Experimental Study on Reaction Kinetic Characteristics of RP-3 Fuel Vapor Catalyst
Abstract
:1. Introduction
2. Experimental Principle and System
2.1. Experimental Principle
2.2. Experimental System
- Chromatography setup: Turn on the N2 cylinder, H2 generator, and air generator in sequence. Set the chromatographic conditions and ignite after reaching the set requirements.
- Gas distribution: Turn on the N2, O2, and CO2 cylinders in sequence and adjust the mass flowmeter or needle valve to achieve the required experimental conditions, which is a total flow rate of 200 mL/min. Adjust the needle valve before the reactor to ensure consistent flow rates at the reactor inlet and outlet.
- Setting experimental conditions: Turn on the constant temperature water bath and set the temperature value according to the experimental conditions. Turn on the muffle furnace and preheater heating and set the temperature value according to the experimental conditions.
- Experiment and measurement: Start the experiment after completely replacing the gas in the fuel tank ullage and the pipeline. Turn on V1 and turn off V2, measure the FVC before the reaction, and repeat the measurement three times. Then, turn on V2 and turn off V1, measure the FVC at the outlet of the catalytic reactor, and repeat the measurement three times.
- Changing experimental conditions: Change the fuel temperature, reaction temperature, preheating temperature, and gas distribution concentration of each gas according to the experimental working conditions to be carried out, and repeat step 4.
- Experiment conclusion: Close the valves of the chromatography instrument, muffle furnace, preheater, constant-temperature water bath, and gas distribution cylinder when the experiment is completed.
2.3. Chromatographic Calibration
3. Results and Discussion
3.1. Relationship between RP-3 FVC and Temperature
3.2. The Effects of Key Parameters on Kinetic Characteristics
3.2.1. Effect of Reaction Temperature
3.2.2. Effect of OC
3.2.3. Effect of FVC
3.2.4. Effect of CO2 Concentration
3.3. Reaction Kinetic Equation
4. Conclusions
- The results of this study indicate that the FVC of RP-3 increases with temperature, although its value is much lower than the value calculated based on the saturated vapor pressure. At 40 °C, the difference is as much as 8.6 times. Thus, using the saturated vapor pressure for FVC calculation is not feasible. Moreover, the experimental data reveal that the relationship between the RP-3 FVC and fuel temperature can be expressed by the equation . These findings have practical implications for the accurate calculation of the FVC and the optimization of the design and operation of fuel systems.
- The critical parameters that affect the catalytic reaction characteristics have been investigated. It was found that increasing the FVC, OC, and reaction temperature is beneficial to the catalytic reaction. Furthermore, it was determined that CO2 does not have a significant impact on the catalyst performance.
- The derived kinetic reaction equation for the catalyst developed for the RP-3 aviation fuel oxygen-consuming inerting system can be summarized as . This equation provides a fundamental basis for simulating the catalytic reactor and the inerting system.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
FVC | Fuel Vapor Concentration |
OC | Oxygen Concentration |
FAA | Federal Aviation Administration |
CAAC | Civil Aviation Administration of China |
HFM-OBIGGS | Hollow Fiber Membrane On-Board Inert Gas Generation System |
GOBIGGS | Green On-Board Inert Gas Generation System |
MCPD | Methylcyclopentadiene Dimer |
FID | Flame Ion Detector |
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Fuel Type | Alkane | Cycloalkane | Aromatic Hydrocarbon | Olefin | Others |
---|---|---|---|---|---|
RP-3 | 53% | 37.7% | 4.6% | 2% | 2.7% |
Jet-A | 39.1% | 23.2% | 37.4% | 0 | 0.3% |
Equipment | Manufacturer | Location | Model | Range | Precision |
---|---|---|---|---|---|
Mass flowmeter | SEVENSTAR Inc. | Beijing, China | CS200 | 0–2 L/min | ±1.0% |
Water bath | FDL Inc. | Shanghai, China | DC-8030 | −40–100 °C | ±0.1 °C |
Temperature sensor | SHENPENG Inc. | Shanghai, China | WRNK-191 | 0–800 °C | ±0.1 °C |
Gas–liquid separator | JGPC Inc. | Xinxiang, China | AFR2000 | —— | —— |
Temperature controller | WK Inc. | Shenzhen, China | KHDN11C0 | Full range | —— |
Hydrogen generator | HONGYI Inc. | Beijing, China | HYH-300B | —— | —— |
Air generator | HONGYI Inc. | Beijing, China | HY-3A 3L | —— | —— |
Gas chromatograph | FULI Inc. | Taizhou, China | GC9790plus | —— | —— |
Data logger | HIOKI Inc. | Kagoshima, Japan | LR8432 | —— | —— |
Sequence Number | OC/% | FVC/% | Reaction Temperature/°C | CO2 Concentration/% |
---|---|---|---|---|
1 | 2 | 0.32138 | 150 | 0 |
2 | 5 | 0.67884 | 175 | 2 |
3 | 10 | 1.28735 | 200 | 5 |
4 | 20 | 2.23992 | 225 | 10 |
5 | 50 | 3.89684 | 250 | 20 |
6 | 80 | — | — | — |
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Peng, X.; Fan, D.; Hu, X.; Feng, S.; Peng, H.; Wang, C. Experimental Study on Reaction Kinetic Characteristics of RP-3 Fuel Vapor Catalyst. Aerospace 2023, 10, 410. https://doi.org/10.3390/aerospace10050410
Peng X, Fan D, Hu X, Feng S, Peng H, Wang C. Experimental Study on Reaction Kinetic Characteristics of RP-3 Fuel Vapor Catalyst. Aerospace. 2023; 10(5):410. https://doi.org/10.3390/aerospace10050410
Chicago/Turabian StylePeng, Xiaotian, Donghao Fan, Xuecheng Hu, Shiyu Feng, Hao Peng, and Chenchen Wang. 2023. "Experimental Study on Reaction Kinetic Characteristics of RP-3 Fuel Vapor Catalyst" Aerospace 10, no. 5: 410. https://doi.org/10.3390/aerospace10050410
APA StylePeng, X., Fan, D., Hu, X., Feng, S., Peng, H., & Wang, C. (2023). Experimental Study on Reaction Kinetic Characteristics of RP-3 Fuel Vapor Catalyst. Aerospace, 10(5), 410. https://doi.org/10.3390/aerospace10050410