• Title/Summary/Keyword: 열분해물질

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아세톤을 용매로 한 폐신문지의 용매상 열분해 반응에 관한 연구

  • On, Gwang-Cheol;Yun, Seong-Uk;Lee, Byeong-Hak
    • 한국생물공학회:학술대회논문집
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    • 2000.11a
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    • pp.761-762
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    • 2000
  • Waste newspaper is many part of Municipal Solid Waste(MSW). Newspaper consist of cellulose, hemicellulose and lignin which biomass components. We could get various compound usable as fuel when pyrolysis of lignin. Therefore, we should get similar phenomena with pyrolysis of newspaper. Highest conversion rate when acetone was used as pyrolysis solvent was $350 {\sim}400^{\circ}C$, $40{\sim}50$minutes.

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니트로페닐하이드라진 이성질체의 열분해 특성

  • 김관응;이근원
    • Proceedings of the Korean Institute of Industrial Safety Conference
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    • 2000.06a
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    • pp.120-123
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    • 2000
  • 최근 첨단 과학기술의 급속한 발전에 따라 각종 화학물질이 여러분야에서 제조되고 또한 취급되고 있다. 이들 화학물질은 그 합성, 정제 및 사용법 등에 대해서는 각종 문헌에 잘 기재되어 있으나 그 위험성에 대해서는 충분히 파악되어 있지 않았거나 발표되어 있지 않은 것이 많아 대상이 되는 반응조건 이나 제조조건을 변경해야하는 경우 제조자 스스로 결정해야 하는 경우가 많아 뜻하지 않은 재해가 발생하는 예가 증가하고 있다. 따라서 본 연구에서는 의약품 및 농약 등 합성시 중간체로서 널리 사용되고 있으나 구조적인 특성상 열에 매우 불안정하여 산안법상 위험물중 폭발성물질로 분류되어 있는 니트로페닐하이드라진에 대한 열분해 특성을 시차주사열량계(DSC) 및 가속 속도열량계(ARC) 이용하여 그 위험성을 평가하였다. (중략)

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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.

Thermochemical conversion of biomass in a fluidized bed pyrolyzer (유동층 열분해로에서의 바이오매스 열화학적 전환)

  • Lee Seehoon;Kim Younggu;Hong JaeChang;Yoon Sangjun;Choi Youngchan;Lee Jaegoo
    • 한국신재생에너지학회:학술대회논문집
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    • 2005.06a
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    • pp.467-470
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    • 2005
  • 지구온난화 현상과 화석연료의 고갈에 대한 두려움 때문에 재생에너지에 대한 관심이 지속적으로 증가하고 있다. 이에 따라 대체에너지, 합성가스, 화학 원료, 오일 등으로 전환할 수 있는 바이오매스 활용에 대한 연구도 활발히 진행되고 있다. 바이오매스의 열화학적 전환 공정에는 열분해, 연소, 가스화 등이 이용되고 있다. 특히 열분해는 syringol, levoglucosan, guaiacol등의 고부가가치 물질들을 생산하기에 적합한 기술로 인정받고 있다. 본 연구에서는 국내에서 쉽게 구할 수 있는 톱밥, 폐목재 등의 바이오매스의 열화학적 전환 특성을 분석하였다. 사용된 바이오매스의 열분해 특성은 열중량 분석기 및 열천칭 반응기를 통해 분석하였으며 이를 통해 유동충 반응기(지름 0.2m, 높이 2m)를 설계 및 제작하였다. 반응온도 및 산소 농도가 증가할수록 levoglucosan 등의 고부가가치 물질들의 수율이 낮아지며 페놀류가 급격히 증가함을 알 수 있었다. 회재 성분이 높은 왕겨의 바이오오일 수율은 톱밥보다 $30\%$이상 낮게 나타났다

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Study on Recovery of Polymeric Raw Materials from WastePolystyrene in Motor Oil using Microwave Thermal Decomposition (마이크로웨이브 열분해(熱分解)를 이용(利用)한 폐(廢) 폴리스티렌과 모터 오일 혼합물(混合物)로부터 고분자(高分子) 원료(原料) 물질(物質) 회수(回收)에 관한 연구(硏究))

  • Kang, Tae-Won
    • Resources Recycling
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    • v.15 no.5 s.73
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    • pp.11-16
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    • 2006
  • A novel microwave-induced pyrolysis was used for the recovery of valuable products from waste polystyrene in motor oil. Quartz tube was introduced as microwave reactor and silicon carbide was used as the microwave absorbent. In the experiments, different pyrolysis conditions were applied, such as time range from 30 minutes to 1 hour and microwave input power range from 180 to 250W. The distillate products from pyrolysis were analyzed with GC/MS. Styrene, 1-methyl styrene, toluene, ethyl benzene were the four main products. Styrene recovery rate from polystyrene was around 50%. Temperature for the complete pyrolysis using microwave was around $300^{\circ}C$ which is much lower than that of conventional thermal pyrolysis.

