Scuffing Calculation of Cylindrical Gears Facing Loss of Lubrication
Abstract
1. Introduction
2. Loss of Lubrication and Scuffing Safety Calculation
3. Scuffing Safety Calculation
3.1. Load-Dependent Gear Power Loss
3.2. Heat Transfer Coefficient and Bulk Temperature
3.3. Surface and Material Properties
3.4. Suggested Calculation Method
3.5. Validation
| Gear Geometry | Surface and Material Variant | ϑOil | Oil | Lubricant Factor XL | Scuffing Load Stage SLS | Oil Share Progression During LOL bOil|Ref | Gradient of Scuffing Temperature CS|Ref |
|---|---|---|---|---|---|---|---|
| Type Cmod,LOL | REF (ground) | 90 °C | AeroShell 500 | 0.8 | 7 ([6]) | −0.01 | 18 K/µs |
4. Results of Calculation Study
4.1. Influence of Oil Share Progression During LOL
4.2. Influence of Gear Surface and Material
4.3. Influence of Gear Geometry
4.4. Influence of Oil Type
4.5. Influence of Oil Viscosity
4.6. Influence of Oil Additives
5. Discussion
5.1. Classification of Influencing Factors on LOL Performance
5.2. Reflection
6. Conclusions
- The oil share during loss of lubrication should be kept at the highest possible level by taking constructive measures, as this increases the heat transfer and reduces bulk temperatures.
- DLC coatings offer the greatest potential for avoiding scuffing during loss of lubrication. However, the coating’s durability under design conditions must be ensured.
- A low-loss gear geometry is a promising solution for significantly improving the loss of lubrication performance, as sliding speeds are considerably reduced and scuffing safety is increased.
- The oil type can significantly influence the loss of lubrication performance when low friction is enabled. The viscosity itself has a subordinate influence.
- Oil additives can significantly increase loss of lubrication performance due to increased scuffing temperatures.
- A speed range of approx. 8 < vt,C < 40 m/s should be avoided, as the measures presented were unable to prevent a rapid decrease in scuffing safety within this speed range.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
| a | Center distance | mm |
| aMat | Material factor for loss of lubrication | - |
| aMat,REF | Material factor for loss of lubrication for case-hardened ground gears | - |
| aMat,SUF | Material factor for loss of lubrication for superfinished gears | - |
| aMat,CO3 | Material factor for loss of lubrication for coated gears | - |
| aMat,NIT | Material factor for loss of lubrication for nitrided gears | - |
| ap | Load factor for loss of lubrication | - |
| av | Speed factor for loss of lubrication | - |
| A | Starting point of meshing | - |
| b | Face width | mm |
| bOil | Factor for oil share decrease during LOL | - |
| B | Starting point of single tooth contact on driving gear | - |
| C | Pitch point | - |
| Ca | Tip relief | μm |
| CS | Gradient of the scuffing temperature | K/µs |
| C2 | Weighting factor | - |
| da1/2 | Tip diameter pinion/wheel | mm |
| db1/2 | Base diameter pinion/wheel | mm |
| dw1/2 | Pitch diameter pinion/wheel | mm |
| D | End point of single tooth contact point on driving gear | - |
| E | End point of meshing | - |
| Fbt | Tangential force at the base circle | N |
| FPi | Active surface of pinion | mm2 |
| FW | The tooth flank surface determining the heat transfer | mm2 |
| FWe | Active surface of wheel | mm2 |
| hc | Heat transfer coefficient | kcal/(mm2 s grd) |
| hmix | Heat transfer coefficient of oil air mixture | W/(m2 K) |
| hmix,LOL | Heat transfer coefficient of oil air mixture during LOL | W/(m2 K) |
| HV(L) | (Local) geometric tooth power loss factor | - |
