• 제목/요약/키워드: Polyethylene Pyrolysis

검색결과 35건 처리시간 0.022초

高分子物質의 熱分解에 關한 硏究 (第4報) Polyethylene 및 Polypropylene의 熱分解에 關하여 (On the Pyrolysis of Polymers IV. Pyrolysis of Polythylene and Polypropylene)

  • 성좌경;노익삼;김정엽;장성봉
    • 대한화학회지
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    • 제7권2호
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    • pp.122-127
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    • 1963
  • Pyrolysis fo polyethylene and polypropylene has been studied in order to clarify the mechanism of chain scission and effect of oxygen on degradation. Rate of weight decrease was measured under nitrogen and air atmosphere at constant temperature for the samples of high density polyethylene, low density polyethylene and isotactic polypropylene, and then gaseous hydrocarbons produced from pyrolysis were analysed by gas chromatography. Although there is little substantial difference between composition of hydrocarbon gases from pyrolysis of high density polyethylene and low density polyethylene except some difference in quantity of total gas produced, gas composition from polypropylene pyrolysis differs from that of polyethylene pyrolysis. Gases from pyrolysis under air contain much more unsaturated hydrocarbons than those from pyrolysis under inert gas.

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ABS-Polyethylene 혼합물의 저온 열분해 특성평가 (Liquefaction Characteristics of ABS-polyethylene Mixture by a Low-Temperature Pyrolysis)

  • 최홍준;정상문;이봉희
    • Korean Chemical Engineering Research
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    • 제50권2호
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    • pp.223-228
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    • 2012
  • ABS와 폴리에틸렌(Polyethylene, PE) 및 ABS-PE 혼합물의 저온열분해를 회분식 반응기를 이용하여 상압 및 $450^{\circ}C$에서 실행하였다. 열분해 시간은 20~80분까지 하였고 열분해로 생성된 성분은 지식경제부에서 고시한 증류성상온도에 따라 가스, 가솔린, 등유, 경유, 중유로 분류하였다. ABS와 PE의 혼합 폐플라스틱의 열분해 전환율은 PE의 함량이 증가할수록 증가하는 것으로 나타났다. 열분해생성물의 수율은 PE의 함량이 높을수록 중유 > 가스 > 가솔린 > 경유 > 등유 순으로 회수되었다.

Plug Flow Reactor 모델을 이용한 폐플라스틱의 열분해 특성 해석 (Analysis on the Pyrolysis Characteristics of Waste Plastics Using Plug Flow Reactor Model)

  • 최상규;최연석;정연우;한소영;응웬 반 꾸잉
    • 신재생에너지
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    • 제18권4호
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    • pp.12-21
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    • 2022
  • The pyrolysis characteristics of high-density polyethylene (HDPE), low-density polyethylene (LDPE), and polypropylene (PP) were analyzed numerically using a 1D plug flow reactor (PFR) model. A lumped kinetic model was selected to simplify the pyrolysis products as wax, oil, and gas. The simulation was performed in the 400-600℃ range, and the plastic pyrolysis and product generation characteristics with respect to time were compared at various temperatures. It was found that plastic pyrolysis accelerates rapidly as the temperature rises. The amounts of the pyrolysis products wax and oil increase and then decrease with time, whereas the amount of gas produced increases continuously. In LDPE pyrolysis, the pyrolysis time was longer than that observed for other plastics at a specified temperature, and the amount of wax generated was the greatest. The maximum mass fraction of oil was obtained in the order of HDPE, PP, and LDPE at a specified temperature, and it decreased with temperature. Although the 1D model adopted in this study has a limitation in that it does not include material transport and heat transfer phenomena, the qualitative results presented herein could provide base data regarding various types of plastic pyrolysis to predict the product characteristics. These results can in turn be used when designing pyrolysis reactors.

