• 제목/요약/키워드: Thermochemical analysis

검색결과 76건 처리시간 0.024초

Thermochemical Sulfate Reduction Simulation Experiments on the Formation and Distribution of Organic Sulfur Compounds in the Tuha Crude Oil

  • Yue, Changtao;Li, Shuyuan;Song, He
    • Bulletin of the Korean Chemical Society
    • /
    • 제35권7호
    • /
    • pp.2057-2064
    • /
    • 2014
  • Thermochemical sulfate reduction (TSR) was conducted in autoclave on the system of crude oil and $MgSO_4$ at different temperatures. Gas chromatography pulsed flame photometric detector (GC-PFPD) was used to detected the composition of organic sulfur compounds in oil phase products. The results of the analysis indicate that with increased temperature, the contents of organic sulfur compounds with high molecular weight and thermal stability, such as benzothiophenes and dibenzothiophenes, gradually became dominated. In order to gain greater insight into the formation and distribution of organic sulphur compounds from TSR, positive ion electrospray Fourier transform ion cyclotron resonance mass spectrometry (FT-ICR MS) was used in detecting the detailed elemental composition and distribution of them. The mass spectra showed that the mass range of sulfur compounds was 200-550 Da. Four sulfur class species, $S_1$, $N_1S_1$, $O_1S_1$ and $O_2S_1$, were assigned in the positive-ion spectrum. Among the identified sulfur compounds, the $S_1$ class species was dominant. The most abundant $S_1$ class species increase associated with the DBE value and carbon number increasing which also indicates the evolution of organic sulfur compounds in TSR is from the labile series to the stable one. In pure blank pyrolysis experiments with crude oil cracking without TSR, different composition and distribution of organic sulfur compounds in oil phase products were seen from mass spectra in order to evaluate their pyrolysis behaviors without $MgSO_4$. FT-IR and XRD were used in analyzing the products of solid phases. Two distinct crystallographic phases MgO and $MgSO_4$ are found to coexist in the products which demonstrated the transformation of inorganic sulfur compounds into organosulfur compounds exist in TSR.

Numerical Study of Chemical Performance of 30 tonf -class LRE Nozzle of KARI

  • Kang, Ki-Ha;Lee, Dae-Sung;Cho, Deok-Rae;Choi, H.S.;Choi, J.Y.
    • 한국추진공학회:학술대회논문집
    • /
    • 한국추진공학회 2008년 영문 학술대회
    • /
    • pp.448-451
    • /
    • 2008
  • Three methods of nozzle flow analysis, frozen-equilibrium, shifting-equilibrium and non-equilibrium approaches, were used to rocket nozzle flow, those were coupled with the methods of computational fluid dynamics code. For a design of high temperature rocket nozzle, chemical equilibrium analysis which shares the same numerical characteristics with frozen flow analysis can be an efficient design tool for predicting maximum thermodynamic performance of the nozzle. Frozen fluid analysis presents the minimum performance of the nozzle because of no consideration for the energy recovery. On the other hand, the case of chemical-equilibrium analysis is able to forecast the maximum performance of the nozzle due to consideration for the energy recovery that is produced for the fast reaction velocity compared with velocity of moving fluid. In this study, using the chemical equilibrium flow analysis code that is combined the modified frozen-equilibrium and the chemical-equilibrium. In order to understand the thermochemical characteristic components and the accompanying energy recovery, shifting-equilibrium flow analysis was carried out for the 30 $ton_f$-class KARI liquid rocket engine nozzle together with frozen flow. The performance evaluation based on the 30 $ton_f$-class KARI LRE nozzle flow analyses will provide an understanding of the thermochemical process in the nozzle and performances of nozzle.

  • PDF

흑연 노즐목 내열재의 열화학적 침식 특성 분석 (Analysis on Thermochemical Erosion Properties for Thermal Insulation Materials of Graphite Nozzle Throat)

  • 김영인;이수용
    • 한국항행학회논문지
    • /
    • 제22권2호
    • /
    • pp.90-95
    • /
    • 2018
  • 로켓 (rocket)이란 배출가스를 빠르게 분사하여 그 반작용의 힘으로 추진력을 발생시키는 추진 장치이다. 그리고 고체추진 로켓 (solid rocket motor)의 구조에서 노즐(nozzle)은 추력을 발생시키는 중요한 구성품으로 고온/고압 환경으로 인하여 연소되며 액체로켓 (liquid rocket propulsion systems)과 다르게 노즐을 냉각시킬 수 없어 연소가스에 의해 침식 (erosion)이 발생한다. 본 논문은 oxy-acetylene torch tester를 개발 및 이용하여 흑연 (graphite) 재질의 노즐목 (nozzle throat) 내열재에 대하여 열화학적 침식 특성을 실험 및 이론적 모델로 규명하고 이를 통하여 침식에 영향을 미치는 주요 인자에 대하여 연구하였다.

