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Accurate and Efficient Computations on Phase-changing Flows in Thermal Vapor Compressor : 열압축기 내 다상유동에 대한 정확하고 효율적인 수치해석 연구구

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dc.contributor.advisor김종암-
dc.contributor.author민대호-
dc.date.accessioned2018-05-28T16:05:34Z-
dc.date.available2018-05-28T16:05:34Z-
dc.date.issued2018-02-
dc.identifier.other000000151206-
dc.identifier.urihttps://hdl.handle.net/10371/140542-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 공과대학 기계항공공학부, 2018. 2. 김종암.-
dc.description.abstractMost previous numerical researches on flow field inside Thermal Vapor Compressor (TVC) has been conducted neglecting phase changing process around shock-train region. It may provide the plausible results on suction performance of target problem, however, it also can be fallen into erroneous prediction.
The present study focuses above limitations and provides computational improvements through multi-phase flow modeling and analysis. In order to capture the multi-phase flow physics accurately and provide reliable results, several numerical methods and models, including the shock-stable multi-phase AUSMPW+ N scheme, phase changing models, cell-by-cell adaptive mesh refinement technique, the IAPWS-97 equation of states and its SBTL model, are combined into a numerical solver.
The numerical solver incorporating these methods and models is validated with problems that possess similar physics, phase-changing process, shock-train and its interaction with shear mixing layer. Then fundamental flow physics is introduced, and general operation mode of TVC are reproduced to confirm the consistency of present computations. The influence of grid clustering level on to resolution of shear layer and computed suction performance is shown by examining grid dependence. Then simulation results on various TVC systems are compared with single- and multi-phase computations. The comparison explain the reason for yielding more accurate results by multi-phase computations than the other. Based on the computational results and comparisons, necessary of describing the phase-changing process and its influence on two major local physical features are
addressed. The local flow physics are then compared between multi-phase modelings.
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dc.description.tableofcontentsI Introduction 1
1.1 Flow fields around TVC 1
1.2 Wetness flow and nucleation phenomenon 7
1.3 Outline of thesis 9
II Numerical approaches 11
2.1 Governing equations for multi-phase flows 11
2.2 Spatial discretization scheme 15
2.3 Compact scheme for viscous flux 19
2.4 Time integration method 21
2.5 Equation of states 25
2.5.1 IAPWS formulation 26
2.5.2 SBTL method 30
2.6 Turbulence model 38
2.6.1 The Menters kw SST turbulence model 38
2.6.2 Compressibility correction 43
2.7 Phase-changing models 44
2.7.1 Nucleation model 44
2.7.2 Hertz-Knudsen equation based-model . . . . 59
2.7.3 Difference between phase-changing models and homogeneous nucleation 63
2.8 Adaptive mesh refinement technique 64
2.9 Higher order interpolation 71
III Numerical results 73
3.1 Numerical validations 73
3.1.1 Flow inside an ejector-nozzle 73
3.1.2 Condensing flows in a nozzle 74
3.2 Flow field inside TVC 81
3.2.1 Flow physics in Thermal Vapor Compressor 83
3.2.2 Three-dimensional effects 88
3.2.3 Grid dependence and AMR technique 89
3.2.4 Phase-changing phenomena and entrainment performance 94
3.2.5 Comparison of the phase-changing models 102
IV Conclusion 108
4.1 Summary 108
4.2 Future work 111
Abstract 120
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dc.formatapplication/pdf-
dc.format.extent10588495 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectMulti-phase computation-
dc.subjectPhase-changing model-
dc.subjectThermal Vapor Compressor-
dc.subject.ddc621-
dc.titleAccurate and Efficient Computations on Phase-changing Flows in Thermal Vapor Compressor-
dc.title.alternative열압축기 내 다상유동에 대한 정확하고 효율적인 수치해석 연구구-
dc.typeThesis-
dc.description.degreeDoctor-
dc.contributor.affiliation공과대학 기계항공공학부-
dc.date.awarded2018-02-
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