• 제목/요약/키워드: Pyrolysis.Liquefaction

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시베리아산 전나무 바이오매스의 열분해-액화반응 (Pyrolysis-Liquefaction of a Siberian Spruce Biomass)

  • 윤성욱
    • 한국수소및신에너지학회논문집
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    • 제19권5호
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    • pp.430-438
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    • 2008
  • Siberian spruce, found in the northern temperature and boreal regions of the earth, is usable biomass as fuels. In this study, parameters of thermochemical degradation by pyrolysis-liquefaction reaction of siberian spruce such as the effect of reaction temperature, reaction time and degradation products and energy yields were investigated. The liquid products from pyrolysis-liquefaction of siberian spruce contained various kinds of cyclicketones, cresols, dimethyl phenols and benzenediols. Combustion heating value of liquid products from pyrolysis-liquefaction conversion processes was in the range of $7,650{\sim}7,800cal/g$. The energy yield in pyrolysis-liquefaction of siberian spruce was as high as 69.5% after 40min of reaction at $400^{\circ}C$. The liquid products from the thermochemical conversion of siberian spruce could be used as high octane value fuels and fuel additives.

Compilation of liquefaction and pyrolysis method used for bio-oil production from various biomass: A review

  • Ahmad, Syahirah Faraheen Kabir;Ali, Umi Fazara Md;Isa, Khairuddin Md
    • Environmental Engineering Research
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    • 제25권1호
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    • pp.18-28
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    • 2020
  • In this paper the authors provide comparative evaluation of current research that used liquefaction and pyrolysis method for bio-oil production from various types of biomass. This paper review the resources of biomass, composition of biomass, properties of bio-oil from various biomass and also the utilizations of bio-oil in industry. The primary objective of this review article is to gather all recent data about production of bio-oil by using liquefaction and pyrolysis method and their yield and properties from different types of biomass from previous research. Shortage of fossil fuels as well as environmental concern has encouraged governments to focus on renewable energy resources. Biomass is regarded as an alternative to replace fossil fuels. There are several thermo-chemical conversion processes used to transform biomass into useful products, however in this review article the focus has been made on liquefaction and pyrolysis method because the liquid obtained which is known as bio-oil is the main interest in this review article. Bio-oil contains hundreds of chemical compound mainly phenol groups which make it suitable to be used as a replacement for fossil fuels.

셀룰로오스의 분해특성 및 연료물질 생성 (I) -열분해·액화반응- (Degradation Properties and Production of Fuels of Cellulose - Pyrolysis-Liquefaction -)

  • 이종집;이병학
    • 한국수소및신에너지학회논문집
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    • 제15권4호
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    • pp.333-340
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    • 2004
  • In this study, thermochemical degradation by pyrolysis-liquefaction of cellulose, the effects of reaction time, reaction temperature, conversion yield, degradation properties and degradation products were investigated . Experiments were performed in a tube reactor by varying reaction time from 20 to 80 min at $200{\sim}500^\circ{C}$. Combustion heating value of liquid products from thermochemical conversion processes of cellulose was in the range of 6,920~6,960cal/g. After 40min of reaction at $400^\circ{C}$ in pyrolysis-liquefaction of cellulose, the energy yield and mass yield was as high as 54.3% and 34.0g oil/100g raw material, respectively. The liquid products from pyrolysis-liquefaction of cellulose contained various kinds of ketones, phenols and furans. ketones and furans could be used as high-octane-value fuels and fuel additives. However, phenols are not valuable as fuels.

HDPE의 열분해에 의한 액화 특성 (Liquefaction Characteristics of HDPE by Pyrolysis)

  • 유홍정;이봉희;김대수
    • 폴리머
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    • 제27권1호
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    • pp.84-89
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    • 2003
  • 열분해 온도 및 열분해 시간이 HDPE의 열분해에 미치는 영향을 해석하였다. HDPE 열분해의 시작온도와 활성화에너지는 가열속도가 증가함에 따라 증가하였다. 전환율과 액체수율은 열분해 온도와 시간이 증가함에 따라 계속 증가하였고, 특히 45$0^{\circ}C$에서 열분해 시간에 매우 민감하게 변하였다. 전환율에 있어 열분해 온도가 열분해 시간보다 더 큰 영향을 주었다. 열분해 과정에서 생성된 각각의 액체성분을 한국석유품질검사소 석유제품 품질기준에 기초하여 증류온도에 따라 가솔린, 등유, 경유, 왁스로 분류하여 본 결과, 450 $^{\circ}C$에서는 경유 > 왁스 > 등유 > 가솔린 순이었고, 475$^{\circ}C$와 50$0^{\circ}C$에서는 왁스 > 경유 > 등유 > 가솔린 순이었다.

목재의 용액화 (II) - 액화목재의 성분분석 - (Liquefaction of Wood (II) - Analysis of Liquefied Wood Components -)

  • 도금현;공영토
    • Journal of the Korean Wood Science and Technology
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    • 제23권2호
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    • pp.19-25
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    • 1995
  • This research was carried out to investigate the methods of liquefaction with Pinus koraiensis, and chemical components of the liquefied wood by FT-IR analysis and pyrolysis-GC/MS. Acetylated wood powder was liquefied above 90% in phenol or m-cresol when treated at about 150$^{\circ}C$ for 30min., using some catalysts. Untreated wood powder was liquefied above 90% in phenol or m-cresol when treated at about 200$^{\circ}C$ for 60min., using some catalysts. The results of FTIR analysis, carbohydrates were terribly disintegrated, the other side lignin peaks were occurred in liquefied wood, particulary. The results of pyrolysis-GC/MS, the liquefied wood have clear four peaks, phenol, guaiacol, o-cresol and m-/p-cresol, due to degradation of lignin, particulary.

