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Physics

Mechanical Stress calculator

Stress on a material from an applied force and the cross-sectional area it acts over.

Published 21 August 2026

What this calculator does

This is mechanical stress, not the everyday sense of the word: the stress formula in engineering is force divided by the cross-sectional area it acts over, and it describes how hard a material is being pushed or pulled per unit of area, not how someone feels. It is one of the first equations covered in materials and structural engineering, because it is what gets compared against a material's strength to check whether a part will hold.

How to calculate stress comes down to that one division: bigger force over the same area means more stress, and the same force spread over a bigger area means less. This calculator takes a force and an area and returns the stress in megapascals, pascals and psi, so the result can be checked against whichever unit a datasheet or textbook is using.

The formula

Formulaσ = F / A

Divide the applied force by the cross-sectional area it acts over. With force in newtons and area in square millimetres, the result in megapascals falls out directly, because 1 newton per square millimetre is exactly 1 megapascal. The same figure is also shown in pascals and psi for reference.

TermMeaning
Stress (σ)Force divided by the cross-sectional area it acts over: σ = F / A.
ForceThe load applied to the material, in newtons.
Cross-sectional areaThe area of the slice the force is spread across, at right angles to the force.
PascalThe SI unit of stress and pressure: 1 pascal = 1 newton per square metre.

The inputs explained

FieldWhat to enter
Applied force (N)The applied force, in newtons.
Cross-sectional area (mm²)The cross-sectional area the force is spread across, in square millimetres.

When to use it

Sizing a bolt, cable or bracket

Comparing the stress a part will see under a given load against the material's known yield strength is the basic check for whether that part is strong enough, or oversized.

Comparing two cross-sections carrying the same load

The same force produces very different stress depending on how much area it is spread across, which is the whole reason structural members are made thicker in high-load areas.

Converting between stress units on a datasheet

Material strength figures are quoted in MPa, psi or pascals depending on the source; working out stress in all three avoids a unit-conversion mistake when comparing against a spec.

Worked examples

Every figure in the tables below is produced by this page’s own calculator at build time, so the numbers and the tool always agree. Select any row to load that scenario.

How stress changes as force increases, at a fixed area

The same 50 mm² area, carrying a range of applied forces.

50 mm² cross-sectional area
Applied forceStress (σ)Stress in psi
1,000 N20.00 MPa2,901 psi
2,500 N50.00 MPa7,252 psi
5,000 N100.00 MPa14,504 psi
7,500 N150.00 MPa21,756 psi
10,000 N200.00 MPa29,008 psi
15,000 N300.00 MPa43,511 psi
Stress rises in direct proportion to force once the area is held fixed, since one is simply the other divided by a constant.

How stress changes as the cross-sectional area increases, at a fixed force

A fixed 5,000 N load, spread across a range of cross-sectional areas.

5,000 N applied force
Cross-sectional areaStress (σ)Stress in psi
10 mm²500.00 MPa72,519 psi
25 mm²200.00 MPa29,008 psi
50 mm²100.00 MPa14,504 psi
75 mm²66.67 MPa9,669 psi
100 mm²50.00 MPa7,252 psi
150 mm²33.33 MPa4,835 psi
The same load produces a lower stress as it is spread across more area, and a sharply higher stress as the area narrows.

Questions

What is the formula for stress?

Stress equals force divided by cross-sectional area, σ = F / A. With force in newtons and area in square metres, the result is in pascals; with area in square millimetres, the result in megapascals comes out directly, since 1 N/mm² equals 1 MPa.

Is stress the same as pressure?

They share the same formula and units, but describe different situations. Pressure usually refers to a fluid or gas pushing on a surface from all directions; stress describes internal force within a solid material, which can pull, push or shear rather than just push.

How is stress different from strain?

Stress is the force per unit area applied to a material; strain is the resulting deformation, usually expressed as a fraction of the original length. The two are related by the material's stiffness, but stress alone does not tell you how much a part will stretch or bend.

What stress level is safe for a given material?

That depends on the specific material's yield strength, which this calculator does not assume, since quoting a generic safe figure would be misleading across different materials and applications. Compare the calculated stress against the actual yield or tensile strength for the material in question, usually with a safety factor applied.

For the area itself on a circular, rectangular or pipe-shaped section, see the cross-sectional area calculator.