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Vo, Tina; Hammack, Rebekah – Journal of Science Teacher Education, 2022
National reform documents and shifts in educational standards have continued to highlight the importance of engineering and engineering practices within science literacy. High-quality engineering opportunities must be present in formal education due to their association with problem-solving and critical thinking. Given this directive to reach…
Descriptors: Academic Standards, Engineering, Scientific Literacy, Educational Quality
Theogene Niyomufasha; Celestin Ntivuguruzwa; Leon Rugema Mugabo – Cogent Education, 2024
The subject of physics can sometimes seem esoteric and challenging to engineering students. It would be beneficial to create a more conducive learning environment for them by combining words, mathematical equations, graphs, and diagrams to increase their problem-solving abilities. It has been demonstrated in mechanics that employing multiple…
Descriptors: Engineering Education, Problem Solving, Mathematics, Achievement Tests
Qing Guo; Junwen Zhen; Fenglin Wu; Yanting He; Cuilan Qiao – Journal of Educational Computing Research, 2025
The rapid development of large language models (LLMs) presented opportunities for the transformation of science and STEM education. Research on LLMs was in the exploratory phase, characterized by discussions and observations rather than empirical investigations. This study presented a framework for incorporating LLMs into Science and Engineering…
Descriptors: STEM Education, Computational Linguistics, Teaching Methods, Educational Change
Merrett, Craig G. – Advances in Engineering Education, 2023
Students should be exposed to open-ended, complex design challenges during their courses to better prepare the students for the design challenges that they will encounter during their careers. This preparation may be achieved by combining flipped classroom instruction, case based learning in an active classroom, and authentic assessments. Between…
Descriptors: Flipped Classroom, Classroom Techniques, Case Method (Teaching Technique), Introductory Courses
E. K. Bucholz – Biomedical Engineering Education, 2021
In the spring of 2020, brick and mortar colleges had to abruptly adapt to the reality of COVID-19 and transition to entirely online environments in a manner of weeks. This required a rapid (< 2 weeks) acquisition of knowledge and flexibility in using technology, most commonly Zoom. Upon completion of the semester, and after debriefing with…
Descriptors: Online Courses, Educational Environment, Biomedicine, Engineering Education
Obada, David O.; Bako, Raymond B.; Ahmed, Abdulkarim S.; Anafi, Fatai O.; Eberemu, Adrian O.; Dodoo-Arhin, David; Oyedeji, Ayodeji N.; Salami, Kazeem A.; Samuel, Bassey O.; Samuel, Emmanuel T.; Obada, Israel B. – Education and Information Technologies, 2023
Research and academia have been recently affected by the Coronavirus (COVID-19), and physical classrooms and laboratory experiments have been affected significantly due to the recent laboratory closures. This has led to innovative approaches to curb this problem. To address these difficulties in teaching bioengineering related courses that is of…
Descriptors: Engineering Education, Teaching Methods, Distance Education, Active Learning
Leung, Siu Ling; Hargrove, Brianne A.; Marsh, Eric R.; Gregg, Andrea R.; Thole, Karen A. – Advances in Engineering Education, 2020
Today's engineering laboratory education often lacks opportunities for students to practice critical thinking through real-world problems. This particular objective is even harder to achieve through online laboratory experiments. In this article, we summarize our innovation in using a real-world challenge, analyze big data, to empower student data…
Descriptors: COVID-19, Pandemics, Educational Change, Engineering Education
Jen, Tessaly; Morales, Christina; Greenwald, Eric; Montgomery, Ryan; Loper, Suzanna; Barber, Jacqueline – International Journal of Science Education, 2020
The United States' Next Generation Science Standards (NGSS) elevate engineering design to the same stature as scientific inquiry, calling on science teachers to engage students in engineering practices to solve real-world problems. In response, researchers and curriculum developers designed and studied Virtual Engineering Internships (VEIs) to…
Descriptors: Science Education, Standards, Engineering Education, Learner Engagement
Hitt, Sarah Jayne; Holles, Cortney E. P.; Lefton, Toni – Advances in Engineering Education, 2020
This article discusses two multidisciplinary courses created at the Colorado School of Mines that were developed to integrate ethics into the first-year engineering curriculum: "Nature and Human Values" (NHV) and "Innovation and Discovery in Engineering, Arts, and Sciences" (IDEAS). In both NHV and IDEAS, our objectives are to…
Descriptors: Design, Ethics, Engineering Education, Interdisciplinary Approach
Badraslioglu, Duruhan – Physics Teacher, 2016
One of the intermediate goals of STEM education has been turning our students into problem solvers and critical thinkers who are equipped with better scientific analysis skills. In light of this initiative, it is imperative that we, the educators, modify the way we teach classic introductory physics topics, and in the long run all sciences, and…
Descriptors: Introductory Courses, Physics, Engineering Education, STEM Education
Gunckel, Kristin L.; Tolbert, Sara – Journal of Research in Science Teaching, 2018
The push for STEM has raised the visibility of engineering as a discipline that all students should learn. With the release of the "Framework for K-12 Science Education" and the Next Generation Science Standards (NGSS), engineering now has an official place in the science curriculum. In both the "Framework" and the NGSS,…
Descriptors: Engineering Education, Science Instruction, Standards, Elementary Secondary Education
Jang, Hyewon – Journal of Science Education and Technology, 2016
Gaps between science, technology, engineering, and mathematics (STEM) education and required workplace skills have been identified in industry, academia, and government. Educators acknowledge the need to reform STEM education to better prepare students for their future careers. We pursue this growing interest in the skills needed for STEM…
Descriptors: STEM Education, Work Environment, Interrater Reliability, Engineering Education
O'Connell, Robert M. – IEEE Transactions on Education, 2015
Team-based learning (TBL) is a form of student-centered active learning in which students independently study new conceptual material before it is treated in the classroom, and then subsequently spend considerable classroom time working in groups on increasingly challenging problems and applications based on that new material. TBL provides…
Descriptors: Teamwork, Teaching Methods, Engineering Education, Transfer of Training
Householder, Daniel L., Ed.; Hailey, Christine E., Ed. – National Center for Engineering and Technology Education, 2012
Successful strategies for incorporating engineering design challenges into science, technology, engineering, and mathematics (STEM) courses in American high schools are presented in this paper. The developers have taken the position that engineering design experiences should be an important component of the high school education of all American…
Descriptors: High Schools, High School Students, Engineering, Design
Hayden, Nancy J.; Rizzo, Donna M.; Dewoolkar, Mandar M.; Neumann, Maureen D.; Lathem, Sandra; Sadek, Adel – Advances in Engineering Education, 2011
This paper presents a brief overview of the changes made during our department level reform (DLR) process (Grant Title: "A Systems Approach for Civil and Environmental Engineering Education: Integrating Systems Thinking, Inquiry-Based Learning and Catamount Community Service-Learning Projects") and some of the effects of these changes on…
Descriptors: Systems Approach, Engineering Education, Civil Engineering, Environmental Education