• Title/Summary/Keyword: BTEX

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Headspace-GC-MS에 의한 토양 중 MTBE와 BTEX의 동시분석법에 관한 연구

  • Sin Ho-Sang;An Hye-Sin;Ryu Sang-Hui;Kim Tae-Seung
    • Proceedings of the Korean Society of Soil and Groundwater Environment Conference
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    • 2005.04a
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    • pp.31-35
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    • 2005
  • 본 연구는 토양에 휘발유 첨가제인 MTBE와 휘발유의 주성분인 BTEX를 headspace 법에 의해 동시 분석하는 방법이다. 인산으로 pH를 2로 조절한 후 NaCl로 포화시킨 용액 5ml를 헤드스페이스 바이알에 보존제로 넣은 후 토양시료 약 2g을 이 용액에 침지시켜 시료 채취한 다음 헤드스페이스 장치에 넣고 $80^{\circ}C$에서 40분 가온하여 상부 기상의 일정량을 취해 GC-MS (SIM)으로 분석하였다. 본 분석법에 의한 검출한계는 methyl-tert-butyl ether(MTBE)와 benzene, toluene, ethylbenzene, o,m,p-xylene(BTEX)이 각각 0.1, 0.1, 0.1, 0.2, 0.1, 0.2 ng/g이었고, 직선성은 0.995이상이었으며, 재현성도 10%내외의 정밀한 값을 보였다. 실제 시료를 분석한 결과, MTBE가 3-6,993 ng/g의 농도분포를 보였고 total BTEX는 1 ng/g으로 검출되었다. 이 방법은 빠르고 정밀 정확한 분석법으로 공정시험법으로 활용가치가 높다.

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Recovery of BTEX-aromatics from Post-consumer Polypropylene Fraction by Pyrolysis Using a Fluidized Bed (유동층(流動層) 급속열분해(急速熱分解)에 의한 폐(廢) Polypropylene fraction으로부터 BTEX-aromatics의 회수(回收))

  • Cho, Min-Hwan;Jeong, Soo-Hwa;Kim, Joo-Sik
    • Resources Recycling
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    • v.17 no.6
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    • pp.50-56
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    • 2008
  • A polypropylene fraction collected from the stream of post-consumer plastics was pyrolyzed. The aim of this study is to observe the dependence of yield of BTEX-aromatics normally used as solvent on the reaction temperature. To reach the goal, three experiments were carried out at different temperature between 650 and $700^{\circ}C$, using a fluidized bed reactor that shows an excellent heat transfer. In the experiments, product gases were used as a fluidizing medium to maximize the amount of BTEX-aromatics at fixed flow rate and feed rate during the pyrolysis. Oil, gas and char were obtained as product fractions. Product gases were analyzed with GCs(TCD, FID) and with a GC-MS system for qualitative analysis. For an accurate analysis of product oil, the product oil was distilled under vacuum, and separated the distillation residues from oil fractions that were actually analyzed with a GC-MS system. As the reaction temperature went higher, the content of BTEX-aromatics increased. The maximal yield of BTEX-aromatics was obtained at $695^{\circ}C$ with a value of about 30%. The main compounds of product gas were $CH_4$, $C_2H_4$, $C_2H_6$, $C_3H_6$, $C_4H_{10}$ and the product gas had an higher heating value about 45MJ/kg. It could be used as a heat source for a pyrolysis plant or for other fuel applications.

Estimating Partition Coefficients of Partitioning Tracers between Water and BTEX Mixtures (BTEX 혼합물질과 액상 간 분배성 추적자의 분배계수 예측)

  • Rhee, Sung-Su;Cho, Sang-Youn;Oh, Myoung-Hak;Park, Jun-Boum
    • Journal of Soil and Groundwater Environment
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    • v.12 no.2
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    • pp.47-54
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    • 2007
  • The partitioning tracer method has been studied as an alternative method for detecting and characterizing the distribution of nonaqueous phase liquids (NAPLs) contaminants in subsurface. The reliability of the partitioning tracer method depends on accurate measurements of partition coefficients of the partitioning tracers between water and NAPLs. In this study, partition coefficients of several alcohol tracers between water and benzene, toluene, ethylbenzene, xylene, and BTEX mixtures are estimated using the modified approach of equivalent alkane carbon number (EACN). Agreements between the measured and estimated partition coefficients were generally observed in experiments. Based on these results, it is confirmed that the partition coefficients of tracers are readily obtained without experiments if the EACN values for the tracers and LNAPLs are known.

