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Comparative Study on Pyrolysis Features of Woody Biomass and Waste Plastics by mean of Various Pyrolytic Systems : 목질계 바이오매스 및 폐플라스틱의 열분해 특성의 비교 연구

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dc.contributor.advisorJoon Weon Choi-
dc.contributor.authorXuanjun Jin-
dc.date.accessioned2020-10-13T03:04:44Z-
dc.date.available2020-10-13T03:04:44Z-
dc.date.issued2020-
dc.identifier.other000000163150-
dc.identifier.urihttps://hdl.handle.net/10371/169482-
dc.identifier.urihttp://dcollection.snu.ac.kr/common/orgView/000000163150ko_KR
dc.description학위논문 (석사) -- 서울대학교 대학원 : 국제농업기술대학원 국제농업기술학과, 2020. 8. Joon Weon Choi.-
dc.description.abstractIn this study, in Part I, fast pyrolysis of pine wood sawdust was performed using 'screw type' and 'fluidized bed' pyrolyzer to investigate the effects of particle sizes on the mass balance and physicochemical properties of bio-oil. The particle size of pine wood sawdust was ranged from 1mm to 14mm, and the pyrolysis temperature was fixed at 500℃, the optimum temperature for bio-oil production. The results revealed that the type of pyrolyzer influenced the distribution of thermal degradation products (bio-oil, bio-char, and gas) from the woody biomass. The 'screw type' pyrolyzer was able to accept the feedstock of particle size ranged from 1mm to 14mm, while the 'fluidized bed' pyrolyzer could only accept the feedstock of particle size of 1mm and 2mm, but not 6mm and 14mm. The influence of feedstock particle size on the distribution of pyrolysis products in the 'screw type' pyrolyzer was not significant (bio-oil: 43.2% ~ 46.3%; biochar: 20.3% ~ 22.3%). However, the difference of pyrolysis product yields between two pyrolysis systems was significant. Within the same particle size, 'screw type' pyrolyzer produced less bio-oil and more gas compared with 'fluidized bed' pyrolyzer. Using GC/MS analysis, 25 chemical compounds were identified from the bio-oil.
Part II, pine wood sawdust were catalytically pyrolyzed with polyethylene (PE) using analytical pyrolysis-GC/MS system to investigate the effect of plastic on improving the quality of pyrolysis products. The analytical pyrolysis was performed at 600℃, loading 3.0 mg of samples, and the pyrolytic vapor was directly injected into GC/MS to determine the chemical compounds of pyrolytic products. 35~50 chemical compounds were identified and classified into six groups: Monomeric Aromatic Hydrocarbon (MAH), Polycyclic Aromatic Hydrocarbon (PAH), Phenols, Furfurals, Alkenes, and Alkanes. The results showed that the co-pyrolysis of pine with PE significantly decreased the oxygen content in the pyrolytic products from 23.4% (pine only) to 0.3% (pine+PE/ZSM-5), which increased the HHV of pyrolytic products from 25.9 MJ/kg to 34.4 MJ/kg. It also revealed that the ratio of pine and PE did not heavily influence the concentration of petrochemicals (aromatic hydrocarbons + alkenes (C≤15) + alkanes (C≤13)). However, a higher plastic ratio led to a higher wax production, which would be a critical reason for poor condensation performance of bio-oil capture in condenser. Pine wood sawdust to PE ratio of 3:1 showed the best result of higher petrochemicals, and low wax formation.
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dc.description.tableofcontents1. Introduction 1
1.1. Renewable energy and bioenergy 1
1.2 Thermochemical conversion of lignocellulosic biomass 4
1.3. Catalytic co-pyrolysis of biomass and plastics 7
1.4. Objectives 8
2. Literature review 9
2.1. Fast pyrolysis 9
2.1.1. Fast pyrolysis and bio-oil 9
2.1.2. Properties and applications of bio-oil 11
2.1.3. Fast pyrolysis reactors 13
2.2. Upgrading technology 16
2.3. Catalytic co-pyrolysis of biomass and plastic 17
3. Materials and methods 22
3.1. Fast Pyrolysis 22
3.1.1. Materials 22
3.1.2. Fast pyrolysis process 25
3.2. Characterization of pyrolytic products 26
3.2.1. Physicochemical properties of bio-oil 26
3.2.2. GC/MS analysis of bio-oil 26
3.2.3. Physicochemical properties of char 27
3.3. Catalytic co-pyrolysis 28
3.3.1. Materials 28
3.3.2. Catalytic co-pyrolysis 28
3.3.3. GC/MS analysis of catalytic co-pyrolysis products 29
4. Results and discussion 30
4.1. Fast pyrolysis 30
4.1.1. Pyrolytic behavior of pine wood 30
4.1.2. Effect of particle sizes of pine wood on the yield of pyrolytic products 32
4.1.3. Characterization of bio-oil 36
4.1.3.1. Physicochemical properties of bio-oil from two pyrolyzers 36
4.1.3.2. Chemical properties of bio-oil from two pyrolyzers 40
4.1.4. Characterization of biochar 43
4.2. Catalytic co-pyrolysis of biomass and plastics 47
4.2.1. Chemical properties of pyrolytic products 47
4.2.1.1. Influence of co-pyrolysis on the chemical properties of pyrolytic products 49
4.2.1.2. Influence of catalyst on the chemical properties of pyrolytic products 54
4.2.1.3. Influence of biomass to plastic ratio on the chemical properties of pyrolytic products 60
4.2.2. Elemental analysis and higher heating value of pyrolytic products 66
5. Conclusion 68
6. References 70
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dc.language.isoeng-
dc.publisher서울대학교 대학원-
dc.subjectfast pyrolysis-
dc.subjectscrew type pyrolyzer-
dc.subjectbio-oil-
dc.subjectbiomass-
dc.subjectplastic-
dc.subjectcatalytic co-pyrolysis-
dc.subject.ddc631-
dc.titleComparative Study on Pyrolysis Features of Woody Biomass and Waste Plastics by mean of Various Pyrolytic Systems-
dc.title.alternative목질계 바이오매스 및 폐플라스틱의 열분해 특성의 비교 연구-
dc.typeThesis-
dc.typeDissertation-
dc.contributor.AlternativeAuthor김현준-
dc.contributor.department국제농업기술대학원 국제농업기술학과-
dc.description.degreeMaster-
dc.date.awarded2020-08-
dc.identifier.uciI804:11032-000000163150-
dc.identifier.holdings000000000043▲000000000048▲000000163150▲-
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