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Structural Behavior of Composite Sandwich Panel with High Performance Expanded Polystyrene Concrete : 고성능 발포폴리스티렌 콘크리트를 사용한 복합 샌드위치 패널의 구조적 거동

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dc.contributor.advisor홍성걸-
dc.contributor.author하유진-
dc.date.accessioned2017-10-31T07:31:21Z-
dc.date.available2017-10-31T07:31:21Z-
dc.date.issued2017-08-
dc.identifier.other000000145573-
dc.identifier.urihttps://hdl.handle.net/10371/137321-
dc.description학위논문 (석사)-- 서울대학교 대학원 공과대학 건축학과, 2017. 8. 홍성걸.-
dc.description.abstractUse of lightweight concrete has become increasingly popular in modern construction to take advantage of lower density results in a benefit in terms of load-bearing elements of smaller cross sections, and a reduction in self-weight. The light-weight concrete is also applied for a core material of composite sandwich structure. The composite sandwich structures are being used widely in weight sensitive structures where high flexural rigidity is required because of the high-specific strength, stiffness, the lightness, the high thermal insulation and the possibility of producing complex geometries. However, the lack of dependable technical information and guideline for composite sandwich panels make it difficult to apply them in reality.
To investigate the mechanical properties of HPEPC, the compressive strength, flexural strength, modulus of elasticity and Poissons ratio were measured in various density depend on EPS bead contents. As the EPS bead content decreases, strength and elastic modulus increase. The HPEPC has better mechanical properties than EPS mortar with about 6.6 times higher compressive strength than EPS mortar. Comparing the experimental results with the estimated formulas of the ACI standard, the elastic modulus of HPEPC can be predicted very well. The structural behavior of composite sandwich panels has been empirically analyzed using different combinations of cores, face sheets, and adhesive materials. The behavior depends on the core and the skin material. The HPEPC, which has much higher strength and lower thermal conductivity, is superior to EPS mortar as a core material. Test specimens composed of HPEPC cores and skins made of UHPC and GFRP meshes with adhesive mortar demonstrated the ideal behavior when it failed due to flexural strength. The results are compared with the result values obtained from the estimation formula, and the theoretical predictions of the failure load are in good agreement with the experimental results.
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dc.description.tableofcontentsChapter 1. Introduction 1
1.1 General 1
1.2 Research Objectives 2
1.3 Organization of the Dissertation 4
Chapter 2. Background 6
2.1 Introduction 6
2.2 Expanded Polystyrene Concrete 6
2.3 Composite Sandwich Panels 9
2.3.1 General and History 9
2.3.2 Structural Performance of Composite Sandwich Panels 11
2.3.3 Thermal Performance of Composite Sandwich Panels 13
Chapter 3. Mechanical Properties of High Performance Expanded Polystyrene Concrete 15
3.1 Introduction 15
3.2 Parameters of Study 16
3.3 Material Properties 20
3.4 Fabrication of Specimens 21
3.5 Test Set-up and Instrumentation 25
3.5.1 Test Conditions 25
3.5.2 Density 25
3.5.3 Compressive Strength 25
3.5.4 Flexural Strength 26
3.5.5 Modulus of Elasticity 26
3.5.6 Poissons Ratio 27
3.6 Test Results 28
3.6.1 Density 28
3.6.2 Compressive Strength 28
3.6.3 Flexural Strength 33
3.6.4 Modulus of Elasticity 34
3.6.5 Poissons Ratio 39
3.7 Summary 40
Chapter 4. Mechanical Properties of Components for Composite Sandwich Panels 43
4.1 Introduction 43
4.2 Material Properties 44
4.2.1 EPS Mortar 44
4.2.2 High Performance Expanded Polystyrene Concrete 44
4.2.3 UHPC with Steel Fiber 45
4.2.4 UHPC with GFRP mesh 45
4.2.5 GFRP plate 48
4.2.6 Adhesive Mortar 49
4.2.7 Epoxy Bond 49
4.3 Fabrication of Specimens 51
4.3.1 Compressive Strength Test 51
4.3.2 Flexural Strength Test 51
4.3.3 Thermal Conductivity Test 51
4.4 Test Set-up and Instrumentation 52
4.4.1 Compressive Strength Test 52
4.4.2 Flexural Strength Test 52
4.4.3 Thermal Conductivity Test 53
4.5 Test Result 55
4.5.1 Compressive Strength 55
4.5.2 Flexural Strength 57
4.5.3 Thermal Conductivity 58
4.6 Conclusion 60
Chapter 5. Structural Behavior of Composite Sandwich Panels 61
5.1 Introduction 61
5.2 Material characterization tests 62
5.2.1 Flatwise compression tests 62
5.2.2 Edgewise compression tests 65
5.3 Flexural test on composite sandwich panels 73
5.3.1 Specimens and test set-up 73
5.3.2 Results 74
Chapter 6. Analysis 86
6.1 The stiffness of composite sandwich panels 86
6.1.1 Theory of stiffening 86
6.2 The strength of composite sandwich panels 94
6.2.1 Theory of strength for composite sandwich structure 94
6.2.2 Failure-mode 104
6.3 Validation 105
6.3.1 Results from equation and experiments 105
Chapter 7. Conclusions 108
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dc.formatapplication/pdf-
dc.format.extent3269862 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectlight-weight aggregate concrete-
dc.subjectUltra-High Performance Concrete(UHPC)-
dc.subjectExpanded polystyrene-
dc.subjectSandwich panel-
dc.subject.ddc690-
dc.titleStructural Behavior of Composite Sandwich Panel with High Performance Expanded Polystyrene Concrete-
dc.title.alternative고성능 발포폴리스티렌 콘크리트를 사용한 복합 샌드위치 패널의 구조적 거동-
dc.typeThesis-
dc.contributor.AlternativeAuthorYu-Jin Ha-
dc.description.degreeMaster-
dc.contributor.affiliation공과대학 건축학과-
dc.date.awarded2017-08-
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