• Title/Summary/Keyword: cyclopentanol

Search Result 4, Processing Time 0.02 seconds

The Measurement of Combustible Properties of Cyclopentanol (사이클로펜탄올의 연소특성치의 측정)

  • Ha, Dong-Myeong
    • Journal of the Korean Institute of Gas
    • /
    • v.18 no.2
    • /
    • pp.35-40
    • /
    • 2014
  • For the safe handling of cyclopentanol, this study was investigated the explosion limits of cyclopentanol in the reference data. The flash points and AITs(auto-ignition temperatures) by ignition delay time were experimented. The lower flash point of cyclopentanol by using closed-cup cyclopentanol was experimented at $49^{\circ}C$. The lower flash points of cyclopentanol by using open cup tester was experimented at $59^{\circ}C$. This study measured relationship between the AITs and the ignition delay times by using ASTM E659 tester for cyclopentanol. The experimental AIT of cyclopentanol was at $363 ^{\circ}C$.

Purification and Characterization of a Cyclohexanol Dehydrogenase from Rhodococcus sp. TK6

  • Kim, Tae-Kang;Choi, Jun-Ho;Rhee, In-Koo
    • Journal of Microbiology and Biotechnology
    • /
    • v.12 no.1
    • /
    • pp.39-45
    • /
    • 2002
  • Activity staining on the native polyacrylamide gel electrophoresis (PAGE) of a cell-free extract of Rhodococcus sp. TK6, grown in media containing alcohols as the carbon source, revealed at least seven isozyme bands, which were identified as alcohol dehydrogenases that oxidize cyclohexanol to cyclohexanone. Among the alcohol dehydrogenases, cyclohexanol dehydrogenase II (CDH II), which is the major enzyme involved in the oxidation of cyclohexanol, was purified to homogeneity. The molecular mass of the CDH II was determined to be 60 kDa by gel filtration, while the molecular mass of each subunit was estimated to be 28 kDa by sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE). The CDH II was unstable in acidic and basic pHs, and rapidly inactivated at temperatures above $40^{\circ}C$ . The CDH II activity was enhanced by the addition of divalent metal ions, like $Ba^2+\;and\;Mg^{2+}$. The purified enzyme catalyzed the oxidation of a broad range of alcohols, including cyclohexanol, trans-cyclohexane-1,2-diol, trans-cyclopentane-l,2-diol, cyclopentanol, and hexane-1,2-diol. The $K_m$ values of the CDH II for cyclohexanol, trans-cyclohexane-l,2-diol, cyclopentanol, trans-cyclopentane-l,2-diol, and hexane-l,2-diol were 1.7, 2.8, 14.2, 13.7, and 13.5 mM, respectively. The CDH II would appear to be a major alcohol dehydrogenase for the oxidation of cyclohexanol. The N-terminal sequence of the CDH II was determined to be TVAHVTGAARGIGRA. Furthermore, based on a comparison of the determined sequence with other short chain alcohol dehydrogenases, the purified CDH II was suggested to be a new enzyme.

Isolation and Characterization of Cyclohexanol-utilizing Bacteria (Cyclohexanol 이용성 세균의 분리 및 특성)

  • 김태강;이인구
    • Microbiology and Biotechnology Letters
    • /
    • v.27 no.2
    • /
    • pp.107-112
    • /
    • 1999
  • A bacterium, which can utilize cyclohexanol as a sole source of carbon and energy, was isolated from sludge in sewage of Ulsan Industrial Complex for Petrochemicals, Korea and identified as Rhodococcus sp. TK6. The growth conditions of the bacteria were investigated in cyclohexanol containing media. The bacteria utilized cyclohexanol, cyclohexanone, cyclohexane-1,2=diol, cyclopentanol, cyclopentanone, and $\varepsilon$-caprolactone but not cyclohexane, cyclohexane-1,2-dione, and cyclooctanone. The bacteria were able to utilize alcohols such as ethanol, 1-propanol, 1-butanol, 1-pentanol, 1-hexanol, 2-methyl-1-propanol, 3-methyl-1-butanol, 2-propanol, and 2-butanol as well as cyclohexanol, organic acids such as adipate, propionate, butyrate, valerate, n-caproate, and 6-hydroxycaproate, and aromatic compounds such as phenol, salicylate, p-hydroxbenzoate, and benzoate as a sole source of carbon and energy. Cyclohexanone as a degradation product of cyclohexanol by Rhodococcus sp. TK6 was determined with gas chromatography.

  • PDF

Electrowetting on Hydrophobic Silica Layers (소수성 실리카 코팅층에서의 전기습윤)

  • Kim, Ji-Yeong;Kim, Sang-Seop
    • Proceedings of the Korean Vacuum Society Conference
    • /
    • 2013.02a
    • /
    • pp.96-96
    • /
    • 2013
  • 전기습윤이란 고체 표면에 형성된 액적에 전기장을 인가하게 되면 액적과 표면의 계면에너지 감소로 인해 접촉각이 변화되는 현상을 말한다. 이 현상은 전자종이 구현에 응용이 모색되고 있으며, 다초점 렌즈, 마이크로 프리즘, 반사형 디스플레이 등에도 응용될 수 있다. 전기습윤현상의 응용 가능성이 현실화됨에 따라 최근 여러 표면에서의 전기습윤 현상이 연구되고 있다. 예를 들면, 나노 구조로 형성된 실리콘 기판에서 molten salt (1-ethyl-3-methyl-1-H-imidazolium tetrafluoroborate)에 22 V를 인가하면 약 $180^{\circ}$에서 $110^{\circ}$로 접촉각변화를, cyclopentanol에 50 V를 인가하면 표면에 완전히 퍼지는 현상이 보고된 바 있고, 배열된 Carbon Nanotube 박막에서는 탈이온수와 0.03 M NaCl 용액에 대해서 0~50 V를 가해줌에 따라 각각 $155^{\circ}$에서 $90^{\circ}$, $130^{\circ}$에서 $50^{\circ}$로의 접촉갑 변화가 있음이 관찰되었다. 본 연구에서는 화학적으로 안정하고 그 활용도가 매우 광범위한 실리카 코팅층을 전기분무증착법(electrospray deposition)을 이용해 형성하고, 코팅층의 표면 거칠기와 구조, 전기절연층의 두께 등에 따른 전기습윤 현상 거동을 조사하였다.

  • PDF