Exergy and exergoeconomic analyses for integration of aromatics separation with aromatics upgrading
Dan Zhang, Minbo Yang(), Xiao Feng
Shaanxi Key Laboratory of Energy Chemical Process Intensification, School of Chemical Engineering & Technology, Xi’an Jiaotong University, Xi’an 710049, China
Methanol to aromatics produces multiple products, resulting in a limited selectivity of xylene. Aromatics upgrading is an effective way to produce more valuable xylene product, and different feed ratios generate discrepant product distributions. This work integrates the aromatics separation with toluene disproportionation, transalkylation of toluene and trimethylbenzene, and isomerization of xylene and trimethylbenzene. Exergy and exergoeconomic analyses are conducted to give insights in the splitting ratios of benzene, toluene and heavy aromatics for aromatics upgrading. First, a detailed simulation model is developed in Aspen HYSYS. Then, 300 splitting ratio sets of benzene and toluene for conversion are studied to investigate the process performances. The results indicate that there are different preferences for the splitting ratios of benzene and toluene in terms of exergy and exergoeconomic performances. The process generates lower total exergy destruction when the splitting ratio of toluene varies between 0.07 and 0.18, and that of benzene fluctuates between 0.55 and 0.6. Nevertheless, the process presents lower total product unit cost with the splitting ratio of toluene less than 0.18 and that of benzene fluctuating between 0.44 and 0.89. Besides, it is found that distillation is the biggest contributor to the total exergy destruction, accounting for 94.97%.
Qingyong Zheng and Ya Gao contributed equally to this work.
引用本文:
. [J]. Frontiers of Chemical Science and Engineering, 2023, 17(2): 183-193.
Dan Zhang, Minbo Yang, Xiao Feng. Exergy and exergoeconomic analyses for integration of aromatics separation with aromatics upgrading. Front. Chem. Sci. Eng., 2023, 17(2): 183-193.
T C Tsai, S B Liu, I Wang. Disproportionation and transalkylation of alkylbenzenes over zeolite catalysts. Applied Catalysis A: General, 1999, 181( 2): 355– 398 https://doi.org/10.1016/S0926-860X(98)00396-2
S Al-Khattaf, N M Tukur, A Al-Amer. 1,2,4-Trimethylbenzene transformation reaction compared with its transalkylation reaction with toluene over USY zeolite catalyst. Industrial & Engineering Chemistry Research, 2007, 46( 13): 4459– 4467 https://doi.org/10.1021/ie0702781
4
J Jiang, D Zhang, X Feng, M Yang, Y Wang. Process design and analysis of aromatics production from coal via methanol with a high yield. Industrial & Engineering Chemistry Research, 2021, 60( 15): 5574– 5587 https://doi.org/10.1021/acs.iecr.1c00421
5
J Zhang, W Qian, C Kong, F Wei. Increasing para-xylene selectivity in making aromatics from methanol with a surface-modified Zn/P/ZSM-5 catalyst. ACS Catalysis, 2015, 5( 5): 2982– 2988 https://doi.org/10.1021/acscatal.5b00192
6
Z H Chen, Y L Hou, Y F Yang, D L Cai, W L Song, N Wang, W Z Qian. A multi-stage fluidized bed strategy for the enhanced conversion of methanol into aromatics. Chemical Engineering Science, 2019, 204 : 1– 8 https://doi.org/10.1016/j.ces.2019.04.013
7
W Song, Y Hou, Z Chen, D Cai, W Qian. Process simulation of the syngas-to-aromatics processes: technical economics aspects. Chemical Engineering Science, 2020, 212 : 115328 https://doi.org/10.1016/j.ces.2019.115328
8
D Zhang, M Yang, X Feng, Y Wang. Integration of methanol aromatization with light hydrocarbon aromatization toward increasing aromatic yields: conceptual process designs and comparative analysis. ACS Sustainable Chemistry & Engineering, 2020, 8( 30): 11376– 11388 https://doi.org/10.1021/acssuschemeng.0c03705
