Oxidation and hydrolysis of lactic acid in near-critical water

被引:35
|
作者
Li, LX
Portela, JR
Vallejo, D
Gloyna, EF [1 ]
机构
[1] Univ Texas, Dept Civil Engn, Environm & Water Resources Engn Program, Austin, TX 78712 USA
[2] Univ Cadiz, Dept Ingn Quim, E-11510 Puerto Real, Cadiz, Spain
关键词
D O I
10.1021/ie980520r
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Hydrothermal reactions (oxidation and hydrolysis) involving lactic acid (LA) were studied at temperatures ranging from 300 to 400 degrees C and a nominal pressure of 27.6 MPa. Kinetic models were developed with respect to concentrations of LA and total organic carbon (TOC), respectively. The best-fit model for LA oxidation with 95% confidence limits is -d[LA]/dt = 10(18.7+/-4.2) X exp(-226 +/- 46.6 kJ/mol/RT)[LA](0.88+/-0.11)[O-2](0.16+/-0.19). Similarly, the best-fit TOC model for lactic acid oxidation is -d[TOC]/dt = 10(4.3+/-2.5) exp(-68.4 +/- 27.2 kJ/mol/RT)[TOC] (0.62+/-0.33)[O-2](0.36+/-0.26) The best-fit TOC model for lactic acid hydrolysis is -d[TOC]/dt = 10(8.4+/-2.1) exp(-125 +/- 26.7 kJ/mol/RT)[TOC]. On the basis of identified liquid and gaseous products, pathways for hydrothermal reactions involving lactic acid were proposed. Acetic acid and acetaldehyde were confirmed as the major liquid intermediates for oxidation and hydrolysis reactions, respectively. Carbon monoxide and methane were identified as the major gaseous byproducts from these reactions. These results demonstrated the potential of completely oxidizing, as well as converting, lactic acid into other organic products, in high-temperature water.
引用
收藏
页码:2599 / 2606
页数:8
相关论文
共 50 条
  • [1] Hydrolysis of adiponitrile in near-critical water
    Duan Pei-Gao
    Niu Yan-Lei
    Wang Yuan-Yuan
    Dai Li-Yi
    CHINESE JOURNAL OF CHEMISTRY, 2008, 26 (09) : 1741 - 1744
  • [2] CONVERSION OF LACTIC-ACID TO ACRYLIC-ACID IN NEAR-CRITICAL WATER
    LIRA, CT
    MCCRACKIN, PJ
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 1993, 32 (11) : 2608 - 2613
  • [3] Acid/base-catalyzed ester hydrolysis in near-critical water
    Lesutis, HP
    Gläser, R
    Liotta, CL
    Eckert, CA
    CHEMICAL COMMUNICATIONS, 1999, (20) : 2063 - 2064
  • [4] Noncatalytic hydrolysis of iminodiacetonitrile in near-critical water - A green process for the manufacture of iminodiacetic acid
    Duan, Pei-Gao
    Wang, Xuan
    Dai, Li-Yi
    CHEMICAL ENGINEERING & TECHNOLOGY, 2007, 30 (02) : 265 - 269
  • [5] Boric acid equilibria in near-critical and supercritical water
    Wofford, WT
    Gloyna, EF
    Johnston, KP
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 1998, 37 (05) : 2045 - 2051
  • [6] KINETICS OF NON-CATATALYZED HYDROLYSIS OF POLYACRYLONITRILE IN NEAR-CRITICAL WATER
    Liu Tifeng
    Zhang Jianfei
    Lue Xiuyang
    ACTA POLYMERICA SINICA, 2011, (01) : 107 - 113
  • [7] Boric acid equilibria in near-critical and supercritical water
    Wofford, William T.
    Gloyna, Earnest F.
    Johnston, Keith P.
    Industrial and Engineering Chemistry Research, 1998, 37 (05): : 2045 - 2051
  • [8] Kinetics of non-catalyzed hydrolysis of phenylacetonitrile in near-critical water
    Shi, Chao-Jun
    Lü, Xiu-Yang
    Gao Xiao Hua Xue Gong Cheng Xue Bao/Journal of Chemical Engineering of Chinese Universities, 2009, 23 (02): : 252 - 257
  • [9] Comparison of hydrolysis kinetics of different vegetable oils in near-critical water
    Sun, Hui
    Lu, Xiuyang
    Chen, Liang
    Huagong Xuebao/Journal of Chemical Industry and Engineering (China), 2007, 58 (04): : 925 - 929
  • [10] The promotion of hydrolysis of acetylsalicylic acid in AOT/near-critical propane microemulsion
    Shervani, Z
    Ikushima, Y
    CHEMICAL COMMUNICATIONS, 2001, (23) : 2506 - 2507