• 제목/요약/키워드: Co-pyrolysis

검색결과 251건 처리시간 0.028초

Coal pyrolysis behaviors at supercritical CO2 conditions

  • Hakduck Kim;Jeongmin Choi;Heechang Lim;Juhun Song
    • Advances in Energy Research
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    • 제8권4호
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    • pp.265-273
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    • 2022
  • In this study, a product gas yield and carbon conversion were measured during the coal pyrolysis. The pyrolysis process occurred under two different atmospheres such as subcritical (45 bar, 10℃) and supercritical CO2 condition (80 bar, 35℃). Under the same pressure (80 bar), the atmosphere temperature increased from 35℃ to 45℃ to further examine temperature effect on the pyrolysis at supercritical CO2 condition. For all three cases, a power input supplied to heating wire placed below coal bed was controlled to make coal bed temperature constant. The phase change of CO2 atmosphere and subsequent pyrolysis behaviors of coal bed were observed using high-resolution camcorder. The pressure and temperature in the reactor were controlled by a CO2 pump and heater. Then, the coal bed was heated by wire heater to proceed the pyrolysis under supercritical CO2 condition.

가연성 폐기물의 가스화에 관한 연구 (A Study on the Gasification of Combustible Waste)

  • 정준화
    • 한국환경보건학회지
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    • 제16권2호
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    • pp.89-95
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    • 1990
  • This study was investigated to the energy recovery by the pyrolysis of waste tyre. the pyrolysis of the waste tyre was made by using the pyrolysis chamber for the gasification and the combustion chamber for the combustion of the pyrolysis gas. In batch system, the amount of waste tyre was put 150kg in the pyrolysis chamber and the proper air flow rate for the stable production of the pyrolysis gas was 0.95Nm$^{3}$ /min. the production time of the pyrolysis gas was stable above 210minutes, and the stable production rate was above 3.8Nm$^{3}$ /min. The production temperature of pyrolysis gas was 170$^{\circ}$C and combustion temperature of pyrolysis gas was 1,000$^{\circ}$C. The combustible component of washing gas in pyrolysis gas of waste tyre was CO, CH$_{4}$, $C_{2}H_{6}$ and $C_{3}H_{8}$, and total amount was 22.7%. Heat value of condensed material was 9,804Kcal/kg. The average concentration of air pollutants between cyclone and scrubber was CO 420.4ppm, SO$_{x}$ 349.8ppm. NO$_{x}$ 68.Sppm, HCl 24.4ppm and Dust 240.0g / Nm$^{3}$, respectively.

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유동층 반응기를 이용한 Medium-Density Fiberboard의 급속 열분해 (Fast pyrolysis of Medium-Density Fiberboard Using a Fluidized Bed Reactor)

  • 박영권;박경선;박성훈
    • 공업화학
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    • 제24권6호
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    • pp.672-675
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    • 2013
  • Medium-density fiberboard의 최적 열분해 조건을 찾기 위해 유동층 반응기를 이용하여 다양한 실험조건에서 급속열분해 실험을 수행하였다. 열분해 온도를 $425^{\circ}C$$575^{\circ}C$ 사이에서 변화시켰을 때, $525^{\circ}C$에서 최대 바이오오일 수율 52 wt%를 얻을 수 있었다. 열분해 온도가 높을수록 생성되는 바이오오일의 품질이 좋은 것으로 나타났다. 높은 온도에서 열분해 반응을 수행할 경우, 상당한 양의 oxygenates 및 acids 물질들이 분해되고, 대신 aromatics와 phenolics 같은 고부가가치 물질들이 생성되었다. 기체상 생성물의 대부분은 CO와 $CO_2$였다. 열분해 온도가 높을수록 CO와 $C_1-C_4$ 탄화수소 생성량이 많았다.

굴참나무 촉매열분해에 바이오매스 반탄화가 미치는 영향 (The Effect of Biomass Torrefaction on the Catalytic Pyrolysis of Korean Cork Oak)

  • 이지영;이형원;김영민;박영권
    • 공업화학
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    • 제29권3호
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    • pp.350-355
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    • 2018
  • 본 연구에서는 굴참나무의 열분해 및 촉매 열분해에 바이오매스 반탄화가 미치는 영향에 대한 연구를 수행하였다. 굴참나무와 반탄화된 굴참나무의 열분해 및 촉매 열분해 거동은 열중량분석 결과와 회분식반응기를 이용한 급속열분해 반응에서 얻어진 바이오오일의 생성물분포를 비교하여 평가하였다. 굴참나무와 반탄화된 굴참나무의 열중량 곡선 및 미중열중량곡선은 굴참나무 내 헤미셀룰로오스의 제거량은 반탄화 온도 및 시간을 증가시킴에 따라 증가됨을 나타내었다. 굴참나무의 반탄화과정에서 헤미셀룰로오스의 제거로 굴참나무 내 셀룰로오스와 리그닌의 함량이 증가되기 때문에 열분해 과정에서 오일의 수율은 감소하고 고형 촤 수율은 증가하였다. 반탄화 굴참나무의 열분해 오일 중 레보글루코산과 페놀류의 선택도는 굴참나무 열분해 오일에 비해 높았다. 바이오오일 중 방향족 화합물의 함량은 HZSM-5 ($SiO_2/Al_2O_3=30$) 상에서 굴참나무 및 반탄화된 굴참나무의 촉매열분해를 적용함으로써 증가되었다. 굴참나무에 비해, 반탄화 굴참나무는 HZSM-5를 이용한 촉매 열분해를 통한 방향족화합물 형성에 더 높은 효율을 보였고 더 높은 반탄화 온도($280^{\circ}C$) 및 반응온도($600^{\circ}C$)를 적용함으로써 극대화되었다.

