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Showing 1 to 15 of 179 results Save | Export
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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
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Paige, Myela; Schauer, Anastasia; Klesmith, Zoe; Davis, Alexis; Fu, Katherine – Advances in Engineering Education, 2023
In many mechanical engineering undergraduate curriculums, there are topics that are vital to the students' future careers in the manufacturing and design workforce that are not taught in-depth. As one of those topics, Geometric Dimensioning and Tolerancing, or GD&T, is vital to companies who develop and manufacture products because it allows…
Descriptors: Undergraduate Students, Engineering Education, Experiential Learning, Geometry
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Cosgrove, Thomas; O'Reilly, John – European Journal of Engineering Education, 2020
Engineering education is appropriately concerned with technical problem solving. However, the philosophical tradition has periodically asserted that technical rationality is but one mode of rationality. Informed by experience in both design practice and engineering education the authors agree with Donald Schön that professional artistry is an…
Descriptors: Epistemology, Engineering Education, Outcomes of Education, Creativity
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Frederick R. Missel; Jeremy V. Ernst; Daniel P. Kelly; Erik Schettig; Aaron C. Clark – Technology and Engineering Teacher, 2023
For students to gain the most out of education, they need to form long-term memories from experiences gained through active learning. The greatest distinction between active learning and traditional approaches involves the types of tasks and problems the students are challenged to solve. Active learning activities should be structured with student…
Descriptors: Active Learning, Engineering Education, Computer Graphics, Design
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Gregory Amato; Natalia Vargas Perdomo; Nianyue Zhang; Xiaoshi Xie; Jie Ji; Cansu Bolukbas; Zhen Wen; Rafik Naccache; Yuan Fang; Diana Consuelo Rodri´guez Burbano; Oleksandr Ivasenko; Louis Cuccia – Journal of Chemical Education, 2023
Since 2012, when triboelectric nanogenerators (TENGs) were first reported by Wang and co-workers, various applications have taken advantage of their ability to transform mechanical energy into electrical energy. TENG applications cover many fields, including electronics, physics, materials science, and engineering. The differences in the language…
Descriptors: Energy, Chemistry, Science Instruction, Active Learning
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Elizabeth A. Bullard; Christina R. Dubell; Charles W. Patrick; Frances S. Ligler; Michael J. McShane – Biomedical Engineering Education, 2024
Biomedical engineering (BME) spans a wide range of research fields and professional activities. Most BME departments use a seminar series to introduce graduate students to exciting research conducted outside their own university, learn about professional opportunities, and enhance their understanding of related topics (e.g., ethics in BME,…
Descriptors: Learner Engagement, Graduate Students, Seminars, Scaffolding (Teaching Technique)
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Boutilier, Justin J.; Chan, Timothy C. Y. – INFORMS Transactions on Education, 2023
Artificial intelligence (AI) and operations research (OR) have long been intertwined because of their synergistic relationship. Given the increasing popularity of AI and machine learning in particular, we face growing demand for educational offerings in this area from our students. This paper describes two courses that introduce machine learning…
Descriptors: Artificial Intelligence, Operations Research, Undergraduate Students, Engineering Education
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Mercat, Christian – Open Education Studies, 2022
This introduction presents Active Learning Methodology, surveying its history, main existing tools and supporting evidence, with an emphasis on mathematics and higher education, in particular engineering studies. This work is part of the DrIVE-Math project, developing innovative mathematical teaching strategies in engineering studies.
Descriptors: Active Learning, Classroom Techniques, Engineering Education, Higher Education
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Stuart White – International Journal of Designs for Learning, 2024
In 2017 Purdue evGrand Prix hired a K-12 Indiana public educator (the author) to write instructional material that could be implemented into participating teams' high school science and engineering classrooms. The goal was to create science-based integrated STEM learning experiences that complement the construction and racing of a 48-volt electric…
Descriptors: Novices, Decision Making, Instructional Materials, Material Development
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Jamieson, Marnie V. – Journal of Chemical Education, 2020
The COVID-19 pandemic public health measures caused a shift to fully online teaching and learning with minimal lead time two-thirds of the way through a 13 week term. Students and instructors pivoted from blended with face-to-face instruction to fully online learning over a weekend. Our team- and project-based chemical engineering design courses…
Descriptors: Electronic Learning, Chemical Engineering, Engineering Education, COVID-19
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Hirshfield, Laura J.; Mayes, Heather B. – Chemical Engineering Education, 2019
With the advance of engineering education research and scholarship, there has been an increased focus on amending chemical engineering courses to increase student learning, engagement and enjoyment. These approaches are often incorporated in project-based courses such as capstone design courses and laboratory courses, providing opportunities to…
Descriptors: Undergraduate Students, Chemical Engineering, Engineering Education, Inclusion
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Pearl, Sandra; Bless, Elizabeth – Science and Children, 2021
The activity presented in this article is an engaging engineering challenge that has been conducted with third- through fifth-grade students in school classrooms and during after-school programs. This article describes the hands-on activity as appropriate for fifth graders that supports the "Next Generation Science Standards." This…
Descriptors: Elementary School Students, Engineering Education, Grade 3, Grade 4
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Christensen, Brad – Technology and Engineering Teacher, 2021
The value of doing projects as a vehicle for instruction has been integral to technology and engineering classes for decades. With the increased emphasis on STEM, project-based learning is becoming more popular with all teachers. Realistically, classrooms can be limited, however, in the tools, materials, and processes needed for project-based…
Descriptors: STEM Education, Art Education, Student Projects, Active Learning
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Harshbarger, Dena; Wiechman, Joseph – Science and Children, 2021
This article describes a force and motion unit that spanned four weeks (50 minutes a day) in a fifth-grade classroom. The inquiry-based learning progression mirrors Piaget's Theory of Cognitive Development (1952) because it allowed students to manipulate materials and ideas as they actively constructed and reconstructed their knowledge of motion…
Descriptors: Grade 5, Elementary School Science, Engineering Education, Physics
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Sedaghat, Ahmad; Al Shalabi, Ammar; Eilaghi, Armin; Assad, M. El Haj – Journal of Problem Based Learning in Higher Education, 2018
A useful project is identified for the semester-four diploma students in their final workshop of mechanical engineering program in the school of engineering at Australian college of Kuwait (ACK). ACK is putting significant emphasis in project based learning (PBL) and is developing new courses for both diploma and degree programs according to PBL…
Descriptors: Engineering Education, Engineering, Design, Workshops
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