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HDPE, PP 및 PS의 등온열분해에 의한 액화 특성 (Liquefaction Characteristics of HDPE, PP and PS by Isothermal Pyrolysis)

  • 유홍정;박수열;이봉희
    • 한국응용과학기술학회지
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    • 제19권3호
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    • pp.198-205
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    • 2002
  • Isothermal pyrolysis of high density polyethylene(HDPE), polypropylene(PP) and polystyrene(PS) was performed at $450^{\circ}C$, respectively. The effect of pyrolysis time on yield and product composition was investigated. Conversion and liquid yield obtained during HDPE pyrolysis continuously increased with time up to 80minutes, but those of PP and PS did not largely change after 35minutes. Each liquid product formed during the pyrolysis was classified into gasoline, kerosene, light oil and wax according to the distillation temperature based on the petroleum product quality standard of Korea Petroleum Quality Inspection Institute. The major liquid product of HDPE pyrolysis was light oiH34 wt.% based on the amount of HDPE treated) and the amounts of the other liquid ingredients(gasoline, kerosene and wax) were almost the same. On the other hand, the pyrolysis of PP produced 27 wt.% gasoline, 22 wt.% kerosene, 24 wt.% light oil and 13wt.% wax, and the pyrolysis of PS produced 56 wt.% gasoline, 12 wt.% kerosene, 9 wt.% light oil and 13 wt.% wax.

PP의 열분해에 의한 액화 특성 (Liquefaction Characteristics of PP by Pyrolysis)

  • 유홍정;이봉희;박수열
    • 한국응용과학기술학회지
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    • 제19권4호
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    • pp.258-264
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    • 2002
  • Pyrolysis of polypropylene(PP) Was performed to find the effects of the pyrolysis temperature(425, 450, 475 and $500^{\circ}C$) and the pyrolysis time(35, 50 and 65minutes), respectively. Conversion and liquid yield obtained during PP pyrolysis continuously increased with the pyrolysis temperature( up to $500^{\circ}C$) and the pyrolysis time(up to 65minutes), especially these were more sensitive to the pyrolysis time at $425^{\circ}C$ than other pyrolysis temperatures. Each liquid product formed during the pyrolysis was classified into gasoline, kerosene, light oil and wax according to the distillation temperature based on the petroleum product quality standard of Korea Petroleum Quality Inspection Institute. The liquid products of PP pyrolysis up to $450^{\circ}C$ were almost same fractions($26{\pm}3$wt.% gasoline, $20{\pm}2$wt.% kerosene and $23{\pm}2$wt.% light oil) except wax($3{\sim}13$wt.%). On the other hand, the pyrolysis of PP from $475^{\circ}C$ to $500^{\circ}C$ produced $26{\pm}3$wt.% wax, $24{\pm}1$wt.% gasoline, $18{\pm}1$wt.% kerosene and $16{\pm}1$wt.% light oil. After all, the main liquid product changed from gasoline to wax with increasing pyrolysis temperature.

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.

열분해액화반응에 의한 헤미셀룰로오스의 분해특성 및 연료물질 생성 (Degradation Properties and Production of Fuels from Hemicellulose by Pyrolysis-liquefaction)

  • 이종집
    • 공업화학
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    • 제19권2호
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    • pp.199-204
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    • 2008
  • 헤미셀룰로오스는 자일로스(xylose)와 만노스(mannose)와 같은 5당류(pentose)로 이루어져 있기 때문에 분해하면 고옥탄가의 연료 물질이나 연료첨가제로서 사용할 수 있는 가능성이 높다. 본 연구에서는 헤미셀룰로오스의 열화학적 전환방법으로 열분해 액화반응을 실시하여 반응온도의 영향, 전환율, 분해특성, 분해생성물질 및 에너지효율 등을 조사하였다. 실험은 튜브반응기로 반응시간 40 min에서 반응온도 $200{\sim}400^{\circ}C$로 변화시켜 가면서 수행하였다. 헤미셀룰로오스의 열분해 액화반응에 의해 생성된 액체 생성물은 주로 케톤류가 많았으며, 2,3-dimethyl-2-cyclopenten-1-one, 2,3,4-trimethyl-2-cyclopentan-1-one, 2-methyl-cyclopentanone과 같은 케톤류는 고옥탄가를 가진 연료 및 연료첨가제로 사용이 가능하였으나 페놀류는 연료로서의 가치가 낮은 것으로 나타났다. 헤미셀룰로오스의 열화학적 전환공정에 의해 생성된 액체 생성물의 발열량은 6680~7170 cal/g이었으며 셀룰로오스의 열분해 액화반응에서 에너지 효율과 질량수율은 $400^{\circ}C$에서 40 min 반응시켰을 때 각각 72.2%, 41.2 g oil/100 g raw material로 가장 좋았다.

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.