{"id":null,"code":"KTEK0034","name":{"valueFi":"Materials Engineering in Digital Manufacturing","valueEn":"Materials Engineering in Digital Manufacturing","valueSv":"Materials Engineering in Digital Manufacturing"},"credits":5.0,"minCredits":5,"maxCredits":5,"tags":[{"code":"KEKE","title":{"valueFi":"Kestävä kehitys","valueEn":"Sustainable development","valueSv":"Sustainable development"}},{"code":"YRI1","title":{"valueFi":"Yrittäjyysosaaminen","valueEn":"Entrepreneurship skills","valueSv":"-"}}],"createdAt":1790534741003,"contentList":[{"title":{"valueFi":"Osaamistavoitteet","valueEn":"Learning outcomes","valueSv":""},"content":{"valueFi":"Transform your future and ignite your passion for innovation with our \"Materials Engineering in Digital Manufacturing\" course! Dive deep into the essence of what Elon Musk famously recommended: \"Take Material Science 101. You won't regret it.\" Yet, in the realm of digital manufacturing, this advice becomes even more pivotal. Serving as a cornerstone of modern industrialization, digital manufacturing heralds a revolution in creating sustainable and efficient manufacturing processes. To be a real game-changer in the domain of digital manufacturing, engineers need essential materials engineering skills. Therefore, this course is custom-designed for students seeking a breadth of conceptual understanding of materials engineering concepts relevant to the most widely used digital manufacturing processes in society. This course isn't just educational—it's a gateway to becoming a pioneer in digitally manufacturing the impossible. \r\n\r\nUpon completion of this course, students shall have:\r\n\r\n1.\tGrasped the Essentials of Materials Engineering relevant for Digital Manufacturing: Mastered a comprehensive understanding of the foundational concepts in materials science that are critical for digital manufacturing, including varied materials classes (ceramic, metal and polymers), crystal structure, defects, imperfections, and solidification processes etc.\r\n2.\tMastered Microstructure Engineering for Enhanced Material Performance in Digital Manufacturing: Specialized in the concepts of microstructure engineering during digital manufacturing, powder metallurgy, and sintering, equipping themselves with the capability to engineer materials at the microscopic level for superior performance within digital manufacturing applications.\r\n3.\tSpecialized in Heat Treatment and Hot Isostatic Pressing for Material Customization in Digital Manufacturing: Acquired advanced skills in material transformation routes such as heat treatment and hot isostatic pressing, crucial for modifying material properties of digitally manufactured components to meet the specific demands of desired applications.\r\n4.\tGained Proficiency in Advanced Materials Analysis for Quality Assurance in Digital Manufacturing: Developed the ability to proficiently use varied materials characterization tools, ensuring an exceptional capability in assessing the quality of components and raw materials integral to digital manufacturing, thus guaranteeing superior production quality.\r\n5.\tNavigated the Complexity of Feedstock Material Selection for Optimized Digital Manufacturing Processes: Cultivated an adept understanding of selecting and applying various feedstock materials, including solids (wires and powders) and liquids (suspensions and precursors), recognizing their pivotal roles in enhancing and optimizing digital manufacturing techniques.","valueEn":"Transform your future and ignite your passion for innovation with our \"Materials Engineering in Digital Manufacturing\" course! Dive deep into the essence of what Elon Musk famously recommended: \"Take Material Science 101. You won't regret it.\" Yet, in the realm of digital manufacturing, this advice becomes even more pivotal. Serving as a cornerstone of modern industrialization, digital manufacturing heralds a revolution in creating sustainable and efficient manufacturing processes. To be a real game-changer in the domain of digital manufacturing, engineers need essential materials engineering skills. Therefore, this course is custom-designed for students seeking a breadth of conceptual understanding of materials engineering concepts relevant to the most widely used digital manufacturing processes in society. This course isn't just educational—it's a gateway to becoming a pioneer in digitally manufacturing the impossible. \r\n\r\nUpon completion of this course, students shall have:\r\n\r\n1.