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Topology Optimization and Performance Evaluation on Vortex-type Passive Fluidic diode for Advanced Nuclear Reactors : 차세대 원자로의 Vortex-type 피동형 유동제어기의 위상최적화 및 성능평가

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dc.contributor.advisor김응수-
dc.contributor.author임도균-
dc.date.accessioned2018-05-29T03:23:01Z-
dc.date.available2018-05-29T03:23:01Z-
dc.date.issued2018-02-
dc.identifier.other000000151199-
dc.identifier.urihttps://hdl.handle.net/10371/141463-
dc.description학위논문 (석사)-- 서울대학교 대학원 : 공과대학 에너지시스템공학부, 2018. 2. 김응수.-
dc.description.abstractThe fluidic diode (FD) is simple, passive device designed to provide small flow resistance in forward flow direction and large flow resistance in reverse flow direction. It plays a key role for importing passive core cooling system in advanced reactors such as hybrid loop-pool type Sodium Fast Reactors (SFRs) and Fluoride-salt-cooled High-temperature Reactors (FHRs). In nuclear industry, the vortex-type fluidic diode, one of fluidic diode consist of a circular chamber and two cylindrical port are preferred among fluidic diode because of its simplicity, easy maintenance feature. The performance of vortex-type fluidic diode is expressed as diodicity (Di), and many studies have been conducted to enhance its diodicity after its first invention. In this study, the modified design for vortex-type fluidic diode is proposed using topology optimization technique to enhance the diodicity.
The topology optimization is one of optimization technique that finds out optimum material distribution in given domain. In this study, topology optimization is conducted for tangential port and chamber in 2-D domain and low-Reynolds laminar flow condition. Results with clear boundary and enhanced performance are selected as topology optimized design. Preliminary performance evaluation in 2-D geometry for this topology optimized design is conducted and 3-D part is designed based on 2-D geometry.
Experiment study is conducted to evaluate performance of 3-D topology optimized design. Pressure drop measurement and flow visualization experiment are conducted to topology optimized design and reference design. Stereolithography (SLA) 3-D printing technique is used to produce test sections and MIR-PIV technique is used to visualize flow inside the vortex-type fluidic diode. Velocity fields and pressure drop across vortex-type fluidic diode of each design are compared and it is found that reference design has better performance.
Flow characteristic study using 3-D CFD analysis is conducted to evaluate effect of design modification on pressure drop. CFD analysis is conducted by simulating experimental condition with laminar and turbulent flow model. Comparison between laminar flow model and turbulence model is made to select model which predicts experimental result more accurately. Variables obtained in CFD analysis such as flow field and total pressure are analyzed in detail. Based on this analysis result, contribution of each sub-part of vortex-type fluidic diode is evaluated.
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dc.description.tableofcontentsChapter 1. Introduction 1
1.1 Background 1
1.2 Previous Studies 3
1.2.1 Vortex-type Fluidic Diode 3
1.2.2 Topology Optimization of Fluid Flow 3
1.3 Objectives 4
Chapter 2. Topology Optimization for Vortex-type Fluidic Diode 7
2.1 Overview of Topology Optimization 7
2.2 Basic Equations and Algorithm 8
2.2.1 Fluid Dynamics Equations 8
2.2.2 Penalization 10
2.2.3 Constraints 10
2.2.4 Basic Algorithm 11
2.3 Vortex-type Fluidic Diode Design 11
2.3.1 Geometry and Design Domain 11
2.3.2 Optimization Process and Conditions 12
2.3.3 Optimization Results 13
2.3.4 Preliminary Performance Evaluation 14
2.3.5 Part Design 15
Chapter 3. Performance Evaluation using Experimental Study 28
3.1 Experimental Setup 28
3.1.1 Test section 28
3.1.2 Test Loop 29
3.1.3 Flow Visualization System 30
3.1.4 Flow conditions 31
3.2 Experimental Results 32
3.2.1 Pressure drop measurement 32
3.2.2 Flow Visualization 32
Chapter 4. Flow Characteristics Investigation using CFD Analysis 44
4.1 Analysis Model and Conditions 44
4.1.1 Geometry and Grid 44
4.1.2 Models and Conditions 45
4.2 Results 47
4.2.1 Comparison with Experimental Results 47
4.2.2 Evaluation of Effect of Sub-part on Pressure Drop 48
Chapter 5. Summary and Conclusions 62
5.1 Summary 62
5.2 Recommendations 63
Nomenclature 65
References 68
Appendix A. Safety Analysis for Advanced Nuclear Reactors 71
국문 초록 76
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dc.formatapplication/pdf-
dc.format.extent5162477 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectTopology Optimization-
dc.subjectVortex-type Fluidic Diode-
dc.subjectComputational Fluid Dynamics-
dc.subjectFlow Visualization-
dc.subject.ddc622.33-
dc.titleTopology Optimization and Performance Evaluation on Vortex-type Passive Fluidic diode for Advanced Nuclear Reactors-
dc.title.alternative차세대 원자로의 Vortex-type 피동형 유동제어기의 위상최적화 및 성능평가-
dc.typeThesis-
dc.contributor.AlternativeAuthorLim Do Kyun-
dc.description.degreeMaster-
dc.contributor.affiliation공과대학 에너지시스템공학부-
dc.date.awarded2018-02-
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