9
N Hamedi, M Nategh, F Keshtkari, M R Rahimpour. Development of a rigorous two-dimensional mathematical model for a novel thermally coupled reactor for simultaneous production of xylenes, hydrogen, and toluene. Chemical Engineering Research & Design, 2017, 127 : 126– 145 https://doi.org/10.1016/j.cherd.2017.09.009
10
U A Al-Mubaiyedh, S A Ali, S S Al-Khattaf. Kinetic modeling of heavy reformate conversion into xylenes over mordenite-ZSM5 based catalysts. Chemical Engineering Research & Design, 2012, 90( 11): 1943– 1955 https://doi.org/10.1016/j.cherd.2012.03.005
11
C He, F You. Shale gas processing integrated with ethylene production: novel process designs, exergy analysis, and techno-economic analysis. Industrial & Engineering Chemistry Research, 2014, 53( 28): 11442– 11459 https://doi.org/10.1021/ie5012245
12
A M Niziolek, O Onel, Y A Guzman, C Floudas. Biomass-based production of benzene, toluene, and xylenes via methanol: process synthesis and deterministic global optimization. Energy & Fuels, 2016, 30( 6): 4970– 4998 https://doi.org/10.1021/acs.energyfuels.6b00619
13
A M Niziolek, O Onel, C A Floudas. Production of benzene, toluene, and xylenes from natural gas via methanol: process synthesis and global optimization. AIChE Journal, 2016, 62( 5): 1531– 1556 https://doi.org/10.1002/aic.15144
14
X Wang, M Su, H Zhao. Process design and exergy cost analysis of a chemical looping ammonia generation system using AlN/Al2O3 as a nitrogen carrier. Energy, 2021, 230 : 120767 https://doi.org/10.1016/j.energy.2021.120767
15
A G M Ibrahim, A M Rashad, I Dincer. Exergoeconomic analysis for cost optimization of a solar distillation system. Solar Energy, 2017, 151 : 22– 32 https://doi.org/10.1016/j.solener.2017.05.020
16
G Tsatsaronis. Thermoeconomic analysis and optimization of energy systems. Progress in Energy and Combustion Science, 1993, 19( 3): 227– 257 https://doi.org/10.1016/0360-1285(93)90016-8
17
R Mestre-Escudero, A Puerta-Arana, Á D González-Delgado. Process simulation and exergy analysis of a mercaptan oxidation unit in a latin american refinery. ACS Omega, 2020, 5( 34): 21428– 21436 https://doi.org/10.1021/acsomega.0c01791
18
Y Lei, Y Chen, Y Yang, X Liu, H Luo, W Yan. Advanced exergy analysis for a novel gasoline absorption–stabilization process. ACS Omega, 2021, 6( 23): 15332– 15347 https://doi.org/10.1021/acsomega.1c01658
19
Q Yang, Y Qian, A Kraslawski, H Zhou, S Yang. Advanced exergy analysis of an oil shale retorting process. Applied Energy, 2016, 165 : 405– 415 https://doi.org/10.1016/j.apenergy.2015.12.104
20
M Mehrpooya, R Lazemzade, M S Sadaghiani, H Parishani. Energy and advanced exergy analysis of an existing hydrocarbon recovery process. Energy Conversion and Management, 2016, 123 : 523– 534 https://doi.org/10.1016/j.enconman.2016.06.069
21
Z Wei, B Zhang, S Wu, Q Chen, G Tsatsaronis. Energy-use analysis and evaluation of distillation systems through avoidable exergy destruction and investment costs. Energy, 2012, 42( 1): 424– 433 https://doi.org/10.1016/j.energy.2012.03.026
22
D Zhang, M Yang, X Feng. Aromatics production from methanol and pentane: conceptual process design, comparative energy and techno-economic analysis. Computers & Chemical Engineering, 2019, 126 : 178– 188 https://doi.org/10.1016/j.compchemeng.2019.04.002
23
D Zhang, J Jiang, M Yang, X Feng, Y Wang. Simulation-based superstructure optimization for the synthesis process of aromatics production from methanol. ACS Sustainable Chemistry & Engineering, 2021, 9( 30): 10205– 10219 https://doi.org/10.1021/acssuschemeng.1c02497
24