기능성 바이오차 생산을 위한 이산화탄소의 영향 평가 (Evaluation of the Effects of Carbon Dioxide on the Production of Engineered Biochar)

  • 이상윤;이태우;권일한
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제27권2호
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    • pp.41-49
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    • 2022
  • To abate the environmental burdens arising from CO2 emissions, biochar offers a strategic means to sequester carbons due to its recalcitrant nature. Also, biochar has a great potential for the use as carbon-based adsorbent because it is a porous material. As such, developing the surface properties of biochar increases a chance to produce biochar with great adsorption performance. Given that biochar is a byproduct in biomass pyrolysis, characteristics of biochar are contingent on pyrolysis operating parameters. In this respect, this work focused on the investigation of surface properties of biochar by controlling temperature and reaction medium in pyrolysis of pine sawdust as case study. In particular, CO2 was used as reaction medium in pyrolysis process. According to pyrolytic temperature, the surface properties of biochar were indeed developed by CO2. The biochar engineered by CO2 showed the improved capability on CO2 sorption. In addition, CO2 has an effect on energy recovery by enhancing syngas production. Thus, this study offers the functionality of CO2 for converting biomass into engineered biochar as carbon-based adsorbent for CO2 sorption while recovering energy as syngas.

Co 및 Mo 분산촉매 반응시간과 농도 변화에 따른 PP의 저온열분해 액화특성 (Liquefation Characteristics of Polypropylene by Low-Temperature Pyrolysis by using Co and Mo Dispersed Catalysts under time and loading variations)

  • 박준규;이봉희
    • 한국응용과학기술학회지
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    • 제32권2호
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    • pp.281-289
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    • 2015
  • 본 연구는 폴리프로필렌(PP) 수지의 Co 및 Mo 촉매에 의한 반응시간과 농도변화에 따른 저온열분해 액화특성을 파악하고자 회분식 반응기를 이용하여 특정 온도(425, 450, $475^{\circ}C$)에서의 전환율을 측정하였다. 열분해 시간은 20~80분으로 설정하였고 생성물은 산업통상자원부에서 고시한 증류성상 온도에 따라 가스, 가솔린, 등유, 경유, 중유로 분류하였다. 그리고 $450^{\circ}C$ 반응온도에서 촉매 사용에 따른 전환율은 모든 반응시간에 있어 Mo 촉매 > Co 촉매 > 무촉매 순이었다. Co 및 Mo 촉매 농도별 PP 전환율 및 열분해 생성물 수율은 Co:Mo=50:50 혼합시 가장 우수한 것으로 나타났다.

Analysis of Poly(Ethylene-co-Vinyl Acetate) Using Off-line Pyrolysis

  • Choi, Sung-Seen;Kim, Eunha
    • Elastomers and Composites
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    • 제51권1호
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    • pp.63-67
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    • 2016
  • Poly(ethylene-co-vinyl acetate) (EVA) was pyrolyzed to eliminate acetic acid of VA unit using off-line pyrolysis, and the deacetylated EVA was analyzed infrared spectroscopy (IR) and pyrolysis-gas chromatography/mass spectrometry (Py-GC/MS). EVA film for deacetylation was prepared by solution casting on aluminum foil and it was pyrolyzed at low temperature of $300^{\circ}C$ in the off-line pyrolysis apparatus. After deacetylation, carbon-carbon double bond (C=C) was formed by 1,2-elimination of the VA unit in the EVA backbone. Most of C=C bonds were trans-1,4-unit and 1,2-unit was also observed. Presence of the 1,2-unit in deacetylated EVA indicates that terminal or branch VA units exist in the raw EVA. Py-GC/MS chromatogram of deacetylated EVA displayed much smaller acetic acid and much more abundant other pyrolysis products than that of raw EVA, which means that the pyrolysis efficiency and separation condition were improved.

