Unit Conversions · Engineering & science · Rotation, oscillations & waves

Torque and Lever Arm Calculator

Solve torque, applied force, moment arm, or force angle with perpendicular-force and geometric lever-arm companion outputs.

Unit Conversions · Engineering & science · Rotation, oscillations & waves

Torque and Lever Arm Calculator

Private in-browser calculation · explicit units, solve direction, assumptions, reconciliation, and companion outputs
Torque and Lever Arm Calculator — visual relationshipUses the current inputs
Torque and Lever Arm Calculatorsitorqueknown quantity → unit-aware physical relation → result
The visual explains this calculator’s quantity and updates from the entered values. It does not add measurement accuracy or infer missing physical data.
  1. 1EnterProvide the known values
  2. 2CalculateResults update automatically
  3. 3VerifyReview the details and units
Try an example

Every label states the corresponding SI and customary input unit. Outputs include both systems where useful.

Leave the field selected as the unknown blank; enter the other required values.

Calculation result

Enter valid values to see the result.

Your entries are calculated in this browser and are not submitted to 365CALCS.COM.

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Understand the engineering model

What is Torque and Lever Arm?

Rotation and wave models relate angular motion, radius, torque, inertia, stiffness, period, frequency, wavelength, and observed motion. Each equation applies only to its stated idealization.

Distinguish force magnitude from the perpendicular component that creates a moment.

The relationship

Write the model before substituting values

See the calculation

From measurement to engineering result

Worked context

Read the output with its units

A 50 N force 2.5 m from the axis at about 53.13° creates 100 N·m torque.

Interpret with care

Important model boundary

This scalar magnitude model does not replace vector cross products, distributed loading, multiple forces, fastener design, shaft strength, or the existing motor shaft-power workflow.

A calculated value does not certify a component, material, installation, operating envelope, code requirement, or safety decision. Check measurements, signs, standards, uncertainty, and professional approval where consequences matter.

Browse Engineering & science for connected physical relationships.

Quick guide

How to use this calculator

  1. Choose the physical relationship and solve direction that match the known measurements rather than forcing unlike quantities into one formula.
  2. Enter every unit, sign, reference direction, geometry, material property, fluid property, temperature basis, coefficient, and idealization explicitly. The calculator normalizes compatible quantities internally and exposes intermediate values.
  3. Use reconciliation and companion outputs to catch entry mistakes, then retain the stated model boundary. A theoretical result is not a design approval, material certificate, equipment rating, or safety determination.

Calculation method

How the torque and lever arm calculator works

Distinguish force magnitude from the perpendicular component that creates a moment.

τ=rF sin θ. Angle mode returns the principal 0–90° solution when the entered ratio is feasible.

Worked example

Torque and Lever Arm example

A 50 N force 2.5 m from the axis at about 53.13° creates 100 N·m torque.

τ=rF sin θ. Angle mode returns the principal 0–90° solution when the entered ratio is feasible.

Supported inputs

Precision and limits

Engineering-model boundary

This scalar magnitude model does not replace vector cross products, distributed loading, multiple forces, fastener design, shaft strength, or the existing motor shaft-power workflow.

Units and precision

Calculations normalize compatible inputs to SI, retain working precision, and round only for display. Very small and large nonzero values use scientific notation; displayed digits cannot create accuracy beyond the entered measurements and properties.

Decision boundary

This page solves the declared idealized relationship only. Verify applicable material data, operating conditions, geometry, loads, coefficients, standards, codes, manufacturer requirements, uncertainty, and professional approval before consequential use.

Category ownership

Generic mechanics, materials, fluid, aerodynamic, wave, and thermodynamic relationships live here. Trade-specific pipe, HVAC, motor, electrical, construction, automotive, radiation, statistical, chemical, and astronomical workflows remain with their established categories.

Privacy

Entered values and results stay in this browser and are not sent to analytics or third parties.

Continue calculating

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