H X Liu, Z K Xie, C F Zhang, Q L Chen. Chemical equilibrium of toluene disproportionation and trimethylbenzene transalkylation. Petrochemical Technology, 2003, 32( 1): 28– 32
25
N Hamedi, D Iranshahi, M R Rahimpour, S Raeissi, H Rajaei. Development of a detailed reaction network for industrial upgrading of heavy reformates to xylenes using differential evolution technique. Journal of the Taiwan Institute of Chemical Engineers, 2015, 48 : 56– 72 https://doi.org/10.1016/j.jtice.2014.10.015
26
C Xu. The Technologies of Catalytic Reforming. 2nd ed. Beijing: China Petrochemical Press, 2014, 958 (In Chinese)
27
C Wu, S Wang, J Li. Exergoeconomic analysis and optimization of a combined supercritical carbon dioxide recompression Brayton/organic flash cycle for nuclear power plants. Energy Conversion and Management, 2018, 171 : 936– 952 https://doi.org/10.1016/j.enconman.2018.06.041
28
Z Wu, P Zhu, J Yao, S Zhang, J Ren, F Yang, Z Zhang. Combined biomass gasification, SOFC, IC engine, and waste heat recovery system for power and heat generation: energy, exergy, exergoeconomic, environmental (4E) evaluations. Applied Energy, 2020, 279 : 115794 https://doi.org/10.1016/j.apenergy.2020.115794
29
Q S Fu. Thermodynamic Analysis Method of Energy System. Xi’an: Xi’an Jiaotong University Press, 2005, 304 (In Chinese)
30
S Y Yang. Ecological-based life cycle assessment methodology and the application to energy-chemical processes. Dissertation for the Doctoral Degree. Guangzhou: South China University of Technology, 2016, 156
31
X Feng Y F Wang. Principles and Technology of Chemical Energy Saving. 4th ed. Beijing: Chemical Industry Press, 2015, 372 (In Chinese)
32
F Musharavati, P Ahmadi, S Khanmohammadi. Exergoeconomic assessment and multiobjective optimization of a geothermal-based trigeneration system for electricity, cooling, and clean hydrogen production. Journal of Thermal Analysis and Calorimetry, 2021, 145( 3): 1673– 1689 https://doi.org/10.1007/s10973-021-10793-4
33
Y D Lee, K Y Ahn, T Morosuk, G Tsatsaronis. Exergetic and exergoeconomic evaluation of an SOFC-Engine hybrid power generation system. Energy, 2018, 145 : 810– 822 https://doi.org/10.1016/j.energy.2017.12.102
34
M S Sadaghiani, M Mehrpooya, H Ansarinasab. Process development and exergy cost sensitivity analysis of a novel hydrogen liquefaction process. International Journal of Hydrogen Energy, 2017, 42( 50): 29797– 29819 https://doi.org/10.1016/j.ijhydene.2017.10.124
35
L Zhang, Z Pan, J Yu, N Zhang, Z Zhang. Multiobjective optimization for exergoeconomic analysis of an integrated cogeneration system. International Journal of Energy Research, 2019, 43( 5): 1868– 1881 https://doi.org/10.1002/er.4429
36
A Habibollahzade, E Gholamian, A Behzadi. Multi-objective optimization and comparative performance analysis of hybrid biomass-based solid oxide fuel cell/solid oxide electrolyzer cell/gas turbine using different gasification agents. Applied Energy, 2019, 233-234 : 985– 1002 https://doi.org/10.1016/j.apenergy.2018.10.075
37
W D Seider, J D Seader, D R Lewin, S Widagdo. Product and Process Design Principles: Synthesis, Analysis and Evaluation. 3rd ed. New Jersey: John Wiley & Sons, 2009, 534– 641
38
X Wang, Y Dai. Exergoeconomic analysis of utilizing the transcritical CO2 cycle and the ORC for a recompression supercritical CO2 cycle waste heat recovery: a comparative study. Applied Energy, 2016, 170 : 193– 207 https://doi.org/10.1016/j.apenergy.2016.02.112
39
C Wu, S Wang, X Feng, J Li. Energy, exergy and exergoeconomic analyses of a combined supercritical CO2 recompression Brayton/absorption refrigeration cycle. Energy Conversion and Management, 2017, 148 : 360– 377 https://doi.org/10.1016/j.enconman.2017.05.042