Analysis of Multiphase Flow and Heat and Mass Transfer for Ammonium Chloride Crystallization of the High-Pressure Heat Exchanger in Hydrogenation Unit
Abstract
:1. Introduction
2. Overview of Corrosion Failure
2.1. Technological Process
2.2. Failure Case
3. Analysis of the Crystallization Process
3.1. Determination of Crystallization Temperature
3.2. Crystallization Mechanism of Ammonium Salt
3.3. User-Defined Function Calculation Principle
- Kp_real > lg (Kp). At this point, the inlet phase conditions meet the requirements of the ammonium salt crystallization reaction and gradually tend to balance with the progress of the reaction. The result is that ammonium salts are produced;
- Kp_real = lg (Kp). At this time, the inlet phase condition just meets the critical requirements of the crystallization reaction of ammonium salt and will be in the crystallization equilibrium state;
- Kp_real < lg (Kp). At this time, the inlet phase condition does not meet the temperature or material conditions for the crystallization reaction of ammonium salt; that is, no ammonium salt is determined.
3.4. Numerical Methods and Modeling
4. Results and Discussion
4.1. Multiphase Flow Field Analysis
4.2. Heat Transfer Analysis
4.2.1. Global Heat Transfer Analysis
4.2.2. Local Heat Transfer Analysis of Tube Bundle
4.3. Mass Transfer Analysis
4.4. Determination of the Region of Easy Crystallization
4.5. Corrosion Risk of Ammonium Chloride
5. Conclusions
- The intersection of the actual operating line of the heat exchanger and the ammonium chloride crystallization curve determines that the crystallization temperature of ammonium chloride is 216.5 °C. The influence of pressure on the crystallization temperature is negligible, and the greater the chlorine content of the raw material, the higher the crystallization temperature becomes. In addition, there is a risk of crystallization in the entire heat exchanger;
- According to the corrosion mechanism of ammonium salt crystallization, the specific heat capacity of the fluid is different from that of the metal wall during the heat exchange process, and there is a temperature difference. The specific heat capacity of the metal wall is small, so the temperature difference at the pipe wall is large and the ammonium salt will first deposit around the pipe wall. In the same way, the temperature drop of the gas phase in the multiphase flow component is the greatest, so the ammonium chloride crystallization reaction is generated in the gas phase. It is believed that the distribution of ammonium salt is determined by the flow of the multiphase fluid and the heat and mass transfer between the phases;
- Based on the crystallization equilibrium phase diagram of ammonium chloride, the actual situation of salt formation in the heat exchanger can be divided into three kinds. Moreover, the calculation model of the crystallization reaction HCl + NH3 → NH4Cl was programmed to obtain the source term user-defined function, which is combined with Fluent software to simulate and analyze the heat exchanger;
- The simulation results of the multiphase flow field show that the maximum velocity at the vortex core is 20 m/s and that the swirling flow causes more gas content here. The velocity at the elbow is large and the ammonium salt particles are distributed on the outside of the elbow by centrifugal force, which erodes the wall surface and causes corrosion more easily. The simulation results are consistent with the actual perforation location;
- The heat and mass transfer simulation results show that the fluid temperature is relatively low at the vortex core. The low temperature area of the tube bundle keeps increasing along the flow direction and the crystallization range spreads from the tube wall to the center of the tube bundle;
- The region of easy crystallization was determined to be the vortex core area with a lower temperature, higher velocity and greater gas phase content, located in the area enclosed by the top of the first pipe side and the bottom of the second pipe side in the vertical flow direction between 0.1−0.4 m. Those are the two sides of the center of the tube. It is determined that crystallization occurs first in this area, and that the amount of crystallization is relatively large. The maximum mass fraction of ammonium chloride is 1.16 × 10−4;
- The corrosion failure forms caused by ammonium chloride in the area of easy crystallization are under-deposit corrosion and acid corrosion. It can be seen from the actual corrosion failure morphology that under-deposit corrosion occurs in the heat exchanger. When the ammonium chloride is diluted in water, a high concentration of the ammonium chloride solution is formed, which causes the acid corrosion.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Element | ω, % | x, % |
---|---|---|
N | 22.89 | 40.86 |
O | 5.08 | 7.94 |
Al | 6.71 | 6.21 |
S | 0.83 | 0.65 |
Cl | 60.05 | 42.34 |
Fe | 4.44 | 1.99 |
Gas Phase | Oil Phase | |
---|---|---|
mass flow (kg/s) | 3.6225 | 104.1667 |
The Gas Phase Composition | The Mole Fraction of Each Component |
---|---|
NH3 | 0.001844221 |
HCl | 7.667234 × 10−6 |
H2 | 0.9981484108 |
Multiphase Flow Component | Specific Heat Capacity (J/kg·K) | Mass Flow (kg/s) |
---|---|---|
H2 | 14,180.6 | 3.312 |
NH3 | 2303.1 | 0.05198 |
HCl | 988.9 | 0.0004644 |
Oil phase | 2135 | 104.2 |
Water phsae | 4200 | 6.944 |
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Zhang, J.; Zhao, Y.; Li, Y.; Zhang, F. Analysis of Multiphase Flow and Heat and Mass Transfer for Ammonium Chloride Crystallization of the High-Pressure Heat Exchanger in Hydrogenation Unit. Materials 2021, 14, 7754. https://doi.org/10.3390/ma14247754
Zhang J, Zhao Y, Li Y, Zhang F. Analysis of Multiphase Flow and Heat and Mass Transfer for Ammonium Chloride Crystallization of the High-Pressure Heat Exchanger in Hydrogenation Unit. Materials. 2021; 14(24):7754. https://doi.org/10.3390/ma14247754
Chicago/Turabian StyleZhang, Jianwen, Yahui Zhao, Yan Li, and Fan Zhang. 2021. "Analysis of Multiphase Flow and Heat and Mass Transfer for Ammonium Chloride Crystallization of the High-Pressure Heat Exchanger in Hydrogenation Unit" Materials 14, no. 24: 7754. https://doi.org/10.3390/ma14247754
APA StyleZhang, J., Zhao, Y., Li, Y., & Zhang, F. (2021). Analysis of Multiphase Flow and Heat and Mass Transfer for Ammonium Chloride Crystallization of the High-Pressure Heat Exchanger in Hydrogenation Unit. Materials, 14(24), 7754. https://doi.org/10.3390/ma14247754