Laser Beam Welding of Stainless Steels: Experimentation, Modeling and optimization

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9783639701265: Laser Beam Welding of Stainless Steels: Experimentation, Modeling and optimization

The main objective of this research is to study the laser beam welding of stainless steels. During experimentation, a 1.1kW CW Nd:YAG laser is used to weld similar and dissimilar stainless steels in overlap and fillet joint configurations respectively. Various process parameters and their interactions effects on weld geometry and its mechanical properties are examined. Effects of energy density and line energy on the weld bead characteristics are investigated to understand certain energy dependent welding phenomena. Formation of solidification microstructures and the distribution pattern of the segregated alloying elements in the weld with varied energy input are studied and correlated with the corresponding change in local microhardness. In order to predict and optimize the laser welding of stainless steels used in automotive industry, full factorial design and response surface methodology are respectively used as a design of experiment approach to design the experiments, develop the mathematical models, and optimize the welding operation. Finally, a simplified energy-based model is developed for laser welding of ferritic stainless steels in overlap joint configuration.

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Dr. M.M.A. Khan is an Associate Professor of Industrial and Production Engineering Department, Shahjalal University of Science and Technology, Bangladesh. He received his PhD from the University of Pisa, Italy. His research areas of interest include manufacturing and process optimization. He has published articles in various international journals.

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Book Description Book Condition: New. Publisher/Verlag: Scholar's Press | Experimentation, Modeling and optimization | The main objective of this research is to study the laser beam welding of stainless steels. During experimentation, a 1.1kW CW Nd:YAG laser is used to weld similar and dissimilar stainless steels in overlap and fillet joint configurations respectively. Various process parameters and their interactions effects on weld geometry and its mechanical properties are examined. Effects of energy density and line energy on the weld bead characteristics are investigated to understand certain energy dependent welding phenomena. Formation of solidification microstructures and the distribution pattern of the segregated alloying elements in the weld with varied energy input are studied and correlated with the corresponding change in local microhardness. In order to predict and optimize the laser welding of stainless steels used in automotive industry, full factorial design and response surface methodology are respectively used as a design of experiment approach to design the experiments, develop the mathematical models, and optimize the welding operation. Finally, a simplified energy-based model is developed for laser welding of ferritic stainless steels in overlap joint configuration. | Format: Paperback | Language/Sprache: english | 218 gr | 220x150x8 mm | 152 pp. Bookseller Inventory # K9783639701265

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Book Description SPS Okt 2013, 2013. Taschenbuch. Book Condition: Neu. Neuware - The main objective of this research is to study the laser beam welding of stainless steels. During experimentation, a 1.1kW CW Nd:YAG laser is used to weld similar and dissimilar stainless steels in overlap and fillet joint configurations respectively. Various process parameters and their interactions effects on weld geometry and its mechanical properties are examined. Effects of energy density and line energy on the weld bead characteristics are investigated to understand certain energy dependent welding phenomena. Formation of solidification microstructures and the distribution pattern of the segregated alloying elements in the weld with varied energy input are studied and correlated with the corresponding change in local microhardness. In order to predict and optimize the laser welding of stainless steels used in automotive industry, full factorial design and response surface methodology are respectively used as a design of experiment approach to design the experiments, develop the mathematical models, and optimize the welding operation. Finally, a simplified energy-based model is developed for laser welding of ferritic stainless steels in overlap joint configuration. 152 pp. Englisch. Bookseller Inventory # 9783639701265

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Book Description SPS Okt 2013, 2013. Taschenbuch. Book Condition: Neu. Neuware - The main objective of this research is to study the laser beam welding of stainless steels. During experimentation, a 1.1kW CW Nd:YAG laser is used to weld similar and dissimilar stainless steels in overlap and fillet joint configurations respectively. Various process parameters and their interactions effects on weld geometry and its mechanical properties are examined. Effects of energy density and line energy on the weld bead characteristics are investigated to understand certain energy dependent welding phenomena. Formation of solidification microstructures and the distribution pattern of the segregated alloying elements in the weld with varied energy input are studied and correlated with the corresponding change in local microhardness. In order to predict and optimize the laser welding of stainless steels used in automotive industry, full factorial design and response surface methodology are respectively used as a design of experiment approach to design the experiments, develop the mathematical models, and optimize the welding operation. Finally, a simplified energy-based model is developed for laser welding of ferritic stainless steels in overlap joint configuration. 152 pp. Englisch. Bookseller Inventory # 9783639701265

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Book Description SPS Okt 2013, 2013. Taschenbuch. Book Condition: Neu. This item is printed on demand - Print on Demand Neuware - The main objective of this research is to study the laser beam welding of stainless steels. During experimentation, a 1.1kW CW Nd:YAG laser is used to weld similar and dissimilar stainless steels in overlap and fillet joint configurations respectively. Various process parameters and their interactions effects on weld geometry and its mechanical properties are examined. Effects of energy density and line energy on the weld bead characteristics are investigated to understand certain energy dependent welding phenomena. Formation of solidification microstructures and the distribution pattern of the segregated alloying elements in the weld with varied energy input are studied and correlated with the corresponding change in local microhardness. In order to predict and optimize the laser welding of stainless steels used in automotive industry, full factorial design and response surface methodology are respectively used as a design of experiment approach to design the experiments, develop the mathematical models, and optimize the welding operation. Finally, a simplified energy-based model is developed for laser welding of ferritic stainless steels in overlap joint configuration. 152 pp. Englisch. Bookseller Inventory # 9783639701265

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Book Description Scholars Press, United States, 2013. Paperback. Book Condition: New. Language: English . Brand New Book. The main objective of this research is to study the laser beam welding of stainless steels. During experimentation, a 1.1kW CW Nd:YAG laser is used to weld similar and dissimilar stainless steels in overlap and fillet joint configurations respectively. Various process parameters and their interactions effects on weld geometry and its mechanical properties are examined. Effects of energy density and line energy on the weld bead characteristics are investigated to understand certain energy dependent welding phenomena. Formation of solidification microstructures and the distribution pattern of the segregated alloying elements in the weld with varied energy input are studied and correlated with the corresponding change in local microhardness. In order to predict and optimize the laser welding of stainless steels used in automotive industry, full factorial design and response surface methodology are respectively used as a design of experiment approach to design the experiments, develop the mathematical models, and optimize the welding operation. Finally, a simplified energy-based model is developed for laser welding of ferritic stainless steels in overlap joint configuration. Bookseller Inventory # KNV9783639701265

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