An Accelerated Editing Method for Stress Signal on Combine Harvester Chassis Using Wavelet Transform
Abstract
1. Introduction
2. Materials and Methods
2.1. Measurement System
2.2. Signal Characteristic Analysis
3. Theoretical Background
3.1. Wavelet Transform and Signal Decomposition
3.2. Pseudo-Damage Theory
3.3. Analysis of Acceleration Editing Results Based on the General Method
4. The Improved Wavelet Transform Accelerated Editing Method
4.1. Classification of Wavelet Components
4.2. Improved Threshold Selection Method
- (1)
- For the target component, the traditional threshold selection method is used to sequentially calculate the retained signal results corresponding to each threshold level.
- (2)
- Use the rainflow counting method to statistically analyze the load cycle information of the above results. Calculate the pseudo-damage of the retained signal for each threshold level and establish a correspondence between the threshold and the pseudo-damage of the retained interval results.
- (3)
- Following the principle of equidistant increments in pseudo-damage, calculate the new threshold gradient using linear interpolation.
5. Results Analysis and Discussion
5.1. Time-Domain Characteristic Analysis of Signal Editing Results
5.2. Power Spectral Density Analysis
5.3. Influence of the Wavelet Function Vanishing Moments on the Effect of Accelerated Editing
6. Conclusions
- (1)
- In traditional wavelet transform acceleration editing methods, since the signal frequency components and statistical characteristics represented by different wavelet components vary significantly, identifying damage segments with equal weight for all wavelet components without distinction will have a negative impact on the acceleration results, especially when dealing with stationary low-amplitude signals. Classifying and combining wavelet components based on frequency characteristics and reasonably dividing thresholds according to the principle of pseudo-damage equidistance is an effective improvement approach.
- (2)
- Compared to the time-domain damage retention method and traditional wavelet transform acceleration editing methods, the proposed improvement in this paper achieves more streamlined acceleration results under the same pseudo-damage ratio condition (Q ≥ 98). The time-domain signal length is reduced by 7.76% and 15.92%, respectively. Moreover, the accelerated signal maintains consistency with the original signal in terms of statistical parameters (RMS value and kurtosis coefficient) and power spectral density.
- (3)
- Under consistent pseudo-damage ratio determination conditions, the vanishing moments of wavelet functions are also important parameters influencing the acceleration editing results. For the improved wavelet transform acceleration editing method, compared to the initially set db12 wavelet function, the db2 wavelet can further reduce the time-domain signal length by 4.8%. Therefore, it is recommended to supplement the variable analysis of wavelet function vanishing moments when applying wavelet transform acceleration editing methods to obtain a more optimized load spectrum.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Name | Model | Technical Specifications |
---|---|---|
Strain Gauge | BE-350-3BB(11)-Q30 | Resistance value 350 Ω |
Sensitivity factor 2.10 ± 1% | ||
Data Acquisition Device | SoMat eDAQ | 32-channel EBRG |
Sampling rate ≤ 100 kHz |
Operating Condition | Mean | Standard Deviation | Root Mean Square | Percentage of Pseudo-Damage |
---|---|---|---|---|
1—Startup adjustment | 46.99 | 42.09 | 63.08 | 2.5% |
2—Normal harvesting | 12.77 | 16.41 | 20.79 | 30.9% |
3—Field reversing | 21.03 | 38.20 | 43.60 | 5.5% |
4—Field driving with a full tank | 0.38 | 43.25 | 43.25 | 52.1% |
5—Grain unloading | 6.97 | 22.61 | 23.66 | 0.7% |
6—Field driving with an empty tank | −1.20 | 7.22 | 7.32 | 8.2% |
Method | Pseudo-Damage Ratio | Signal Compression Ratio |
---|---|---|
Time-domain damage retention method | 98.07% | 71.94% |
Traditional wavelet transform method | 98.42% | 80.08% |
Improved wavelet transform method | 98.18% | 64.16% |
Method | RMS/με (Deviation/%) | Kurtosis Coefficient (Deviation/%) |
---|---|---|
Original signal | 32.94 | 5.41 |
Time-domain damage retention method | 37.12 (12.67%) | 4.32 (20.19%) |
Traditional wavelet transform method | 35.41 (7.49%) | 4.70 (13.19%) |
Improved wavelet transform method | 36.64 (11.24%) | 4.56 (15.69%) |
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Huang, S.; Yang, Z.; Song, Z.; Yu, Z.; Guo, X.; Chen, D. An Accelerated Editing Method for Stress Signal on Combine Harvester Chassis Using Wavelet Transform. Sensors 2025, 25, 4100. https://doi.org/10.3390/s25134100
Huang S, Yang Z, Song Z, Yu Z, Guo X, Chen D. An Accelerated Editing Method for Stress Signal on Combine Harvester Chassis Using Wavelet Transform. Sensors. 2025; 25(13):4100. https://doi.org/10.3390/s25134100
Chicago/Turabian StyleHuang, Shengcao, Zihan Yang, Zhenghe Song, Zhiwei Yu, Xiaobo Guo, and Du Chen. 2025. "An Accelerated Editing Method for Stress Signal on Combine Harvester Chassis Using Wavelet Transform" Sensors 25, no. 13: 4100. https://doi.org/10.3390/s25134100
APA StyleHuang, S., Yang, Z., Song, Z., Yu, Z., Guo, X., & Chen, D. (2025). An Accelerated Editing Method for Stress Signal on Combine Harvester Chassis Using Wavelet Transform. Sensors, 25(13), 4100. https://doi.org/10.3390/s25134100