Power factor compensator SVC
harmonicstatic VARSVC

Power factor compensator - SVC - Dowei Electric - harmonic / static VAR / SVC
Power factor compensator - SVC - Dowei Electric - harmonic / static VAR / SVC
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Characteristics

Type
power factor, harmonic, static VAR, SVC
Other characteristics
automatic, with harmonic filter, intelligent

Description

• IEEE 519, IEC 60871, IEC 60076-6, IEC 62271, NEMA
• ISO 9001, KEMA, CESI, CE, TUV, UL, ASTA
• Seismic design, ETGI-1.020, IEEE Std 693, NCh2369
• Structural design, ASTM A325, ANSI/AISC 360, AWS D1.1
• High altitude correction per IEC 62271 & IEEE C37, ~ 5000m
• Static Var Compensator (SVC) can quickly and reliably control line voltages under normal steady state
• Dynamic, fast response reactive power following system contingencies (e.g. short circuits, line disconnection)
• Increase transfer capability, reduce losses, mitigate active power oscillations and over voltages at loss of load
• SVC includes: Thyristor controlled reactor (TCR), Thyristor switched capacitor (TSC), Harmonic filter (FC)

Static Var Compensator (SVC)

A Static Var Compensator (SVC) is a shunt-connected FACTS (Flexible AC Transmission System) device used to provide fast dynamic reactive power compensation in electrical power systems. It regulates system voltage by rapidly generating or absorbing reactive power (MVAR) through controlled switching of reactors and capacitor banks using thyristors.

SVCs are widely used in high-voltage transmission networks, industrial plants, renewable energy systems, and power quality applications.

1. Working Principle

An SVC controls the reactive power flow by varying its equivalent susceptance:
When the system voltage is low:
·SVC supplies reactive power (capacitive operation)
·Voltage increases
When the system voltage is high:
·SVC absorbs reactive power (inductive operation)
·Voltage decreases

2. Main Components

A.) Thyristor Controlled Reactor (TCR)
Function:
·Provides continuously variable inductive reactive power
Construction:
·Reactor coil
·Anti-parallel thyristor valves
·Control system
Operation:
·Thyristor firing angle controls reactor current.

B.) Thyristor Switched Capacitor (TSC)
Function:
·Provides step-controlled capacitive reactive power
Features:
·Capacitor banks switched by thyristors
·Fast switching response
·No mechanical switching delay

C.) Fixed Capacitor Bank (FC)
Function:
·Provides constant capacitive compensation

D.) Harmonic Filters
Purpose:
·Absorb harmonics generated by thyristor switching
·Improve voltage waveform
Common filter types:
·3rd harmonic filter
·5th harmonic filter
·7th harmonic filter

E.) Control System
Includes:
·Voltage regulator
·Thyristor firing controller
·Protection system
·Measurement circuits

3. Types of SVC Configurations

A.) TCR + Fixed Capacitor (TCR-FC)
Characteristics:
·Variable inductive compensation
·Fixed capacitive output
Applications:
·Transmission voltage control
·Industrial load compensation

B.) TCR + TSC
Characteristics:
·Smooth inductive control
·Step-controlled capacitive switching
Advantages:
·Better voltage regulation
·Reduced harmonic generation

C.) TSC Only
Characteristics:
·Capacitive reactive power support
·Very fast switching
Applications:
·Voltage support systems

4. Operating Modes
Capacitive Mode
SVC supplies reactive power:
·Improves voltage stability
·Supports weak grids
·Corrects low power factor

Inductive Mode
SVC absorbs reactive power:
·Prevents overvoltage
·Controls lightly loaded transmission lines

5. Typical Specifications
·Voltage class: 1 kV – 765 kV
·Capacity: ±10 MVAR to ±1000 MVAR
·Response time: 1–3 cycles
·Frequency: 50/60 Hz
·Connection: Shunt
·Cooling: Air/water cooling
·Control: Thyristor-based

6. Advantages
·Fast voltage regulation: Millisecond-level response
·Improves stability: Supports transmission voltage
·Dynamic reactive compensation: Handles changing loads
·Improves power factor: Reduces reactive power demand
·Increases transmission capacity: Improves power transfer capability
·Reduces voltage flicker: Stabilizes fluctuating loads

7. Applications
Transmission Systems
·Voltage stabilization
·Long transmission line compensation
·Power oscillation damping
·Increased power transfer capability
Renewable Energy Plants
·Wind farms
·Solar farms
·Grid code compliance
Industrial Loads
·Electric arc furnaces
·Rolling mills
·Welding plants
Railway Power Systems
·Voltage balancing
·Flicker reduction

8. SVC in Power Grid Applications
A typical HV SVC installation includes:
Transmission Bus → Circuit Breaker → SVC Transformer → Thyristor Valves → Reactors + Capacitor Banks + Harmonic Filters
It provides:
·Dynamic voltage support
·Reactive power balancing
·Improved grid stability
·Reduced voltage fluctuations

Static Var Compensator summary:
An SVC is a thyristor-controlled reactive power compensation system that dynamically regulates transmission voltage by absorbing or supplying MVARs. It is one of the most widely deployed FACTS devices for voltage stabilization, power quality improvement, and increased transmission system reliability.
*Prices are pre-tax. They exclude delivery charges and customs duties and do not include additional charges for installation or activation options. Prices are indicative only and may vary by country, with changes to the cost of raw materials and exchange rates.