Polyethylene-polystyrene 혼합물의 저온 열분해에 의한 액화특성 (Liquefaction Characteristics of Polyethylene-polystyrene Mixture by Pyrolysis at Low Temperature)

  • 이봉희;김수호;최홍준
    • 한국응용과학기술학회지
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    • 제25권4호
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    • pp.495-502
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    • 2008
  • To investigate the synergy effect on the pyrolysis of mixture of polyethylene(PE) and polystyrene(PS), the pyrolysis of PE, PS and the mixture of PE-PS was carried out in a batch reactor at the atmospheric pressure and $450^{\circ}C$. The pyrolysis time was from 20 to 80 mins. The liquid products formed during pyrolysis were classified into gas, gasoline, kerosene, gas oil and heavy oil according to the distillation temperatures based on the petroleum product quality standard of Korea Institute of Petroleum Quality. The analysis of the product oils by GC/MS showed that the new components produced by mixing were not detected. The synergy effect according to mixing of PE and PS did not also appear. The conversion and yield of mixtures were in proportion to the mixing ratio of sample.

저온 열분해시 HDPE 및 LDPE의 액화 특성 (Liquefaction Characteristics of HDPE and LDPE in Low Temperature Pyrolysis)

  • 이봉희;박수열;김지현
    • 한국응용과학기술학회지
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    • 제23권4호
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    • pp.307-318
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    • 2006
  • The pyrolysis of high density polyethylene(HDPE) and low density polyethylene(LDPE) was carried out at temperature between 425 and $500^{\circ}C$ from 35 to 80 minutes. The liquid products formed during pyrolysis were classified into gasoline, kerosene, gas oil and wax according to the petroleum product quality standard of Korea Petroleum Quality Inspection Institute. The conversion and yield of liquid products for HDPE pyrolysis increased continuously according to pyrolysis temperature and pyrolysis time. The influence of pyrolysis temperature was more severe than pyrolysis time for the conversion of HDPE. For example, the liquid products of HDPE pyrolysis at $450^{\circ}C$ for 65 minutes were ca. 30wt.% gas oil, 15wt.% wax, 14wt.% kerosene and 11wt.% gasoline. The increase of pyrolysis temperature up to $500^{\circ}C$ showed the increase of wax product and the decrease of kerosene. The conversion and yield of liquid products for LDPE pyrolysis continuously increased according to pyrolysis temperature and pyrolysis time, similar to HDPE pyrolysis. The liquid products of LDPE pyrolysis at $450^{\circ}C$ for 65 minutes were ca. 27wt.% gas oil, 18wt.% wax, 16wt.% kerosene and 13wt.% gasoline.

회분식 미분반응기를 이용한 폴리에틸렌의 열분해특성 연구 (Pyrolysis of Polyethylene using Batch Microreactor)

  • 차왕석;김상훈
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2005년도 춘계학술대회
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    • pp.553-556
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    • 2005
  • Pyrolysis of polyethylene was carried out in the stainless steel reactor of internal volume of $40cm^3$. Pyrolysis reactions were performed at temperature $390-450^{\circ}C$ and the pyrolysis product were collected separately as reaction products and gas products. The molecular weight distributions(MWDs) of each liquid product were determined by GC-SIMDIS. Molecular weight of each product were decreased wi th increase of react ion temperature and time.

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Kinetic Analysis for the Catalytic Pyrolysis of Polyethylene Terephthalate Over Cost Effective Natural Catalysts

  • Pyo, Sumin;Hakimian, Hanie;Kim, Young-Min;Yoo, Kyung-Seun;Park, Young-Kwon
    • 공업화학
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    • 제32권6호
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    • pp.706-710
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    • 2021
  • In the current research, thermal and catalytic thermogravimetric (TG) analysis of polyethylene terephthalate (PET) over natural zeolite (NZ), olivine, bentonite, HZSM-5, and HAl-MCM-41 were investigated using a TG analyzer and model-free kinetic analysis. Catalytic TG analysis of PET was carried out at multi-heating rates, 10, 20, 30, and 40 ℃/min, under nitrogen atmosphere. Apparent activation energy (Ea) values for the thermal and catalytic pyrolysis of PET were calculated using Flynn-Wall-Ozawa method. Although natural catalysts, NZ, olivine, and bentonite, could not lead the higher PET decomposition efficiency than synthetic zeolites, HZSM-5 and HAl-MCM-41, maximum decomposition temperatures on the differential TG (DTG) curves for the catalytic pyrolysis of PET, 436 ℃ over olivine, 435 ℃ over bentonite, and 434 ℃ over NZ, at 10 ℃/min, were definitely lower than non-catalytic pyrolysis. Calculated Ea values for the catalytic pyrolysis of PET over natural catalysts, 177 kJ/mol over olivine, 168 kJ/mol over bentonite, and 171 kJ/mol over NZ, were also not lower than those over synthetic zeolites, however, those were also much lower than the thermal decomposition, suggesting their feasibility as the proper and cost-effective catalysts on the pyrolysis of PET.

