Analysis of the Thermodynamic Characteristics of a Hyper-Compressor through Numerical Simulation and Experimental Investigation
Abstract
:1. Introduction
2. Numerical Calculation Model
2.1. Physical and Numerical Model
2.2. Numerical Methodology and Boundary Conditions
- Leakage was disregarded;
- The heat exchange during the operating cycle was neglected;
- The pressure pulsation in the piping in front of the inlet buffer tank was not considered.
2.3. Real Gas Model
2.4. Mesh Independence Check
3. Experimental Verification
3.1. Measurement of the TDC Signal
3.2. Measurement and Construction of the Diagram
3.3. Measurement and Reconstruction of the Pressure Pulsation in the Pipe
3.4. Validation of the NDT
4. Discussion
4.1. Dynamic Pressure in the Working Chamber
4.2. The Performance of the Central Valve
4.2.1. Poppet Valve Motion
4.2.2. Valve Power Loss
4.2.3. Effect of the Pressure Ratio
4.3. The Effect of the Dis-Pipe Pressure Pulsation
5. Conclusions
- A non-destructive method based on material stress was proposed to measure and construct a diagram of a hyper-compressor and the pressure of an internal pipe, which demonstrated good agreement with the directly measured pressure;
- The 3D-CFD model considering piston and valve motions could predict the thermodynamic performance and pressure pulsation of the hyper-compressor with reasonable precision compared to the experimental results;
- The RGM was of great importance for the simulated results;
- The valve loss was produced primarily by the complex geometric structure, while the structure and movement of the poppet valve had little impact on the power loss;
- The poppet valve closest to the inlet was fastest-closing and the valve farthest from the inlet had obvious flutter;
- The valve loss represented a small amount of power loss in an operating cycle, and the major power loss was due to pressure pulsation in the discharge process;
- A pulsation attenuator should be installed in both the suction and discharge pipe near the hyper-compressor.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
Notation | |
Valve sleeve equivalent mass | |
Stiffness of valve spring | |
Acceleration of valve sleeve | |
Velocity of valve sleeve Displacement of valve sleeve | |
Damping coefficient | |
Force | |
Pressure | |
Area of valve | |
velocity | |
Stroke | |
Rotational speed | |
Molar gas constant Specific Helmholtz energy | |
Temperature | |
Isobaric heat capacity | |
Isochoric heat capacity Second viral coefficient Third viral coefficient Specific enthalpy Specific internal energy Speed of sound Specific entropy Indicated power Mass flow rate | |
Gravitational acceleration | |
Reciprocating inertial mass | |
Crank radius | |
Young’s modulus | |
Diameter | |
Greek letters | |
Ratio of crank radius to connecting rod | |
Crank angle | |
Dimensionless Helmholtz energy | |
Reduced density | |
Inverse reduced temperature | |
Density | |
Difference | |
Dynamic friction coefficient | |
Stress | |
Angular velocity of crankshaft rotation | |
Strain | |
Poisson’s ratio | |
Subscripts | |
Piston rod | |
At the critical point | |
Suction | |
Discharge | |
Friction | |
Gas | |
Reciprocating inertia Internal External | |
Circumferential | |
Axial | |
Superscripts | |
Ideal gas part | |
Residual part | |
Saturated liquid state | |
Saturated vapor state |
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Item | 1 | 2(Ref) | 3 |
---|---|---|---|
No of mesh /106 | 1.27 | 1.73 | 2.05 |
0.9844 | 1 | 1.00045 | |
0.9817 | 1 | 1.0034 |
Parameters | Unit | |
---|---|---|
Crank radius | mm | 170 |
Connecting rod length | mm | 800 |
Speed | rpm | 200 |
Piston diameter | mm | 80 |
Clearance volume | % | 31 |
Substance | - | Ethylene |
Suction/discharge pressure | MPa | 100/180 |
Suction/discharge temperature | K | 294/317 |
Pressure Ratio | 1.8 | 2.2 | 2.6 |
---|---|---|---|
Indicated power/kW | 557.73 | 763.14 | 960.78 |
Suction loss/kW | 20.09 | 21.04 | 20.35 |
Discharge loss/kW | 108.33 | 116.66 | 124.10 |
Valve Power Loss/kW | Poppet Valve | Central Valve |
---|---|---|
Suction | 1.23 | 14.50 |
Discharge | 2.07 | 10.43 |
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Yang, L.; Jia, X.; Peng, X. Analysis of the Thermodynamic Characteristics of a Hyper-Compressor through Numerical Simulation and Experimental Investigation. Appl. Sci. 2023, 13, 4478. https://doi.org/10.3390/app13074478
Yang L, Jia X, Peng X. Analysis of the Thermodynamic Characteristics of a Hyper-Compressor through Numerical Simulation and Experimental Investigation. Applied Sciences. 2023; 13(7):4478. https://doi.org/10.3390/app13074478
Chicago/Turabian StyleYang, Lanlan, Xiaohan Jia, and Xueyuan Peng. 2023. "Analysis of the Thermodynamic Characteristics of a Hyper-Compressor through Numerical Simulation and Experimental Investigation" Applied Sciences 13, no. 7: 4478. https://doi.org/10.3390/app13074478
APA StyleYang, L., Jia, X., & Peng, X. (2023). Analysis of the Thermodynamic Characteristics of a Hyper-Compressor through Numerical Simulation and Experimental Investigation. Applied Sciences, 13(7), 4478. https://doi.org/10.3390/app13074478