\tGrasped the Essentials of Materials Engineering relevant for Digital Manufacturing: Mastered a comprehensive understanding of the foundational concepts in materials science that are critical for digital manufacturing, including varied materials classes (ceramic, metal and polymers), crystal structure, defects, imperfections, and solidification processes etc.\r\n2.\tMastered Microstructure Engineering for Enhanced Material Performance in Digital Manufacturing: Specialized in the concepts of microstructure engineering during digital manufacturing, powder metallurgy, and sintering, equipping themselves with the capability to engineer materials at the microscopic level for superior performance within digital manufacturing applications.\r\n3.\tSpecialized in Heat Treatment and Hot Isostatic Pressing for Material Customization in Digital Manufacturing: Acquired advanced skills in material transformation routes such as heat treatment and hot isostatic pressing, crucial for modifying material properties of digitally manufactured components to meet the specific demands of desired applications.\r\n4.\tGained Proficiency in Advanced Materials Analysis for Quality Assurance in Digital Manufacturing: Developed the ability to proficiently use varied materials characterization tools, ensuring an exceptional capability in assessing the quality of components and raw materials integral to digital manufacturing, thus guaranteeing superior production quality.\r\n5.\tNavigated the Complexity of Feedstock Material Selection for Optimized Digital Manufacturing Processes: Cultivated an adept understanding of selecting and applying various feedstock materials, including solids (wires and powders) and liquids (suspensions and precursors), recognizing their pivotal roles in enhancing and optimizing digital manufacturing techniques.","valueSv":"Transform your future and ignite your passion for innovation with our \"Materials Engineering in Digital Manufacturing\" course! Dive deep into the essence of what Elon Musk famously recommended: \"Take Material Science 101. You won't regret it.\" Yet, in the realm of digital manufacturing, this advice becomes even more pivotal. Serving as a cornerstone of modern industrialization, digital manufacturing heralds a revolution in creating sustainable and efficient manufacturing processes. To be a real game-changer in the domain of digital manufacturing, engineers need essential materials engineering skills. Therefore, this course is custom-designed for students seeking a breadth of conceptual understanding of materials engineering concepts relevant to the most widely used digital manufacturing processes in society. This course isn't just educational—it's a gateway to becoming a pioneer in digitally manufacturing the impossible. \r\n\r\nUpon completion of this course, students shall have:\r\n\r\n1.\tGrasped the Essentials of Materials Engineering relevant for Digital Manufacturing: Mastered a comprehensive understanding of the foundational concepts in materials science that are critical for digital manufacturing, including varied materials classes (ceramic, metal and polymers), crystal structure, defects, imperfections, and solidification processes etc.\r\n2.\tMastered Microstructure Engineering for Enhanced Material Performance in Digital Manufacturing: Specialized in the concepts of microstructure engineering during digital manufacturing, powder metallurgy, and sintering, equipping themselves with the capability to engineer materials at the microscopic level for superior performance within digital manufacturing applications.\r\n3.\tSpecialized in Heat Treatment and Hot Isostatic Pressing for Material Customization in Digital Manufacturing: Acquired advanced skills in material transformation routes such as heat treatment and hot isostatic pressing, crucial for modifying material properties of digitally manufactured components to meet the specific demands of desired applications.\r\n4.\tGained Proficiency in Advanced Materials Analysis for Quality Assurance in Digital Manufacturing: Developed the ability to proficiently use varied materials characterization tools, ensuring an exceptional capability in assessing the quality of components and raw materials integral to digital manufacturing, thus guaranteeing superior production quality.\r\n5.