고압 급수 가열기의 피로해석에 관한 연구
DC Field | Value | Language |
---|---|---|
dc.contributor.author | 권정헌 | - |
dc.date.accessioned | 2017-02-22T05:23:37Z | - |
dc.date.available | 2017-02-22T05:23:37Z | - |
dc.date.issued | 2010 | - |
dc.date.submitted | 56933-12-04 | - |
dc.identifier.uri | http://kmou.dcollection.net/jsp/common/DcLoOrgPer.jsp?sItemId=000002174589 | ko_KR |
dc.identifier.uri | http://repository.kmou.ac.kr/handle/2014.oak/8644 | - |
dc.description.abstract | The objective of structural analysis is to verify the fatigue life of high pressure feedwater heater by using the thermo-mechanical analysis due to the operating pressure and thermal gradients at the event of cold start, warm start, hot start, shut down and load changes. The heater consists of tubesheet, shell and hemi-head. There are many perforated holes in tubesheet to connect U-type tubes. The tubesheet perforated region (ligament) was modeled as an equivalent solid plate. The heat transfer coefficients HTC derived from the Dittus-Boelter equation were given on the surface contacting with feedwater, and the HTC of tube out-surface in desuper heating zone were given on shell inner surface side. The three-dimensional, isoparametric elements were used to evaluate the fatigue life in the perforated region, hemi-head and shell. The appropriate high pressure feedwater heater operation pressures and temperatures were used for the analysis. The finite element analysis was used to evaluate stress levels and thermal gradients for the feedwater heater. Finite element analysis models were constructed for each analysis and consisted of nodes and elements representing the tubesheet solid, perforated regions, shell and hemi-head. The first step of analysis is to determine the internal temperature distribution (thermal gradients) as a function of time for all operating mode and the internal stresses were calculated for the critical temperature distributions with operating pressure. The second step is to calculate stress levels and evaluate code requirement and fatigue life. The heater is verified the integrity, became evaluated stresses satisfy the allowable stress and fatigue usage factors are not exceed 1.0. | - |
dc.description.tableofcontents | Abstract i Nomenclature ⅲ List of Tables ⅴ List of Figures ⅶ 1. 서론 1 1.1 연구 배경 1 1.2 연구 동향 2 1.3 연구 내용 및 목적 3 2. 탄성 유한요소 해석의 이론적 배경 5 3. 고압 급수가열기의 열-구조 피로해석 7 3.1 부분 모델 해석 8 3.1.1 유한요소 모델링 8 3.1.2 해석 조건 12 3.1.3 열전달 해석 17 3.1.3.1 열전달 해석에 대한 가정 17 3.1.3.2 열전달 계수 17 3.1.3.3 해석 결과 19 3.1.4 운전조건 시 강도 해석 24 3.1.4.1 솔리드 영역의 결과 값 29 3.1.4.2 튜브 구멍이 있는 영역의 결과 값 30 3.2 피로 강도 해석 33 3.2.1 솔리드 영역의 피로 누적 계수 33 3.2.2 튜브 구멍이 있는 영역의 피로 누적 계수 39 4. 결론 43 참고문헌 45 Appendix 1. History of Stress Intensity in All Transient Event 46 Appendix 2. Stress Linearization for Operation Condition at Cut A~N 54 Appendix 3. Calculation of Stress Range at Perforated Region 56 Appendix 4. Fatigue Evaluation at Perforated Region by using FATFOST 58 | - |
dc.language | kor | - |
dc.publisher | 한국해양대학교 대학원 | - |
dc.title | 고압 급수 가열기의 피로해석에 관한 연구 | - |
dc.title.alternative | A Study on the Fatigue Analysis of High Pressure Feedwater Heater | - |
dc.type | Thesis | - |
dc.date.awarded | 2010-08 | - |
dc.contributor.alternativeName | Kwon Jung Hun | - |
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