Skip to main content

COOLING METHODS OF POWER TRANSFORMER

As the size and capacity of the transformer increased, the associated cooling arrangement become more powerful and sophisticated. So, by definition, the transformer cooling system is such arrangement for power transformers, which limits the generated heat into a safe value by means of proper dissipation of generated heat. Different cooling system is used for different types of transformers, and they are discussed as follows.

Generally, two types of transformers are there according to the use of insulating oil, namely Dry Type Transformers and Oil Immersed Type Transformers. In oil immersed type, the transformer core is immersed into the transformer oil. Different types of cooling are needed for these two categories. In dry type transformers, air is used as the coolant medium but in oil immersed transformer (as the size and ratings both are high), both air and transformer oil are used as the coolant medium.
Dry Type Transformers
       Oil Immersed Transformers
            Air Natural Type
  Oil Natural Air Natural type (ONAN)
            Air forced Type
  Oil Natural Air forced Type (ONAf)
  Oil forced Air forced Type (OfAf)
  Oil Directed Air forced Type (ODAf)
  Oil forced Water forced Type (OfWf)

Air Natural Type:

This cooling method is used in dry type transformer with smaller ratings. As the name implies, the natural circulation of atmospheric air is used in this technique. This type of transformers is also referred as self-cooled transformer. When the transformer is operated in full load, then the temperature of the transformer becomes greater than the ambient air temperature. So, by convection process, the light and heated air gets replaced by the heavy and comparatively cool surrounding air. In this way, the generated heat is dissipated via the natural air circulation process. But this type of cooling arrangement provides satisfactory operation for low voltage transformers only.

Air forced type:

This cooling method is also used in dry type transformer but the application is also implemented in oil immersed transformers. As the name implies, in addition with natural air circulation, cool air with high velocity is provided to the core. High speed fans are provided with the transformer, and by the rotation of this fan high velocity of air is subjected to the transformer. This additional air force ensures quicker heat dissipation of the transformers. The fans are automatically controlled, that is when the temperature of the transformer core goes beyond the safe limit than all the fans are switched ON. Air forced cooling method provides better performance than natural air cooling, but additional cost is associated for the fans.

Oil Natural Air Natural (ONAN) Cooling Of Transformer:

This cooling system is used in oil immersed type transformers. This is the simplest way of cooling of oil immersed transformers. We know that, the transformer core is immersed in transformer oil. When the transformer is heated up, then temperature of oil near to the transformer core is also raised. So, the light and heated oil flows in upward direction and comparatively cool and heavy oil takes the vacuum places by natural convection process. And the heated oil releases its temperature into the atmosphere. In this way, a natural oil circulation cycle is generated and this cycle continues until the transformer temperature is tapped into a safe limit. In this method, the surface area of the oil tank is usually larger, as more surface area provides more quick heat dissipation process. But to provide more surface areas, several hollows tubular plates are attached with the transformer and they are termed as radiator. When the hot oils are circulating through the radiators, they get more surface area so the cooling rate is much higher. Also the light and heated air gets replaced by the heavy and comparatively cool surrounding air by natural process. In this way, the generated heat is dissipated via the natural air circulation process as well as natural oil circulation.

Oil Natural Air forced (ONAF) Cooling of Transformer:

The word ‘forced’ signifies that, air is forcefully applied to the transformer. High speed fans are provided with this type of cooling system. In larger rated oil immersed transformers, natural air and oil cooling is not sufficient. So, additional air force is applied to the radiator by means of those fans and this method provides quicker heat dissipation of the transformers as compared to natural oil and air cooling. All fans are automatically controlled, whenever the temperature of the transformer goes beyond the safe limit than all the fans are switched ON. But here the oil circulation process made by natural convection, that is no oil pumps are provided for this type of cooling. This method provides better performance than natural oil and air cooling, but there is an additional cost due to the fans.

Oil forced Air forced (OfAf) Cooling of Transformer:

Actually, for very large rated oil immersed transformers, heat generated is quite high. Therefore, some special cooling techniques are applied in order to provide sufficient heat dissipation. In Oil forced Air forced cooling system, both oil and air are circulated at high speed by some additional configuration. High speed fans are connected to provide additional air flow of high velocity and oil pumps are provided to circulate the oil at high velocity. So, hot oil is circulated inside the main transformer tank at larger velocity, so the rate of cooling is further increased. Therefore, in oil forced air forced cooling system; both the oil and air are forcefully applied to achieve more fast cooling process.

Oil Directed Air forced Cooling of Transformer:

This is the updated version of Oil forced Air forced cooling method. Here the Oil and Air both are applied forcefully, but the hot oil follows a specific route for flowing. Convection channels are made closer to the winding of the transformer and the transformer oil is passed through those channels. In this way, superior heat dissipation is occurred.

Oil forced Water forced Cooling of Transformer:

Water is far better coolant than atmospheric air. So, in this method water is used as the oil coolant instead of natural air. Here, the flow of hot oil is directed to a heat ex-changer where water shower is applied. So, here the oil is cooled at faster rate than natural air cooling.

Therefore, from the above discussion, we understood the necessity of transformer cooling and also learned about the various types of transformer cooling.

Comments

Nice post! Thanks for sharing!

Popular posts from this blog

Breaker Schemes in Substations

Breaker Schemes in Substations — Types, Design, Advantages, Disadvantages, and Comparison Author: Engr. Aneel Kumar Figure 1: Infographic overview of breaker schemes commonly used in substations. Introduction The breaker scheme or busbar arrangement in a substation defines how incoming feeders, outgoing feeders, and power transformers are connected to the bus. The choice of scheme has a direct impact on system reliability, maintainability, safety, and cost . A simple bus scheme is economical but vulnerable to outages, while advanced schemes such as breaker-and-a-half or double-bus/double-breaker provide very high reliability but at much higher cost and design complexity. Engineers select breaker schemes considering fault tolerance, maintenance needs, space requirements, expansion possibilities, protection coordination, and capital investment . Below, we explain eac...

