• Title/Summary/Keyword: 분해 연료유

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Pyrolysis Technologies of Polymer wastes for the Production of Alternative Fuel Oil (대체연료유 제조를 위한 고분자 폐기물의 열분해 오일화 기술)

  • 정수현
    • Proceedings of the Korean Institute of Resources Recycling Conference
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    • 2000.04a
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    • pp.19-144
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    • 2000
  • 막대한 에너지원을 갖고 있는 고분자 폐기물은 열분해에 의하여 오일화가 가능하며 이 오일은 대체 연료유로서 사용이 가능하다. 그러나 이 연료유를 생산하기 위해서는 폐플라스틱 및 폐타이어의 경우는 공정을 서로 달리하여야 이용이 가능하며 생성유의 유질에서도 다소 차이가 있다. 올레핀계가 함유된 폐플라스틱을 열분해 오일화 하기 위해서는 분해 촉매를 사용하여야 하며 열분해유는 경유분과 d사한 성상을 갖고 있으며 폐타이어의 열분해유는 유황성분 및 BTX 분을 상당량 함유하고 있어서 경유분과는 다소 다른 성상을 갖고 있다. 또한 폐타이어 및 폐플라스틱의 열분해 기술이 사용화되기 위해서는 열분해시 발생하는 Coking 문제 극복 및 시스템에 대한 설계기술이 뒷받침되어야 한다.

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세계 연료유수급현황과 전망

  • Korea Petroleum Association
    • Korea Petroleum Association Journal
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    • no.7 s.41
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    • pp.117-120
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    • 1984
  • 70년대의 잇따른 유가폭등으로 대폭 떨어지기 시작한 연료유 수요는 총 소비율로써 판단해볼 때 앞으로 더욱 더 떨어질 것으로 전망된다. 세계의 정제업자들은 분해시설을 설치하는 등의 수단을 통해 이에 대한 대책을 강구해왔다. 그러나 시장의 안정상태가 계속될 경우 오는 90년까지 그들은 연료유 생산을 하루 150만배럴 정도 감축해야 할 국면에 처하게 될 것이다. 현재의 계획된 분해시설 능력으로는 금년도 이후에 원유가에 대한 연료유 가격이 떨어지는 현상을 방지하기에는 너무나 미흡하다는 것을 지적하지 않을 수 없다. 이하에서는 미국의 유명한 컨설턴트 회사인 IFC의 석유시장 전문 컨설턴트 Theodore R. Breton씨의 연구 논문을 소개하기로 한다. <편집자주>

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The Effects of Calcium-type Catalysts on the Pyrolysis Reaction of Raw Material Resin for Producing from Waste Vinyl to Fuel-oil (폐 농업용 비닐 수지에서 연료유 생성을 위한 원료 수지의 열분해반응에서 칼슘계 촉매의 영향)

  • Bak, Young-Cheol;Choi, Joo-Hong;Cho, Tae-Ho
    • Journal of Energy Engineering
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    • v.17 no.1
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    • pp.8-14
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    • 2008
  • The effects of calcium type catalysts addition on the thermal decomposition of low density polyethylene (LDPE) and ethylene vinyl acetate (EVA) resin have been studied in a thermal analyze. (TGA, DSC) and a small batch reactor. The calcium type catalysts tested were calcinated dolomite, lime, and calcinated oyster shell. As the results of TGA experiments, pyrolysis starting temperature for LDPE varied in the range of $330{\sim}360^{\circ}C$ according to heating rate, but EVA resin had the 1st pyrolysis temperature range of $300{\sim}400^{\circ}C$ and the 2nd pyrolysis temperature range of $425{\sim}525^{\circ}C$. The calcinated dolomite enhanced the pyrolysis rate in LDPE pyrolysis reaction, while the calcium type catalysts reduced the pyrolysis rate in EVA pyrolysis reaction. In the DSC experiments, addition of calcium type catalysts reduced the melting point, but did not affect to the heat of fusin. Calcinated dolomite reduced 20% of the heat of pyrolysis reaction. In the batch system experiments, the mixing of calcinated dolomite and lime enhanced the yield of fuel oil, but did not affect to the distribution of carbon numbers.

Recent Research Trend in the Catalytic Pyrolysis of Waste Plastics for the Production of Renewable Fuels and Chemicals (폐플라스틱 촉매 열분해를 통한 재생 연료 및 화학제품 생산 기술 연구동향)

