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Development of Heat Transfer Model for Horizontal U-Shaped Heat Exchanger Submerged in Pool : 수조 내 수평 U자형 열교환기에 대한 열전달 모델 개발

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dc.contributor.advisor박군철-
dc.contributor.authorSeong-Su Jeon-
dc.date.accessioned2017-07-13T06:00:06Z-
dc.date.available2017-07-13T06:00:06Z-
dc.date.issued2015-08-
dc.identifier.other000000066998-
dc.identifier.urihttps://hdl.handle.net/10371/118185-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 에너지시스템공학부, 2015. 8. 박군철.-
dc.description.abstractA horizontal U-shaped heat exchanger submerged in a large pool has been developed as a key equipment of passive safety systems such as PAFS, PCCS, and ECS. The reliable prediction of the heat exchanger heat transfer performance has been an important issue for the optimum design of the heat exchanger and the safety analysis of the nuclear power plants installed with these passive safety systems. In order to obtain a reliable prediction of the local heat transfer coefficients at the inside/outside tube wall and the heat removal performance of the heat exchanger in the PAFS, this study performed the heat transfer analysis using MARS-KS 1.2 and developed the heat transfer model package for the horizontal U-shaped heat exchanger submerged in a pool.
The heat transfer model package consisted of the horizontal in-tube condensation model and the natural convective nucleate boiling model on the horizontal U-shaped heat exchanger submerged in a pool. For the horizontal in-tube condensation model, this study assessed the predictive capability of the previous horizontal in-tube condensation heat transfer models for annular and stratified flows using various horizontal in-tube steam condensation experimental data. From the assessments of nineteen annular flow- and eleven stratified flow condensation models, it was found that the annular flow condensation model by Dobson and Chato (1998) and the stratified flow condensation model by Cavallini et al. (2006) were the most applicable models to the heat exchanger of the passive safety system. By replacing the models by Shah (1979) and Chato (1962) in the original MARS code with the models by Dobson-Chato (1998) and Cavallini et al. (2006), this study improved the predictive capability of MARS for the horizontal in-tube condensation heat transfer in the heat exchanger of the passive safety system.
For the natural convective nucleate boiling model, this study first investigated the predictive capability of the previous nucleate boiling models for the horizontal U-shaped HX submerged in a pool using the PASCAL data. From the assessments of seven nucleate pool boiling and eight forced convective boiling models, it was found that, among previous nucleate boiling models, there was no model applicable to the horizontal U-shaped heat exchanger submerged in a pool. Thus, this study investigated the nucleate boiling heat transfer mechanism on the horizontal U-shaped heat exchanger submerged in a pool, taking into account the PASCAL experimental data, MARS simulations and literature survey comprehensively. Furthermore, this study developed the nucleate boiling heat transfer model on the horizontal U-shaped heat exchanger submerged in a pool. From the validation results of the proposed nucleate boiling model against the PASCAL and ATLAS-PAFS data, it was found that the proposed nucleate boiling model predicted the experimental heat transfer coefficients well on the upper and lower parts of the U-shaped tube within a deviation of ±19 %. For the natural convection model, this study proposed the natural convection heat transfer model on the horizontal U-shaped HX submerged in a pool based on the PASCAL data. The proposed natural convection model satisfactorily predicted the heat transfer coefficients of the PASCAL within a deviation of ±33 %. Finally, this study developed the natural convective nucleate boiling model on the horizontal U-shaped heat exchanger submerged in a pool by combining the proposed nucleate boiling model and the natural convection model.
The proposed heat transfer model package on the horizontal U-shaped heat exchanger submerged in a pool was validated with the PASCAL, ATLAS-PAFS, and NOKO experimental data. The validation results revealed that the proposed model package could provide the improved prediction of the local heat transfer coefficients at the inside/outside tube wall and the heat removal performance of the heat exchanger in the passive safety systems, especially PAFS, compared to the default models in MARS-KS 1.2.
It is expected that the proposed heat transfer model package on the horizontal U-shaped heat exchanger submerged in a pool is applied to the best-estimate thermal-hydraulic analysis codes and thus contributes to the reliable design and the safety analysis of the passive safety system with this type of heat exchanger.
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dc.description.tableofcontentsAbstract i
List of Contents v
List of Tables viii
List of Figures ix

Chapter 1. Introduction 1
1.1 Background and Motivation 1
1.1.1 Passive Safety System with Horizontal U-shaped Heat Exchanger Submerged in Pool 1
1.1.2 Prediction Capability of Best-Estimate Thermal-Hydraulic Analysis Code on HX Heat Removal Performance 4
1.2 Objectives and Scope 6

