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显,且安全,无污染,未来应筛选出更有效的菌株, gene[J]. Energy Procedia, 2015, 13(1): 63-74.
将其进行复配使用,找出最佳的复配条件,使其效 [15] Karlapudi A P, Venkateswarulu T C, Tammineedi J, et al. Role of
biosurfactants in bioremediation of oil pollution-a review[J].
果发挥最佳。微生物技术拥有广阔的市场空间及发
Petroleum, 2018, 4(3): 241-249.
展前景。
[16] Luo Chao (罗超), Zhang Haijuan (张海娟), Wang Weiqiang (王卫
强), et al. Analysis on improving flow performance of crude oil by
参考文献:
wax-degrading bacteria[J]. Modern Chemical Industry (现代化工),
[1] Atlas R M, Hazen T C. Oil biodegradation and bioremediation: A tale 2018, 38(9): 148-151.
of the two worst spills in U. S. history[J]. Environmental Science & [17] Davis K E R, Joseph S J, Janssen P H. Effects of growth medium,
Technology, 2011, 45(16): 6709-6715. inoculum size, and incubation time on culturability and isolation of
[2] Sakthipriya N, Doble M, Sangwai J S. Bioremediation of coastal and soil bacteria[J]. Applied & Environmental Microbiology, 2005,
marine pollution due to crude oil using a microorganism Bacillus 71(2): 826-834.
subtilis[J]. Procedia Engineering, 2015, 116(1): 213-220. [18] Coulon F, Pelletier E, Gourhant L, et al. Effects of nutrient and
[3] El-Sheshtawy H S, Khidr T T. Some biosurfactants used as pour temperature on degradation of petroleum hydrocarbons in contaminated
point depressant for waxy egyptian crude oil[J]. Petroleum Science sub-Antarctic soil[J]. Chemosphere, 2005, 58(10): 1439-1448.
and Technology, 2016, 34(16): 1475-1482. [19] Huang Z, Lu Y, Hoffmann R, et al. The effect of operating
[4] Liang X, Shi R, Radosevich M, et al. Anaerobic lipopeptide
temperatures on wax deposition[J]. Energy & Fuels, 2011, 25(6):
biosurfactant production by an engineered bacterial strain for in situ 5180-5188.
microbial enhanced oil recovery[J]. RSC Adv, 2017, 7(33): 20667-
[20] Guo Ping (郭萍), Li Hongna (李红娜), Li Feng (李峰), et al.
20676.
Research progress in microbial remediation technology of petroleum
[5] Ohadi M, Dehghan-Noudeh G, Shakibaie M, et al. Isolation,
pollution[J]. Biotechnology Bulletin (生物技术通报), 2017, 33(10):
characterization, and optimization of biosurfactant production by an
18-25.
oil-degrading Acinetobacter junii B6 isolated from an Iranian oil
[21] Liu Xianbin (刘宪斌), Ren Lijun (任丽君), Tian Shengyan (田胜艳),
excavation site[J]. Biocatalysis & Agricultural Biotechnology, 2017,
et al. Screening and identification of heavy oil-degrading
12: 1-9.
microorganisms and their degradation characteristics[J]. Journal of
[6] Patel D D, Lakshmi B. Study on the role of Nocardia farcinica in
Environmental Engineering (环境工程学报), 2014, 8(7): 3069-3074.
enhancing the flow rate of crude oil[J]. Bioremediation Journal,
[22] Liu Qingxin (刘庆新), Yi Shaojin (易绍金), Zhang Min (张敏), et al.
2016, 20(3): 224-232.
Study on growth factors of petroleum hydrocarbon degrading
[7] Natter M, Keevan J, Yang W, et al. Level and degradation of
bacteria [J]. Journal of Oil and Gas Technology (石油天然气学报),
deepwater horizon spilled oil in coastal marsh sediments and
2006, 28(1): 42-44.
pore-water[J]. Environmental Science & Technology, 2012, 46(11):
[23] Wang Chunming (王春明), Li Daping (李大平), Liu Shigui (刘世
5744-5755.
贵). Physiological and biochemical characteristics of microorganisms
[8] Wu M, Chen L, Tian Y, et al. Degradation of polycyclic aromatic
in heavy oil recovery and their influence on crude oil characteristics
hydrocarbons by microbial consortia enriched from three soils using
[J]. Acta Petrolei Sinica (石油学报), 2007, (5): 89-92.
two different culture media[J]. Environmental Pollution, 2013, 178:
[24] Zhao Huangxing, Zhang Wei. The research and prospect on viscosity
152-158.
reduction technology of heavy oil[J]. Guangdong Chemical Industry,
[9] Zhu Jie (朱杰), Ruan Zhiyong (阮志勇), Dong Weiwei (董卫卫), et
2013, 40(16): 112-113.
al. Isolation, identification and degradation characteristization of an
[25] Lee D W, Lee H, Kwon B O, et al. Biosurfactant-assisted
alkane-degrading Acinetobacter sp. LAM1007[J]. Microbiology
bioremediation of crude oil by indigenous bacteria isolated from
China (微生物学通报), 2017, 44(7): 1535-1546.
Taean beach sediment[J]. Environmental Pollution, 2018, 241:
[10] Chandankere R, Yao J, Choi M M F, et al. An efficient
254-264.
biosurfactant-producing and crude-oil emulsifying bacerium Bacillus
[26] Fan Z, She Y, Banat I M, et al. Potential microorganisms for
methylotrophicus, USTBa isolated from petroleum reservoir[J].
prevention of paraffin precipitation in a hypersaline oil reservoir[J].
Biochemical Engineering Journal, 2013, 74(9): 46-53.
[11] Li Si (李思), Huang Qiyu (黄启玉), Fan Kaifeng (范开峰). Energy & Fuels, 2014, 28(2): 1191-1197.
[27] Fayaz G, Goli S, Kadivar M . A novel propolis wax-based organogel:
Detection technology of waxy characteristics of petroleum fluids[J].
Acta Petrolei Sinica (石油学报), 2016, 32(6): 1287-1296. Effect of oil type on its formation, crystal structure and thermal
[12] Ma Dongchen (马冬晨), Zeng Xiongfei (曾雄飞), Chen Deen (陈德 properties[J]. Journal of the American Oil Chemists Society, 2017,
恩). Research on determination wax mess fraction in crude oil by 94(1): 47-55.
using differential scanning calorimetry[J]. Journal of Oil and Gas [28] Sakthipriya N, Doble M, Sangwai J S. Biosurfactant from Pseudomonas
Technology (石油天然气学报), 2013, 35(9): 102-104. species with waxes as carbon source- Their production, modeling and
[13] Banerjee S, Kumar R, Mandal A, et al. Effect of natural and synthetic properties[J]. Journal of Industrial & Engineering Chemistry, 2015,
surfactant on the rheology of light crude oil[J]. Liquid Fuels 31: 100-111.
Technology, 2015, 33(15/16): 1516-1525. [29] Tribedi P, Sil A K. Cell surface hydrophobicity: A key component in
[14] Deng S P, Huang D S. An integrated strategy for functional analysis the degradation of polyethylene succinate by Pseudomonas sp.
of microbial communities based on gene ontology and 16S rRNA AKS2[J]. Journal of Applied Microbiology, 2014, 116(2): 295-303.