  • Kim, Young Min;Lim, Se Jeong;Kim, Jichan;Jae, Jungho
    • Prospectives of Industrial Chemistry
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    • v.24 no.2
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    • pp.10-21
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    • 2021
  • 최근 폐플라스틱의 사용량 증가와 미세플라스틱으로 인한 해양 오염 및 생태계 축적 등의 부정적인 영향으로 인해 플라스틱 업사이클링(upcycling) 및 리파이너리(refinery) 기술에 대한 관심이 증가하고 있다. 화학적 재활용 방법 중의 하나로, 폐플라스틱의 열분해를 통해서 재생 연료 및 화학물질을 생산하는 연구는 90년도에 활발히 진행된 바 있고, 최근의 환경오염에 대한 대응으로서 다시 많은 관심을 받고 있다. 폐플라스틱을 효율적으로 분해하기 위해서는 촉매를 사용하여 분해 속도를 제어해 주어야 하며, 사용된 촉매의 특성에 따라 최종 생성물의 성상이 크게 달라진다. 본 기고문에서는 폐플라스틱의 촉매 열분해를 통해 가솔린, 디젤유 및 항공유와 같은 수송용 연료, 발전용 연료 혹은 방향족 화학 물질을 생산하는 기술들의 최신 연구 동향을 다루고 향후 전망에 대해 기술하고자 한다. 아울러 최근 몇 년간 많은 연구가 있었던 바이오매스와 폐플라스틱의 혼합열분해를 통한 하이브리드 촉매 공동 열분해 기술에 대해서도 다루고자 한다.

A Study on Types and Reasons of Engine Troubles Related to Fuel Oil (연료유에 의한 선박 디젤엔진 손상에 관한 연구)

  • Na, Eun-Young;Baik, Shin-Young
    • Journal of the Korean Society for Marine Environment & Energy
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    • v.12 no.3
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    • pp.143-150
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    • 2009
  • Fuel oil mostly used for a ship is made from crude oil by refining process. In order to produce plenty of high-quality fuel oil, the Fluid catalytic cracking(FCC) method is widely adopted to many refinery factories during the decomposition process from high molecule into lower molecule. The major constituents in spent FCC catalysts are Si, Al, Fe, Ti, alkali metals and some others. The spent catalyst is also composed small amounts of rare metals such as Ce, Nd, Ni and V. The big problem in FCC oil is mixing the catalyst in the oil. This reason is unstable separation of FCC catalyst in separator. Such a FCC catalyst will become a reason of heavy wear down in moving parts of engine. The impurity in oil is ash and deposit compound, such as Al, Si, Ni, Fe and V, which will accelerate the wear down on fuel pump, fuel injection valve cylinder liner and piston ring. It is important to find a basic reason of an engine trouble for preventing similar troubles anymore. Insurance compensation will be different according to the reason of an engine trouble which might be natural abrasion or other external causes. In this study, types and reasons of engine troubles related to fuel oil will be covered.

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Effect of Ultrasonic Irradiation on On-board Fuel Analyzed Using Gas Chromatography/Mass Spectrometry (GC/MS를 이용한 선박연료유에 대한 초음파조사 효과 분석)

  • Choi, Jung-Sik
    • Journal of the Korean Society of Marine Environment & Safety
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    • v.27 no.6
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    • pp.890-897
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    • 2021
  • Since the enforcement of strict regulations on marine fuel oil sulfur content, demand for Low Sulfur Fuel Oil (LSFO) has been increasing. However, as LSFO properties vary greatly depending on the supply timing, region, and supplier, LSFOs can experience problems with sludge formation, blending compatibility, and stability once mixed into storage tanks. This study investigates using ultrasound cavitation effects to improve the quality of LSFOs in storage tanks. For marine gas oil (MGO), the results showed that the relative ratio of high molecular weight compounds to those of low molecular weight decreased after ultrasonic irradiation, due to cavitation-induced cracking of chemical bonds. For marine diesel oil (MDO) and blended oil, a small increase in the relative abundance of low weight molecular compounds was observed after treatment. However, no correlation between time and relative abundance was observed.

A Study on Combustion and Emission Characteristics of a Diesel Engine Fuelled with Pyrolysis Oil-Ethanol and Pilot Diesel (바이오원유-에탄올/파일럿 디젤유 이종연료 혼소를 통한 디젤엔진의 연소 및 배출가스 특성에 관한 연구)

  • Kim, Min-Jae;Lee, Seok-Hwan;Cho, Jeong-Kwon;Yoon, Jun-Kyu;Lim, Jong-Han
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.18 no.5
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    • pp.420-427
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    • 2017
  • Recently, the depletion of fossil fuels, global warming and environmental pollution have emerged as a worldwide problem, and studies of new renewable energy sources have been progressed. Among the many renewable energy sources, the use of bio fuel has the potential to displace fossil fuels due to low price, easy to handle, and the abundant sources. Pyrolysis oil (PO) derived from waste wood and sawdust is considered an alternative fuel for use in diesel engines. On the other hand, PO is limited to diesel engines because of its low cetane number, high viscosity, high acidity, and low energy density. Therefore, to improve its poor properties, PO was mixed with alcohol fuels, such as ethanol. Early mixing with ethanol has the benefit of improving the storage and handling properties of the PO. Furthermore, a PO-ethanol blended fuel was injected separately, which can be fired through pilot-injected diesel in a dual-injection diesel engine. The experimental results showed that the substitution of diesel with blended fuel increases the amount of HC and CO, but reduces the NOx and PM significantly.