\tNavigated the Complexity of Feedstock Material Selection for Optimized Digital Manufacturing Processes: Cultivated an adept understanding of selecting and applying various feedstock materials, including solids (wires and powders) and liquids (suspensions and precursors), recognizing their pivotal roles in enhancing and optimizing digital manufacturing techniques."}},{"title":{"valueFi":"Sisältö","valueEn":"Content","valueSv":""},"content":{"valueFi":"The aim of the course is to provide an overview of various material science and engineering principles that are relevant in digital manufacturing such as solidification behaviour, microstructure engineering, the interplay between material properties, mechanical requirements, and production etc. This course will cover the following aspects:\r\n\r\n1.\tIntroduction to various class of materials used in digital manufacturing (Polymers, Metals, Ceramics, Cermets, Composites (Metal matrix, Ceramic matrix, polymer matrix etc.))\r\n2.\tRevisiting basics of materials engineering concepts (Atomic Bonding, Crystal Systems, Imperfections in Solids, Diffusion, Dislocations and Strengthening Mechanisms) \r\n3.\tSolidification & phase transformation in digital manufacturing \r\n4.\tPowder metallurgy and sintering in digital manufacturing \r\n5.\tMicrostructure (defect, grains) engineering\r\n6.\tAdvanced materials characterization tools used to study digitally manufactured components\r\n7.\tFeedstock materials for digital manufacturing: Solid (wire & powder), Liquid (Suspension & Solution precursor), Significance of various feedstock characteristics in digital manufacturing processes\r\n8.\tHeat treatment and hot isostatic pressing of materials in digital manufacturing","valueEn":"The aim of the course is to provide an overview of various material science and engineering principles that are relevant in digital manufacturing such as solidification behaviour, microstructure engineering, the interplay between material properties, mechanical requirements, and production etc. This course will cover the following aspects:\r\n\r\n1.\tIntroduction to various class of materials used in digital manufacturing (Polymers, Metals, Ceramics, Cermets, Composites (Metal matrix, Ceramic matrix, polymer matrix etc.))\r\n2.\tRevisiting basics of materials engineering concepts (Atomic Bonding, Crystal Systems, Imperfections in Solids, Diffusion, Dislocations and Strengthening Mechanisms) \r\n3.\tSolidification & phase transformation in digital manufacturing \r\n4.\tPowder metallurgy and sintering in digital manufacturing \r\n5.\tMicrostructure (defect, grains) engineering\r\n6.\tAdvanced materials characterization tools used to study digitally manufactured components\r\n7.\tFeedstock materials for digital manufacturing: Solid (wire & powder), Liquid (Suspension & Solution precursor), Significance of various feedstock characteristics in digital manufacturing processes\r\n8.\tHeat treatment and hot isostatic pressing of materials in digital manufacturing","valueSv":"The aim of the course is to provide an overview of various material science and engineering principles that are relevant in digital manufacturing such as solidification behaviour, microstructure engineering, the interplay between material properties, mechanical requirements, and production etc. This course will cover the following aspects:\r\n\r\n1.\tIntroduction to various class of materials used in digital manufacturing (Polymers, Metals, Ceramics, Cermets, Composites (Metal matrix, Ceramic matrix, polymer matrix etc.))\r\n2.\tRevisiting basics of materials engineering concepts (Atomic Bonding, Crystal Systems, Imperfections in Solids, Diffusion, Dislocations and Strengthening Mechanisms) \r\n3.\tSolidification & phase transformation in digital manufacturing \r\n4.\tPowder metallurgy and sintering in digital manufacturing \r\n5.\tMicrostructure (defect, grains) engineering\r\n6.\tAdvanced materials characterization tools used to study digitally manufactured components\r\n7.\tFeedstock materials for digital manufacturing: Solid (wire & powder), Liquid (Suspension & Solution precursor), Significance of various feedstock characteristics in digital manufacturing processes\r\n8.