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And the 11, Rms value of n phase current. f – Amprobe DM-4 Power-Quality-Recorder User Manual

Page 52

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dangerous. Designers should take into consideration the three issues given below

when designing a power distribution system that will contain harmonic current:
• The neutral wire must be of sufficient gauge.

• The distribution transformer must have an additional cooling system to continue

operating at its rated capacity when not suited to the harmonics. This is

necessary because the harmonic current in the neutral wire of the secondary

circuit circulates in the delta-connected primary circuit. The circulating harmonic

current heats up the transformer.

• Phase harmonic currents are reflected on the primary circuit and continue back

to the power source. This can cause distortion of the voltage wave so that any

power factor correction capacitors on the line can be easily overloaded.

The 5

th

and the 11

th

harmonics contrast the current flow through the motors mak-

ing its’ operation harder and shortens their average life.

In general, the higher the ordinal harmonic number, the smaller its energy is and

therefore the impact it will have on the devices (except for transformers).
15.3 POWER AND POWER FACTOR: DEFINITIONS

In a standard electric installation powered by three sine voltages the following is defined:

Where:

V

n

= RMS value of voltage

between phase n and Neutral.

I

n

= RMS value of n phase

current.

f

n

= Phase displacement

angle between voltage and

current of n phase.

51

DM-4 Power Quality Recorder

Phase Active Power:

(n=1,2,3)

P

n

= V

n

• I

n

• cos(Θ

Θ

n

)

Phase Apparent Power:

(n=1,2,3)

S

n

= V

n

• I

n

Phase Reactive Power:

(n=1,2,3)

Q

n

= S

n

- P

n

Phase Power Factor:

(n=1,2,3)

P

F n

=

Total Active Power:

P

TOT

= P

1

+ P

2

+ P

3

Total Reactive Power:

Q

TOT

= Q

1

+ Q

2

+ Q

3

Total Apparent Power:

S

TOT

= P

TOT

2

+ Q

TOT

2

Total Power Factor:

P

F TOT

=

2

2

P

n

S

n

P

TOT

S

TOT