Monomerization of nylon 6 in sub- and supercritical water

被引:33
|
作者
Goto, M [1 ]
Umeda, M
Kodama, A
Hirose, T
Nagaoka, S
机构
[1] Kumamoto Univ, Dept Appl Chem & Biochem, Kumamoto 8608555, Japan
[2] Kumamoto Ind Res Inst, Kumamoto 8620901, Japan
关键词
subcritical; supercritical; water; nylon; 6; epsilon-caprolactam; epsilon-aminocaproic acid; decomposition; hydrolysis;
D O I
10.1295/koron.58.548
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Nylon 6, which is a polymer synthesized by ring-opening polymerization of epsilon -caprolactam, was decomposed by hydrolysis in sub- and supercritical water. Nylon 6 and degassed water were charged into a batch reactor and heated to a reaction temperature in the range of 573 similar to 673 K for 5 to 60 min in a salt bath. The liquid phase of the product was analyzed by HPLC and GC-MS. As a result of HPLC analysis, epsilon -caprolactam and epsilon -aminocaproic acid were detected in the product liquid phase. The yields of monomer components were plotted as a function of reaction time and temperature. The total yields of these monomers were about 100% for reactions at 573 K in 60 min and at 603 K in 30 min. The yield of epsilon -aminocaproic acid decreased rapidly as reaction time increased. Nylon 6 was decomposed by hydrolysis to epsilon -aminocaproic acid followed by cyclodehydration to epsilon -caprolactam or decomposition further to smaller molecules in sub- and super critical water.
引用
收藏
页码:548 / 551
页数:4
相关论文
共 50 条
  • [31] Extraction of tumuji oil sand with sub- and supercritical water
    Meng, Meng
    Hu, Haoquan
    Zhang, Qiumin
    Ding, Ming
    ENERGY & FUELS, 2006, 20 (03) : 1157 - 1160
  • [32] Hydrothermal deoxygenation of graphene oxide in sub- and supercritical water
    Mungse, Harshal P.
    Sharma, Om P.
    Sugimura, Hiroyuki
    Khatri, Om P.
    RSC ADVANCES, 2014, 4 (43): : 22589 - 22595
  • [33] Kinetic study for liquefaction of tar in sub- and supercritical water
    Wahyudiono
    Sasaki, Mitsuru
    Goto, Motonobu
    POLYMER DEGRADATION AND STABILITY, 2008, 93 (06) : 1194 - 1204
  • [34] Mechanism and Kinetics of Zinc Oxidation by Sub- and Supercritical Water
    Vostrikov, A. A.
    Fedyaeva, O. N.
    Shishkin, A. V.
    Sokol, M. Ya.
    IFOST 2008: PROCEEDING OF THE THIRD INTERNATIONAL FORUM ON STRATEGIC TECHNOLOGIES, 2008, : 226 - 230
  • [35] Characteristics of Cyanobacterial Biomass Gasification in Sub- and Supercritical Water
    Zhang, Huiwen
    Zhang, Xiaoman
    Ding, Lei
    Ma, Jiangya
    Kong, Yanli
    ENERGY & FUELS, 2019, 33 (04) : 3239 - 3247
  • [36] Decomposition of urea in sub- and supercritical water with/without additives
    Okazaki, Moriyuki
    Funazukuri, Toshitaka
    JOURNAL OF MATERIALS SCIENCE, 2008, 43 (07) : 2316 - 2322
  • [37] Sub- and supercritical water extraction of goynuk oil shale
    Sinag, A
    ENERGY SOURCES, 2004, 26 (09): : 885 - 890
  • [38] Conversion of veratrole and sodium lignosulfonate in the sub- and supercritical water
    A. G. Khudoshin
    V. V. Lunin
    V. I. Bogdan
    Russian Journal of Physical Chemistry B, 2011, 5 : 1069 - 1075
  • [39] Conversion of veratrole and sodium lignosulfonate in the sub- and supercritical water
    Khudoshin, A. G.
    Lunin, V. V.
    Bogdan, V. I.
    RUSSIAN JOURNAL OF PHYSICAL CHEMISTRY B, 2011, 5 (07) : 1069 - 1075
  • [40] Hydrothermal decomposition of alkali lignin in sub- and supercritical water
    Pinkowska, Hanna
    Wolak, Pawel
    Zlocinska, Adrianna
    CHEMICAL ENGINEERING JOURNAL, 2012, 187 : 410 - 414