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
    • /
    • 제32권2호
    • /
    • pp.205-213
    • /
    • 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.

KSR-III 로켓 노즐의 열화학적 성능해석 (Thermochemical Performance Analysis of KSR-III Rocket Nozzle)

  • 최정열;최환석;김영목
    • 한국연소학회:학술대회논문집
    • /
    • 한국연소학회 2001년도 제22회 KOSCI SYMPOSIUM 논문집
    • /
    • pp.90-98
    • /
    • 2001
  • Characteristics of high temperature rocket nozzle flow is discussed along with the aspects of computational analysis. Three methods of nozzle flow analysis, frozen-equilibrium, shifting-equilibrium and non-equilibrium approaches, were discussed, those were coupled with the methods of computational fluid dynamics code. A chemical equilibrium code developed for the analysis of general hydrocarbon fuel was coupled with three approaches of nozzle flow analysis. The approaches were used for the performance prediction of KSR-III Rocket, and compared with the theoretical results from NASA CEA (Chemical Equilibrium with Applications) code.

  • PDF

금속산화물(Cu-ferrite)를 이용한 수소제조 연구 (Study on the hydrogen production using the metal oxide (Cu-ferrite))

  • 박주식;서인태;김정민;이상호;황갑진
    • 한국수소및신에너지학회논문집
    • /
    • 제15권3호
    • /
    • pp.201-207
    • /
    • 2004
  • Redox characteristics of metal oxide for hydrogen production by thermochemical water-splitting were investigated. $CuFe_2O_4$ as a redox pair that had a different molar ratio of Cu and Fe were prepared by co-precipitation method. Hydrogen production consisted of water-splitting step and thermal reduction step was performed below 1200K. Redox characteristics of Cu-ferrites were studied using the thermal gravimetric analysis technique. Also, structure change of Cu-ferrite during thermal reduction was investigated using the high temperature controlled XRD. In results, oxygen release of Cu-ferrite during the thermal reduction was initiated at oxygen site combined with Cu. Consequently, oxygen release amount of Cu-ferrite was increased with increase of Cu molar ratio of Cu-ferrite. It was found that thermal reduction of Cu-ferrite was begun at $875^\circ{C}$. It was confirmed that structure of Cu-ferrite was changed to metal and cation excess metal oxide during the thermal reduction step.

바이오디젤과 디젤 연기입자의 광학특성 및 무차원 광소멸계수 측정에 관한 연구 (A Study of Optical Characteristics for Biodiesel and Diesel Smoke Particles and Measuring their Dimensionless Light Extinction Constants)

  • 최석천;장영석;박설현;김연규
    • 한국화재소방학회논문지
    • /
    • 제30권1호
    • /
    • pp.37-42
    • /
    • 2016
  • 바이오디젤(Soy Methyl Ester, B100)과 디젤(Ultra Low Sulfur Diesel, ULSD)의 연소과정에서 발생되는 연기입자의 무차원 광소멸계수를 측정하였다. 무차원 광소멸계수는 633 nm의 He-Ne 레이저를 이용하여 광학적 방법으로 측정된 연기입자의 체적분율과 중력식 필터법에 의해 채집된 연기입자의 체적분율을 비교하여 결정하였다. 633 nm 대역에서 측정된 평균 무차원 광소멸계수는 각각 바이오디젤의 연기입자가 11.8, 디젤 연기입자가 11.1으로 측정 불확도 범위(${\pm}10.1%$) 내에서 거의 유사하였다. 다만, 라만 spectrum 분석결과를 통해 각 연료에서 발생된 연기입자 간의 광소멸(광흡수/광산란) 특성은 서로 상이할 수 있음을 확인할 수 있었다.

