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Improved Resonance Treatment for WIMS-Library-based nTRACER Direct Whole Core Calculation : WIMS 라이브러리 기반 nTRACER 직접 전노심 계산을 위한 공명 처리법 개선

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dc.contributor.advisorProf. Joo Han Gyu-
dc.contributor.author바챠미르-
dc.date.accessioned2017-07-13T06:00:13Z-
dc.date.available2017-07-13T06:00:13Z-
dc.date.issued2015-08-
dc.identifier.other000000067228-
dc.identifier.urihttps://hdl.handle.net/10371/118187-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 에너지시스템공학부, 2015. 8. Joo Han Gyu.-
dc.description.abstractThe resonance treatment methods based on the resonance integral data are improved for the applications to the nTRACER direct whole core calculation code in which the WIMS-IAEA library is to be optionally used. The Dancoff factor based equivalence theory is implemented via the background cross sections (XSs) evaluated by the enhanced neutron current method. A new resonance interference treatment method, based on the intermediate resonance (IR) representation of the flux spectrum, is introduced to generate the resonance interference factors (RIFs) on-the-fly. The concept of resonance escape probability is also introduced to incorporate the spectrum reduction effect below each resonance in the low energy range. The temperature feedback effect on resonance self-shielding is incorporated by a linear interpolation on the RIFs.
The performance of the WIMS library based nTRACER calculation is examined by comparing the groupwise XSs with McCARD tallied XSs for homogeneous configurations. A maximum reactivity error amounting about 50pcm is observed in the resonance range. For 3x3 mini-core and quarter core problems based on the VERA benchmark specifications, the assembly and pin power distributions are compared with the KENO-VI results. With the in-scattering based transport correction which is newly added to the epithermal range of the primary scattering isotopes, the error in the power distribution is reduced significantly.
The performance of the on-the-fly RIF method is examined for homogeneous mixtures with four resonant nuclides. RIFs are compared and verified with reference RIFs generated from the two ultrafine group slowing down calculations for a resonant nuclide: one in mixture and the other in isolated configuration. The RIFs and the XSs show good agreement with the McCARD results. The multiplication factors for the homogeneous configurations show good agreement with the reference. The incorporation of temperature feedback effects shows good agreement. The performance of the method for the heterogeneous configuration is examined for VERA benchmark pin cells. The XSs are compared for VERA pin cell (1A) with McCARD while the reactivity is examined for all other pin cell problems. The results show good agreement with the reference. The method is further examined for heterogeneous burned fuel configuration with only four major resonant nuclides. The method gives large improvements in XSs. The method shows quite good results for the homogeneous as well as heterogeneous problems.
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dc.description.tableofcontentsAcknowledgements 1
Abstract ii
Contents v
List of Tables vii
List of Figures viii
Acronyms xii
Chapter 1. Introduction 1
1.1 Background 2
1.2 Previous Researches 4
1.3 Objectives and Scopes 6
Chapter 2. nTRACER Methodology and WIMS Library Structure 9
2.1 nTRACER Methodology 9
2.2 WIMS Library 12
2.2.1 Cross Sections 14
Chapter 3. Resonance Integral Based Self-Shielding 21
3.1 General 21
3.2 Resonance in a Homogeneous Medium 21
3.3 Resonance in Heterogeneous Medium 29
3.4 Resonance Integrals and Resonance Cross Sections 32
3.5 Enhanced Neutron Current Method 36
3.5.1 Theory 37
3.5.2 Calculation Procedure 44
Chapter 4. Verifications of nTRACER with WIMS Library 47
4.1 Verification of Dancoff Factors 49
4.2 Homogeneous Problem 51
4.3 Pin Cell Problems 56
4.4 3?3 Assembly Mini Core Problem 58
4.5 2-D Quarter Core Problem 62
Chapter 5. Resonance Interference Treatment with Point-wise Cross Sections 69
5.1 Theory 69
5.2 Point-wise Cross Sections Table Generation 74
5.3 Resonance Absorption and Escape Probabilities 75
Chapter 6. Performance Examination 81
6.1 General 81
6.1.1 Homogeneous Pin Cell Problem 81
6.1.2 VERA Benchmark Problems 99
6.1.3 Heterogeneous Pin Cell with Burned Fuel 103
Chapter 7. Conclusions 108
References 110
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dc.formatapplication/pdf-
dc.format.extent1941591 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectDancoff Correction Factors-
dc.subjectNeutron Enhanced Current Method-
dc.subjectIntermediate Resonance Approximation-
dc.subjectOn-the-Fly Resonance Interference Factors-
dc.subjectResonance Escape Probability-
dc.subject.ddc622-
dc.titleImproved Resonance Treatment for WIMS-Library-based nTRACER Direct Whole Core Calculation-
dc.title.alternativeWIMS 라이브러리 기반 nTRACER 직접 전노심 계산을 위한 공명 처리법 개선-
dc.typeThesis-
dc.description.degreeDoctor-
dc.citation.pages113-
dc.contributor.affiliation공과대학 에너지시스템공학부-
dc.date.awarded2015-08-
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