Competitive Extraction and Trace Analysis of BTEX and MTBE by Solid-Phase Microextraction (SPME) (고체상미량추출법을 이용한 BTEX와 MTBE의 경쟁적 추출효과 및 미량분석에 관한 연구)

  • An, Sang-Woo;Chun, Suk-Young;Lee, Si-Jin;Park, Jae-Woo;Chang, Soon-Woong
    • Journal of Korean Society on Water Environment
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    • v.26 no.4
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    • pp.622-628
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    • 2010
  • In this study, Solid-phase microextraction (SPME) with GC/FID was studied as a possible alternative to liquid-liquid extraction for the analysis of BTEX and MTBE. Experimental parameters affecting the SPME process (such as kind of fibers, adsorption time, desorption time, volume ratio of sample to headspace, salt addition, and magnetic stirring) were optimized. Experimental parameters such as CAR/PDMS, adsorption time of 20 min, desorption time of 5 min at $250^{\circ}C$, headspace volume of 50 mL, sodium chloride (NaCl) concentration of 25% combined with magnetic stirring were selected in optimal experimental conditions for analysis of BTEX and MTBE. The general affinity of analytes to CAR/PDMS fiber was high in the order p-Xylene>Toluene>Ethylbenzene>MTBE>Benzene. The linearity of $R^2$ for BTEX and MTBE was from 0.970 to 0.999 when analyte concentration ranges from $30{\mu}g/L$ to $500{\mu}g/L$, respectively. The relative standard deviation (% RSD) were from 2.5% to 3.2% for concentration of $100{\mu}g/L$ (n=5), respectively. Finally, the limited of detection (LOD) observed in our study for BTEX and MTBE were from $7.5{\mu}g/L$ to $15{\mu}g/L$, respectively.

Combined TPH and BTEX Analytic Method to Identify Domestic Petroleum Products in Contaminated Soil (오염토양 내 석유제품 판별을 위한 TPH 및 BTEX 분석)

  • Lim, Young-Kwan;Na, Yong-Gyu;Kim, Jeong-Min;Kim, Jong-Ryeol;Ha, Jong-Han
    • Tribology and Lubricants
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    • v.33 no.6
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    • pp.263-268
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    • 2017
  • The significance of maintaining the soil environment is gradually increasing owing to soil and underground water contamination by petroleum leak accidents. However, the purification of soil is an expensive and more time-consuming process than the purification of contaminated water and air. Moreover, determining the source and people responsible for soil pollution gets often embroiled in legal conflicts, further delaying the cleanup process of the contaminate site. Generally, TPH (total petroleum hydrocarbon) pattern analysis is used to determine the petroleum species and polluter responsible for soil contamination. However, this process has limited application for petroleum products with a similar TPH pattern. In this study, we analyze the TPH pattern and specific sectional ratio (${\sim}C_{10}$, $C_{10}-C_{12}$, $C_{12}-C_{36}$, and $C_{36}{\sim}$) of various domestic petroleum products to identify the petroleum product responsible for soil contamination. Also, we perform BTEX (benzene, toluene, ethyl benzene, xylene) quantitative analysis and determine B:T:E:X ratio using GC-MS. The results show that gasoline grade 1 and 2 have a similar TPH pattern but different BTEX values and ratios. This means that BTEX analysis can be used as a new method to purify soil pollution. This complementary TPH and BTEX method proposed in this study can be used to identify the petroleum species and polluters present in the contaminated soil.

A Study on the BTEX Ratio and Correlation of C2-benzenes in Vehicle Exhaust (자동차 배출가스 중 BTEX의 비율과 C2-benzenes의 상관성 연구)

  • Mun, Sunhee;Chung, Taekho;Jung, Sungwoon;Kim, Sunmoon;Seo, Seokjun;Lee, Seounghwan;Kim, Jounghwa;Hong, Youdeog;Hong, Heekyoung
    • Journal of ILASS-Korea
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    • v.23 no.4
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    • pp.185-191
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    • 2018
  • Benzene, toluene, ethylbenzene and xylene (BTEX) were well known as ozone precursors from photochemical reactions and contribute to the formation of photochemical smog which pose health hazards. Also, some of these compounds directly affect the human health due to their toxicity such as benzene. In this study, BTEX ratios and correlation of $C_2$-benzenes (xylenes, ethylbenzene) in vehicle exhaust from recreational vehicle (RV) and multi-purpose vehicle (MPV) were characterized using a chassis dynamometer. VOCs were collected by tedlar bag and a GC/MS system was used for their quantification. Among all of the BTEX, toluene has the highest concentration(more than 30% in composition of BTEX). The average ratio of toluene to benzene emissions (T/B ratio=2.2) was found in vehicle exhaust. The average m,p-xylene/ethylbenzene and m,p-xylene/o-xylene ratios were 1.0 and 3.0 respectively. As a result, it showed a good correlation between the $C_2$-benzenes ($R^2=0.98{\sim}0.99$). In the future, it can be used as a marker for effect evaluation to atmospheric environment by vehicle exhaust.