Assessment of Practical Use of Recycling Oil from the Pyrolysis of Mixed Waste Plastics (혼합폐플라스틱의 열분해를 통한 회수오일의 이용가능성 평가)

  • Phae Chae-Gun;Kim Young-shin;Jo Chang-Ho
    • Journal of Energy Engineering
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    • v.14 no.2 s.42
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    • pp.159-166
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    • 2005
  • In Korea, although the generation of waste plastic has been increasing, the rate of recycling is considerably low and moreover, there is no suitable method for the treatment of waste plastics. However, pyrolysis, which is appropriate for the treatment of highly polymerized compounds, such as plastics, has recently gained much interest. In this study, a property of the products from the pyrolysis of mixed waste plastics, with a possible practical use for the recycling oil produced, were assessed. First of all, in order to investigate the pyrolysis characteristic of waste plastics, TGA (Thermogravimetric analysis) and DCS (Differential Scanning Calorimetry) were performed on a number of different plastics, including PP, LDPE, HDPE, PET and PS, as well as others. According to the result, it appeared that PP was the most efficiently pyrolyzed by changing the temperature, followed by LDPE, HDPE, PET, PS and the other plastics, in that order. From the results, the optimum conditions f3r pyrolysis were set up, and the different waste plastics pyrolyzed. The recycling oil produced from the flammable gases generated during the pyrolysis was com-pared with fuel oil by an analysis using the petroleum quality inspection method on KS(Korea industrial Standard). The results of the analysis showed the recycling oil was of a similar standard to fuel oil, with the exception of the ignition point, with a quality somewhere between that of paraffin oil and diesel fuel. With respect to these results, the quality of the recycling oil produced by the pyrolysis of waste plastics was suf-ficient for use as fuel oil.

The Effects of Zeolite-Type Catalysts on the Pyrolysis Reaction of Raw Material Resin to Produce Fuel-Oil from Waste Vinyl (폐 농업용 비닐 수지에서 연료유 생성을 위한 원료 수지의 열분해 반응에서 제올라이트계 촉매의 영향)

  • Bak, Young-Cheol;Choi, Joo-Hong;Cho, Tae-Ho
    • Korean Chemical Engineering Research
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    • v.47 no.3
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    • pp.303-309
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    • 2009
  • The effects of zeolite type catalysts addition on the thermal decomposition of low density polyethylene(LDPE) and ethylene vinyl acetate(EVA) resin have been studied in a thermal analyzer(TGA, DSC) and a small batch reactor. The zeolite type catalysts tested were natural zeolite, FCC catalyst, used FCC catalyst, and catalyst A. As the results of TGA experiments, addition of antifogging-agent decreased the pyrolysis point to $250^{\circ}C$, but addition of longevity-agent and clay reduced the pyrolysis rate in EVA resin. Addition of the zeolite type catalysts in the LDPE resin increased the pyrolysis rate in the order of catalyst A > used FCC catalyst > natural zeolite > LDPE resin. Addition of the zeolite type catalysts in the EVA resin increased the pyrolysis rate in the order of used FCC catalyst > natural zeolite > catalyst A > EVA resin. In the DSC experiments for LDPE resin, addition of zeolite type catalysts decreased the melting point and the heat of pyrolysis reaction in the order of catalyst A > used FCC catalyst > natural zeolite> LDPE resin. In the batch system experiments, the mixing of natural zeolite enhanced the yield of liquid fuel oil.

A Comparision Study of LDPE Pyrolysis over Resin Additives and Inorganic Compounds of Silica Alumina Type (수지첨가제와 실리카알루미나 계열 무기물이 LDPE 수지의 열분해에 미치는 영향 비교 연구)

  • Bak, Young-Cheol;Choi, Joo-Hong;Kim, Nam-Kyung
    • Journal of Korean Society of Environmental Engineers
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    • v.28 no.6
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    • pp.596-602
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    • 2006
  • The effects of resin additives and inorganic compounds addition on the thermal decomposition of low density polyethylene(LDPE) resin have been studied in a thermal analyzer(TGA, DSC) and a small batch reactor. The silica-alumina type compounds tested were kaolinite, bentonite, perlite, diatomaceous earth, activated clay and clay. The resin additives were antiforgging-agent and longevity-agent. As the results of TGA experiments, addition of antifogging-agent, longevity-agent and clay increased the temperature of the maximum reaction rate($T_{max}$). The silica-alumina type inorganic materials increased the pyrolysis reraction rate in the order of activated clay, diatomaceous earth, bentonite, perlites, and kaolinite. In the DSC experiments, addition of antifogging-agent and clay decreased the heat of fusion and the heat of pyrolysis reaction. Bentonite decreased 20% of the heat of fusion and 25% of the heat of pyrolysis reaction. In the batch system experiments, the mixing of clay retarded the initial producing rate of fuel oil, but increased the yield of fuel oil. Addition of bentonite increased the yield of fuel oil from LDPE resin. Mixing of antifogging-agent and longevity-agent produced the fuel oil having lower carbon number. The amounts of the carbon number below 12 in fuel oil decreased with adding the clay. That below 23 in fuel oil increased with mixing of bentonite, perlite, kaolinite, and activated clay. But the mixing of diatomaceous earth did not affect the carbon contents of fuel oil from pure LDPE resin. In the silica-alumina type inorganic material used in this experiments, bentonite was the most effective from the pyrolysis heat, yields, and the characteristics of fuel oil.