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Computational Analysis and Validatio...
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ProQuest Information and Learning Co.
Computational Analysis and Validation of Residual Stresses in a Dissimilar Metal Butt Weld.
紀錄類型:
書目-語言資料,手稿 : Monograph/item
正題名/作者:
Computational Analysis and Validation of Residual Stresses in a Dissimilar Metal Butt Weld./
作者:
Tran, Minh Ngoc.
面頁冊數:
1 online resource (143 pages)
附註:
Source: Dissertation Abstracts International, Volume: 79-01(E), Section: B.
標題:
Mechanical engineering. -
電子資源:
click for full text (PQDT)
ISBN:
9780355151978
Computational Analysis and Validation of Residual Stresses in a Dissimilar Metal Butt Weld.
Tran, Minh Ngoc.
Computational Analysis and Validation of Residual Stresses in a Dissimilar Metal Butt Weld.
- 1 online resource (143 pages)
Source: Dissertation Abstracts International, Volume: 79-01(E), Section: B.
Thesis (Ph.D.)--University of California, Davis, 2017.
Includes bibliographical references
External loads are often well understood and taken into account in the design of mechanical or structural components; however, there are other factors that can significantly affect the performance of materials, such as pre-existing defects and residual stresses. Those factors are usually difficult to detect and quantify, and thus they can be easily overlooked and ignored in the design phase. This work focuses on the residual stresses due to welding and was developed in the context of research with the nuclear power industry. We begin with an introduction of a weld process model, based on nonlinear finite element computation, to predict residual stresses due to the manufacturing process of a pressurizer surge nozzle, a component used in the cooling system of pressurized water reactors. In addition to weld residual stress produced in the course of manufacturing, plant components are subject to internal water pressure and elevated temperature during operation. Therefore, we next investigate the changes in weld residual stress state in the presence of internal pressure and temperature at operating conditions. In the end, the purpose of computing residual stress is often to determine its effect on component operability. For that reason, we also conduct fracture mechanics assessment to forecast the growth of cracks driven by the total stress at operating condition.
Electronic reproduction.
Ann Arbor, Mich. :
ProQuest,
2018
Mode of access: World Wide Web
ISBN: 9780355151978Subjects--Topical Terms:
557493
Mechanical engineering.
Index Terms--Genre/Form:
554714
Electronic books.
Computational Analysis and Validation of Residual Stresses in a Dissimilar Metal Butt Weld.
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Computational Analysis and Validation of Residual Stresses in a Dissimilar Metal Butt Weld.
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Source: Dissertation Abstracts International, Volume: 79-01(E), Section: B.
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External loads are often well understood and taken into account in the design of mechanical or structural components; however, there are other factors that can significantly affect the performance of materials, such as pre-existing defects and residual stresses. Those factors are usually difficult to detect and quantify, and thus they can be easily overlooked and ignored in the design phase. This work focuses on the residual stresses due to welding and was developed in the context of research with the nuclear power industry. We begin with an introduction of a weld process model, based on nonlinear finite element computation, to predict residual stresses due to the manufacturing process of a pressurizer surge nozzle, a component used in the cooling system of pressurized water reactors. In addition to weld residual stress produced in the course of manufacturing, plant components are subject to internal water pressure and elevated temperature during operation. Therefore, we next investigate the changes in weld residual stress state in the presence of internal pressure and temperature at operating conditions. In the end, the purpose of computing residual stress is often to determine its effect on component operability. For that reason, we also conduct fracture mechanics assessment to forecast the growth of cracks driven by the total stress at operating condition.
520
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It is important to obtain accurate weld residual stress information in order to develop an optimal strategy for plant management. However, there is no established, consensus approach for weld residual stress model validation, which could be used to judge weld model quality. This work provides technical detail of example approaches for weld residual stress model validation, and applies these approaches to a set of weld residual stress model outputs that were developed in the context of an industry round robin. The validation metrics for comparisons range from simple (e.g., evaluation of mechanical section forces) to complex (e.g., assessment of predicted crack growth behavior). Applying a range of validation approaches provides information for use within the technical community and to support development of a consensus approach for weld residual stress model validation.
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2018
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Mode of access: World Wide Web
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click for full text (PQDT)
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