Publications

Detailed Information

A Study on Thermal Behavior of Lightweight Carbon/Polymer Composites : 탄소 고분자 경량 복합재료의 열 전달 거동에 관한 연구

DC Field Value Language
dc.contributor.advisor윤재륜-
dc.contributor.author박성열-
dc.date.accessioned2017-10-27T16:38:04Z-
dc.date.available2017-10-27T16:38:04Z-
dc.date.issued2017-08-
dc.identifier.other000000145892-
dc.identifier.urihttps://hdl.handle.net/10371/136760-
dc.description학위논문 (박사)-- 서울대학교 대학원 공과대학 재료공학부, 2017. 8. 윤재륜.-
dc.description.abstractTo investigate thermal behavior of lightweight carbon/polymer composites and to explore the potential applications of composites are the main topics of this study. Present study dealt with unique experimental results such as synergistic improvement in thermal conductivity of multiphase composites and enhancement in surface hardness of graphene aerogel-based composites. To explore dominant factors determining the thermal conductivity of the carbon/polymer composites is also an important goal of this study.
In Chapter 2, the thermal conductivity of composites with a polyphenylene sulfide (PPS) matrix and a mixture of boron nitride (BN) powder and multi-wall carbon nanotube (MWCNT) fillers was investigated. Synergistic improvement in thermal conductivity of the composite was obtained by introducing a combination of BN and MWCNT. The improvement of thermal conductivity was strongly depended on surface treatments of the MWCNTs, such as hydrogen peroxide and acid treatments. The thermal conductivity of the composite was affected by the interaction and interfacial thermal resistance between the PPS matrix and the BN filler. The interfacial thermal resistance of PPS/BN/MWCNT composites was investigated quantitatively by finite element method. The highest thermal conductivity was 1.74 W/m·K achieved by the composite with 1 wt% MWCNT that had been treated by hydrogen peroxide., This result indicated that we successfully fabricated a pelletizable, injection moldable, thermally conductive carbon/polymer composite, considering the specific thermal conductivity of the prepared composite.
In Chapter 3, three-dimensional carbon nanomaterial reinforced composite aerogel was fabricated using a freeze-drying method. Graphene nanoplatelets (GNPs) were used as the reinforcement and poly vinyl alcohol (PVA) as the organic binding material to produce the composite aerogel. Two different methods were employed to control the internal structure of the aerogel: a variation of solvent composition and the formation of cross-linking. The internal structure of the aerogel was affected by the types and composition of the solvent. In addition, the subsequent cross-linking of the aerogel influenced the morphology and physical properties. This study is expected to provide a simple and efficient way to control the internal structure and resulting properties of the GNP aerogel.
In Chapter 4, the thermal and electrical conductivity of composites with a graphene aerogel and an epoxy matrix were investigated. We fabricated a core-shell structured composites with the graphene aerogel core and the epoxy/graphene composite shell in order to enhance the poor surface hardness of graphene aerogel, resulting in increased resistance of graphene aerogel to the external forces. The thermal conductivity of the core-shell structured epoxy/rGO composites was 0.077 W/m·K which is similar to that of thermal insulating materials. On the other hand, the electrical conductivity of composite was found to exhibit 0.5 S/m which is almost 10 orders of magnitude higher than that of neat epoxy. This result indicated that carbon/polymer composites have a great potential in numerous engineering applications.
-
dc.description.tableofcontentsChapter 1. Introduction 1

1.1. Carbon Nanomaterials 1
1.2. Factors Affecting Thermal Conducitivy 4
1.3. Applications of Carbon/Polymer Composite 7
1.4. Objetives 8
1.5. References 10


Chapter 2. Synergistic Improvement of Thermal Conductivity of Thermoplastic Composites with Mixed Boron nitride and MWCNT Fillers 14

2.1. Introduction 14

2.2. Experimetnal 17
2.2.1. Materials 17
2.2.2. Chemical Modification of MWCNT 17
2.2.3. Surface Characterization of MWCNT 19
2.2.4. Preparation and Characterization of Composites 19

2.3. Numerical Analysis 24
2.3.1. Representative Volume Element 24
2.3.2. Analytical Models 26
2.3.3. Computation Details 28

2.4. Results & Discussion 30
2.4.1. Moldabilty of Composites 30
2.4.2. Thermal Conducitivy of Composites 30
2.4.3. Morphology 32
2.4.4. Defect and Functionality of MWCNT 35
2.4.5. Numerical Results 43

2.5. Summary 52
2.6. References 53


Chapter 3. Morphology and Physical Properties of Graphene Nanoplatelet Embedded Poly(Vinly Alcohol) Aerogel 57

3.1. Introduction 57

3.2. Experimetnal 59
3.2.1. Preparation of GNP/PVA Aerogel 59
3.2.2. Characterization 59

3.3. Resutls & Discussion 62
3.3.1. Dispersion of GNP in Suspensions 62
3.3.2. Microstructure of Aerogel 64
3.3.3. Thermal Conductivity 71
3.3.4. Mechanical Property 71
3.3.5. Stability in Aqueous Environment 72

3.4. Application of GNP Embedded PVA Aerogel 77
3.4.1. Shape-Stability 77
3.4.2. DSC Thermal Spectra 77
3.4.3. Thermoelectric Effectivity 78

3.5. Summary 85

3.6. References 86


Chapter 4. Fabrication of Lightweight and Mechanically Enhanced Core-Shell Structured Epoxy/rGO Aerogel Composite 90

4.1. Introduction 90

4.2. Experimetnal 92
4.2.1. Materials 92
4.2.2. Synthesis of Graphene Oxide (GO) 92
4.2.3. Preparation 92
4.2.4. Characterization 95
4.3. Results & Discussion 96
4.3.1. Morphology 96
4.3.2. Thermal Conductivity of Epoxy/rGO and rGO Aerogel 99
4.3.3. Thermal Conductivity of Core-Shell Composite 99
4.3.4. Hardness of Core-Shell Structured Composite 106
4.3.5. Electrical Conductivity 106

4.4. Summary 110

4.5. References 111


Chapter 5. Concluding Remarks 114

Korean Abstract 117
-
dc.formatapplication/pdf-
dc.format.extent4916753 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectcarbon/polymer composite-
dc.subjectthermal conductivity-
dc.subjectinterfacial thermal resistance-
dc.subjectthree-dimensional pathway-
dc.subjectcarbon aerogel-
dc.subjectcore-shell structure-
dc.subject.ddc620.1-
dc.titleA Study on Thermal Behavior of Lightweight Carbon/Polymer Composites-
dc.title.alternative탄소 고분자 경량 복합재료의 열 전달 거동에 관한 연구-
dc.typeThesis-
dc.contributor.AlternativeAuthorPak SeongYeol-
dc.description.degreeDoctor-
dc.contributor.affiliation공과대학 재료공학부-
dc.date.awarded2017-08-
Appears in Collections:
Files in This Item:

Altmetrics

Item View & Download Count

  • mendeley

Items in S-Space are protected by copyright, with all rights reserved, unless otherwise indicated.

Share