 2 = I 2 I b a s e 2 = I 2 , p u {\displaystyle {\begin{aligned}I_{1,pu}&={\frac {I_{1}}{I_{base1}}}\\&={\frac {N_{2}I_{2}}{N_{1}I_{base1}}}\\&={\frac {N_{2}I_{2}}{N_{1}{\frac {N_{2}}{N_{1}}}I_{base2}}}\\&={\frac {I_{2}}{I_{base2}}}\\&=I_{2,pu}\\\end{aligned}}}

  (source: Alexandra von Meier Power System Lectures, UC Berkeley)  

where I1p.u. and I2p.u. are the per-unit currents of sides 1 and 2 respectively. In this, the base currents Ibase1 and Ibase2 are related in the opposite way that Vbase1 and Vbase2 are related, in that

I b a s e 1 = S b a s e 1 V b a s e 1 S b a s e 1 = S b a s e 2 V b a s e 2 = N 2 N 1 V b a s e 1 I b a s e 2 = S b a s e 2 V b a s e 2 I b a s e 1 = S b a s e 2 N 1 N 2 V b a s e 2 = N 2 N 1 I b a s e 2 {\displaystyle {\begin{aligned}I_{base1}&={\frac {S_{base1}}{V_{base1}}}\\S_{base1}&=S_{base2}\\V_{base2}&={\frac {N_{2}}{N_{1}}}V_{base1}\\I_{base2}&={\frac {S_{base2}}{V_{base2}}}\\I_{base1}&={\frac {S_{base2}}{{\frac {N_{1}}{N_{2}}}V_{base2}}}\\&={\frac {N_{2}}{N_{1}}}I_{base2}\\\end{aligned}}}

The reason for this relation is for power conservation Sbase1 = Sbase2

The full load copper loss of a transformer in per-unit form is equal to the per-unit value of its resistance:

P c u , F L = full-load copper loss = I R 1 2 R e q 1 {\displaystyle {\begin{aligned}P_{cu,FL}&={\text{full-load copper loss}}\\&=I_{R1}^{2}R_{eq1}\\\end{aligned}}}

P c u , F L , p u = P c u , F L P b a s e = I R 1 2 R e q 1 V R 1 I R 1 = R e q 1 V R 1 / I R 1 = R e q 1 Z B 1 = R e q 1 , p u {\displaystyle {\begin{aligned}P_{cu,FL,pu}&={\frac {P_{cu,FL}}{P_{base}}}\\&={\frac {I_{R1}^{2}R_{eq1}}{V_{R1}I_{R1}}}\\&={\frac {R_{eq1}}{V_{R1}/I_{R1}}}\\&={\frac {R_{eq1}}{Z_{B1}}}\\&=R_{eq1,pu}\\\end{aligned}}}

Therefore, it may be more useful to express the resistance in per-unit form as it also represents the full-load copper loss.

As stated above, there are two degrees of freedom within the per unit system that allow the engineer to specify any per unit system. The degrees of freedom are the choice of the base voltage (Vbase) and the base power (Sbase). By convention, a single base power (Sbase) is chosen for both sides of the transformer and its value is equal to the rated power of the transformer. By convention, there are actually two different base voltages that are chosen, Vbase1 and Vbase2 which are equal to the rated voltages for either side of the transformer. By choosing the base quantities in this manner, the transformer can be effectively removed from the circuit as described above. For example:

Take a transformer that is rated at 10 kVA and 240/100 V. The secondary side has an impedance equal to 1?0° ohms. The base impedance on the secondary side is equal to:

Z b a s e , 2 = V b a s e , 2 2 S b a s e = 10000 10000 = 1 ohm {\displaystyle {\begin{aligned}Z_{base,2}&={\frac {V_{base,2}^{2}}{S_{base}}}\\&={\frac {10000}{10000}}\\&={\text{1 ohm}}\\\end{aligned}}}

This means that the per unit impedance on the secondary side is 1?0° ohm / 1 ohm = 1?0° p.u. When this impedance is referred to the other side, the impedance becomes:

Z 2 = ( 240 100 ) 2 × 1?0° ohm = 5.76?0° ohm {\displaystyle {\begin{aligned}Z_{2}&=\left({\frac {240}{100}}\right)^{2}\times {\text{1?0° ohm}}\\&={\text{5.76?0° ohm}}\\\end{aligned}}}

The base impedance for the primary side is calculated the same way as the secondary:

Z b a s e , 1 = V b a s e , 1 2 S b a s e = 57600 10000 = 5.76 ohm {\displaystyle {\begin{aligned}Z_{base,1}&={\frac {V_{base,1}^{2}}{S_{base}}}\\&={\frac {57600}{10000}}\\&={\text{5.76 ohm}}\\\end{aligned}}}

This means that the per unit impedance is 5.76?0° ohm / 5.76 ohm = 1?0° p.u. which is the same as when calculated from the other side of the transformer, as would be expected.

Another useful tool for analyzing transformers is to have the base change formula that allows the engineer to go from a base impedance with one set of a base voltage and base power to another base impedance for a different set of a base voltage and base power. This becomes especially useful in real life applications where a transformer with a secondary side voltage of 1.2 kV might be connected to the primary side of another transformer whose rated voltage is 1 kV. The formula is as shown below.

Z b a s e , n e w = Z b a s e , o l d × ( V b a s e , o l d V b a s e , n e w ) 2 × ( S b a s e , n e w S b a s e , o l d ) {\displaystyle {\begin{aligned}Z_{base,new}&=Z_{base,old}\times \left({\frac {V_{base,old}}{V_{base,new}}}\right)^{2}\times \left({\frac {S_{base,new}}{S_{base,old}}}\right)\\\end{aligned}}}


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References

  • Beeman, Donald (1955). "Short-Circuit-Current Calculating Procedures". In Beeman, Donald (ed.). Industrial Power Systems Handbook. McGraw-Hill. pp. see esp. 38-41, 52-55. CS1 maint: Extra text: editors list (link)
  • Elgerd, Olle I. (2007). "§2.5 Per-Unit Representation of Impedances, Currents, Voltages and Powers". Electric Energy Systems Theory: An Introduction (1971 1st ed.). Tata McGraw-Hill. pp. 35-39. ISBN 978-0070192300. 
  • Yuen, Moon H. (Mar-Apr 1974). "Short Circuit ABC--Learn It in an Hour, Use It Anywhere, Memorize No Formula". IEEE Trans. on Industry Applications. IA-10 (2): 261-272. doi:10.1109/TIA.1974.349143. 
  • William D., Jr, Stevenson, (1975). Elements of power system analysis (3rd ed.). New York: McGraw-Hill. ISBN 0-07-061285-4. 
  • Weedy, B.M. (1972). Electric power systems (2nd ed.). London ; Toronto: J. Wiley. ISBN 0-471-92445-8. 
  • Glover, J. Duncan; Sarma, Mulukutla; Overbye, Thomas J. (2011). Power System Analysis and Design. Cengage Learning. pp. 108-116. ISBN 1111425779. 

Source of the article : Wikipedia

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