Survey of the oil contaminated level and preliminary field bioremediation test in the Mountain Baegun at Uiwang city (의왕시 백운산 주변 유류 오염도 조사 및 현장 복원 기초실험)

  • 김종석;주춘성;김윤관;권은미;정욱진
    • Journal of Soil and Groundwater Environment
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    • v.7 no.2
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    • pp.3-11
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    • 2002
  • The objective of this study was to survey the oil contamination around the Mountain Baegun at Uiwang city to obtain the preliminary data for bioremediation. For measuring the oil concentrations and physical properties from soil, we analyzed BTEX. TPH and pH, organic content, water content, pormeability coefficient, gravity, porosity and used the purge & trap method for analyzing BTEX. Using the Accelerated Solvent Extractor, we pretreated the samples and then analyzed TPH using GC-FID as soon as possible. From the analysis results, maximum concentration of TPH was 24.773mg/kg and BTEX was 101.7mg/kg. The results of TPH at the Mountain Baegun were higher than the enforcement standard of soil contamination(Korea) and the BTEX concentrations were also higher than the advisory standard of soil contamination(Korea). From these results, the Mountain Baegun may requires to remedy the oil-contaminated soil. In addition, we performed the field bioremediation test for five weeks at the Mountain Baegun using the microbial additives that were developed by our laboratory. From the results of the field test, we could find the about 95% of the oil was removed from the contaminated soil in five weeks. So we consider that it is the one of the useful solutions to remedy the oil-polluted site.

Laboratory-scale Microcosm Studies in Assessing Enhanced Bioremediation Potential of BTEX and MTBE under Various Electron Acceptors in Contaminated Soil

  • 오인석;이시진;장순웅
    • Proceedings of the Korean Society of Soil and Groundwater Environment Conference
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    • 2003.09a
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    • pp.368-371
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    • 2003
  • Accidental release of petroleum products from underground storage tank(USTs) is one of the most common causes of groundwater contamination. BTEX is the major components of fuel oils, which are hazardous substances regulated by many nations. In addition to BTEX, other gasoline consituents such as MTBE(methyl-t-buthyl ether), anphthalene are also toxic to humans. Natual attenuation processes include physic, chemical, and biological trasformation. Aerobic and anaerobic biodegradation are believed to be the major processes that account for both containment of the petroleum-hydrocarbon plum and reduction of the contaminant concentrations. Aerobic bioremediation has been highly effective in the remediation of many fuel releases. However, Bioremediation of aromatic hydrocarbons in groundwater and sediments is ofen limited by the inability to provide sufficient oxygen to the contaminated zones due to the low water solubility of oxygen. Anaerobic processes refer to a variety of biodegradation mechanisms that use nitrate, ferric iron, sulfate, and carbon dioxide as terminal electron accepters. The objectives of this study was to conduct laboratory-scale microcosm studies in assessing enhanced bioremediation potential of BTEX and MTBE under various electron accepters(aerobic, nitrate, ferric iron, sulfate) in contaminated Soil. these results suggest that, presents evidence and a variety pattern of the biological removal of aromatic compounds under enhanced nitrate-, Fe(III)-, sulfate-reducing conditions.

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Selection of Surfactant and Operation Scheme for Improved Efficiency of In-situ Soil Flushing Process (원위치 토양세척 공정의 효율향상을 위한 세제선정과 운전기법)

  • Son, Bong-Ho;Lim, Bong-Su;Oa, Seong-Wook;Lee, Byung-Ho
    • Journal of Korean Society on Water Environment
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    • v.22 no.5
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    • pp.824-830
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    • 2006
  • Several tests were conducted to optimize the design parameters of ln-situ soil flushing processes for diesel contaminated soil. According to the batch extraction test for three anionic surfactants evaluation, Calgonit limiting bubble occurrence was selected for its higher oil cleaning efficiency. After optimum surfactant selection, there were many sets of column flushing test. Over 70% of BTEX was removed in this surfactant dose with 400% of soil volume. In the case of no surfactant addition flushing in column, so called "blank flushing test", BTEX removal rate was 64%. But when we reused the effluent for the cleaning solution, the removal rate was decreased to 46.9%. This result showed reabsorption of oil occurred on the soil. With the addition of Calgonit solution to the diesel contaminated column, BTEX was removed up to 98.9% during the first flushing and 99.4% for the second recirculation flushing. In microcosm tests, diesel contaminated soils were cleaned by both surfactant flushing and biological activities. In anoxic condition, nitrate was used as an electron acceptor while the surfactant and the oil were used an electron donor. BTEX removal efficiency could be achieved up to 80% by biological degradation.

The study on the BTEX Concentration of Soil in Gas Station (국내 주유소 토양의 BTEX 오염에 관한 연구)

  • Shin, Joung-Nam;Roh, Sung-Hyeuk;Jung, Sang-Rak;Oh, Gil-Rok;Kim, Mi-Kyoung;Yook, Woon-Soo
    • Journal of Soil and Groundwater Environment
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    • v.19 no.6
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    • pp.18-23
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    • 2014
  • The BTEX contamination of soil around gas station in Korea was investigated in 53 gas stations in 2013 by official test method on soil pollution. Each gas station was divided into oil tank area, line area, and surrounding area. The concentration of BTEX in 1066 sites of 53 gas stations was N.D.~ 3437.36 mg/kg. The order of average concentration for area was as follows: line area ($20.91{\pm}144.79mg/kg$) > tank area ($15.11{\pm}110.08mg/kg$) > surrounding area ($10.79{\pm}111.40mg/kg$). It was the number of sampling site exceeding regulatory levels at surrounding area the most at all. The average concentration of xylene was the highest, while that of ethylbenzene was the lowest.