• Product
  • Suppliers
  • Manufacturers
  • Solutions
  • Free tools
  • Knowledges
  • Experts
  • Communities
Search


Electrical Transmission Tower: Types, Design & Parts

Electrical4u
Electrical4u
Field: Basic Electrical
0
China

What Is An Electrical Transmission Tower

What is a Transmission Tower?

A transmission tower (also known as a power transmission tower, power tower, or electricity pylon) is a tall structure (usually a steel lattice tower) used to support an overhead power line. In electrical grids, they are used to carry high voltage transmission lines that transport bulk electric power from generating stations to electrical substations; utility poles are used to support lower-voltage sub-transmission and distribution lines that transport power from substations to electric customers.

Transmission towers have to carry the heavy transmission conductors at a sufficient safe height from the ground. In addition to that, all towers have to sustain all kinds of natural calamities. So transmission tower design is an important engineering job where civil, mechanical, and electrical engineering concepts are equally applicable.

Transmission Tower Parts

A power transmission tower is a key part of a power transmission system. A power transmission tower consists of the following parts:

  • The peak of the transmission tower

  • The cross arm of the transmission tower

  • The boom of transmission tower

  • Cage of transmission tower

  • Transmission Tower Body

  • Leg of transmission tower

  • Stub/Anchor Bolt and Baseplate assembly of the transmission tower.

These parts have been described below. Note that the construction of these towers is not a simple task, and there is a tower erection methodology behind building these high voltage transmission towers.

Peak of Transmission Tower

The portion above the top cross arm is called peak of transmission tower. Generally earth shield wire connected to the tip of this peak.

Cross Arm of Transmission Tower

Cross arms of transmission tower hold the transmission conductor. The dimension of cross arm depends on the level of transmission voltage, configuration and minimum forming angle for stress distribution.

Cage of Transmission Tower

The portion between tower body and peak is known as cage of transmission tower. This portion of the tower holds the cross arms.

Transmission Tower Body

peak and cage of a transmission tower

The portion from the bottom cross arms up to the ground level is called the transmission tower body. This portion of the tower plays a vital role in maintaining the required ground clearance of the bottom conductor of the transmission line.

cross arms of transmission tower

Transmission Tower Design

transmission tower design

During design of transmission tower the following points to be considered in mind,

  • The minimum ground clearance of the lowest conductor point above the ground level.

  • The length of the insulator string.

  • The minimum clearance to be maintained between conductors and between conductor and tower.

  • The location of a ground wire with respect to outermost conductors.

  • The midspan clearance required from considerations of the dynamic behavior of the conductor and lightning protection of the power line.

To determine the actual transmission tower height by considering the above points, we have divided the total height of the tower into four parts:

  • Minimum permissible ground clearance (H1)

  • Maximum sag of the overhead conductor (H2)

  • Vertical spacing between the top and bottom conductors (H3)

  • Vertical clearance between the ground wire and top conductor (H4)

The higher the voltage of the transmission line, the higher the ground clearance and verticle spacing tends to be. i.e. high voltage towers will have a higher permissible ground clearance and larger verticle spacing between the top and bottom conductors.

Types of Electrical Transmission Towers

According to different considerations, there are different types of transmission towers.
The
transmission line goes as per available corridors. Due to the unavailability of the shortest distance straight corridor transmission line has to deviate from its straightway when obstruction comes. In the total length of a long transmission line, there may be several deviation points. According to the angle of deviation, there are four types of transmission tower

  • A – type tower – angle of deviation 0o to 2o.

  • B – type tower – angle of deviation 2o to 15o.

  • C – type tower – angle of deviation 15o to 30o.

  • D – type tower – angle of deviation 30o to 60o.

As per the force applied by the conductor on the cross arms, the transmission towers can be categorized in another way-

  • Tangent suspension tower and it is generally A – type tower.

  • Angle tower or tension tower or sometime it is called section tower. All B, C and D types of transmission towers come under this category.

transmission tower

Apart from the above-customized type of tower, the tower is designed to meet special usages listed below:

These are called special type tower

  • River crossing tower

  • Railway/ Highway crossing tower

  • Transposition tower

Based on numbers of circuits carried by a transmission tower, it can be classisfied as-

  • Single circuit tower

  • Double circuit tower

  • Multi circuit tower.

Statement: Respect the original, good articles worth sharing, if there is infringement please contact delete.

Give a tip and encourage the author!
Recommended
THD Measurement Error Standards for Power Systems
THD Measurement Error Standards for Power Systems
Error Tolerance of Total Harmonic Distortion (THD): A Comprehensive Analysis Based on Application Scenarios, Equipment Accuracy, and Industry StandardsThe acceptable error range for Total Harmonic Distortion (THD) must be evaluated based on specific application contexts, measurement equipment accuracy, and applicable industry standards. Below is a detailed analysis of key performance indicators in power systems, industrial equipment, and general measurement applications.1. Harmonic Error Standar
Edwiin
11/03/2025
Busbar-Side Grounding for 24kV Eco-Friendly RMUs: Why & How
Busbar-Side Grounding for 24kV Eco-Friendly RMUs: Why & How
Solid insulation assistance combined with dry air insulation is a development direction for 24 kV ring main units. By balancing insulation performance and compactness, the use of solid auxiliary insulation allows passing insulation tests without significantly increasing phase-to-phase or phase-to-ground dimensions. Encapsulation of the pole can address the insulation of the vacuum interrupter and its connected conductors.For the 24 kV outgoing busbar, with the phase spacing maintained at 110 mm,
Dyson
11/03/2025
How Vacuum Tech Replaces SF6 in Modern Ring Main Units
How Vacuum Tech Replaces SF6 in Modern Ring Main Units
Ring main units (RMUs) are used in secondary power distribution, directly connecting to end-users such as residential communities, construction sites, commercial buildings, highways, etc.In a residential substation, the RMU introduces 12 kV medium voltage, which is then stepped down to 380 V low voltage through transformers. The low-voltage switchgear distributes electrical energy to various user units. For a 1250 kVA distribution transformer in a residential community, the medium-voltage ring m
James
11/03/2025
What Is THD? How It Affects Power Quality & Equipment
What Is THD? How It Affects Power Quality & Equipment
In the field of electrical engineering, the stability and reliability of power systems are of paramount importance. With the advancement of power electronics technology, the widespread use of nonlinear loads has led to an increasingly serious problem of harmonic distortion in power systems.Definition of THDTotal Harmonic Distortion (THD) is defined as the ratio of the root mean square (RMS) value of all harmonic components to the RMS value of the fundamental component in a periodic signal. It is
Encyclopedia
11/01/2025
Send inquiry
Download
Get the IEE Business Application
Use the IEE-Business app to find equipment, obtain solutions, connect with experts, and participate in industry collaboration anytime, anywhere—fully supporting the development of your power projects and business.