تحسين أداء المفاعلات الكيميائية باستخدام هندسة المخروط الناقص: تحليل مقارن لتفاعلات الطور الغازي والطور السائل

المؤلفون

  • بوبكر الشكري Sarir Oil Operations, Benghazi, Libya
  • علي حامد الحضيري University of Benghazi, Benghazi, Libya
  • عبدالله التواتي University of Benghazi, Benghazi, Libya
  • عصام سالم University of Benghazi, Benghazi, Libya

DOI:

https://doi.org/10.37375/1etq5251

الكلمات المفتاحية:

Reactor Configurations.، Pressure Distribution، Reactor Geometry، Frustum

الملخص

This study investigates the impact of reactor geometry on chemical reaction efficiency, focusing on the application of frustum-shaped reactors compared to conventional cylindrical designs. The research examines the performance of gas-phase and liquid-phase reactions, evaluating conversion rates, pressure distribution, and overall reaction effectiveness. The results indicate that while frustum geometry enhances conversion in gas-phase reactions due to its unique pressure distribution, its impact on liquid-phase reactions remains minimal. These findings provide valuable insights for optimizing industrial reactor design and improving process efficiency

المراجع

Reference

Baerns, M. (2004). Basic Principles in Applied Catalysis. Springer.

Doraiswamy, L. K., & Kulkarni, S. B. (2014). Contemporary Catalysis: Fundamentals and Applications. Springer.

Fogler, H. S. (2010). Essentials of chemical reaction engineering: essenti chemica reactio engi. Pearson Education.

Fogler, H. S. (2016). Elements of Chemical Reaction Engineering. Pearson.

Glasser, D., Hildebrandt, D., & Godorr, S. A. (1987). Reactor Design for Non-Ideal Flow Systems. Chemical Engineering Science, 42, 1005-1011.

H Scott, F. (2006). Elements of chemical reaction engineering. Prentice Hall Profesional.

Iliuta, I., & Larachi, F. (2004). Hydrodynamics and Mass Transfer in Gas-Liquid Reactors. Chemical engineering journal, 99, 103-117.

Levenspiel, O. (1999). Chemical Reaction Engineering. Wiley.

Moletta, R. (2005). Biological Wastewater Treatment. IWA Publishing.

Rahimpour, M. R., Jokar, S. M., & Karimi, G. (2011). Novel Reactor Configurations for Catalytic Systems. Industrial & engineering chemistry research, 50, 12345-12358.

Rase, H. F. (1990). Fixed-Bed Reactor Design and Diagnostics. Butterworth-Heinemann.

Satterfield, C. N. (1991). Heterogeneous Catalysis in Industrial Practice. McGraw-Hill.

Shah, S. M., Patel, B. R., & Mehta, R. V. (2018). Advances in Fluidized Bed Reactor Technology. Reaction Engineering Journal, 65, 200-215.

Smith, J. M., Van Ness, H. C., & Abbott, M. M. (2005). Introduction to Chemical Engineering Thermodynamics. McGraw-Hill.

Yagi, S., & Kunii, D. (1971). Fluidization and Fluid-Particle Systems. American Institute of Chemical Engineers.

التنزيلات

منشور

2025-04-30

كيفية الاقتباس

تحسين أداء المفاعلات الكيميائية باستخدام هندسة المخروط الناقص: تحليل مقارن لتفاعلات الطور الغازي والطور السائل. (2025). المجلة الدولية للبحوث الهندسية, 4(1), 14-40. https://doi.org/10.37375/1etq5251