• Title/Summary/Keyword: Petroleum products

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Analysis of Component for Determining Illegal Gasoline (가짜휘발유 판정을 위한 성분 분석)

  • Lim, Young-Kwan;Won, Ki-Yoe;Kang, Byung-Seok;Park, So-Hwi;Jung, Seong;Go, Young-Hoon;Kim, Seong-Soo;Jung, Gil-Hyoung
    • Tribology and Lubricants
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    • v.36 no.3
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    • pp.161-167
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    • 2020
  • Petroleum is the most used energy source in Korea with a usage rate of 39.5% among the available 1st energy source. The price of liquid petroleum products in Korea includes a lot of tax such as transportation·environment·energy tax. Thus, illegal production and distribution of liquid petroleum is widespread because of its huge price difference, including its tax-free nature, from that of the normal product. Generally, illegal petroleum product is produced by illegally mixing liquid petroleum with other similar petroleum alternatives. In such case, it is easy to distinguish whether the product is illegal by analyzing its physical properties and typical components. However, if one the components of original petroleum product is added to illegal petroleum, distinguishing between the two petroleum products will be difficult. In this research, we inspect illegally produced gasoline, which is mixed with methyl tertiary butyl ether (MTBE) as an octane booster. This illegal gasoline shows a high octane number and oxygen content. Further, we analyze the different types of green dyes used in illegal gasoline through high performance liquid chromatography (HPLC). We conduct component analyses on the simulated sample obtained from premium gasoline and MTBE. Finally, the illegal gasoline is defined as premium gasoline with 10% MTBE. The findings of this study suggest that illegal petroleum can be identified through an analytic method of components and simulated samples.

Compositional Characteristics and Origin of Polycyclic Aromatic Hydrocarbons[PAHs] of Crude Oils and Petroleum Products (원유와 석유제품 중의 다환방향족탄화수소류[PAHs] 분포특성과 발생원)

  • Chung, Hung-Ho;Park, Eun-Hee;Choi, Sang-Won
    • Journal of Environmental Science International
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    • v.15 no.5
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    • pp.397-403
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    • 2006
  • Compositional characteristics and origin of polycyclic aromatic hydrocarbons(PAHs), which should be strongly regulated for environmental protection in the crude oils and petroleum products, have been investigated by gas chromatography-mass spectrometry(GC/MS). In the crude oils analyzed, two-rings compound(naphthalene) of PAHs was detected around $72.3\sim93.5%$, but five- or six-rings compound of PAHs was not detected. In the crude oils analyzed, the molecular ratio indices of Phe/Ant(phenanthrene/anthracene)>15, Fla/Pyr(fluoranthene/pyrene)<1, BaA/Chr(benzo (a)anthracene/chrysene)$\leq0.4$ could be effectively applied, and we found that the origin of PAHs was petrogenic sources. Total PAHs concentrations in the crude oils were increased with increasing API gravity and with decreasing sulfur contents of the analyzed crude oils. Five- or six-rings compound of PAHs were not included in ail petroleum products except bunker-C. Furthermore, the molecular ratio indices of Phe/Ant(phenanthrene/anthracene) vs. Fla/Pyr(fluoranthene/pyrene) could be effectively applied as the standard for the PAHs contamination criterion at the other Korean areas.

Standardization for Quantitative Analysis of Aromatic Hydrocarbon in Oil Spill Dispersant (유처리제의 방향족 탄화수소 정량방법에 대한 표준화)

  • Cho, Jong-Hoi;Lim, Yoon-Taek;Kim, Woo-Seok;Yun, Young-Ja;Kim, Shin-Jong
    • Journal of the Korean Applied Science and Technology
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    • v.19 no.4
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    • pp.302-310
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    • 2002
  • Demand for organic analysis increase as industries are growing and many products are spreaded in the daily life. One of many products is oil spill dispersant. It was used for oil accident in the ocean. When oil spill dispersant spread at the ocean, the petroleum in the ocean is dispersed. The oil spill dispersant is made of non ionic surfactant and petroleum oil. The non ionic surfactant disperse petroleum from oil accident. The other part is petroleum oil which has aromatic hydrocarbon. Because the aromatic hydrocarbon is cancerogenic material, it directly injure animals in the ocean. This cause the second pollution in the human body. Many oil accidents still are controlled by oil spill dispersant. Therefore quality control of the oil spill dispersant become important and this also demand for the exact quantitative analysis of aromatic hydrocarbon. Hereupon the first we develop separate petroleum oil from surfactant. The second standardize analytical method of aromatic hydrocarbon in the separated petroleum oil.

