The Optimization Design of Variable Valve Parameters for Internal Combustion Engines Considering the Energy Consumption of a Composite Electromagnetic Valve Mechanism
Abstract
:1. Introduction
2. Principles and Performance of the Composite Electromagnetic Valve Mechanism
3. Camless Engine Modeling, Validation, and Simulation Analysis
3.1. Model Development and Validation
3.2. Effects of Variable Valve Parameters on Engine Performance
4. Multi-Objective Optimization of Fully Variable Valve Parameters
4.1. Establishment of the Optimization Model
4.2. TOPSIS Analysis Based on Entropy-Based CRITIC Synthetic Weighting
- 1.
- Construct the initial matrix.
- 2.
- Normalize the matrix.
- 3.
- The processed matrix is as follows:
- 4.
- Calculate the weights using the entropy method.
- 5.
- Calculate the CRITIC weights.
- 6.
- Calculation of objective weights.
- 7.
- Calculate the synthetic weights.
- 8.
- Construct the weighted decision matrix.
- 9.
- Determine the positive ideal solution (Z+) and the negative ideal solution (Z−) for each indicator:
- 10.
- Calculate the distance between each set of evaluation indicators and the positive ideal solution (Z+) and the negative ideal solution (Z−):
- 11.
- Finally, calculate the closeness coefficient (Ri) for each set of evaluation indicators to the ideal solutions:
4.3. Analysis of Optimization Results
5. Conclusions
- (1)
- The fast response characteristics of the electromagnetic valve result in a delayed optimal exhaust opening timing and an earlier intake closing timing. While a larger valve lift (10 mm) does not lead to significant improvements in engine performance, it can increase the energy consumption of the valve mechanism. This is a key factor that needs to be considered during the optimization design of valve timing parameters.
- (2)
- The use of a multi-objective game theory optimization algorithm for valve timing parameter optimization offers higher computational efficiency and accuracy. The results indicated an average torque increase of 2.56% across all operating conditions, a 6.23% reduction in effective fuel consumption, and a 9.86% decrease in nitrogen oxide emissions.
- (3)
- By incorporating the energy consumption and drive efficiency of the valve mechanism as decision factors, a valve timing control strategy was developed using the distance analysis method based on entropy-based synthetic weighting. This approach enabled the generation of an optimal valve operation mode MAP, effectively enhancing the drive efficiency of the composite electromagnetic valve mechanism while ensuring optimal engine performance.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
ICE | Internal combustion engine |
MOGT | Multi-objective game theory |
CRITIC | Criteria Importance Though Intercriteria Correlation |
TOPSIS | Technique for Order Preference by Similarity to an Ideal Solution |
EVO | Exhaust Valve Opening |
BSFC | Brake-specific fuel consumption |
IVC | Intake Valve Closing |
EVC | Exhaust Valve Closing |
TVO | Intake Valve Opening |
CA | Crank angle |
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Project | Performance Indicators |
---|---|
Engine type | In-line, water-cooled, four-stroke |
Number of cylinders | 6 |
Displacement (L) | 12.419 |
Valves per cylinder | 4 |
Compression ratio (-) | 19:1 |
Bore (mm) | 126 |
Itinerary (mm) | 166 |
Firing order | 1-5-3-6-2-4 |
Rated speed (r/min) | 1900 |
Whether to boost | Not |
Feasible Points | Torque/(N∙m) | Energy Consumption of the Valve Mechanism/(kW) | NOx Emissions/(g/(kW∙h)) | Closeness Level (Ri) |
---|---|---|---|---|
1 | 1113 | 3.94 (I10E10) | 15.2531 | 0.653 |
2 | 1110.19 | 3.94 (I10E10) | 15.1174 | 0.732 |
3 | 1107.71 | 3.94 (I10E10) | 15.0701 | 0.746 |
4 | 1104.83 | 3.00 (I10E8) | 15.0759 | 0.734 |
5 | 1101.45 | 2.85 (I8E8) | 15.1316 | 0.651 |
6 | 1098.87 | 3.94 (I10E10) | 14.9290 | 0.594 |
7 | 1097.42 | 3.00 (I10E8) | 14.9127 | 0.556 |
8 | 1096.82 | 3.00 (I10E8) | 14.9457 | 0.542 |
9 | 1094.78 | 3.79 (I8E10) | 14.8718 | 0.498 |
10 | 1090.98 | 2.85 (I8E8) | 14.8167 | 0.483 |
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Fan, X.; Han, J.; Yin, J.; Zheng, L.; Shao, W. The Optimization Design of Variable Valve Parameters for Internal Combustion Engines Considering the Energy Consumption of a Composite Electromagnetic Valve Mechanism. Actuators 2025, 14, 168. https://doi.org/10.3390/act14040168
Fan X, Han J, Yin J, Zheng L, Shao W. The Optimization Design of Variable Valve Parameters for Internal Combustion Engines Considering the Energy Consumption of a Composite Electromagnetic Valve Mechanism. Actuators. 2025; 14(4):168. https://doi.org/10.3390/act14040168
Chicago/Turabian StyleFan, Xinyu, Juyi Han, Jie Yin, Li Zheng, and Wei Shao. 2025. "The Optimization Design of Variable Valve Parameters for Internal Combustion Engines Considering the Energy Consumption of a Composite Electromagnetic Valve Mechanism" Actuators 14, no. 4: 168. https://doi.org/10.3390/act14040168
APA StyleFan, X., Han, J., Yin, J., Zheng, L., & Shao, W. (2025). The Optimization Design of Variable Valve Parameters for Internal Combustion Engines Considering the Energy Consumption of a Composite Electromagnetic Valve Mechanism. Actuators, 14(4), 168. https://doi.org/10.3390/act14040168