| i | Transmission ratio | - |
| KBγ | Helical load factor | - |
| mn | Normal module | mm |
| pC | Hertzian pressure at the pitch point C | N/mm2 |
| pHm | Mean Hertzian pressure | kp/mm2 |
| Pin | Input power | W |
| PLGP | Load-dependent gear power loss | W (kcal/s for approach of Seitzinger [31]) |
| Pr | Prantl number | - |
| Q | Amount of lubricant (Volume flow rate) | L/min |
| q | Factor for heat transfer to the lubricant at the tooth flank surface and the face side | - |
| rC | Radius of pitch point C (wheel) | m |
| Ra | Arithmetic mean flank roughness | µm |
| Re | Reynolds number | - |
| SB | Scuffing safety factor (ISO/TS 6336-20) | - |
| SB,LOL | Scuffing safety factor for loss of lubrication based on ISO/TS 6336-20 | - |
| SintS | Scuffing safety factor (ISO/TS 6336-21) | - |
| SintS,LOL | Scuffing safety factor for loss of lubrication based on ISO/TS 6336-21 | - |
| SRef | Mean scuffing safety of the reference | - |
| SVar | Mean scuffing safety of variant | - |
| Srel | Relative scuffing safety | - |
| Srel|vt,C | Relative scuffing safety for discrete speeds vt,C | - |
| tC | Contact time | µs |
| tK | Contact time at the minimum of the scuffing speed curve | µs |
| Tin | Input torque | Nm |
| TLGP | Load-dependent gear torque loss | Nm |
| TLGP,LOL | Load-dependent gear torque loss during loss of lubrication | Nm |
| T1/T2 | Contact points of tangent (lines of engagement) at base circle | - |
| v | Reference line velocity | m/s |
| vgm | Mean sliding speed over the path of contact | m/s |
| vt,C | Circumferential speed at the pitch point C | m/s |
| v∑C | Sum speed at the pitch point C | m/s |
| wBt | Transverse unit load (ISO 6336-20)/ | N/mm |
| Specific tooth load (ISO 6336-21) | N/mm | |
| x1/2 | Profile shift coefficient | - |
| xi | Factor for the transmission ratio i | - |
| Xb | Factor for face width | - |
| XBE | Geometry factor at pinion tooth tip | - |
| XCa | Tip relief factor | - |
| XE | Run-in factor | - |
| XG | Geometry factor | - |
| XJ | Approach factor | - |
| XL | Lubricant factor | - |
| XLOL | Loss of lubrication factor | - |
| XM | Thermo-elastic factor (ISO 6336-20)/ | K∙N−3⁄4∙s1⁄2∙m−1⁄2∙mm/ |
| Themal flash factor (ISO 6336-21) | - | |
| XQ | Factor for the amount of oil/ | -/ |
| Approach factor (ISO 6336-21) | - | |
| XT | Factor considering the oil temperature (=1 for 90 °C) | - |
| XWrelT | Relative welding factor | - |
| Xαβ | Pressure angle ratio factor | - |
| XΓ | Load sharing factor | - |
| Xε | Contact ratio factor | - |
| z1/2 | number of teeth pinion/wheel | - |
Greek Symbols
| αn | Pressure angle | ° |
| αOil | Volumetric share of oil | - |
| αOil,Ref | Reference volumetric share of oil | - |
| αOil,Var1/2 | Volumetric share of oil of variant 1/2 | - |
| αsb | Working pressure angle | ° |
| β | Helix angle | ° |
| βg | Helix angle at base circle | ° |
| ε1/2 | Addendum contact ratio of the pinion/wheel | - |
| εα | Transverse contact ratio | - |
| εβ | Overlap ratio | - |
| η | Dynamic viscosity | mPas |
| ϑbmax | Maximum contact temperature | °C |
| ϑbmax,LOL | Maximum contact temperature for loss of lubrication | °C |
| ϑfl | Flash temperature | K |
| ϑfl,LOL | Flash temperature for loss of lubrication | K |
| ϑflaint | Mean flash temperature | K |
| ϑflaint,LOL | Mean flash temperature for loss of lubrication | K |
| ϑflaE | Flash temperature at pinion tooth tip when load sharing is neglected | K |
| ϑflaE,LOL | Flash temperature for loss of lubrication at pinion tooth tip when load sharing is neglected | K |
| ϑflmax | Maximum flash temperature | K |
