CO2 residual concentration of potassium-promoted hydrotalcite for deep CO/CO2 purification in H2-rich gas

被引:15
|
作者
Zhu, Xuancan [1 ]
Shi, Yixiang [1 ]
Cai, Ningsheng [1 ]
机构
[1] Tsinghua Univ, Dept Thermal Engn, Minist Educ, Key Lab Thermal Sci & Power Engn, Beijing 100084, Peoples R China
关键词
Potassium-promoted hydrotalcite; Warm gas clean-up; Elevated-temperature pressure swing adsorption; CO deep purification; High purity hydrogen production; ENHANCED REACTION PROCESS; HIGH-TEMPERATURE ADSORPTION; GASIFICATION COMBINED-CYCLE; PRESSURE SWING ADSORPTION; HIGH-PURITY HYDROGEN; CARBON-DIOXIDE; SHIFT REACTION; H-2; PRODUCTION; SORPTION; CAPTURE;
D O I
10.1016/j.jechem.2017.06.006
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Elevated-temperature pressure swing adsorption is a promising technique for producing high purity hydrogen and controlling greenhouse gas emissions. Thermodynamic analysis indicated that the CO in H-2 rich gas could be controlled to trace levels of below 10 ppm by in situ reduction of the CO2 concentration to less than 100 ppm via the aforementioned process. The CO2 adsorption capacity of potassium-promoted hydrotalcite at elevated temperatures under different adsorption (mole fraction, working pressure) and desorption (flow rate, desorption time, steam effects) conditions was systematically investigated using a fixed bed reactor. It was found that the CO2 residual concentration before the breakthrough of CO2 mainly depended on the total amount of purge gas and the CO2 mole fraction in the inlet syngas. The residual CO2 concentration and uptake achieved for the inlet gas comprising CO2 (9.7 mL/min) and He (277.6 mL/min) at a working pressure of 3 MPa after 1 h of Ar purging at 300 mL/min were 12.3 ppm and 0.341 mmol/g, respectively. Steam purge could greatly improve the cyclic adsorption working capacity, but had no obvious benefit for the recovery of the residual CO2 concentration compared to purging with an inert gas. The residual CO2 concentration obtained with the adsorbent could be reduced to 3.2 ppm after 12 h of temperature swing at 450 degrees C. A new concept based on an adsorption/desorption process, comprising adsorption, steam rinse, depressurization, steam purge, pressurization, and high-temperature steam purge, was proposed for reducing the steam consumption during CO/CO2 purification. (C) 2017 Science Press and Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by Elsevier B.V. and Science Press. All rights reserved.
引用
收藏
页码:956 / 964
页数:9
相关论文
共 50 条
  • [21] Potassium-Promoted Limestone for Preferential Direct Hydrogenation of Carbonates in Integrated CO2 Capture and Utilization
    Sun, Shuzhuang
    Chen, Zheng
    Xu, Yikai
    Wang, Yuanyuan
    Zhang, Yingrui
    Dejoie, Catherine
    Xu, Shaojun
    Xu, Xin
    Wu, Chunfei
    JACS AU, 2023, 4 (01): : 72 - 79
  • [22] Turning Waste into Value: Potassium-Promoted Red Mud as an Effective Catalyst for the Hydrogenation of CO2
    Russkikh, Artem
    Shterk, Genrikh
    Al-Solami, Bandar H.
    Fadhel, Bandar A.
    Ramirez, Adrian
    Gascon, Jorge
    CHEMSUSCHEM, 2020, 13 (11) : 2981 - 2987
  • [23] AN INFRARED STUDY OF METHANOL SYNTHESIS FROM CO2 ON CLEAN AND POTASSIUM-PROMOTED CU/SIO2
    CLARKE, DB
    BELL, AT
    JOURNAL OF CATALYSIS, 1995, 154 (02) : 314 - 328
  • [24] An Infrared Study of Methanol Synthesis from CO2 on Clean and Potassium-Promoted Cu/SiO2
    Clarke, D. B.
    Bell, A. T.
    Journal of Catalysis, 154 (02):
  • [25] Dynamic Breathing of CO2 by Hydrotalcite
    Ishihara, Shinsuke
    Sahoo, Pathik
    Deguchi, Kenzo
    Ohki, Shinobu
    Tansho, Masataka
    Shimizu, Tadashi
    Labuta, Jan
    Hill, Jonathan P.
    Ariga, Katsuhiko
    Watanabe, Ken
    Yamauchi, Yusuke
    Suehara, Shigeru
    Iyi, Nobuo
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2013, 135 (48) : 18040 - 18043
  • [26] Power generation with CO2 capture: Technology for CO2 purification
    Pipitone, Gabriele
    Bolland, Olav
    INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2009, 3 (05) : 528 - 534
  • [27] Thermodynamic analysis of methane reforming with CO2, CO2 + H2O, CO2 + O2 and CO2 + air for hydrogen and synthesis gas production
    Freitas, Antonio C. D.
    Guirardello, Reginaldo
    JOURNAL OF CO2 UTILIZATION, 2014, 7 : 30 - 38
  • [28] A trend of the CO2 concentration in tree rings and the atmospheric CO2
    Ageev B.G.
    Ponomarev Y.N.
    Sapozhnikova V.A.
    Atmospheric and Oceanic Optics, 2009, 22 (1) : 128 - 134
  • [29] Selective hydrogenation of CO2 and CO over potassium promoted Co/ZSM-5
    Liu, Renjie
    Leshchev, Denis
    Stavitski, Eli
    Juneau, Mitchell
    Agwara, Jane N.
    Porosoff, Marc D.
    APPLIED CATALYSIS B-ENVIRONMENTAL, 2021, 284
  • [30] To CO2 or not to CO2 ,that is the question!
    Hohnadel, DC
    Gruttadauria, M
    Murray, K
    Levin, M
    D'Souza, J
    CLINICAL CHEMISTRY, 2003, 49 (06) : A90 - A90