Study on the Method of Analyzing the Plasticizer of Petrochemical Products using MD-GC/MS (MD-GC/MS를 활용한 석유화학제품의 가소제(DOA, DOP) 분석방법 연구)

  • Doe, Jin-woo;Youn, Ju-min;Kang, Hyung-kyu;Hwang, In-ha;Ha, Jong-han;Na, Byung-ki
    • Journal of the Korean Applied Science and Technology
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    • v.34 no.4
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    • pp.1085-1093
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    • 2017
  • Plasticizers are materials added to give softness and elasticity to plastics having rigid properties to give soft properties as products, and they are mainly added to high molecular materials to give flexibility to improve workability and to improve cold resistance, resistance to volatility and electrical properties. It is used for the purpose. Most plasticizers are inert liquids, similar in function to solvents but with high molecular weight and no volatility. In addition, when dissolved in petrochemical products, only the plasticizer is separated by the matrix effect with other compounds, and qualitative and quantitative analysis. In this study, qualitative and quantitative analysis of DOA and DOP, which are representative components of petrochemical products, were conducted using MD-GC/MS and developed an optimal plasticizer analysis method.

An Analysis on Inter-Regional Price Linkage of Petroleum Products (석유제품 가격의 지역 간 연계성 분석)

  • Song, Hyojun;Lee, Hahn Shik
    • Environmental and Resource Economics Review
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    • v.28 no.1
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    • pp.121-145
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    • 2019
  • This paper investigates the relationship between the oil price and the major petroleum products prices at the trading hubs such as Singapore, North West Europe and the US New York Harbor. We focus on the lead-lag relationship between the weekly petroleum prices from 2009 to 2016 based on the vector error correction model. We find that the oil price leads the prices of petroleum products in the long term, while there is bidirectional causality in the short term. On the other hand, prices of petroleum products in regions with high import dependency, such as Europe gas oil and jet fuel price, are exogenous in the long term. We also present evidence that prices of petroleum products in region with a large global-market share lead prices in other regions. However, if the region is in an over-production situation and low industry concentration, it may lose its price leadership due to intense competition. The result in this study can provide a useful information to petroleum refining companies in forecasting fluctuations of product price, and hence in planning their regional arbitrage trading activities.

Energy conversion of petroleum coke : CO2 gasification (석유 코크스의 에너지 전환 : CO2 가스화)

  • Kook, Jin-Woo;Gwak, In-Seop;Lee, See-Hoon
    • 한국연소학회:학술대회논문집
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    • 2014.11a
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    • pp.255-257
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    • 2014
  • The installation of light oil facilities or delayed cokers seems to be inevitable in the oil refinery industry due to the heavy crude oil reserves and the increased use of light fuels as petroleum products. Petroleum coke is a byproduct of oil refineries and it has higher fixed carbon content, higher calorific value, and lower ash content than coal. However, its sulfur content and heavy metal content are higher than coal. In spite of disadvantages, petroleum coke might be one of promising resources due to gasification processes. The gasification of petroleum coke can improve economic value of oil refinery industries by handling cheap, toxic wastes in an environment-friendly way. In this study, $CO_2$ gasification reaction kinetics of petroleum coke, various coals and mixing coal with petroleum coke have investigated and been compared by using TGA. The kinetics of $CO_2$ gasification has been performed with petroleum coke, 3 kinds of bituminous coal [BENGALLA, White Haven, TALDINSKY], and 3 kinds of sub-bituminous coal [KPU, LG, MSJ] at various temperature[$1100-1400^{\circ}C$].

