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Canan Mesutoglu; Dury Bayram; Annemieke Vennix; Anne Limburg; Jan van der Veen – European Journal of Engineering Education, 2024
Higher engineering education programmes increasingly include courses characterised by real-world problems and student collaboration in multidisciplinary teams. Research findings demonstrate that students remain limited in perceiving and meaningfully bridging disciplinary differences in these course contexts. Drawing on the literature on boundaries…
Descriptors: Interdisciplinary Approach, Physics, Engineering, Engineering Education
Penelope Georges; Sami Kahn – Biomedical Engineering Education, 2025
Rapid advancements in bioengineering call for broad public literacy to help individuals better understand the changes these technologies bring to our lives. However, making bioengineering concepts accessible and relevant, especially to non-science majors, is often challenging. To address this challenge, we designed a general education course aimed…
Descriptors: Biology, Engineering, Engineering Education, Teaching Methods
Driessen, Emily P.; Wilhelm, Jennifer; Cole, Merryn; Dunn, Ashley; Anderson, Kameisha – Journal of Educational Research, 2023
K-12 science teachers in the United States are encouraged to teach their students engineering. When incorporating engineering into their science curricula, teachers commonly either focus on: (1) engineering and lace science throughout; or (2) science and lace engineering throughout. This study explores middle school students' nature of engineering…
Descriptors: Middle School Students, Engineering Education, Science Curriculum, Student Attitudes
Robert J. Fisher – Chemical Engineering Education, 2025
Strategies are proposed that promote use of an Integrated Applied Mathematics (IAM) approach to enhance teaching of advanced problem-solving and analysis skills. Three scenarios of 1-dimensional transport processes are presented that support using Error Function analyses when considering short time/small penetration depths in finite geometries.…
Descriptors: Chemical Engineering, Mathematics, Problem Solving, Skill Development
Rocio Ramos-Rodriguez; Maria Calle; Garis Coronell; John E. Candelo Becerra – IEEE Transactions on Education, 2024
Contribution: Team-based learning (TBL) with a transdisciplinary (TD) approach is applied in one introductory programming course with different cohorts. The approach reduces the failure rate in the course. In addition, the approach helped students understand the application of programming to different engineering professional areas. Background:…
Descriptors: Interdisciplinary Approach, Teamwork, Programming, Introductory Courses
Seth, Arjit; Redonnet, Stephane; Liem, Rhea P. – IEEE Transactions on Education, 2023
Contribution: A multidisciplinary computational framework to support undergraduate engineering education is introduced. It is posed as an open-source tool that students can use to understand and apply computational methods commonly required in engineering problems. Background: This framework development is motivated by past experiences of teaching…
Descriptors: Engineering Education, Undergraduate Students, Aerospace Education, Teaching Methods
Guajardo-Cuéllar, Alejandro; Vázquez, Carlos Renato; Navarro Gutiérrez, Manuel – Education Sciences, 2022
Design of Mechanism is a standard subject in Mechatronics and Mechanical Engineering majors. Different methods and tools are used by lecturers to teach the subject. In this work, we investigate the impact on the competencies development by implementing a project-based learning methodology in a mechanism course. For this, we analyze the performance…
Descriptors: Engineering, Engineering Education, Mechanics (Physics), Student Projects
Sinan Onal; Derya Kulavuz-Onal – Journal of Educational Technology Systems, 2024
This paper examines the potential uses of ChatGPT in generating assessment tasks that can be used across different disciplines in higher education. To illustrate this, we provide examples from three courses in the disciplines of industrial engineering and applied linguistics: Project Analysis and Control, Manufacturing Processes, and Introduction…
Descriptors: Teaching Methods, Higher Education, Artificial Intelligence, Synchronous Communication
Kaygan, Pinar – International Journal of Technology and Design Education, 2023
This article aims to expand our knowledge on interdisciplinary design education by focusing on team development, which has remained a less explored aspect of interdisciplinary collaboration so far. An interdisciplinary design studio course, Collaborative Design, for food engineering and industrial design students in higher education provides the…
Descriptors: Interdisciplinary Approach, Design, Food, Engineering Education
Ralph, Benjamin James; Woschank, Manuel; Pacher, Corina; Murphy, Mariaelena – European Journal of Engineering Education, 2022
While the fourth industrial revolution continues to change manufacturing enterprises all over the world, not all enabling key technologies are taught sufficiently at universities. For this purpose, a new lecture at the Montanuniversität Leoben was designed, teaching students of miscellaneous engineering disciplines, the fundamentals of…
Descriptors: Evidence Based Practice, Engineering Education, Foreign Countries, College Instruction
Canan Mesutoglu; Durdane Bayram-Jacobs; Johanna Vennix; Anne Limburg; Birgit Pepin – Research in Science & Technological Education, 2024
Background: In responding to the global problems facing humankind, there is great value in equipping science and engineering students with skills to function well in multidisciplinary teams. Little attention has been paid into the factors that influence multidisciplinary collaboration and teamwork of science and engineering students. Purpose: This…
Descriptors: Teamwork, Physics, Engineering Education, Problem Based Learning
Vanessa Begat – ProQuest LLC, 2024
Globally, the demand for people prepared to enter Science, Technology, Engineering and Math (STEM) careers is increasing. To help fill this demand, many formal and informal STEM educational interventions have been implemented in the K-12 domain. However, due to the lack of a clearly defined framework for documenting the nature and scope of the…
Descriptors: STEM Education, Intervention, Engineering Education, Curriculum Development
Elissa Milto; Chelsea Andrews; Merredith Portsmore; Christopher Wright – Eye on Education, 2025
"Introducing Engineering to K-8 Students" will provide you with the tools you need to incorporate engineering design into your classroom. Rather than prescribing a specific curriculum to follow, this book will help you engage your students with hands-on, open-ended engineering design problems that can be easily integrated into your…
Descriptors: Engineering, Design, Middle School Teachers, Elementary School Teachers
Samardzic, Natasa M.; Sekulic, Dalibor L. – IEEE Transactions on Education, 2022
Contribution: This article presents the innovative prototypes used in materials and fabrication technologies in medical devices (MFTIMD) laboratory course, under the curriculum of Biomedical (BME) and Electrical Engineering (EE) undergraduate studies. A special part of the course is devoted to state-of-the-art topics, such as flexible and wearable…
Descriptors: Undergraduate Students, Engineering Education, Biomedicine, Instructional Materials
Kelly Schucker; Mary B. Mcvee; Christopher J. Jarmark; Lynn E. Shanahan – Pedagogies: An International Journal, 2024
Situated in an elementary afterschool Engineering Literacies Club framed around multiliteracies and the engineering design process, this article explores engineering habits of mind and disciplinary literacies. Disciplinary literacies encourage students to read, write, think, and act like historians, mathematicians, scientists, or engineers by…
Descriptors: After School Programs, Elementary School Science, Elementary Schools, Engineering Education