Working at Height: Types of Fall Protection and Key Safety Considerations

Explore essential fall protection methods and vital safety tips for working at height to ensure a secure and compliant workplace.

Working at height remains one of the highest-risk activities across construction, utilities, maintenance, infrastructure and industrial environments. In the UK, these activities are governed by the Work at Height Regulations 2005, which aim to prevent injury and death caused by falls from height. Employers must ensure work is properly planned, supervised and carried out using suitable equipment. The most common kind of fatal accident for workers is falls from height, accounting for around a quarter of fatal injuries in 2025/26.  

Whether carrying out roof work, tower maintenance, façade inspections or general construction tasks, selecting the correct personal fall protection equipment (PFPE) is essential for worker safety. 


What Is Working at Height?

Working at height refers to any task where a person could fall and injure themselves if precautions are not taken.

This can include:

  • Roof work
  • Ladder work
  • Scaffold work
  • Mobile elevated work platforms (MEWPs)
  • Steel erection
  • Tower climbing
  • Rope access operations
  • Maintenance and inspection activities

Choosing the correct personal fall protection equipment (PFPE) depends on the nature of the work, the position of the anchor point and the potential fall risk. For further guidance, the HSE provides dedicated resources covering safe working at height. 


1. Work Restraint

A work restraint system prevents the user from reaching an area where a fall could occur. Instead of stopping a fall after it happens, the system is designed to stop the worker from entering a fall-risk zone in the first place.

A typical work restraint system includes:

1. Limit of user’s movement

2. Harness attachment point

3. Anchor

4. Lanyard

5. Fall risk area

Worker wearing a safety harness connected to an anchor point with a lanyard in a work restraint system, preventing access to a roof edge.

Because the user cannot physically reach the edge or hazard, the risk of falling is reduced. JSP include products suitable for work restraint applications. 


2. Work Positioning

Work positioning systems allow workers to remain supported while carrying out a task at height.

The system keeps the worker in place by maintaining tension in the equipment, helping to prevent a free fall from occurring. Depending on the application, the equipment may fully support the user's weight or provide partial support. 

Worker wearing a safety harness and lanyard while supported against a vertical structure using a work positioning system.


3. Fall Arrest

A fall arrest system is designed to safely stop a fall after it has occurred.

The worker is connected to the structure through a series of components that work together to arrest the fall and reduce the forces placed on the body. EN 363 requires impact forces on the user to be limited to a maximum of 6 kN. 

Worker wearing a safety harness connected to a vertical lifeline while climbing a ladder using a fall arrest system.

JSP's include equipment designed for fall arrest, work restraint and work positioning applications.


4. Rope Access

Rope access is a specialised form of work positioning that allows workers to access difficult-to-reach locations while suspended by ropes and a harness. Originally developed from climbing and caving techniques, rope access allows technicians to ascend, descend and traverse structures while safely supported. 

Worker suspended on ropes while wearing a safety harness as part of a rope access system for working at height.

A rope access system should always incorporate a backup safety system using a working line and a separate safety line.


Key Work at Height Safety Considerations

Minimum Free Space Required

Minimum free space refers to the clearance required beneath a worker to allow a fall arrest system to stop a fall safely before the worker contacts the ground or another obstacle. Factors affecting minimum free space include device length, shock absorber deployment, harness connection position and safety clearance. 

A Length of the device under tension.

B Length of the deployed shock absorber (if in use).

C Maximum length between the user’s feet and the anchor point on the harness after the fall.

D Safety clearance recommended.

Diagram illustrating minimum free space requirements for a fall arrest system. The sequence shows a worker before a fall, during a fall and after the fall has been arrested. Measurements labelled A, B, C and D represent the clearance needed to allow the lanyard, energy absorber and harness system to deploy safely before the worker reaches the ground or a lower level.


What Is Fall Factor?

Fall factor is calculated by dividing:

Free Fall Distance ÷ Lanyard Length

The higher the fall factor:

  • The greater the forces generated during a fall
  • The higher the risk of injury
  • The greater the demands placed on the fall arrest equipment

Where possible, anchor points should be positioned above the user to minimise fall factor. 

For a 2 metre lanyard:

A Anchor point above user (Preferred option). Free fall distance: 0.5 m (F) Fall factor = 0.5/2 =0.25

B Anchor point at shoulder level (Non-preferred option). Free fall distance: 2m (F) Fall factor = 2/2 =1

C Anchor point at foot level (only if there is no other option). Free fall distance: 4m (F) Fall factor = 4/2 =2

Diagram comparing three fall factor scenarios labelled A, B and C. The illustrations show a worker connected to anchor points positioned at shoulder height, foot level and above the head. As the anchor point moves lower, the free fall distance (F) increases, demonstrating how anchor point location affects the severity of a potential fall and the forces generated during fall arrest.


What Is the Pendulum Effect?

The pendulum effect, also known as a swing fall, occurs when a worker falls while positioned horizontally away from the anchor point. Instead of falling directly downward, the worker swings back towards the structure, increasing the risk of collision and secondary injuries. 

1 Position of user before fall

2 Swing fall trajectory

3 Collision with structure

a Angle between retractable lanyard and the vertical

Diagram showing a worker connected to an overhead anchor point by a fall arrest system. The illustration demonstrates the pendulum effect, where the worker falls and swings in an arc towards a nearby structure instead of falling straight down. The diagram highlights the increased risk of collision and secondary injuries caused by horizontal movement during a swing fall.


How Do You Choose the Right Height Safety Equipment?

Before selecting height safety equipment, several factors should be assessed:

  • Available free space beneath the work area
  • Position of the anchor point
  • Potential fall factor
  • Risk of pendulum effect
  • Type of work being carried out

To help users identify suitable products, JSP has developed a range of solutions for fall restraint, work positioning, fall arrest and rope access applications. Further guidance is available in the JSP Height Safety Guide.

Icons showing different height safety applications including fall arrest, restraint, confined space working, work positioning and working in suspension.

Have any more height safety questions? Take a look at our height safety faq.

Find out more about our range of height safety. 

Take a look at our height safety guide.

HSE also has a step-by-step guide on their website.


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