Numerical Analysis of Energy Recovery of Hybrid Loader Actuators Based on Parameters Optimization
Abstract
:1. Introduction
2. Principle of Energy Recovery and Regeneration System of the Hybrid Loader Actuator
2.1. Hydraulic System Principle of Loader Actuator
2.2. Principle of Energy Recovery and Regeneration System for Hybrid Loader Actuator
3. Mathematical Model Analysis of Hydraulic Components
3.1. Mathematical Model Analysis of Engine
3.2. Mathematical Model Analysis of Boom Cylinder
3.3. Mathematical Model Analysis of Accumulator
3.4. Mathematical Model Analysis of Energy Regeneration Hydraulic Motor
4. System Modeling and Simulation
4.1. Load-Sensing Pump Modeling
4.2. Actuator Modeling
4.3. Multi-Way Valve Modeling
4.4. System Modeling
5. System Simulation Results Analysis
5.1. Cylinder Motivation Characteristics Analysis
5.2. System Energy Recovery and Regeneration Analysis
6. System Component Parameter Optimization Analysis
6.1. Parameter Optimization Analysis of Accumulator and Energy Regeneration Hydraulic Motor
6.1.1. Analysis of the Effect of the Filling Pressure of the Accumulator on Energy Recovery
6.1.2. Analysis of the Effect of the Rated Volume of the Accumulator on Energy Recovery
6.1.3. Analysis of Energy Regeneration Hydraulic Motor Displacement on Energy Regeneration
6.2. Analysis of System Energy Recovery and Regeneration after Parameter Optimization
7. System Energy-Saving Analysis
7.1. Engine Power Analysis
7.2. Engine Fuel Consumption Analysis
8. Conclusions
- The system actuator is responsive and can meet the regular operation needs of the loader.
- The energy recovery efficiency of the system shows a rising and then decreasing trend as the accumulator filling pressure and the rated volume of the accumulator rise. The energy regeneration efficiency of the system shows a rising and then maintaining trend as the hydraulic motor displacement rises.
- The system energy recovery and energy regeneration efficiency reaches the maximum when the accumulator filling pressure is 23 bar, the rated volume is 63 L, and the energy regeneration hydraulic motor displacement is 130 mL/rev.
- After optimizing the system parameters, the system energy recovery efficiency is 45.3%, and the system energy regeneration efficiency is 79.8%. The system energy recovery and regeneration efficiency have increased by 9.8% and 5.4%, respectively.
- When the boom arm rises, the hybrid system can effectively reduce the engine power by 42.5% after parameter optimization. The system engine power is reduced by 6.8%.
- The system can effectively reduce the engine fuel consumption by 20.1% after parameter optimization. The engine fuel consumption is reduced by 5%.
- The system provides a reference for designing an energy recovery system and researching the energy-saving technology of loaders.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameters | Value |
---|---|
Load-sensing valve preset differential pressure | 15 bar |
Pressure cut-off valve pressure | 170 bar |
Maximum opening area diameter of the proportional throttle | 0.01 m |
Displacement | 200 mL/rev |
Power source speed | 2000 rev/min |
Parameters | Mass | Horizontal Distance from Front Wheel Center | Vertical Distance from the Center of the Front Wheel |
---|---|---|---|
Bucket center | — | 1.849 m | 0.3187 m |
Boom arm | 1219.1 kg | 0.531 m | 0.6138 m |
Rocker arm | 285.9 kg | 0.9766 m | 0.6301 m |
Rotary bucket | 1433.8 kg | 1.843 m | 0.1038 m |
Pull rod | 43 kg | 0.864 m | −0.0591 m |
Parameters | Value |
---|---|
Pilot valve spool diameter | 0.0025 m |
Main valve spool diameter | 0.01 m |
Maximum spool displacement of pilot valve | 0.00025 m |
Maximum spool displacement of main valve | 0.0005 m |
Pilot valve spool mass | 0.01 kg |
Main valve spool mass | 0.05 kg |
Proportional solenoid rated current | 100 mA |
Damping factor | 50 N/(m/s) |
Components | Parameters | Value |
---|---|---|
Engine | Rated speed | 2000 rev/min |
Specific heat value of fuel | 42700 kJ/kg | |
Number of cylinders | 6 | |
Boom cylinder | Piston diameter | 0.165 m |
Rod diameter | 0.08 m | |
Stroke length | 0.757 m | |
Bucket cylinder | Piston diameter | 0.2 m |
Rod diameter | 0.1 m | |
Stroke length | 0.54 m | |
Pressure compensation valve | Preset differential pressure | 10 bar |
Accumulator | Initial filling pressure | 13 bar |
Maximum working pressure | 50 bar | |
Initial rated volume | 55 L | |
Energy regeneration hydraulic motor | Initial displacement | 90 mL/rev |
Efficiency | 80~90% |
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Mu, H.; Luo, Y.; Luo, Y.; Chen, L. Numerical Analysis of Energy Recovery of Hybrid Loader Actuators Based on Parameters Optimization. Actuators 2022, 11, 260. https://doi.org/10.3390/act11090260
Mu H, Luo Y, Luo Y, Chen L. Numerical Analysis of Energy Recovery of Hybrid Loader Actuators Based on Parameters Optimization. Actuators. 2022; 11(9):260. https://doi.org/10.3390/act11090260
Chicago/Turabian StyleMu, Hongyun, Yanlei Luo, Yu Luo, and Lunjun Chen. 2022. "Numerical Analysis of Energy Recovery of Hybrid Loader Actuators Based on Parameters Optimization" Actuators 11, no. 9: 260. https://doi.org/10.3390/act11090260
APA StyleMu, H., Luo, Y., Luo, Y., & Chen, L. (2022). Numerical Analysis of Energy Recovery of Hybrid Loader Actuators Based on Parameters Optimization. Actuators, 11(9), 260. https://doi.org/10.3390/act11090260