Submitted:
27 August 2025
Posted:
28 August 2025
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Contact Resistance
2.2. Contact Resistance Modeling
2.3. Experimental Device
2.4. Experimental Methods
3. Results and Discussion
3.1. Influence of Salt Spray Concentration on Contact Resistance
3.2. Influence of Sliding Speed on Contact Resistance
3.3. Influence of Contact Current on Contact Resistance
3.4. Influence of Contact Pressure on Contact Resistance
4. Establish the Contact Resistance Model
4.1. Contact Resistance Model for Salt Spray Concentration
4.2. Contact Resistance Model for Sliding Speed
4.3. Contact Resistance Model for Contact Current
4.4. Contact Resistance Model for Contact Pressures
5. Calculation of Contact Resistance Model Parameters
5.1. Calculation of Parameter
| Parameter | Output value |
| p | 1003.94714094166 |
| q | 2.194594913744752 |
| m | 0.002610903057224 |
| k | 5.520640713625986e-04 |
| γ | 0.375277889478294 |
| a | 8.093303281884793e-06 |
| b | -0.004806427413361 |
| c | 4.842509636721836 |
| Statistic | Output value |
| Mean square error (MSE) | 1.6986 |
| Residual sum of squares (SSE) | 96.8198 |
| Correlation coefficient (r) | 0.9716 |
| Square of correlation coefficient (R2) | 0.9441 |
| F statistics | 160.324 |
| P value | 8.2e-8 |
5.2. Experimental Verification
6. Conclusions
Funding
Conflicts of Interest
Abbreviations
| ECR | Electrical Contact Resistance |
| MSE | Mean Square Error |
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| Structure Name | Parameter/(unit) | Parameter Value |
| Brush | Length L1/(mm) | 32 |
| Height B1/(mm) | 12.5 | |
| Width W1/(mm) | 16 | |
| Density /(kg﹒m3) | 3000 | |
| Temperature coefficient /(℃-1) | 0.0019 | |
| Electrical resistivity/(Ω·m) | 9.5×10-6 | |
| Slip ring | Inner diameter R1/(mm) | 290 |
| Outside diameter R2/(mm) | 300 | |
| Ring width B2/(mm) | 20 | |
| Density /(kg﹒m3) | 8670 | |
| Temperature coefficient /(℃-1) | 0.0043 | |
| Electrical resistivity/(Ω·m) | 1×10-8 |
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