Who uses pushing and pulling motions at work?
Workers use various pushing and pulling techniques in a wide range of activities, such as:
- context using manual carts and trucks
- context sliding objects such as cartons on flat surfaces (tables, floors, etc.)
- context operating tools and controls
- context opening and closing doors
- context wrapping or enclosing objects in packaging materials
Are there any "limits" for the amount of force one should exert?
Because of the complex nature of body motion during pushing and pulling, no numerical standard has yet been developed that can be directly applied in industry.
Many factors affect the amount of force that a worker can develop in a horizontal push and pull:
Tables 1 and 2 contain the upper force limits for a variety of pushing and pulling tasks. They indicate the amount of force that a worker should exert. It is important to be aware that the forces in the tables are not the same as the weight of objects being pushed and pulled. This difference means that we cannot use these upper force limits as recommendations for weight limits that can be pushed or pulled in the workplace. Only trained personnel using special equipment can measure the forces exerted by a worker.
- context body weight and strength
- context height of force application
- context direction of force application
- context distance of force application from the body
- context different positions (standing, kneeling, overhead, and seated)
- context posture (bending forward or leaning backward)
- context friction coefficient (amount of friction or grip between floors and shoes, as well as between the loand and the ground)
- context duration and distance of push or pull
What are the force limits for horizontal pushing and pulling?
The values in Table 1 show the upper limits of forces for horizontal pushing and pulling. These limits should not be exceeded in work situations. In fact, it is better and safer if pushing and pulling tasks require lower forces, particularly, where the task requires:
Where a worker can support their body (or feet) against a firm structure higher forces (up to 675N or about 165 lbf or 75 Kgf) can be developed.
1. Whole body involved
* Adopted from: Ergonomic design for people at work. Vol. 2, by Eastman Kodak Company, Van Nostrand Reinhold, 1986, and Kodak's Ergonomic Design for People at Work 2nd edition by Somadeepti, et al. 2004
** Units of force are: Newton (N), kilogram-force (kgf), pound-force (lbf); 10N is about the same as 1 Kgf or 2 lbf. The values in each unit system - Newtons, kilogram force and pound force, respectively - are provided in the table because all are used in the literature and on instruments, depending on the country of origin.
- context pushing or pulling an object when the hands must be above the shoulder or below the waist level
- context exerting a force for longer than 5 seconds
- context exerting a force at an angle not directly in front of the body, e.g., not "straight on"
What are the limits for vertical pushing and pulling?
The values in Table 2 show the upper limits of forces for vertical pushing and pulling. Examples of the use of vertical force are operating controls and hand tools. Such activities tend to be of a repetitive nature and physically more demanding than occasional pushing or pulling. Therefore, these tasks should be designed for considerably lower force requirements than those shown in Table 2.
* Adopted from: Ergonomic design for people at work. Vol. 2, by Eastman Kodak Company, Van Nostrand Reinhold, 1986
** Units of force are: Newton (N), kilogram-force (kgf), pound-force (lbf); 10N is about the same as 1 kgf or 2 lbf. The values in each unit system - Newtons, kilogram-force and pound force, respectively - are provided in the table because all are used in the literature and on instruments, depending on the country of origin.