Study on Dynamic Injection Prediction Model of High-Pressure Common Rail Injector under Thermal Effect
Abstract
:1. Introduction
2. Description of the Experimental System
3. Analysis and Discussion
3.1. Development and Verification of the CR Injector Model under Isothermal Flow
3.2. Study on the Simulation Model of CR Injector under Adiabatic Flow
3.3. Study on the Simulation Model of CR Injector under Non-Isothermal Flow Coupled with Heat Transfer
3.4. Influence of Fuel Heating Effects on the Cycle Injection Quantity
3.5. Influence of Injection Pressure on Cycle Injection Quantity under Thermal Effect
4. Conclusions
- (1)
- The transient ΔT at the nozzle calculated by the adiabatic flow model of the CR injector increases rapidly to the maximum value in a very short time, which differs from the behavior of the experimental ΔT with the fuel injector working time. Therefore, the adiabatic flow model cannot reflect the non-isothermal phenomena that occur during the actual injection process of the injector. The ΔT calculated by the model under non-isothermal flow coupled with heat transfer is in good agreement with the experimental data overall, and it can accurately describe the transient ΔT at the nozzle.
- (2)
- Under the assumption that the fuel in the CR injector is isothermal, the model cannot calculate the cycle injection quantity under the thermal effect in the actual working process. The cycle injection quantity calculated by the adiabatic flow model decreases rapidly owing to the rapid increase in temperature at the beginning of the injector working time, after which it remains unchanged. The cycle injection quantity calculated by the non-isothermal flow model coupled with heat transfer gradually decreases with the injector working time until it stabilizes. The difference in the cycle injection quantity calculated by the two models with the change in injector working time is mainly caused by different thermal phenomena at the nozzle.
- (3)
- As the injection pressure increases, the greater ΔP causes the fuel in the nozzle holes to generate more heat, resulting in a greater reduction in the cycle injection quantity under the action of heat. Therefore, for a high-pressure CR system with high-pressure and ultra-high-pressure injections, it is necessary to consider the influence of heat generation caused by ΔP on the cycle injection quantity when performing precise control of the cycle injection quantity. This conclusion has a guiding role for the control system, achieving precise and flexible control of the injection characteristics.
- (4)
- The experimental data and simulation results in this study demonstrate that the thermal effect at the nozzle of a high-pressure CR injector cannot be ignored, as the heat transfer directly affects the physical properties of the fuel and then reduces the cycle injection quantity. With stricter emission regulations, higher injection pressure requirements will make the thermal effect at the nozzle more obvious, which may significantly affect the injection characteristics. The research methods and results of this paper are informative and instructive. In further research, it is necessary to transform the test bench to realize the experimental measurement of the cycle injection quantity at different injection times under the working state of the injector. The experimental measurement will be mainly carried out in order to compare with the calculation results and prove the significance of this research from an experimental point of view.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Parameters (Unit) | Value |
---|---|
Ball diameter of control valve (mm) | 1.33 |
Lift of armature (mm) | 0.07 |
Diameter of OA orifice (mm) | 0.34 |
Diameter of OZ orifice (mm) | 0.23 |
Lift of needle (mm) | 0.25 |
Diameter of needle (mm) | 4 |
Pre-tightening force of needle spring (N) | 50 |
Diameter of nozzle hole (mm) | 0.157 |
Number of nozzle holes | 9 |
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Liu, Z.; Li, Z.; Wu, J.; Liu, J.; Chen, P. Study on Dynamic Injection Prediction Model of High-Pressure Common Rail Injector under Thermal Effect. Energies 2022, 15, 5067. https://doi.org/10.3390/en15145067
Liu Z, Li Z, Wu J, Liu J, Chen P. Study on Dynamic Injection Prediction Model of High-Pressure Common Rail Injector under Thermal Effect. Energies. 2022; 15(14):5067. https://doi.org/10.3390/en15145067
Chicago/Turabian StyleLiu, Zhenming, Ziming Li, Jiechang Wu, Jingbin Liu, and Ping Chen. 2022. "Study on Dynamic Injection Prediction Model of High-Pressure Common Rail Injector under Thermal Effect" Energies 15, no. 14: 5067. https://doi.org/10.3390/en15145067
APA StyleLiu, Z., Li, Z., Wu, J., Liu, J., & Chen, P. (2022). Study on Dynamic Injection Prediction Model of High-Pressure Common Rail Injector under Thermal Effect. Energies, 15(14), 5067. https://doi.org/10.3390/en15145067