The document discusses protection schemes for transformers. It describes faults that can occur in transformers such as open circuits, overheating, and winding short circuits. It then discusses different protection systems for transformers including Buchholz relays, earth fault relays, overcurrent relays, and differential protection systems. Differential protection systems operate by comparing currents from current transformers on both sides of the transformer and tripping the circuit breaker if a difference is detected, indicating an internal fault. The combination of protection schemes provides comprehensive protection for transformers.
Unit I: Introduction to Protection System:
Introduction to protection system and its elements, functions of protective relaying, protective zones, primary and backup protection, desirable qualities of protective relaying, basic terminology.
Relays:
Electromagnetic, attracted and induction type relays, thermal relay, gas actuated relay, design considerations of electromagnetic relay.
Unit-II: Relay Application and Characteristics:
Amplitude and phase comparators, over current relays, directional relays, distance relays, differential relay.
Static Relays: Comparison with electromagnetic relay, classification and their description, over current relays, directional relay, distance relays, differential relay.
Unit-III Protection of Transmission Line:
Over current protection, distance protection, pilot wire protection, carrier current protection, protection of bus, auto re-closing,
Unit-IV: Circuit Breaking:
Properties of arc, arc extinction theories, re-striking voltage transient, current chopping, resistance switching, capacitive current interruption, short line interruption, circuit breaker ratings.
Testing Of Circuit Breaker: Classification, testing station and equipments, testing procedure, direct and indirect testing.
Unit-V Apparatus Protection:
Protection of Transformer, generator and motor.
Circuit Breaker: Operating modes, selection of circuit breakers, constructional features and operation of Bulk Oil, Minimum Oil, Air Blast, SF6, Vacuum and d. c. circuit breakers.
Unit I: Introduction to Protection System:
Introduction to protection system and its elements, functions of protective relaying, protective zones, primary and backup protection, desirable qualities of protective relaying, basic terminology.
Relays:
Electromagnetic, attracted and induction type relays, thermal relay, gas actuated relay, design considerations of electromagnetic relay.
Unit-II: Relay Application and Characteristics:
Amplitude and phase comparators, over current relays, directional relays, distance relays, differential relay.
Static Relays: Comparison with electromagnetic relay, classification and their description, over current relays, directional relay, distance relays, differential relay.
Unit-III Protection of Transmission Line:
Over current protection, distance protection, pilot wire protection, carrier current protection, protection of bus, auto re-closing,
Unit-IV: Circuit Breaking:
Properties of arc, arc extinction theories, re-striking voltage transient, current chopping, resistance switching, capacitive current interruption, short line interruption, circuit breaker ratings.
Testing Of Circuit Breaker: Classification, testing station and equipments, testing procedure, direct and indirect testing.
Unit-V Apparatus Protection:
Protection of Transformer, generator and motor.
Circuit Breaker: Operating modes, selection of circuit breakers, constructional features and operation of Bulk Oil, Minimum Oil, Air Blast, SF6, Vacuum and d. c. circuit breakers.
How is power transformer protected??? This provides a basic understanding of power transformer. Furthermore, the protective relay application on power transformer is included.
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This gives idea about necessity of protection of transmission line and protection based on time grading as well as on current grading. Also includes three step distance protection of transmission line
How is power transformer protected??? This provides a basic understanding of power transformer. Furthermore, the protective relay application on power transformer is included.
Protection of transmission lines (distance)Rohini Haridas
This gives idea about necessity of protection of transmission line and protection based on time grading as well as on current grading. Also includes three step distance protection of transmission line
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Indigenized remote control interface card suitable for MAFI system CCR equipment. Compatible for IDM8000 CCR. Backplane mounted serial and TCP/Ethernet communication module for CCR remote access. IDM 8000 CCR remote control on serial and TCP protocol.
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Indigenized remote control interface card suitable for MAFI system CCR equipment. Compatible for IDM8000 CCR. Backplane mounted serial and TCP/Ethernet communication module for CCR remote access. IDM 8000 CCR remote control on serial and TCP protocol.
Key Features
Indigenized remote control interface card suitable for MAFI system CCR equipment. Compatible for IDM8000 CCR. Backplane mounted serial and TCP/Ethernet communication module for CCR remote access. IDM 8000 CCR remote control on serial and TCP protocol.
• Remote control: Parallel or serial interface
• Compatible with MAFI CCR system
• Copatiable with IDM8000 CCR
• Compatible with Backplane mount serial communication.
• Compatible with commercial and Defence aviation CCR system.
• Remote control system for accessing CCR and allied system over serial or TCP.
• Indigenized local Support/presence in India.
Application
• Remote control: Parallel or serial interface.
• Compatible with MAFI CCR system.
• Compatible with IDM8000 CCR.
• Compatible with Backplane mount serial communication.
• Compatible with commercial and Defence aviation CCR system.
• Remote control system for accessing CCR and allied system over serial or TCP.
• Indigenized local Support/presence in India.
• Easy in configuration using DIP switches.
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Transformer protection
1. Protection of transformers
CONTENT
Faults in transformer
Protective Schemes of Transformers
Buchholz Relay
Earth-Fault or Leakage Protection
Differential systems: (or circulating current system or
Merz-price circulating current)
Prepared By
Mr.K.Jawahar, M.E.,
Assistant Professor
Department of EEE
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
2. Protection of transformers
• Transformers are static devices, totally enclosed and generally oil
immersed. Therefore, chances of faults occurring on them are very
rare.
• The consequences of even a rare fault may be very serious unless
the transformer is quickly disconnected from the system.
Common transformer faults
(i) Open circuits
(ii) Over heating
(iii) Winding short-circuits e.g. earth-fault, phase to phase faults
and inter-turn faults.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
3. • An open circuit faults in one phase of a 3-phase transformer may
cause undesirable heating. In practice relay protection is not
provided against open circuits because this condition is relatively
harmless.
