TY - JOUR
T1 - Liquid-Phase Hydrogenation of Phenol in an Advanced Gas-Liquid Concurrent Upflow Fixed-Bed Reactor with Membrane Dispersion
AU - Liu, Yucheng
AU - Zhu, Hang
AU - Jiang, Hong
AU - Chen, Rizhi
N1 - Publisher Copyright:
© 2022 American Chemical Society. All rights reserved.
PY - 2022/10/19
Y1 - 2022/10/19
N2 - Phenol hydrogenation is an environmentally friendly route to produce cyclohexanone, an important intermediate for manufacturing nylon-6 and nylon-66. Herein, a gas-liquid cocurrent upflow fixed-bed reactor with an external multichannel ceramic membrane as the dispersion medium was developed for continuous liquid-phase hydrogenation of phenol to cyclohexanone over Pd/Al2O3catalysts in aqueous media. The pipeline between the membrane module and fixed-bed reactor was designed and optimized after examination of the influence of the bubble size and solubility of hydrogen quasi in situ and the corresponding phenol conversion and cyclohexanone selectivity. Results highlight that only a suitable pipe height can effectively improve the gas-liquid mass transfer, so as to improve the phenol conversion. A phenol conversion of ∼98% and a cyclohexanone selectivity of ∼95% can be achieved in a 52 h continuous run. In particular, the phenol conversion is significantly increased by 14.5% compared with that without a pipeline connection. This work will pave an efficient route to the optimal design of a fixed-bed reactor coupled with a membrane distributor for green cyclohexanone production.
AB - Phenol hydrogenation is an environmentally friendly route to produce cyclohexanone, an important intermediate for manufacturing nylon-6 and nylon-66. Herein, a gas-liquid cocurrent upflow fixed-bed reactor with an external multichannel ceramic membrane as the dispersion medium was developed for continuous liquid-phase hydrogenation of phenol to cyclohexanone over Pd/Al2O3catalysts in aqueous media. The pipeline between the membrane module and fixed-bed reactor was designed and optimized after examination of the influence of the bubble size and solubility of hydrogen quasi in situ and the corresponding phenol conversion and cyclohexanone selectivity. Results highlight that only a suitable pipe height can effectively improve the gas-liquid mass transfer, so as to improve the phenol conversion. A phenol conversion of ∼98% and a cyclohexanone selectivity of ∼95% can be achieved in a 52 h continuous run. In particular, the phenol conversion is significantly increased by 14.5% compared with that without a pipeline connection. This work will pave an efficient route to the optimal design of a fixed-bed reactor coupled with a membrane distributor for green cyclohexanone production.
UR - http://www.scopus.com/inward/record.url?scp=85139832684&partnerID=8YFLogxK
U2 - 10.1021/acs.iecr.2c02804
DO - 10.1021/acs.iecr.2c02804
M3 - 文章
AN - SCOPUS:85139832684
SN - 0888-5885
VL - 61
SP - 15202
EP - 15214
JO - Industrial and Engineering Chemistry Research
JF - Industrial and Engineering Chemistry Research
IS - 41
ER -