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20篇 您的检索式:作者名="Kovalenko K"
    题名 作者 年代 出处 被引量
1液态二氧化碳对俄罗斯某油藏稠油的膨胀与萃取作用实验显示文摘利用俄罗斯某油藏稠油样品,通过实验分析稠油与液态CO_2混合后两者之间的质量传递作用以及混合物中重相(稠油和CO_2的混合物)和轻相(纯CO_2)的特性变化。研究表明,当混合物中CO_2浓度为10%时,稠油基本上不发生膨胀;当混合物中CO_2浓度高于26%时,由于稠油轻质组分的萃取量超过了CO_2在稠油中的饱和量导致重相体积减少,重相黏度呈指数增长,混合物中CO_2的浓度为26%时,有效降低重相黏度的作用最强;重相和轻相密度、体积系数、气体溶解度和闪蒸重相黏度均随着混合物中CO_2浓度的增加而变大;混合物中最佳的CO_2浓度是26%,此时稠油膨胀最大、重相的黏度值最小;混合物中CO_2的浓度为10%~26%时,轻相的体积最小,驱油效果最好。LOBANOV A A SHHEKOLDIN K A STRUCHKOV I A ZVONKOV M A HLAN M V PUSTOVA E J KOVALENKO V A ZOLOTUKHIN A B 2018石油勘探与开发2018,45,5:6
2Expression of MMP-9 in mesangial cells and its changes in anti-GBM glomerulonephritis in WKY rats显示文摘Kuroda T Yoshida Y Kamiie J Kovalenko P Nameta M Fujinaka H Yaoita E Endo T Ishizuka S Nakabayashi K Yamada A Nagasawa T Yamamoto T 2004Clin Exp Nephrol2004,8,:1
3Structural organisation of CA1 zone in the hippocampus of rats in the experimental brain ischemi a显示文摘Kovalenko T M Osadchenko I O Smozhanyk K H 2004Fiziol Zh2004,50,2:1
4A generalroute to 5-aminotetrazoles显示文摘Kntritzky A R Rogovoy B V Kovalenko K V 2003J Org Chem2003,68,12:1
5Iron tetrasulfophthalocyanine immobilized on metal organic framework MIL-101:Synthesis,characterization and catalytic properties显示文摘Zalomaeva O V Kovalenko K A Chesalov Y A 2011Dalton Transactions2011,40,7:1
6Desalination at overlimiting currents: State-of-the-art and perspectives显示文摘Nikonenko V V Kovalenko A V Urtenov M K 2014Desalination2014,342,:1
7Hybrid Polyoxotungstate/MIL-101 Materials:Synthesis,Characterization,and Catalysis of H2O2-Based Alkene Epoxidation显示文摘Maksimchuk N V Kovalenko K A Arzumanov S S 0,,06:1
8Apoptosis provoked by the oxidative stress inducer menadione (Vitamin K3) is mediated by the Fas/Fas ligand system 显示文摘Caricchio R Kovalenko D Kaufmann W K 1999Clin Immunol1999,93,1:1
9Studying of Cytokine Dynamics in njured Persons with Severe Burns for Estimation of Severity and Prognosis显示文摘Kovalenko 0 M Mal'tsev D V Vie K 2014Klin Khir2014,,2:1
10Isotope provinces,mechanisms of generation and sources of the continental crust in the Central Asian mobile belt:Geological and isotopic evidence显示文摘Kovalenko V I Yarmolyuk V V Kovach V P Kotov A B Kozakov I K Salnikova E B and Larin A M 0,,02:1
11Experimental studies and mathematieal modelling of penetration in TIG and A-TIG stationary arc welding of stainless steel显示文摘YUSHCHENKO K A KOVALENKO D V KRIVTSUN I V 2009The Physics of Welding2009,4,53:1
12Desalination at Overlimiting Currents: State-of-the-art and Perspectives 显示文摘Nikonenko VV Kovalenko A V Urtenov M K 2014Desalination2014,342,:1
13The protein-tyrosine phosphatase DEP-1 modulates growth factor-stimulated cell migration and cell-matrix adhesion显示文摘Jandt E Denner K Kovalenko M 2003Oncogene2003,22,27:1
14Design of an extrusion die for plastic profiles显示文摘Kovalenko K G Sivetskii V I Sokol' skii A L 2014Chemical and Petroleum Engineering2014,49,910:1
15Ecological impact of grass carp: A review of the available data 显示文摘Dibble E D Kovalenko K 2009Aquatic Plant Manage2009,47,:1
16MIL-101 supported polyoxometalates: Synthesis, characterization, and catalytic applications in selective liquid-phase oxidation显示文摘MAKSIMCHUK N V KOVALENKO K A FEDIN V P 2011Adv Synth Catal2011,51,2:1
17Fish feeding in changing habitats: effects of invasive macrophyte control and habitat显示文摘Kovalenko K Dibble E D Fugi R 2009Ecology of Freshwater Fish2009,18,2:1
18Synthesis of azo compounds containing triazole and tetrazole residues显示文摘SHEGAL I L STANOVKINA K V KOVALENKO N G 1974Chem Heterocycl Compd1974,10,3:1
19Hybrid polyoxotungstate/MIL-101 materials:Synthesis,characterization,and catalysis of H2O2-based alkene epoxidation显示文摘MAKSIMCHUK N V KOVALENKO K A ARZUMANOV S S 0,,6:1
20Swelling/extraction test of Russian reservoir heavy oil by liquid carbon dioxide显示文摘The mass transfer between heavy oil and liquid carbon dioxide and the changes of the heavy phase(mixture of heavy oil and CO_2) and light phase(pure CO_2) in the mixture were tested in lab with heavy oil samples from Russia. The experimental results showed that the heavy oil hardly expanded when the concentration of carbon dioxide in the mixture was 10%. When the concentration of carbon dioxide was higher than 26%, the volume of the heavy phase decreased, and the viscosity of the heavy phase increased exponentially as the light components extracted from the heavy oil exceeded the carbon dioxide saturated in the heavy oil. When the concentration of carbon dioxide in the mixture was 26%, the effect of viscosity reducing to the heavy phase was the strongest. The density of the light and heavy phases, volume factor, and solubility of gas and flash viscosity of heavy phase all increased with the rise of carbon dioxide concentration in the mixture. The best concentration of carbon dioxide in the mixture was 26%, when the heavy oil expanded the most and the viscosity of the heavy phase was the lowest. When the concentration of carbon dioxide in the mixture was between 10% and 26%, the volume of the light phase was the smallest and the oil displacement effect was the best.LOBANOV A A SHHEKOLDIN K A STRUCHKOV I A ZVONKOV M A HLAN M V PUSTOVA E J KOVALENKO V A ZOLOTUKHIN A B 2018Petroleum Exploration and Development2018,45,5:0
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