| ϑflmax,LOL | Maximum flash temperature for loss of lubrication | K |
| ϑint | Integral temperature | °C |
| ϑint,LOL | Integral temperature for loss of lubrication | °C |
| ϑintS | Scuffing integral temperature | °C |
| ϑS | Scuffing temperature | °C |
| ϑSC | Constant scuffing temperature at long contact times | °C |
| ϑM | Bulk temperature | °C |
| ϑM,LOL | Bulk temperature during LOL | °C |
| ϑOil | Oil injection temperature | °C |
| ϑOver | Overtemperatuer | °C |
| λ | Thermal conductivity | W/(mK) |
| μmZ | Mean gear coefficient of friction | - |
| μmZ,LOL | Mean gear coefficient of friction during loss of lubrication | - |
| ν | Kinematic viscosity | mm2/s |
| ρredC | Relative curvature at the pitch point | mm |
| ρ | Density | kg/m3 |
| φavr | Physical properties of an averaged oil/air fluid flow | - |
| φavr,LOL | Physical properties of an averaged oil/air fluid flow during loss of lubrication | - |
| φoil/air | Physical properties of oil/air | - |
Abbreviations
| A | FZG test gear geometry “A” |
| CFD | Computational fluid dynamics |
| Cmod,LOL | FZG test gear geometry “Cmod,LOL” |
| eLL | FZG test gear geometry “extreme Low Loss” |
| EP | Extreme pressure |
| IL | Injection lubrication |
| ISO VG 46 | Oil “ISO VG 46” |
| LOL | Loss of lubrication |
| LS | Load stage |
| SLS | Scuffing load stage |
Appendix A
| Test Gear Geometry | Cmod,LOL [6] | A [52] | eLL [55] | |||
|---|---|---|---|---|---|---|
| Pinion | Wheel | Pinion | Wheel | Pinion | Wheel | |
| Number of teeth | 16 | 24 | 16 | 24 | 39 | 52 |
| Normal module mn in mm | 4.5 | 4.5 | 1.81 | |||
| Pressure angle αn in ° | 20 | 20 | 36 | |||
| Helix angle β in ° | - | - | 25 | |||
| Transverse contact ratio εα | 1.436 | 1.361 | 0.65 | |||
| Overlap ratio εβ | - | - | 2.08 | |||
| Face width b in mm | 14 | 20 | 28 | |||
| Center distance a in mm | 91.5 | 91.5 | 91.5 | |||
| Tip diameter da1/2 | 82.45 | 118.35 | 88.77 | 112.5 | 80.6 | 106.5 |
| Profile shift coefficient x1/2 | 0.182 | 0.171 | 0.853 | −0.5 | 0.183 | 0.168 |
| Tip relief Ca in μm | 35 | 35 | - | - | - | - |
| Geometric tooth power loss factor HV for LS7 | 0.195 | 0.302 | 0.066 | |||
| Arithmetic mean flank roughness Ra in µm | 0.29 | 0.29 | 0.29 | |||

Appendix B
Appendix C
| Load Stage | Torque (Pinion) in Nm |
|---|---|
| 5 | 94.1 |
| 7 | 183.4 |
| 9 | 302.0 |
| 11 | 450.1 |
Appendix D
Appendix E

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| vt,C in m/s | 1 | 8.3 | 20 | 30 | 40 | 52 | 66 | 80 | 90 | 100 |
|---|---|---|---|---|---|---|---|---|---|---|
| aMat|REF in - | 1.0 | |||||||||
| aMat|SUF in - | 1.8 | |||||||||
| aMat|CO3 in - | 0.1 | |||||||||
| aMat|NIT in - | 1.0 | 1.0 | 0.7 | 0.45 | 0.2 | 0.2 | 0.2 | 0.2 | 0.2 | 0.2 |
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© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
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Morhard, B.; Lohner, T.; Stahl, K. Scuffing Calculation of Cylindrical Gears Facing Loss of Lubrication. Lubricants 2025, 13, 484. https://doi.org/10.3390/lubricants13110484
Morhard B, Lohner T, Stahl K. Scuffing Calculation of Cylindrical Gears Facing Loss of Lubrication. Lubricants. 2025; 13(11):484. https://doi.org/10.3390/lubricants13110484
Chicago/Turabian StyleMorhard, Bernd, Thomas Lohner, and Karsten Stahl. 2025. "Scuffing Calculation of Cylindrical Gears Facing Loss of Lubrication" Lubricants 13, no. 11: 484. https://doi.org/10.3390/lubricants13110484
APA StyleMorhard, B., Lohner, T., & Stahl, K. (2025). Scuffing Calculation of Cylindrical Gears Facing Loss of Lubrication. Lubricants, 13(11), 484. https://doi.org/10.3390/lubricants13110484

