全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

Empirical Investigation of Treatment of Sour Gas by Novel Technology: Energy Optimization

DOI: 10.4236/ajac.2023.144010, PP. 175-183

Keywords: Oil and Gas Industries, Optimized Energy, Treatment Process, Empirical Investigation

Full-Text   Cite this paper   Add to My Lib

Abstract:

The sour gas sweetening is one of the main processes in gas industries. Gas sweetening is done through chemical processes. Therefore, it requires high cost and energy. The results show that increasing the operating temperature increases the mass transfer coefficient and increases the mass transfer rate. Theoretical and experimental data show that sulfur removal in 4.5 W magnetic field is desirable. The increase in sulfur removal percentage in the magnetic field of 4.5 W and 6.75 W is about 16.4% and 15.2%, respectively. According to the obtained results, the effect of temperature increase from 18.8°C to 23.4°C is more evident than the effect of temperature change from 23.4°C to 32.2°C. Because more thermal energy is needed to provide higher temperatures. Therefore, the temperature of 23.4°C is reported as the optimal temperature. The results of this research show that the percentage of sulfur removal is also high at this temperature.

References

[1]  Tarighat, H., Farahbod, F. and Boustani, P. (2023) Investigation of Pollutant Adsorption by Synthesized CuO Nanosorbents Based on Accurate Analysis of Diferent Types of Adsorption Isotherms. Chemistry Africa.
https://doi.org/10.1007/s42250-023-00602-w
[2]  Baghizade, A., Farahbod, F. and Alizadeh, O. (2023) Experimental Study of the Biological Treatment Process of the Exit Wastewater from Flocculation Reactor. Applied Water Science, 13, Article No. 74.
https://doi.org/10.1007/s13201-023-01877-7
[3]  Zare, H., Bosaghzadeh, M. and Farahbod, F. (2023) Investigation of Physical Properties of Nano Crude Petroleum: Increasing Oil Flow Rate in Reservoirs. Advances in Nanoparticles, 12, 1-10.
https://www.scirp.org/journal/anp
https://doi.org/10.4236/anp.2023.121001
[4]  Rasekhnia, A. and Farahbod, F. (2023) Experimental Study of Effluent Salty Wastewater Treatment from a Solar Desalination Pond. Advances in Nanoparticles, 12, 11-21.
https://www.scirp.org/journal/anp
https://doi.org/10.4236/anp.2023.121002
[5]  Farahbod, F. (2022) Laboratory Evaluation of Operating Conditions for Chloride Removal from Diethanolamine Using Ion Exchange Resin and Introduction of Optimal Parameters. Applied Water Science, 12, Article No. 229.
https://doi.org/10.1007/s13201-022-01752-x
[6]  Farahbod, F. (2022) Experimental Evaluation of Nano-Zinc Oxide Coating Applying on Inner Surface of a Rotary Dryer to Produce NaCl. International Journal of Environmental Science and Technology, 19, 7447-7456.
https://doi.org/10.1007/s13762-022-03943-0
[7]  Mahmoudian, S., Shamohammadi, N. and Farahbod, F. (2022) Experimental Evaluation of a New Process for Removing Sulfur Compounds from Sour Oil in a Fixed Nano Bed: Investigation of Energy Saving in Oil Refineries. International Journal of Petrochemistry and Natural Gas, 2, 80-84.
https://doi.org/10.33140/IJPNG.02.02.04
[8]  Farahbod, F. (2021) Experimental Investigation of Thermo-Physical Properties of Drilling Fluid Integrated with Nanoparticles: Improvement of Drilling Operation Performance. Powder Technology, 384, 125-131.
https://doi.org/10.1016/j.powtec.2021.02.002
[9]  Farahbod, F. and Karaei, M.A. (2021) Mathematical Modeling and Experimental Study of Sulfur Removal Process from Light and Heavy Crude Oil in a Bed Occupied by Ferric Oxide Nanocatalysts. Environmental Technology & Innovation, 23, Article 101656.
https://doi.org/10.1016/j.eti.2021.101656
[10]  Farahbod, F. (2021) Investigation of Thermal Performance of a New Drill Equipped with Heat Pipe and Nanofluid. Case Studies in Thermal Engineering, 27, Article 101316.
https://doi.org/10.1016/j.csite.2021.101316
[11]  Farahbod, F. and Karazhian, N. (2021) Presentation of Farahbod-Karazhian Equation as an Accurate Mathematical Model Based on Thermodynamics and Fluid Flow with the Aim of Predicting the Deposition Rate of Oil Heavy Compounds in Heat Exchangers. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects, 1-12.
