MtR=πμDF²/2·(p₁l₁+p₂l₂+p₃l₃)
Preliminary calculation with a fixed result quantity: MtR=πμDF²/2·(p₁l₁+p₂l₂+p₃l₃)
Preliminary calculation with a fixed result quantity: MtR=πμDF²/2·(p₁l₁+p₂l₂+p₃l₃)
Select a target and calculate.
Preliminary calculation with a fixed result quantity: MtR=πμDF²/2·(p₁l₁+p₂l₂+p₃l₃)
μru=0.12, DF=50 mm and (pᵢ,lᵢ)=(25 MPa,40 mm), (18 MPa,50 mm), (30 MPa,30 mm) give MtR≈1,319 N·m.
Three sections with constant calculated pressure in each; local stress peaks and determination of pᵢ are not included.
This Sauer machine-element calculator provides a clearly scoped preliminary calculation based on the local Sauer reference. The result quantity is fixed and every input is explained physically; a complete component verification remains separate.
The model translates the defined geometry and load into a characteristic machine-element quantity. It is intentionally narrower than a complete strength verification.
MtR=πμDF²/2·(p₁l₁+p₂l₂+p₃l₃)
Relationship from the cited Sauer section; approximations are identified on the individual calculator page| Symbol / input | Meaning |
|---|---|
| Total slip torque MtR | Sum of the torque capacities of the three slices. |
| Static friction coefficient μru | Interface coefficient under circumferential load. |
| Fit diameter DF | Common interface diameter of all slices. |
| Interface pressure p₁ | Calculated pressure in the first hub section. |
| Length l₁ | Axial length of the first section. |
| Interface pressure p₂ | Calculated pressure in the second hub section. |
| Length l₂ | Axial length of the second section. |
| Interface pressure p₃ | Calculated pressure in the third hub section. |
| Length l₃ | Axial length of the third section. |
Each input is identified as nominal, effective or mean. Lengths, forces, torques, stresses, angles and dimensionless factors are converted internally to coherent SI units. Absolute pressure must be distinguished from gauge pressure.
Use the fixed result quantity, copy the inputs from the drawing, load case or material data sheet, and check every unit. Then compare the result, worked example and model limits.
The page example deliberately uses rounded, technically plausible values. It is an independent plausibility check, not a universal table value.
The result is a preliminary design quantity. A small or large value is meaningful only together with allowable stress, wear, temperature, manufacturing and safety factors.
Display units can be selected per field; the shared unit core calculates internally in SI. Enter percentages as decimal factors unless the field explicitly carries a percent unit.
Typical uses are option comparison, early sizing, teaching and plausibility checking of a detailed calculation.
Automatic norm-table selection, fatigue, local stress peaks, tolerance chains, temperature and wear models, and design release are not included.
Common mistake: Common mistakes are using the wrong reference diameter, confusing full and half angles, entering gauge instead of absolute pressure, using percent instead of a decimal factor, and treating a preliminary result as a standard verification.
No. It is a closed-form preliminary calculation; material, safety, fatigue and detail checks remain separate.
Pressure, diameter, load share and deflection act at different geometric locations depending on the model.
No. Standard and manufacturer series must be matched to the actual output and tolerance situation.
Use the worked example, test an analytical limiting case, and then verify units and signs.
For sharp geometry steps, local contact, large deflection, dynamic excitation, heat, wear or safety-critical release.