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Study on basic characteristics for utilization of bituminous pyrolysis by-products (인도네시아 역청 열분해 무기 부산물의 활용을 위한 기초 특성 연구)

  • Jang, Jung Hee;Han, Gi Bo;Park, Cheon-Kyu;Jeon, Cheol-Hwan;Kim, Jae-Kon
    • Journal of the Korean Applied Science and Technology
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    • v.34 no.4
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    • pp.892-898
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    • 2017
  • In this study, the basic properties of recoverable gaseous and solid materials were investigated from heavy oil contained in the resources. The basic characteristics of pyrolysis reaction for the conversion of bituminous oil to pyrolysis various temperature were investigated. The characteristics of gas and solid phase byproducts were also investigated with a laboratory scale fixed bed reactor according to various reaction temperature. As a result, it was confirmed that the oil yield was about 17% at $550^{\circ}C$ and $CH_4$, $CaCO_3$ and CaO could be recovered as by-products.

Fluorescence Characteristic Spectra of Domestic Fuel Products through Laser Induced Fluorescence Detection

  • Wu, Ting-Nien;Chang, Shui-Ping;Tsai, Wen-Hsien;Lin, Cian-Yi
    • Journal of Soil and Groundwater Environment
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    • v.19 no.5
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    • pp.18-25
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    • 2014
  • Traditional investigation procedures of soil and groundwater contamination are followed by soil gas sampling, soil sampling, groundwater sampling, establishment of monitoring wells, and groundwater monitoring. It often takes several weeks to obtain the analysis reports, and sometimes, it needs supplemental sampling and analysis to delineate the polluted area. Laser induced fluorescence (LIF) system is designed for the detection of free-phase petroleum pollutants, and it is suitable for on-site real-time site investigation when coupling with a direct push testing tool. Petroleum products always contain polycyclic aromatic hydrocarbon (PAH) compounds possessing fluorescence characteristics that make them detectable through LIF detection. In this study, LIF spectroscopy of 5 major fuel products was conducted to establish the databank of LIF fluorescence characteristic spectra, including gasoline, diesel, jet fuel, marine fuel and low-sulfur fuel. Multivariate statistical tools were also applied to distinguish LIF fluorescence characteristic spectra among the mixtures of selected fuel products. This study successfully demonstrated the feasibility of identifying fuel species based on LIF characteristic fluorescence spectra, also LIF seemed to be uncovered its powerful ability of tracing underground petroleum leakages.

Analysis of Alcohol Components in Vehicle Fuel (자동차용 연료 내의 알코올성분 분석)

  • Lim, Young-Kwan;Kim, Ye-Eun;Lee, Jeong-Min;Han, Kwan-Wook;Jung, Choong-Sub
    • Tribology and Lubricants
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    • v.28 no.4
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    • pp.184-188
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    • 2012
  • Alcohol components are illegally mixed with petroleum products for tax evasion purposes, but this degrades vehicle performance. The alcohol content in petroleum fuel can be analyzed by gas chromatography. However, this technique requires a long analysis time and is expensive. $CrO_3$, also known as Jones reagent, changes color upon reaction with an alcohol. In this study, therefore, we analyze alcohol contents in vehicle fuel by using $CrO_3$ aqueous solution.

Mesophase formation behavior in petroleum residues

  • Kumar, Subhash;Srivastava, Manoj
    • Carbon letters
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    • v.16 no.3
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    • pp.171-182
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    • 2015
  • Mesophase pitch is an important starting material for making a wide spectrum of industrial and advanced carbon products. It is produced by pyrolysis of petroleum residues. In this work, mesophase formation behavior in petroleum residues was studied to prepare environmentally-benign mesophase pitches, and the composition of petroleum residues and its influence on the mesophase formation was investigated. Two petroleum residues, i.e., clarified oil s (CLO-1, CLO-2) obtained from fluid catalytic cracking units of different Indian petroleum refineries, were taken as feed stocks. A third petroleum residue, aromatic extract (AE), was produced by extraction of one of the CLO-1 by using N-methyl pyrrolidone solvent. These petroleum residues were thermally treated at 380℃ to examine their mesophase formation behavior. Mesophase pitches produced as a result of thermal treatment were characterized physico-chemically, as well as by instrumental techniques such as Fourier-transform infrared spectroscopy, nuclear magnetic resonance, X-ray diffraction and thermogravimetry/derivative thermogravimetry. Thermal treatment of these petroleum residues led to formation of a liquid-crystalline phase (mesophase). The mesophase formation behavior in the petroleum residues was analyzed by optical microscopy. Mesophase pitch prepared from CLO-2 exhibited the highest mesophase content (53 vol%) as compared to other mesophase pitches prepared from CLO-1 and AE.