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Qadir, Junaid; Al-Fuqaha, Ala – Education Sciences, 2020
In this paper, we strive to provide a primer for students on how to thrive and learn effectively in engineering education in the volatile, uncertain, complex, and ambiguous (VUCA) times following the onset of the COVID-19 global pandemic, which has disrupted the educational enterprise massively with universities physically closing in many parts of…
Descriptors: Engineering Education, COVID-19, Pandemics, College Students
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Kurubacak, Gulsun, Ed.; Altinpulluk, Hakan, Ed. – IGI Global, 2017
Novel trends and innovations have enhanced contemporary educational environments. When applied properly, these computing advances can create enriched learning opportunities for students. "Mobile Technologies and Augmented Reality in Open Education" is a pivotal reference source for the latest academic research on the integration of…
Descriptors: Educational Technology, Technology Uses in Education, Telecommunications, Handheld Devices
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Beck, Charles R. – Technology Teacher, 2009
One of the greatest mysteries of ancient times is how the Egyptians managed to raise huge obelisks using very simple technology. This remarkable task has puzzled engineers for thousand of years. After failing to raise an obelisk with simple machines, such as levers and pulleys, a team of modern engineers solved the mystery using a sandpit and the…
Descriptors: Engineering, Physics, Scientific Concepts, Models
McNeill, Barry W.; Bellamy, Lynn – 1995
This course workbook is designed to help students understand the principles of active learning, student assessment, and team training used in Arizona State University's core engineering curriculum. Eight sections focus on: (1) active learning, teaching and learning styles, and cooperative learning; (2) student assessment, levels of learning, and…
Descriptors: Active Learning, Cognitive Processes, Cognitive Style, Communication Skills
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Diefes-Dux, Heidi A.; Hjalmarson, Margret; Zawojewski, Judith S.; Bowman, Keith – Journal of STEM Education: Innovations and Research, 2006
Model-eliciting activities (MEA), specially designed client-drive, open-ended problems, have been implemented in a first-year engineering course and in secondary schools. The educational goals and settings are different, but the design of an MEA enables it to be versatile. This paper will introduce the reader to the principles that guide MEA…
Descriptors: STEM Education, Scientific Principles, Engineering Education, College Students