An Analysis of the Performance Characteristics of Different Cylinder Temperatures for Ni-W and Ni-W-BN(h) Plated Piston Rings in an Air-Cooled Engine
Abstract
:1. Introduction
2. Experimental Procedure
2.1. Coating Preparation and Mechanical Properties
2.2. Engine Performance Test
3. Results and Discussion
3.1. Mechanical Properties of the Coatings
3.2. Analysis of Engine Performance Characteristics
3.3. Engine Exhaust Analysis
4. Conclusions
- The results of the friction test show that a Ni-W alloy and a Ni-W-BN(h) composite coating protect the substrate material. Compared with the Fe substrate, the Ni-W alloy and Ni-W-BN(h) composite coating are respectively 6.44 and 11.02 times more resistant to wear. The coatings are applied to the piston rings, and the results of an engine dynamometer test show that the Ni-W alloy and the Ni-W-BN(h) composite coating have good wear resistance;
- Ni-W-BN(h) composite coating contains boron nitride self-lubricating particles, reducing frictional energy losses under mixing or boundary lubrication conditions. At the optimum cylinder temperature, the engine produces more BMEP under all operating conditions, and power output increases and fuel consumption is reduced, so fuel conversion efficiency (ηf) is increased;
- For engines that use piston rings with a Ni-W-BN(h) composite coating, the optimal cylinder temperature range that gives the best BMEP is between 132 °C and 150 °C. The best fuel conversion efficiency (ηf) is achieved at a cylinder temperature of between 150 °C and 170 °C. Therefore, the best BMEP and fuel conversion efficiency (ηf) is achieved at a cylinder temperature of about 150 °C. This is crucial information for the design of an engine;
- A piston ring with Ni-W-BN(h) composite coating piston ring produces the least hydrocarbons (HC) and carbon monoxide (CO). Compared with an engine that uses an uncoated piston ring, the exhaust temperature (Tep) is reduced by 1.69%, so it is eminently suited to use in low-heat rejection engines.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
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Plating Solution Composition | |
---|---|
NiSO4·6H2O | 0.06 mol/L |
Na2WO4·2H2O | 0.14 mol/L |
Na3C6H5O7 | 0.4 mol/L |
NH4Cl | 0.5 mol/L |
BN(h) | 2 g/L |
CTAB | 60 mg/L |
Coating Type | Coating Composition | Mechanical Properties | ||||
---|---|---|---|---|---|---|
Ni (wt.%) | W (wt.%) | BN(h) (vol.%) | Hardness (HV) | C.O.F | Wear Index (10−6 mm3/Nm) | |
Fe Substrate | - | - | - | 128.3 ± 1.1 | 0.07 ± 0.0034 | 114.65 ± 0.63 |
Ni-W | 59.4 ± 0.9 | 40.6 ± 1.1 | - | 1049.12 ± 28.3 | 0.11 ± 0.0024 | 17.8 ± 0.97 |
Ni-W-BN(h) | 56.5 ± 0.2 | 43.3 ± 0.11 | 5.13 ± 0.6 | 989.1 ± 16.1 | 0.10 ± 0.0017 | 10.4 ± 0.65 |
Coating Type | BMEP (kPa) | ηf (%) | |
---|---|---|---|
Fe Substrate | 669 | 25.39 | 2600 |
Ni-W | 706.2 | 25.47 | 2608 |
Ni-W-BN(h) | 718.3 | 26.01 | 2590 |
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Chou, C.-C.; Huang, P.-C.; Dai, H.-B. An Analysis of the Performance Characteristics of Different Cylinder Temperatures for Ni-W and Ni-W-BN(h) Plated Piston Rings in an Air-Cooled Engine. Energies 2022, 15, 1026. https://doi.org/10.3390/en15031026
Chou C-C, Huang P-C, Dai H-B. An Analysis of the Performance Characteristics of Different Cylinder Temperatures for Ni-W and Ni-W-BN(h) Plated Piston Rings in an Air-Cooled Engine. Energies. 2022; 15(3):1026. https://doi.org/10.3390/en15031026
Chicago/Turabian StyleChou, Chih-Cheng, Pao-Chang Huang, and Huang-Bin Dai. 2022. "An Analysis of the Performance Characteristics of Different Cylinder Temperatures for Ni-W and Ni-W-BN(h) Plated Piston Rings in an Air-Cooled Engine" Energies 15, no. 3: 1026. https://doi.org/10.3390/en15031026
APA StyleChou, C. -C., Huang, P. -C., & Dai, H. -B. (2022). An Analysis of the Performance Characteristics of Different Cylinder Temperatures for Ni-W and Ni-W-BN(h) Plated Piston Rings in an Air-Cooled Engine. Energies, 15(3), 1026. https://doi.org/10.3390/en15031026