https://doi.org/10.1080/15567036.2021.1955047
[12]  Farahbod, F. (2020) Evaluation of Reducing CO2 Emissions as Important Greenhouse Gas and Maximum Oil Recovery: Optimization of Two Processes. International Journal of Environmental Science and Technology, 18, 1821-1836.
https://doi.org/10.1007/s13762-020-02936-1
[13]  Farahbod, F. (2020) Simultaneous Use of Mass Transfer and Thermodynamics Equations to Estimate the Amount of Removed Greenhouse Gas from the Environment by a Stream of Water. Environmental Modeling & Assessment, 26, 779-785.
[14]  Abbasi, S., Farahbod, F., Imani, M. and Koroushavi, A. (2020) The Study of Kinetic Reaction of the Photocatalytic Elimination of Methyl Orange in the Presence of Magnetic Composite of Fe3O4-ZnO Based on Graphene Oxide. Journal of advanced materials and technologies, 9, 49-55.
[15]  Farahbod, F. (2020) Practical Investigation of Usage of Nano Bottom in the Production of Fresh Water from Brackish Wastewater in a Closed Shallow Solar Basin. Environmental Progress & Sustainable Energy, 40, e13496.
https://doi.org/10.1002/ep.13496
[16]  Taherizadeh, M., Farahbod, F. and Ilkhani, A. (2020) Experimental Evaluation of Solar Still Efficiencies as a Basic Step in Treatment of Wastewater. Heat Transfer—Asian Research, 49, 236-248.
https://doi.org/10.1002/htj.21608
[17]  Farahbod, F. (2020) Mathematical Investigation of Diffusion and Decomposition of Pollutants as a Basic Issue in Water Stream Pollution. Arabian Journal of Geosciences, 13, Article 918.
https://doi.org/10.1007/s12517-020-05890-x
[18]  Taherizadeh, M., Farahbod, F. and Ilkhani, A. (2020) Empirical Evaluation of Proposed Treatment Unit for Saline Wastewater Softening. Journal of Applied Water Engineering and Research, 9, 89-106.
https://doi.org/10.1080/23249676.2020.1787248
[19]  Rokni, A. and Farahbod, F. (2020) Experimental Evaluation of Physical Characteristics of Nano Oil in the Pilot Plant of Laboratory Well Column. Journal of Nanoscience and Nanoengineering, 6, 8-12.
[20]  Fotoohi, E., Reza, B., Bahador, M. and Farahbod, F. (2020) Empirical Investigation of Treatment of Sour Gas by Novel Technology: Introduction of a Novel Method for Optimization of Energy and Process. Journal of Nanoscience and Nanoengineering, 6, 1-7.
[21]  Behzadi, R. and Farahbod, F. (2020) Experimental Investigation of the Kinetics Properties of the Nano Crude Oil in a Vertical Line. Fluid Mechanics Research International Journal, 4, 1-5.
https://doi.org/10.15406/fmrij.2020.04.00056
[22]  Gharibi, A.R., Khosravi, A. and Farahbod, F. (2020) Experimental Evaluation of Sour Gas Stream in a Packed Column in Gas Sweetening Units with Nano Bed. Journal of Environment Protection and Sustainable Development, 6, 6-10.
[23]  Farahbod, F. (2019) Investigation of Sour Gas Desulfurization Process by Nano Absorber and under Magnetic Field in a Packed Tower; Experimentally and Theoretically. Journal of Sulfur Chemistry, 40, 400-415.
https://doi.org/10.1080/17415993.2019.1592174
[24]  Farahbod, F. (2019) Investigation of Heat Transfer Equations for Evaluation of Drinkable Water Production Rate as an Efficiency of Closed Solar Desalination Pond. International Journal of Ambient Energy, 42, 940-945.
https://doi.org/10.1080/01430750.2019.1573758
[25]  Farahbod, F. (2019) Investigation of Gas Sweetening by Nanofluid in Isothermal Tower with Consideration of Thermodynamic Equilibrium; Experimentally and Theoretically. Separation and Purification Technology, 211, 799-808.
https://doi.org/10.1016/j.seppur.2018.10.050
[26]  Farahbod, F. (2019) Experimental Evaluation of Forced Circulation Crystallizer Performance in Production of Sugar Crystals. Journal of Food Process Engineering, 42, e13017.
https://doi.org/10.1111/jfpe.13017
[27]  Zarei, M., Davarpanah, A., Mokhtarian, N. and Farahbod, F. (2019) Integrated Feasibility Experimental Investigation of Hydrodynamic, Geometrical and, Operational Characterization of Methanol Conversion to Formaldehyde. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects, 42, 89-103.