A Study on Catalytic Pyrolysis of Polypropylene with Mn/sand (Mn/sand 촉매를 활용한 폴리프로필렌 촉매 열분해 연구)

  • Soo Hyun Kim;Seung Hun Baek;Roosse Lee;Sang Jun Park;Jung Min Sohn
    • Clean Technology
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    • v.29 no.3
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    • pp.185-192
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    • 2023
  • This study was conducted to obtain basic process simulation data before conducting pyrolysis experiments for the development of a thermochemical conversion system by recirculation of heat carrier and gases thereby. In this study, polypropylene (PP) was used as a pyrolysis sample material as an alternative to waste plastics, and fluid sand was used as a heat transfer medium in the system. Manganese (Mn) was chosen as the catalyst for the pyrolysis experiment, and the catalyst pyrolysis was performed by impregnating it in the sand. The basic properties of PP were analyzed using a thermogravimetric analyzer (TGA), and liquid oil was generated through catalytic pyrolysis under a nitrogen atmosphere at 600℃. The carbon number distribution of the generated liquid oil was confirmed by GC/MS analysis. In this study, the effects of the presence and the amount of Mn loading on the yield of liquid oil and the distribution of hydrocarbons in the oil were investigated. When Mn/sand was used, the residue decreased and the oil yield increased compared to pyrolysis using sand alone. In addition, as the Mn loading increased, the ratio of C6~C9 range gasoline in the liquid oil gradually increased, and the distribution of diesel and heavy oil with more carbon atoms than C10 in the oil decreased. In conclusion, it was found that using Mn as a catalyst and changing the amount of Mn could increase the yield of liquid oil and increase the gasoline ratio in the product.

Characteristics study II of biological materials using pyrolysis-mass spectrometry (열분해 질량분석법을 이용한 생물학 물질의 특성 연구(II))

  • Choi, Sun-Kyung;Park, Young-Kyu;Park, Byeng-Hwang
    • Journal of the Korea Institute of Military Science and Technology
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    • v.8 no.3 s.22
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    • pp.83-91
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    • 2005
  • Pyrolysis-mass spectrometry has been used to characterize the 17 biological materials including bacteria and proteins. In this study, an in situ thermal-hydrolysis methylation(THM) procedure using tetramethylammonium hydroxide(TMAH) was employed. The biological materials are ionized using chemical ionization(CI) method with ethanol by ion trap mass spectrometer(ITMS), which attached with our own made pyrolyzer module, and then their pyrolysis mass spectra were obtained. The major distinct characteristic peaks were selected from all the range of mass spectra, and analyzed using principal component analysis(PCA) method to assess the classification/identification possibility of biological materials.

A Study on Corrosion of the HFC-125 fire extinguishing agent for Metal and Non-Ferrous Metal (HFC-125 소화약제의 금속 및 비철금속 부식성 평가에 관한 연구)

  • Lee, Chang-Woo;Ham, Eun-Gu;Yoo, Ju-Yeol;Seo, Sang-Hun;Kim, Gin-Sung;Cho, Yong-Sun
    • Proceedings of the Korean Society of Disaster Information Conference
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    • 2016.11a
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    • pp.271-274
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    • 2016
  • 본 논문에서는 오존층 파괴 및 지구 온난화에 악영향을 미치는 할로겐화합물 소화약제를 대체하여 개발된 청정소화약제인 할로겐화합물 청정소화약제(Halocarbon clean agent)의 열분해 생성물(thermal decomposition products)의 영향에 평가하고자 한다. 이를 위해 할로겐화합물 청정소화약제인 HFC-125가 화원 크기의 변화에 따른 열분해 생성물의 미치는 영향을 측정하기 위해 소화시험을 실시하였고 금속(철), 비철금속(구리), 유리 시편의 부식성과 전자부품(SD-Card) 작동여부를 평가 하였다. 금속 및 비철금속 시편의 부식성을 측정하기 위해 디지털 카메라를 통해 이미지를 촬영하고 그래픽 편집 소프트웨어를 이용하여 채도(saturation)를 측정하여 부식성의 정도를 분석하였다. 금속, 비철금소, 유리 시편의 부식성 분석 결과, 화원의 크기가 증가할수록 금속 및 비철금속의 부식성이 증가하였다. 즉, 화원의 크기(fire size)에 따라 열분해 생성물질도 증가하여 금속 및 비철금속의 부식을 증가시키는 것으로 사료된다.

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바이오매스 구성성분 중 리그닌의 전환에 관한 연구

  • Yun, Seong-Uk;Lee, Byeong-Hak
    • 한국생물공학회:학술대회논문집
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    • 2000.11a
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    • pp.733-736
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    • 2000
  • Lignin is usable as fuels and heavy oil additives if depolymerized to monomer unit, because the chemical structures are similar to high octane materials found in gasoline. In this study, the solvent-phase thermal cracking(solvolysis) of lignin was performed at the various temperature and time in a laboratory tubular reactor. Conversion yield was measured for the properties of thermal cracking and liquefaction reaction of lignin. Highest conversion yield when acetone was used as thermal cracking solvent was 55.5% at $350^{\circ}C$, 50minutes and highest tar generation were $260{\sim}350mg/g\;{\cdot}\;lignin$ at $250^{\circ}C$, and highest conversion yield after tar removal was 76.88% at $300^{\circ}C$, 30minutes. Conversion yield, product compositions and amounts were determined by tar degradation yield.

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