• Over heating of the transformer is usually caused by sustained
overloads or short-circuits and very occasionally by the failure of
the cooling system.
• Winding short circuits also called as internal faults on the
transformer arise from corrosion of winding insulation due to
overheating or mechanical injury.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
4. Protectionsystems for transformers
(i) Buchholz devices: Providing protection against all kinds of
incipient faults i.e. slow-developing fault such as insulation failure
of windings, core heating, fall of oil level due to leaky joins etc.
(ii) Earth-fault relays: Providing protection earth fault only
(iii) Over current relays: Providing protection mainly against
phase-phase faults and over loading
(iv) Differential systems: (or circulating current system)
Providing protection against both earth and phase faults.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
5. The complete protection of transformer usually requires
the combination of these systems.
Choice of a particular combination of systems may depend
upon several factors such as
(a) size of the transformer (b) type of cooling (c) location of
transformer in the network (d) nature of load supplied
(e) importance of service for which transformer is required. In the
following sections, above systems
of protection will be discussed in detail.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
6. Buchholz Relay
• Buchholz relay is a gas-actuated relay installed in oil
immersed transformers for protection against all kinds of faults.
• Buchholz, it is used to give an alarm in case of incipient (i.e.
slow-developing) faults in the transformer and to disconnect the
transformer from the supply in the event of severe internal faults.
• It is a universal practice to use Buchholz relays on all such oil
immersed transformers having ratings in excess of 750 kVA
Construction
• The device has two elements. The upper element consists of a
mercury type switch attached to a float
• The lower element contains a mercury switch mounted on a
hinged type flap located in the direct path
• of the flow of oil from the transformer to the conservator.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
7. • The upper element closes an alarm circuit during incipient faults
whereas the lower element is arranged to trip the circuit breaker
in case of severe internal faults.
Operation
• In case of incipient faults within the transformer, the heat due to
fault causes the decomposition of some transformer oil in the
main tank. The products of decomposition contain more than 70%
of hydrogen gas.
• The hydrogen gas being light tries to go into the conservator and
in the process gets entrapped in the upper part of relay chamber.
• If a serious fault occurs in the transformer, an enormous amount
of gas is generated in the main tank.
• The oil in the main tank rushes towards the conservator via the
Buchholz relay and in doing so tilts the flap to close the contacts
of mercury switch.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
8. Advantages
(i) It is the simplest form of transformer protection.
(ii) It detects the incipient faults at a stage much earlier than is
possible with other forms of protection.
Disadvantages
(i) It can only be used with oil immersed transformers equipped
with conservator tanks.
(ii) The device can detect only faults below oil level in the
transformer. Therefore, separate protection is needed for
connecting cables.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
11. Earth-Fault or Leakage Protection
• An earth-fault usually involves a partial breakdown of winding
insulation to earth.
• The resulting leakage current is considerably less than the short-
circuit current.
• The earth-fault may continue for a long time and cause
considerable damage before it ultimately develops into a short-
circuit and removed from the system.
• Under these circumstances, it is profitable to employ earth-fault
relays in order to ensure the disconnection of earth-fault or leak
in the early stage.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
12. Core-balance leakage protection
• Under normal conditions (i.e. no fault to earth), the vector sum of
the three phase currents is zero and there is no resultant flux in
the core of current transformer no matter how much the load is
out of balance.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
13. • Consequently, no current flows through the relay and it
remains inoperative.
• However, on the occurrence of an earth-fault, the vector sum
of three phase currents is no longer zero. The resultant
current sets up flux in the core of the C.T. which induces
e.m.f. in the secondary winding.
• This energizes the relay to trip the circuit breaker and
disconnect the faulty transformer from the system.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
14. Combined Leakage and Overload Protection
• The core-balance protection described above suffers from the
drawback that it cannot provide protection against overloads.
• If a fault or leakage occurs between phases, the core-balance
relay will not operate.
• It is a usual practice to provide combined leakage and overload
protection for transformers.
• The earth relay has low current setting and operates under earth
or leakage faults only.
• The overload relays have high current setting and are arranged
to operate against faults between the phases.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
15. • In this system of protection, two overload relays and one leakage
or earth relay are connected
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
16. • The two overload relays are sufficient to protect against phase-to-
phase faults. The trip contacts of overload relays and earth fault
relay are connected in parallel.
• Therefore, with the energizing of either overload relay or earth
relay, the circuit breaker will be tripped.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
17. Differential systems: (or circulating current system or
Merz-price circulating current)
• Merz-Price circulating -current principle is commonly used for
the protection of power transformers against earth and phase
faults.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
18. Operation
• Note that CTs on the two sides of the transformer are connected
in star.
• This compensates for the phase difference between the power
transformer primary and secondary. The CTs on the two sides
are connected by pilot wires and one relay is used for each pair
of CTs.
• During normal operating conditions, the secondaries of CTs
carry identical currents. Therefore, the currents entering and
leaving the pilot wires at both ends are the same and no current
flows through the relays.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
19. • If a ground or phase-to-phase fault occurs, the currents in the
secondaries of CTs will no longer be the same and the
differential current flowing through the relay circuit will clear
the breaker on both sides of the transformer.
• The-protected zone is limited to the region between CTs on
the high-voltage side and the CTs on the low-voltage side of
the power transformer.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE
20. Reference:
• V.K.MEHTA,ROHIT MEHTA, “Principles of Power
System”, S.Chand,2018.
• B.Rabindranath and N.Chander, ‘Power System Protection
and Switchgear’, New Age International (P) Ltd., First
Edition 2011.
Protection of Transformer
Kongunadunadu College of Engineering and Technology Depar tment of EEE