폐타이어의 열분해를 통한 에너지화 : 폐폴리프로필렌 첨가 시 열분해 오일의 탈황 효과 (Energy Recovery via Pyrolysis of Waste Tire Rubber : Desulfurization Effect of Pyrolysis Oil by Adding Waste Polypropylene)

  • 정재용;이은도;장원석;오문세;정수화
    • 에너지공학
    • /
    • 제26권3호
    • /
    • pp.97-104
    • /
    • 2017
  • 본 연구에서는 폐타이어의 열분해 특성을 알아보기 위하여 유동층 반응기를 이용하여 450에서 $650^{\circ}C$ 범위에서 급속 열분해를 실시하였다. 반응 온도의 변화에 따른 열분해 오일의 특성을 관찰하고 특히 폐폴리프로필렌을 폐타이어와 혼합하여 열분해를 실시할 때 열분해 부산물 내 황의 거동을 살펴보았다. 열분해 오일의 수율은 반응 온도 $456^{\circ}C$에서 약 52wt.%로 가장 높게 나타났다. 생산된 오일의 GC-MS 분석 결과 반응 온도가 증가할수록 지방족 화합물의 함량은 줄어드는 반면 방향족 화합물의 함량이 급격히 증가하는 것으로 나타났다. 주요 화합물은 리모넨(Limonene), 톨루엔(Toluene), 자일렌(Xylene), 스타이렌(Styrene), 트리메틸벤젠(Trimethylbenzene) 그리고 메틸나프탈렌류(Methylnaphthalenes)이었으며 미량의 황 화합물과 질소 화합물도 검출되었다. 폐폴리프로필렌을 폐타이어와 혼합 열분해 한 결과 열분해 오일 내 황의 함량이 급격히 감소하는 것을 관찰할 수 있었다.

열 중량 분석기에서 zinc 입자 크기와 반응 온도에 따른 물 분해 특성 연구 (Particle Size and Reaction Temperature Effects on the Hydrolysis Reaction of Zinc in TGA (Thermo Gravimetric Analyzer))

  • 안승혁;강경수;김창희;배기광;김영호;박주식
    • 한국수소및신에너지학회논문집
    • /
    • 제19권4호
    • /
    • pp.305-312
    • /
    • 2008
  • ZnO/Zn redox cycle is the one of the promising thermochemical cycles for hydrogen production via water splitting with high temperature heat source like a concentrated solar energy. This paper reports the particle size effect of Zinc on water splitting behavior. Water splitting reaction experiments were carried out at isothermal conditions of 350 and 400$^{\circ}C$ in TGA (Thermo Gravimetric Analyzer) using four commercial Zinc powders (nano, <10 ${\mu}m$, <150 ${\mu}m$ and $150{\sim}600\;{\mu}m$ particle sizes). Before the experiments, average particle size of Zinc powders was analyzed by PSA (Particle Size Analysis). After the experiments, XRD (X-Ray Diffraction) and SEM (Scanning Electron Microscope) analyses were conducted on the samples. The experimental results showed that particle size had a effect on the conversion of Zinc to ZnO. Zinc conversion was increased, as the particle size decreased. Especially, the nano size particles were aggregated and the particle's morphology changed on the surface during hydrolysis reaction.

석탄순환형 연료전지 모사시스템용 석탄전환율 측정 및 분석법개발에 관한 연구 (Measurement and Analysis of Coal Conversion Efficiency for a Coal Recirculating Fuel Cell Simulator)

  • 이상초;김치환;황문경;김민성;김규보;전충환;송주헌
    • 한국수소및신에너지학회논문집
    • /
    • 제23권5호
    • /
    • pp.503-512
    • /
    • 2012
  • There is a new power generation system such as direct coal fuel cell (DCFC) with a solid oxide electrolyte operated at relatively high temperature. In the system, it is of great importance to feed coal continuously into anodic electrode surface for its better contact, otherwise it would reduce electrochemical conversion of coal. For that purpose, it is required to improve the electrochemical conversion efficiency by using either rigorous mixing condition such as fluidized bed condition or just by recirculating coal particle itself successively into the reaction zone of the system. In this preliminary study, we followed the second approach to investigate how significantly particle recycle would affect the coal conversion efficiency. As a first phase, coal conversion was analyzed and evaluated from the thermochemical reaction of carbon with air under particle recirculating condition. The coal conversion efficiency was obtained from raw data measured by two different techniques. Effects of temperature and fuel properties on the coal conversion are specifically examined from the thermochemical reaction.