\tHeat treatment and hot isostatic pressing of materials in digital manufacturing"}},{"title":{"valueFi":"Suoritustavat","valueEn":"Study methods","valueSv":""},"content":{"valueFi":"Hybrid, in-person and Online (live and pre-recorded) lectures, project work and seminars.","valueEn":"Hybrid, in-person and Online (live and pre-recorded) lectures, project work and seminars.","valueSv":""}},{"title":{"valueFi":"Toteutustavat","valueEn":"Course unit methods","valueSv":""},"content":{"valueFi":"Hybrid, in-person and Online (live and pre-recorded) lectures, project work and seminars.","valueEn":"Hybrid, in-person and Online (live and pre-recorded) lectures, project work and seminars.","valueSv":""}},{"title":{"valueFi":"Oppimateriaalit","valueEn":"Learning material","valueSv":""},"content":{"valueFi":"Lecture materials provided by teacher, scientific publications, pre-recorded lecture videos, online videos and following books:\r\n\r\n1.\tMaterials Science and Engineering: An Introduction, William D. Callister, Jr.\r\n2.\tPowder Metallurgy & Particulate Materials Processing (2005) by B. German (ISBN: 0-97620571-8)","valueEn":"Lecture materials provided by teacher, scientific publications, pre-recorded lecture videos, online videos and following books:\r\n\r\n1.\tMaterials Science and Engineering: An Introduction, William D. Callister, Jr.\r\n2.\tPowder Metallurgy & Particulate Materials Processing (2005) by B. German (ISBN: 0-97620571-8)","valueSv":""}},{"title":{"valueFi":"Lisätiedot","valueEn":"Further information","valueSv":""},"content":{"valueFi":"","valueEn":"","valueSv":""}},{"title":{"valueFi":"Kurssikirjallisuus","valueEn":"Literature","valueSv":""},"content":{"valueFi":"1. Materials Science and Engineering: An Introduction, William D. Callister, Jr. 978-1119278566\n2. Powder Metallurgy & Particulate Materials Processing (2005) by B. German  0-97620571-8","valueEn":"1. Materials Science and Engineering: An Introduction, William D. Callister, Jr. 978-1119278566\n2. Powder Metallurgy & Particulate Materials Processing (2005) by B. German  0-97620571-8","valueSv":"1. Materials Science and Engineering: An Introduction, William D. Callister, Jr. 978-1119278566\n2. Powder Metallurgy & Particulate Materials Processing (2005) by B. German  0-97620571-8"}},{"title":{"valueFi":"Esitietovaatimukset","valueEn":"Qualifications","valueSv":""},"content":{"valueFi":"BSc degree in engineering or Science","valueEn":"BSc degree in engineering or Science","valueSv":""}},{"title":{"valueFi":"Arviointiasteikko","valueEn":"Assessment scale","valueSv":""},"content":{"valueFi":"0-5","valueEn":"0-5","valueSv":"0-5"}},{"title":{"valueFi":"Arviointikriteerit","valueEn":"Assessment criteria","valueSv":""},"content":{"valueFi":"Quizzes, Project (Report and Seminar) and student activity which will be discussed as the course starts.\r\n\r\nThere will be no written final exam.\r\n\r\nGrading/weightage:\t\t\t\t\t\t\r\n•Quiz (30%) + Project (40%) + student activity (30%) \r\n•Passing Threshold: 50%\r\n•Grades: 0/fail (<50%) 1 (50%-60%), 2 (60%-70%), 3 (70%-80%), 4 (80%-90%), 5 (90%-100%)","valueEn":"Quizzes, Project (Report and Seminar) and student activity which will be discussed as the course starts.\r\n\r\nThere will be no written final exam.\r\n\r\nGrading/weightage:\t\t\t\t\t\t\r\n•Quiz (30%) + Project (40%) + student activity (30%) \r\n•Passing Threshold: 50%\r\n•Grades: 0/fail (<50%) 1 (50%-60%), 2 (60%-70%), 3 (70%-80%), 4 (80%-90%), 5 (90%-100%)","valueSv":""}},{"title":{"valueFi":"Arviointikriteerit 2","valueEn":"Assessment criteria 2","valueSv":""},"content":{"valueFi":"","valueEn":"","valueSv":""}},{"title":{"valueFi":"Arviointikriteerit 3","valueEn":"Assessment criteria 3","valueSv":""},"content":{"valueFi":"","valueEn":"","valueSv":""}},{"title":{"valueFi":"Arviointikriteerit 4","valueEn":"Assessment criteria 4","valueSv":""},"content":{"valueFi":"","valueEn":"","valueSv":""}},{"title":{"valueFi":"Kielet","valueEn":"Languages","valueSv":""},"content":{"valueFi":"englanti","valueEn":"English","valueSv":"engelska"}},{"title":{"valueFi":"Taso","valueEn":"Level","valueSv":""},"content":{"valueFi":"Syventävät opinnot","valueEn":"Advanced Studies","valueSv":""}},{"title":{"valueFi":"Oppiaine","valueEn":"Subject","valueSv":""},"content":{"valueFi":"Konetekniikka","valueEn":"Mechanical Engineering","valueSv":"Mechanical Engineering"}},{"title":{"valueFi":"Vastuuhenkilöt","valueEn":"Person in charge","valueSv":""},"content":{"valueFi":"Ashish Ganvir","valueEn":"Ashish Ganvir","valueSv":"Ashish Ganvir"}},{"title":{"valueFi":"Luokittelu","valueEn":"Classification","valueSv":""},"content":{"valueFi":"Kestävä kehitys, Yrittäjyysosaaminen","valueEn":"Sustainable development, Entrepreneurship skills","valueSv":"Sustainable development, -"}},{"title":{"valueFi":"Linkit","valueEn":"Links","valueSv":""},"content":{"valueFi":"","valueEn":"","valueSv":""}}]}