Influence of Maleic Anhydride Grafted onto Polyethylene on Pyrolysis Behaviors

  • Chung, Yu Yeon;Choi, Sung-Seen
    • Elastomers and Composites
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    • 제51권3호
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    • pp.233-239
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    • 2016
  • Polyethylene (PE) and maleic anhydride-grafted PE (PE-g-MAH) were pyrolyzed, and their pyrolysis products were analyzed using gas chromatography/mass spectrometry (GC/MS) to investigate the influence of MAH grafted onto PE on pyrolysis behaviors. Major pyrolysis products of PE and PE-g-MAH were n-alkanes, 1-alkenes, ${\alpha},{\omega}$-alkadienes, and aromatic compounds. 1-Alkenes were more formed than n-alkanes, ${\alpha},{\omega}$-alkadienes, and aromatic compounds. Butadiene was more produced from PE than PE-g-MAH, whereas toluene and ethyl benzene were more generated from PE-g-MAH than PE. Difference in the pyrolysis behaviors between PE and PE-g-MAH were explained by initial decomposition of MAH moiety.

Polyethylene-Polypropylene 혼합물의 저온 열분해에 의한 액화특성 (Liquefaction Characteristics of Polyethylene-Polypropylene Mixture by Pyrolysis at Low Temperature)

  • 조성현;최홍준;나병기;이봉희
    • 청정기술
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    • 제15권2호
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    • pp.109-115
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    • 2009
  • 폴리에틸렌-폴리프로필렌 혼합물의 열분해에 대한 시너지효과를 조사하기 위하여 폴리에틸렌(PE)과 폴리프로필렌(PP) 및 PE-PP혼합물의 저온열분해를 회분식 반응기를 이용하여 상압 및 $450^{\circ}C$에서 실행하였다. 열분해 시간은 20${\sim}$80분이었으며, 열분해로 생성된 성분은 한국석유품질검사소에서 고시한 증류성상온도에 따라 가스, 가솔린, 등유, 경유, 중유로 분류하였다. GC/MS에 의한 생성오일의 성분분석 결과 PE-PP 혼합에 의해서 새로운 성분이 검출되지 않았고 혼합에 따른 시너지효과 또한 나타나지 않았다. PE-PP 혼합물의 전환율과 각 생성물의 수율은 시료의 혼합비율에 비례하였다.

Catalytic Pyrolysis of Waste Polyethylene Terephthalate over Waste Concrete

  • Lim, Sejeong;Kim, Young-Min
    • 공업화학
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    • 제30권6호
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    • pp.707-711
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    • 2019
  • The feasibility of waste concrete as a catalyst for the effective pyrolysis of polyethylene terephthalate (PET) was examined using thermogravimetric (TG) and pyrolyzer-gas chromatography/mass spectrometry (Py-GC/MS) analyses. TG analysis results indicated that the maximum decomposition temperature of PET is not altered by the use of waste concrete, showing similar values (407 ℃ and 408 ℃ at 5 ℃/min). Meanwhile, the volatile product distribution data obtained from the Py-GC/MS analysis revealed that the use of waste concrete promoted the deoxygenation reaction via converting the oxygen containing products such as benzoic acids, benzoates, and terephthalates to valuable deoxygenated aromatic hydrocarbons including benzene, toluene, ethylbenzene, and styrene. This suggests that the waste concrete can be used as a potential catalyst for the production of valuable aromatic hydrocarbons from PET pyrolysis.