Chapter 2. Improvement of MARS on Horizontal In-Tube Condensation Heat Transfer Model 15
2.1 State-of-the-Art 15
2.2 Review of Previous Condensation Models 16
2.2.1 Determination of Main Flow Regime 16
2.2.2 Stratified Flow Condensation Models 17
2.2.3 Annular Flow Condensation Models 20
2.3 Analysis Approach 25
2.3.1 Description of Collected Experiments 25
2.3.2 Data Classification according to Flow Regime 31
2.3.3 MARS Modeling of Collected Experiments 32
2.4 Results and Discussion 36
2.4.1 Simulation of Purdue-PCCS Experiment 37
2.4.2 Simulation of JAEA-PCCS Experiment 42
2.4.3 Simulation of PASCAL Experiment 46
2.4.4 Simulation of NOKO Experiment 49
2.5 Improvement of MARS on Horizontal In-Tube Condensation Heat Transfer Model 50
2.5.1 Selection of Annular Flow Condensation Model 50
2.5.2 Selection of Stratified Flow Condensation Model 52
2.5.3 Improvement of Horizontal In-Tube Condensation Model 53

Chapter 3. Development of Natural Convective Nucleate Boiling Model on Horizontal U-Shaped Heat Exchanger Submerged in Pool 97
3.1 State-of-the-Art 97
3.2 Review of Previous Nucleate Boiling Heat Transfer Correlations 99
3.2.1 Pool Boiling Correlations 99
3.2.2 Forced Convective Boiling Correlations 102
3.3 Analysis Approach 108
3.3.1 Description of Collected PAFS-Related Experiments 108
3.3.2 MARS Modeling of Collected Experiments 111
3.3.3 Applicability of MARS MULTID Component 113
3.4 Assessment of Previous Nucleate Boiling Correlations 114
3.5 Boiling Heat Transfer Mechanism of Horizontal U-Shaped HX Submerged in Pool 117
3.6 Prediction Method with BE Code 120
3.7 Development of Nucleate Boiling Model on Horizontal U-shaped Heat Exchanger Submerged in Pool 121
3.7.1 New Subcooled Pool Boiling Correlation 121
3.7.2 New Subcooled Forced Convective Boiling Correlation 124
3.7.3 Validation of Proposed Nucleate Boiling Model 127
3.8 Development of Natural Convective Nucleate Boiling Model on Horizontal U-shaped HX Submerged in Pool 129
3.8.1 MARS Nodalization for PASCAL Experiment 130
3.8.2 Assessment of Natural Convection and Nucleate Boiling Models 131
3.8.3 New Natural Convection Model 132
3.8.4 Development of Natural Convective Nucleate Boiling Model 134
3.9 Discussion 135
3.9.1 Low HTC at Position 2 in PASCAL Experiment 135
3.9.2 Applicability of Proposed Boiling Model to Bundle HX in PAFS 136


Chapter 4. Validation of Heat Transfer Model for Horizontal U-Shaped HX Submerged in Pool 166
4.1 Validation for PASCAL Experiment 166
4.1.1 MARS Modeling of PASCAL Experiment 166
4.1.2 Simulation Results 167
4.2 Validation for ATLAS-PAFS Experiment 169
4.2.1 MARS Modeling of ATLAS-PAFS Experiment 169
4.2.2 Simulation Results 170
4.3 Validation for NOKO Experiment 171
4.3.1 MARS Modeling of NOKO Experiment 171
4.3.2 Simulation Results 172

Chapter 5. Conclusions 185
5.1 Summary 185
5.2 Recommendations 188

Nomenclature 190
References 195
Appendix A. Prediction Capability of MARS MULTID for Natural Convection Flow in Pool 208
Appendix B. Validation of Convection Correlation for Multi-Dimensional Flow 215

국문 초록 221
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dc.formatapplication/pdf-
dc.format.extent5794628 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectHorizontal U-shaped heat exchanger-
dc.subjectPassive safety system-
dc.subjectPAFS-
dc.subjectCondensation model-
dc.subjectNatural convective nucleate boiling model-
dc.subjectMARS code-
dc.subjectPASCAL-
dc.subject.ddc622-
dc.titleDevelopment of Heat Transfer Model for Horizontal U-Shaped Heat Exchanger Submerged in Pool-
dc.title.alternative수조 내 수평 U자형 열교환기에 대한 열전달 모델 개발-
dc.typeThesis-
dc.contributor.AlternativeAuthor전성수-
dc.description.degreeDoctor-
dc.citation.pagesxi, 222-
dc.contributor.affiliation공과대학 에너지시스템공학부-
dc.date.awarded2015-08-
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