https://doi.org/10.1080/15567036.2019.1587057
[28]  Zarei, M., Mokhtarian, N. and Farahbod, F. (2019) Experimental Investigation of Methanol Conversion Factor to Formaldehyde in a Pilot Reactor. International Journal of Petroleum and Petrochemical Engineering, 4, 82-86.
https://doi.org/10.20431/2454-7980.0401009
[29]  Farahbod, F. (2019) Derivation of Heat Transfer Equations for a Closed Solar Desalination Pond to Predict the Produced Mass of Potable Water. Heat Transfer—Asian Research, 48, 864-873.
https://doi.org/10.1002/htj.21410
[30]  Farahbod, F. (2019) Investigation of Temperature Profile for Nano Fluid, Pure Water, Ammonia and Methanol in a Heat Pipe. Fluid Mechanics Research International Journal, 3, 20-22.
https://doi.org/10.15406/fmrij.2019.03.00048
[31]  Kalantari, F. and Farahbod, F. (2018) Mixing of Crude Oil with Organic ZnO Nano-Particles from Rice Bran to Improve Physical Properties of Crude Oil: A Novel Agent for Enhanced Oil Recovery. Natural Resources Research, 28, 1183-1196.
https://doi.org/10.1007/s11053-018-9443-y
[32]  Ghaderi, A., Abbasi, S. and Farahbod, F. (2018) Synthesis, Characterization and Photocatalytic Performance of Modified ZnO Nanoparticles with SnO2 Nanoparticles. Materials Research Express, 5, Article No. 6.
https://doi.org/10.1088/2053-1591/aacd40
[33]  Farahbod, F. and Omidvar, M. (2018) Experimental Evaluation of Collection, Thermal, and Conductivity Efficiency of a Solar Distiller Pond as a Free Concentration Unit in Wastewater Treatment Process. Energy Science & Engineering, 6, 584-594.
https://doi.org/10.1002/ese3.234
[34]  Farahbod, F. and Farahmand, S. (2018) Experimental and Theoretical Evaluation of Amount of Removed Oily Hydrocarbon, Aromatic and Bioassay of Drilling Fluid by Zinc Oxide Nano Coagulant. Journal of Nanofluids, 7, 223-234.
https://doi.org/10.1166/jon.2018.1443
[35]  Gheshmi, S.K. and Farahbod, F. (2018) Empirical Investigation Electrical Properties of Drilling Fluid; Introduction of Novel Drilling Fluid for Drilling Process. International Journal of Chemical and Biomolecular Science, 4, 24-28.
[36]  Nazif, F.G. and Farahbod, F. (2018) Empirical Study of Fundamental Parameters in Sweetening Process of Sour Gas. International Journal of Chemical and Biomolecular Science, 4, 29-32.
[37]  Khosravian, E. and Farahbod, F. (2018) Experimental Study on Important Variables Treatment Process of Effluent Wastewater. International Journal of Chemical and Biomolecular Science, 4, 18-23.
[38]  Boustani, P. and Farahbod, F. (2018) Experimental Investigation of Nano Coagulant as Novel Agent in Treatment Process of Industrial Wastewater. International Journal of Chemical and Biomolecular Science, 4, 13-17.
[39]  Karimi, A., Farahbod, F. and Shirazifard, M.H. (2018) The Role of Nano-Coagulant in Treatment of Diluted Drilling Waste Water; Investigation of New Method. International Journal of Chemical and Biomolecular Science, 4, 9-12.
[40]  Jamshidi, F., Shamsi, R. and Farahbod, F. (2018) Empirical Investigation of Some Important Parameters of Oil for Using in Different Industries. Chemistry Journal, 4, 65-70.
[41]  Zarei, T., Amiri, F. and Farahbod, F. (2017) Investigation of Lanthanum and Si/Al Ratio Effect on the HZSM-5 Catalyst Efficiency for Production of Olefin from Methanol. Petroleum Science and Technology, 35, 2139-2145.
https://doi.org/10.1080/10916466.2017.1386679
[42]  Zarei, A. and Farahbod, F. (2017) Empirical Investigation of Performance of Nano bed for Industrial Wastewater Treating. SCIREA Journal of Chemical Engineering, 2, 1-9.
[43]  Zarei, A. and Farahbod, F. (2017) Evaluation of Basic and Major Items in the Treating of Wastewater; Experimental Investigation. Science Journal of Analytical Chemistry, 5, 12-16.
https://doi.org/10.11648/j.sjac.20170501.13
[44]  Fazeli, S. and Farahbod, F. (2017) Parametric Investigation of De-Sulfurization Process for Sour Gas; Introduction of Novel System. International Journal of Oil, Gas and Coal Engineering, 5, 1-4.
https://doi.org/10.11648/j.ogce.20170501.11

Full-Text

Contact Us

[email protected]

QQ:3279437679

WhatsApp +8615387084133