이산화탄소-촉매 열분해 활용 우분 유래 합성가스 증대 연구 (Valorizing Cattle Manure to Syngas via Catalytic Pyrolysis with CO2)

  • 이동준;정종민;김중곤;이동현;김현종;박영권;권일한
    • 유기물자원화
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    • 제30권4호
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    • pp.141-150
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    • 2022
  • 가축분뇨의 대량 발생에 따른 환경적 부담을 완화하기 위해 가축분뇨의 열분해를 가축분뇨 처리 방법 중 하나로 제시하였다. 탄소 활용 측면에서, 열분해는 분뇨로부터 유용한 탄소 기반 물질을 생산할 수 있다는 장점이 있다. 본 연구는 우분 열분해 과정에서 이산화탄소 적용에 따른 합성가스 발생 특성을 연구하기 위해 수행되었다. 실험결과, 이산화탄소 조건에서 600 ℃이상에서 일산화탄소 가스 발생량이 증가하는 것으로 나타났는데, 이는 이산화탄소와 우분 유래 휘발성물질의 균질반응에 기인한다. 우분 열분해 시 합성가스 증대를 위해, Co/SiO2를 활용하여 촉매 열분해 실험을 추진하였다. 촉매를 이용한 우분 열분해 시 합성가스인 수소와 일산화탄소가 모든 온도 영역에서 크게 증가하는 것으로 나타났으며, 이를 통해 이산화탄소가 가축분뇨 열분해를 통한 합성가스 생산에 활용 가능함을 알 수 있었다.

Synthesis of $Li_xNi_(0.85)Co_(0.15)O_2$ by the PVA-procursor Method and the Effect of Air Flow During the Pyrolysis

  • 권호진;김근배;김수주;송미영;박선희;권혜영;박동곤
    • Bulletin of the Korean Chemical Society
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    • 제20권5호
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    • pp.508-516
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    • 1999
  • Polycrystalline powder of LixNi0.85Co0.15O2 was synthesized by pyrolyzing a powder precursor obtained by the PVA-precursor method. Coin cells of lithium-ion rechargeable battery were assembled, whose the cathodes were fabricated from the crystalline powders of LixNi0.85Co0.15O2 synthesized by the method. The effect of synthetic variation on the property of the cell was tested by carrying out 100 consecutive cycles of charge-dis-charge on the cells. The property of the cell was largely influenced by the pyrolysis conditions applied for the synthesis of the LixNi0.85Co0.15O2. Depending on whether the pyrolysis was carried out in standing air or in the flow of dry air, the discharge capacity and cycle-reversibility of the cell varied in large extent. When the powder precursor was pyrolyzed in standing air, a minor phase of lithium carbonate was remained in the LixNi0.85Co0.15O2. The carbon containing powder precursor had to be pyrolyzed in the flow of dry air to eliminate the minor phase. In the flow of dry air, the lithium carbonate in the precursor was eliminated over 500-700。C without any prominent heat event. By controlling the flow of air over the precursor during its pyrolysis, particle size could also be altered. The effect of flowing dry air, during first step pyrolysis or during second step heat treatment, on the property of the cell was discussed.

Characterisation and Co-pyrolytic Degradation of the Sawdust and Waste Tyre Blends to Study the Effect of Temperature on the Yield of the Products

  • Shazali, Erna Rashidah Hj;Morni, Nurul Afiqah Haji;Bakar, Muhammad Saifullah Abu;Ahmed, Ashfaq;Azad, Abul K;Phusunti, Neeranuch;Park, Young-Kwon
    • 공업화학
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    • 제32권2호
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    • pp.205-213
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    • 2021
  • The present study aimed to determine the effect of co-pyrolysis of sawdust biomass and scrap tyre waste employing different blending ratios of sawdust to waste tyre such as 100:0, 75:25, 50:50, 25:75, and 0:100. The thermochemical characterization of feedstocks was carried out by employing the proximate, ultimate analysis, and thermogravimetric (TGA) analyses, calorific values, and scanning electron microscope coupled with energy dispersive x-ray analysis (SEM-EDX) to select the blending ratio having better bioenergy potential amongst the studied ratios. The blending ratio of 25:75 (sawdust to waste tyre) was selected for the co-pyrolysis study in a fixed-bed pyrolysis reactor system based on its solid biofuels properties such as heating value (30.18 MJ/kg), and carbon (71.81 wt%) and volatile matter (63.82 wt%) contents. The pyrolysis temperatures were varied as 500, 600 and 700 ℃ while the other parameters such as heating rate and nitrogen flowrate were maintained at 30 ℃/min and 0.5 L/min respectively. The bio-oil yields as 31.9, 47.1 and 61.2 wt%, bio-char yields as 34.5, 34.2 and 31.4 wt% and gaseous product yields as 33.6, 18.60 and 7.3 wt% at the pyrolysis temperatures of 500, 600 and 700 ℃ respectively were obtained. The blends of sawdust and waste tyres showed the improved energy characteristics which could provide the solution for the beneficial management of sawdust and scrape tyre wastes via co-pyrolysis processing.