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Methods to Improve Properties of Polyurethane Foam Using Liquid-Type Additives : 액상첨가제를 활용한 폴리우레탄 폼의 특성 향상 방안

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dc.contributor.advisor한종훈-
dc.contributor.author이영범-
dc.date.accessioned2017-07-13T08:46:09Z-
dc.date.available2017-07-13T08:46:09Z-
dc.date.issued2017-02-
dc.identifier.other000000141037-
dc.identifier.urihttps://hdl.handle.net/10371/119825-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 화학생물공학부, 2017. 2. 한종훈.-
dc.description.abstractPolyurethane is a polymer material made by the exothermic reaction between polyol and isocyante. It has many good properties that it has been widely used in various kinds of industry. [1] Especially rigid polyurethane foam is one of best thermal insulation materials and it has been used as a main insulator for cryogenic industries such as Liquefied Natural Gas (LNG) storage tanks, LNG carriers etc. [1-4]
Blowing agent is a material which makes polyurethane cellular material and gives polyurethane foam insulating ability. CFCs were typical blowing agents. But they have not been used because they destroy the stratospheric ozone layer. HCFC-141b was chosen for an alternative to CFCs. However, although small ozone depletion potential (ODP) of HCFC-141b compared to CFCs, additional alternative blowing agents with zero ODP such as hydroflurocarbons (HFCs) have been needed because of tougher environmental regulations since 2000s.
LNG demand has risen by an estimated 7.5% per year since 2000. [5] Nowadays the price of natural gas has become higher and the efficiency of propulsion systems of liquefied natural gas (LNG) carriers has improved. Due to these trends, required boil-off rate (BOR) has been lowered from 0.15%/day to 0.12%/day for conventional LNG carriers with sizes between 125,000 m3 and 170,000 m3. This requirement of BOR can be satisfied by using a rigid polyurethane foam (PUF) blown by 1,1-dichloro-1-fluoroethane (HCFC-141b) as an insulator but we cannot use it anymore. So new alternative blowing agent should be used instead of HCFC-141b. But the use of alternative blowing agent can make another problem like deterioration of thermal conductivity due to its relatively high thermal conductivity. [1, 3, 6-12]
This research introduces HFCs as an alternative to HCFC-141b and discuss characteristics of rigid PUFs prepared with HFCs and shows its application to LNG carriers. We also discuss effects of liquid-type additives to enhance properties of rigid PUFs under laboratory atmosphere and the possibility of their adaptability to mass production type PUFs. For these three liquid-type additives, propylene carbonate (PC), perfluoroalkane (PFA), and acetone, were introduced. The addition of perfluoroalkane induced the small cell size of the PUFs. Based on the morphology, thermal conductivity, and compressive strength, it is suggested that the perfluoroalkane is an efficient liquid-type additive for the improving the thermal performance of PUFs. [13, 14]
Based on this result, a mass production type rigid PUF for a LNG carrier was manufactured and evaluated for BOR, mechanical strengths over operation temperature range, coefficient of thermal expansion (CTE), and thermal shock stability for LNG carriers. The calculated BOR of the manufactured rigid PUF is below 0.12%/day, which satisfies the recent and tough BOR specification for LNG carriers. Other properties also meet the specifications for a conventional LNG carrier. [13]
Consequently, it is expected that the results in this paper will bring low BOR (<0.12%/day) LNG carries with rigid PUFs using ODP free blowing agents and contribute environmental protection through saving energy and preserving the ozone layer in the stratosphere. Besides that, the product of this paper will reduce the time required to construct the raw material system and make the blending system configuration process easier.
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dc.description.tableofcontentsCHAPTER 1 : Introduction 1
1.1. Research motivation 1
1.2. Trend in blowing agent selection and checking the effect of various additives on properties of polyurethane foam 6
1.3. Research objectives 10
1.4. Outline of the thesis 11
CHAPTER 2 : Effect of Liquid-Type Additives on Properties of Polyurethane Foam 12
2.1. Introduction 12
2.2. Factors to affect properties of polyurethane foam 14
2.3. Experiment 20
2.3.1. Materials 20
2.3.2. Preparation of polyurethane foams 22
2.3.3. Measurement and experimental conditions 24
2.4. Effects of additives on properties of polyurethane foam 29
2.4.1. Blowing agent on rigid PUF performance 31
2.4.2. Propylene carbonate on rigid PUF performance 34
2.4.3. Effects of acetone on rigid PUF performance 37
2.4.4. Effects of perfluoroalkane on rigid PUF performance 40
2.5. Conclusion 44
2.5.1. Surface tension of polyol solutions 44
2.5.2. Cell size of PUF 47
2.5.3. Thermal Conductivity of PUFs 50
2.5.4. Compressive Strength of PUFs 53
CHAPTER 3 : Construction of Blending System for Commercial Mass Production Type PUF 57
3.1. Introduction 57
3.2. Blending system for mass production type polyurethane foam 60
3.3. Conclusion 65
CHAPTER 4 : Evaluation and Confirmation of the Possibility of Using the Mass-produced Polyurethane Foam Insulation for a LNG Carrier 66
4.1. Introduction 66
4.1.1. Heat transfer in conjugated membrane type insulation panel 69
4.1.2. Calculation of boil-off rate in LNG carrier 73
4.2. Measurement and experimental conditions 74
4.3. Evaluation results 81
4.3.1. Mechanical strength characteristics 81
4.3.2. Thermal conductivity characteristics 84
4.3.3. Thermal stability characteristics 86
4.4. Lifetime Evaluation of Polyurethane Foam 88
4.5. Economics 93
4.6. Conclusion 96
CHAPTER 5 : Concluding Remarks 97
5.1. Conclusions 97
5.2. Future works 99
Nomenclature 100
Literatures cited 102
Abstract in Korean (요 약) 109
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dc.formatapplication/pdf-
dc.format.extent4816031 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectPolyurethane Foam-
dc.subjectInsulator-
dc.subjectBlowing Agent-
dc.subjectOzone Depletion Potential-
dc.subjectAdditive-
dc.subjectThermal conductivity-
dc.subject.ddc660-
dc.titleMethods to Improve Properties of Polyurethane Foam Using Liquid-Type Additives-
dc.title.alternative액상첨가제를 활용한 폴리우레탄 폼의 특성 향상 방안-
dc.typeThesis-
dc.contributor.AlternativeAuthorLee, Yeongbeom-
dc.description.degreeDoctor-
dc.citation.pagesxi, 111-
dc.contributor.affiliation공과대학 화학생물공학부-
dc.date.awarded2017-02-
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