Multi-Field Synergy Analysis of Reaction-Absorption Coupling Process and Numerical Simulation for Ethylene Carbonate Synthesis
|更新时间:2025-07-09
|
Multi-Field Synergy Analysis of Reaction-Absorption Coupling Process and Numerical Simulation for Ethylene Carbonate Synthesis
Vol. 46, Issue 12, Pages: 92-97(2012)
作者机构:
西安交通大学化学工程与技术学院,西安,710049
作者简介:
基金信息:
DOI:
CLC:TQ021.8
Online First:10 December 2012,
Published:2012
稿件说明:
移动端阅览
Multi-Field Synergy Analysis of Reaction-Absorption Coupling Process and Numerical Simulation for Ethylene Carbonate Synthesis[J]. 2012, 46(12): 92-97.
DOI:
Multi-Field Synergy Analysis of Reaction-Absorption Coupling Process and Numerical Simulation for Ethylene Carbonate Synthesis[J]. 2012, 46(12): 92-97.DOI:
Multi-Field Synergy Analysis of Reaction-Absorption Coupling Process and Numerical Simulation for Ethylene Carbonate Synthesis
To improve the productivity of ethylene carbonate from the esterification of urea and ethylene glycol
the synthesis process is enhanced by removing by-product ammonia via bubbling in phosphoric acid solution. Multi-field synergy principle is employed to analyze the chemical absorption process
then numerical simulation is carried out for absorption of single ammonia bubble with the volume of fluid model. The results show that the chemical absorption of ammonia
which controlled by convective mass transfer
is essentially affected by the synergy of velocity and pressure gradient fields. The synergy is measured with mass transfer field synergy number
which is determined by scalar quantities of the two vector fields
and mostly
by their included angle. While the angle gets zero
the field synergy number reaches to the maximum
which leads to a larger mass transfer coefficient. During the bubbling absorption process
ammonia current inside the bubble facilitates forming tiny vortexes to give rise to the optimized ammonia velocity field and to optimize the synergy with pressure gradient field at gas-liquid interface
thus the field synergy number is maximized and the mass transfer efficiency of ammonia is consequently heightened.
关键词
Keywords
references
沈玉龙,魏利滨,曹文华,等.绿色化学[M].北京:中国环境科学出版社,2009:1-7.
张瑾.尿素合成碳酸乙烯酯工艺的研究[D].天津:天津大学,2008.
LI Qibiao, ZHANG Wenyu, ZHAO Ning, et al. Synthesis of cyclic carbonates from urea and diols over metal oxides[J]. Catalysis Today, 2006, 115(1/2/3/4): 111-116.
QIU Peng, WANG Lu, JIANG Xuedong, et al. Synthesis of diethyl carbonate by combined process of transesterification with distillation[J]. Energy Fuels, 2012, 26(2): 1254-1258.
QIU Peng, YANG Bolun, YI Chunhai, et al. Characterization of KF/γ-Al2O3 catalyst for the synthesis of diethyl carbonate by transesterification of ethylene carbonate[J]. Catalysis Letters, 2010, 137(3/4): 232-238
GUO Zengyuan. Physical mechanism of convective heat transfer and its control: the synergy of velocity field and heat flow field[J]. Science Bulletin, 2000, 45(19): 2118-2122.
WU Liangbai, LI Zheng, SONG Yaozu. The field synergy principle of heat and mass transfer process[J]. Science Bulletin, 2009, 54(14): 2045-2050.
CHEN Qun, REN Jianxun, GUO Zengyuan. Field synergy analysis and optimization of decontamination ventilation designs[J]. International Journal of Heat and Mass Transfer, 2008, 51(3/4): 873-881.
CHEN Qun, MENG Ji'an. Field synergy analysis and optimization of the convective mass transfer in photocatalytic oxidation reactors[J]. International Journal of Heat and Mass Transfer, 2008, 51(11/12): 2863-2870.
YU Y S, LI Y, LU H F, et al. Multi-field synergy study of CO2 capture process by chemical absorption[J]. Chemical Engineering Science, 2010, 65(10): 3279-3292.
WANG Huajun, YANG Bolun, WU Jiang, et al. Multi-fields synergy in the process of reactive distillation coupled with membrane separation[J]. Chemical Engineering and Processing, 2005, 44(11): 1207-1215.
BRENNEN C E. Fundamentals of multiphase flows [M].Cambridge, UK: Cambridge University Press, 2005: 246-282.
JULIEN D, STEPHANE V, ARNAUD E, et al. Numerical investigations in rayleigh breakup of round liquid jets with VOF methods[J]. Computers Fluids, 2011, 50(1): 10-23.
ZHANG Xiaobin, XIANG Shijun, CAO Xiaoli, et al. Numerical simulation for combustion of droplet with volume of fluid formulation[J]. CIESC Journal, 2011, 62(3): 692-698.
LI Yong, ZHANG Jianping, FAN Liangshi. Discrete-phase simulation of single bubble rise behavior at elevated pressures in a bubble column[J]. Chemical Engineering Science, 2000, 55(20): 4597-4609.
LI Y, YANG G Q, ZHANG J P, et al. Numerical studies of bubble dynamics in gas-liquid-solid fluidization at high pressures[J]. Power Technology, 2001, 116(2): 246-260.
YANG G Q, DU Bing, FAN L S. Bubble formation and dynamics in gas-liquid-solid fluidization: a review[J]. Chemical Engineering Science, 2007, 62(1): 2-27.
过增元,黄素逸.场协同原理与强化传热新技术[M].北京:中国电力出版社,2004:6-15.
BERND R, GERD M. Solubility of ammonia in aqueous solutions of phosphoric acid: model development and application[J]. Journal of Solution Chemistry, 1994, 23(1): 37-51.
Study of the Mechanism of Electrostatic Accumulation and Current Density Distribution Characteristics During Liquid Hydrogen Pipeline Transportation
Numerical Simulation of Space Charge Distribution Characteristics of Polyimide Materials under X-Ray Irradiation
Numerical Simulation Study on Geothermal Extraction Characteristics of Supercritical CO2 in Heterogeneous Fractures
Action Mechanism of Heat Transfer between the Working Medium and the Impeller on Aerodynamic Performance and Flow Characteristics of Radial Inflow Turbines with Supercritical Carbon Dioxide
Analysis of the Attached Vortex Model for the Flow Characteristics of Wing Near-Field Wakes
Related Author
SUN Wenhao
LIU Hongbao
WANG Lei
QING Ziyou
LI Zhuolun
MA Yuan
LI Yanzhong
ZHONG Hui
Related Institution
School of Energy and Power Engineering,Xi’an Jiaotong University
Aerospace System Engineering Shanghai
School of Electrical Engineering,Xi’an Jiaotong University
Northwest Institute of Nuclear Technology
Institute of Electronic Engineering,China Academy of Engineering Physics