PRIMARY SECONDARY AND TERTIARY FREQUENCY CONTROL IN POWER SYSTEMS

Primary, Secondary and Tertiary Frequency Control in Power Systems Author: Engr. Aneel Kumar Keywords: frequency control, primary frequency control, automatic generation control (AGC), tertiary control, load-frequency control, grid stability. Frequency control keeps the power grid stable by balancing generation and load. When generation and demand drift apart, system frequency moves away from its nominal value (50 or 60 Hz). Grids rely on three hierarchical control layers — Primary , Secondary (AGC), and Tertiary — to arrest frequency deviation, restore the set-point and optimize generation dispatch. Related: Power System Stability — causes & mitigation Overview of primary, secondary and tertiary frequency control in power systems. ⚡ Primary Frequency Control (Droop Control) Primary control is a fast, local response implemented by generator governors (dro...

AC Transmission Line and Reactive Power Compensation: A Detailed Overview

  Introduction The efficient operation of modern power systems depends significantly on the management of AC transmission lines and reactive power. Reactive power compensation is a vital technique for maintaining voltage stability, improving power transfer capability, and reducing system losses. This article explores the principles of AC transmission lines, the need for reactive power compensation, and its benefits in power systems. Keywords: Reactive Power Compensation Benefits, STATCOM vs SVC Efficiency, Power Transmission Stability Solutions, Voltage Stability in Long-Distance Grids, Dynamic Reactive Power Compensation.      Fundamentals of AC Transmission Lines AC transmission lines are the backbone of modern power systems, connecting generation stations to distribution networks. They have distributed electrical parameters such as resistance ( R R R ), inductance ( L L ), capacitance ( C C ), and conductance ( G G ) along their length. These parameters influence ...

Operation of Thyristor Controlled Series Capacitor (TCSC): Mechanism and Working Principles

Introduction In modern power systems, maintaining voltage stability and optimizing power transmission is crucial. One of the most effective FACTS (Flexible AC Transmission System) controllers for this purpose is the Thyristor Controlled Series Capacitor (TCSC) . TCSC dynamically adjusts line impedance , allowing for enhanced power flow, transient stability improvement, and subsynchronous resonance (SSR) mitigation . Unlike conventional fixed series capacitors, TCSC uses thyristor-controlled switching to regulate the compensation level in real-time, ensuring grid reliability and efficiency . In this article, we will explore: ✅ The working principle and internal structure of TCSC ✅ Modes of operation and impedance control mechanisms ✅ How TCSC enhances power system efficiency and stability Understanding the Thyristor Controlled Series Capacitor (TCSC) What is a TCSC? A Thyristor Controlled Series Capacitor (TCSC) is a power electronic-based controller used in transmission systems to ...

Advantages of Per Unit System in Power System Analysis | Electrical Engineering

  Advantages of Per Unit System in Power System Analysis In electrical power engineering, the per unit (p.u.) system is one of the most widely used techniques for analyzing and modeling power systems. It is a method of expressing electrical quantities — such as voltage, current, power, and impedance — as fractions of chosen base values rather than their actual numerical magnitudes. This normalization technique provides a universal language for system calculations, minimizing errors, simplifying transformer modeling, and enabling consistency across multiple voltage levels. Because of these benefits, the per unit system is essential in fault analysis, load flow studies, transformer testing, and short-circuit calculations . ⚡ What is the Per Unit System? The per unit system is defined as: Q u a n t i t y ( p u ) = A c t u a l   V a l u e B a s e   V a l u e Quantity_{(pu)} = \dfrac{Actual \ Value}{Base \ Value} Q u an t i t y ( p u ) ​ = B a se   ...

Types of Transmission Towers in Saudi Electricity Company (SEC) – NGSA Standards

 The Kingdom of Saudi Arabia (KSA) is rapidly expanding its energy infrastructure projects to meet the growing demand for electricity. At the heart of this growth lies the high voltage transmission network , which delivers reliable power from generation plants to cities, industries, and remote areas. To ensure safety and efficiency, the Saudi Electricity Company (SEC) follows strict NGSA (National Grid Saudi Arabia) standards for designing and selecting transmission towers . These lattice steel towers are engineered to withstand extreme desert conditions, high wind loads, and long transmission spans. In this article, we will explore the different types of transmission towers in Saudi Arabia , their applications, and how they contribute to the power transmission system design . Why Transmission Towers Are Crucial in Power Grid Development Every kilometer of transmission line construction requires careful planning. The right tower design ensures: Stable support for 69k...

REVERSING DIRECTION OF ROTATION OF UNIVERSAL MOTOR

The direction of rotation of a universal motor can be changed by either: (i) Reversing the field connection with respect to those of armature; or (ii) By using two field windings wound on the core in opposite directions so that the one connected in series with armature gives clockwise rotation, while the other in series with the armature gives counterclockwise rotation. The second method, i.e, the two field method is used in applications such as motor operated rheostats and servo systems. This method has somewhat simpler connections than the first method. For simple applications like portable drills etc. manual switches are frequently used for reversing the direction of rotation of the motor. Figure  1 (a and b) shows how a DPDT (Double Pole Double Throw) switch and a three position switch may be used for reversing the direction of rotation of single field and double field type of motors respectively. Figure 1 Reversing of a universal motor (a) Armature re...