Integration of Sensors for Enhanced Condition Monitoring in Polymer Gears: A Comparative Study of Acceleration and Temperature Sensors
Abstract
:1. Introduction
1.1. Sensors
1.2. Polymer Gears
1.3. Vibration Analysis
1.4. Aim of the Contribution
- Can integrated acceleration sensors provide more sensitive condition monitoring of POM gears than external acceleration sensors?
- Can integrated temperature sensors into the POM gear provide reliable data that correlate with the wear of the gear?
2. Materials and Methods
- Comparison of state-of-the-art condition monitoring using external acceleration sensors and sensors integrated onto a polymer gearwheel.
- Comparative measurements using a temperature sensor integrated into a polymer gear and correlating the measurement data with the wear of the gear.
2.1. In Situ Sensor Module
2.2. Test Bench Setup
2.3. Test Procedure
2.4. Data Processing
3. Results
3.1. Wear
3.2. Temperature
3.3. Acceleration Signal Properties
3.4. Gear Condition Metrics
4. Discussion
4.1. Wear
4.2. Temperature Sensor
4.3. Vibration Analysis
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
Term | Abbreviation |
Polyoxymethylene | POM |
Gear Mesh Frequency | GMF |
Gear Condition Metrics | GCMs |
Energy Ratio | ER |
In situ Sensor Module | ISM |
Bluetooth Low Energy | BLE |
Bearing Block Sensors | BBSs |
Lateral Surface Area | LSA |
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GCM | Formula | Description | |
---|---|---|---|
Energy Ratio (ER) | (2) | : standard deviation of the differential signal of a data sample : standard deviation of the regular signal of a data sample | |
NA4* | (3) | : number of data points in a vibration signal : residual vibration signal : residual vibration signal of a data sample of the unworn gear |
Signal | Composite |
---|---|
Regular | Shaft frequency and plus sidebands up to fourth harmonic |
Differential | Normal vibration signal with removed shaft frequency and plus sidebands up to fourth harmonic |
Residual | Normal vibration signal with removed shaft frequency and plus first order sidebands |
In Situ Sensor Module (ISM) | Bearing Block Sensors (BBSs) | |
---|---|---|
Name | ADXL05 | PCB-356A02 |
Type | MEMS with analog output | Piezo |
Measurement range | ±100 g | ±50 g |
Frequency Range | 23 kHz | 5 kHz |
Resonance Frequency | 42 kHz | 25 kHz |
Sensitivity | 14.3 mV/g | 10 mV/g |
Sensitivity change from 20 °C to 50 °C | ±2% | −10–0% |
Noise Density | 125 µg/√Hz | 5 µg/√Hz |
POM Gear | Steel Gear | |
---|---|---|
Material | POM | steel |
Fabrication | milled | milled |
Module | 1.5 | 1.5 |
Number of teeth | 55 | 65 |
Width | 17 mm | 10 mm |
Diameter | 82.5 mm | 97.5 mm |
Weight | 165 g | 742 g |
Thermal conductivity | 0.31 W/m·K | 50.2 W/m·K |
Shaft Frequency | ||||
---|---|---|---|---|
16.7 Hz | 916.7 Hz | 1833.3 Hz | 2750 Hz | 3666.7 Hz |
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Hasenoehrl, S.; Peters, J.; Matthiesen, S. Integration of Sensors for Enhanced Condition Monitoring in Polymer Gears: A Comparative Study of Acceleration and Temperature Sensors. Appl. Sci. 2024, 14, 2240. https://doi.org/10.3390/app14062240
Hasenoehrl S, Peters J, Matthiesen S. Integration of Sensors for Enhanced Condition Monitoring in Polymer Gears: A Comparative Study of Acceleration and Temperature Sensors. Applied Sciences. 2024; 14(6):2240. https://doi.org/10.3390/app14062240
Chicago/Turabian StyleHasenoehrl, Sascha, Julian Peters, and Sven Matthiesen. 2024. "Integration of Sensors for Enhanced Condition Monitoring in Polymer Gears: A Comparative Study of Acceleration and Temperature Sensors" Applied Sciences 14, no. 6: 2240. https://doi.org/10.3390/app14062240
APA StyleHasenoehrl, S., Peters, J., & Matthiesen, S. (2024). Integration of Sensors for Enhanced Condition Monitoring in Polymer Gears: A Comparative Study of Acceleration and Temperature Sensors. Applied Sciences, 14(6), 2240. https://doi.org/10.3390/app14062240