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M. R. Islam; K. J. Chua – European Journal of Education, 2025
A concept-heavy engineering module was offered to introduce the experience of solving full-scale real-world energy-related engineering problems within a classroom environment and prepare students to be professionally ready for the industry. The widely practiced hybrid problem-based learning (h-PBL) pedagogical approach was adopted for the first 2…
Descriptors: Engineering Education, Problem Based Learning, Concept Formation, Energy
Sarah A. Wilson; Bradley J. Berron; Anastasia Hauser – Chemical Engineering Education, 2025
The bourbon production engineering course offers a comprehensive overview of chemical engineering to non-engineers. It emphasizes chemical engineering concepts such as material balances and mass transfer, making these concepts accessible and engaging. Students learn through targeted lessons on each unit operation and practical examples from grain…
Descriptors: Chemical Engineering, Agricultural Production, Engineering Education, Courses
Virginia Jiang; Matthew Lucia; Scott Banta; Christopher V. H.-H. Chen – Chemical Engineering Education, 2023
We developed a remote lab experience where freshmen grew and analyzed the activity of sourdough starters as a means of engaging with chemical engineering concepts. This six-week hands-on activity was targeted due to its low-cost, non-hazardous materials, and ability to be conducted safely in a non-laboratory setting. By designing the lab to be…
Descriptors: Chemical Engineering, Engineering Education, Distance Education, Laboratory Experiments
Streveler, Ruth A. – Advances in Engineering Education, 2022
Engineering educators strive to help students understand concepts that may be difficult and counterintuitive. This often entails helping students bring their understanding of how a phenomenon works into alignment with the scientifically-accepted explanation. For the most part, fostering conceptual change has been thought of as a process of…
Descriptors: Misinformation, Concept Formation, Engineering Education, Psychological Patterns
Cervantes Juárez, Erika; Sánchez Guzmán, Daniel – Physics Education, 2023
In many science and engineering undergraduate programmes, physics courses are fundamental and can be seen as a potential place where students can develop complementary abilities such as the computational thinking process. The present work proposes and describes the learning science and engineering with electronic spreadsheets cycle (LSEESC)…
Descriptors: Engineering Education, Spreadsheets, Science Education, Physics
Jung Han; Hyeong Kyun Park; Todd R. Kelley – Technology and Engineering Teacher, 2023
Engineering design has been central to technology education. Currently, online collaborative platforms for designers are widely used as digital forms of an engineer's notebook. However, traditional forms are still valued as the medium of engineering design during the conceptual phase of design since a paper notebook and pen or pencil allow…
Descriptors: Engineering Education, Notetaking, Design, Creative Thinking
Ozden Sengul – European Journal of Physics Education, 2023
This paper describes a student-centered approach to teaching and learning physics in a high school classroom. The teacher designs and uses a 5E learning cycle to teach series and parallel electric circuits. This article provides an example of the implementation of 5E model for a physics lesson to address three-dimensional learning-science and…
Descriptors: Physics, Science Instruction, Electronics, Teaching Methods
Murillo Hernández, José Alberto – International Journal of Mathematical Education in Science and Technology, 2022
In this paper a class of regular surfaces, generated by rotation and twist of a rigid line segment, is considered. Firstly a complete description of those surfaces by means of local charts is obtained and then its orientability is characterized in terms of the number of half-twists, taking into account their direction (clockwise or…
Descriptors: Geometry, Mathematics Instruction, College Mathematics, Undergraduate Study
Prince, Michael; Koretsky, Milo; Self, Brian; Vigeant, Margot – Chemical Engineering Education, 2020
Cognitive conflict arises when students' expectation about a physical situation, such as the relative temperatures of metal and cloth, are not experimentally verified. The paper reviews this approach as a tool for promoting conceptual learning in undergraduate engineering courses, through three case studies. These cases demonstrate that cognitive…
Descriptors: Undergraduate Students, Engineering Education, Teaching Methods, Cognitive Processes
Huffman, Tanner J.; Grubbs, Michael E.; Strimel, Greg J.; Gurganus, Jamie – Technology and Engineering Teacher, 2018
The "Advancing Excellence in P-12 Engineering Education" (AEEE) project has sought to provide direction on better detailing what secondary students should know, and approaches for educators to nurture such learning experiences. Through the "Excelling in Engineering" series, the AEEE leadership offers educators socially,…
Descriptors: Secondary School Students, Engineering Education, Concept Formation, STEM Education
Higuera-Martínez, Oscar Iván; Corazza, Giovanni Emanuele; Fernández-Samacá, Liliana – European Journal of Engineering Education, 2022
This article presents how Problem- and Project-Based Learning (PBL) in engineering education can exploit the theoretical framework of the Space-Time (ST)-Continuum, according to which educational contexts can be classified in terms of the tightness vs. looseness of the relevant conceptual space S and available time T. By crossing these two…
Descriptors: Problem Based Learning, Engineering Education, Teaching Methods, Intervention
Pérez-Sánchez, Modesto; Galstyan-Sargsyan, Ruzan; Pérez-Sánchez, M. Isabel; López-Jiménez, P. Amparo – Education Sciences, 2018
Some of the subjects have complex concepts, which are currently taught using deductive methods in the first years of University Degree. However, the experience shows the results obtained from students' learning goals were quite low. Therefore, the use of inductive method is a crucial factor to improve students' learning results and re-thinking the…
Descriptors: Engineering Education, Mechanics (Physics), Scientific Concepts, Concept Formation
Spektor, Michael; Buchanan, Walter W.; Wolf, Lawrence – American Journal of Engineering Education, 2018
Mechanical engineering, mechanical engineering technology, and related educational programs are not addressing in a sufficient way the principles associated with applying analytical investigations in solving actual engineering problems. Because of this, graduates do not have the adequate skills required to use the methods of applied dynamics in…
Descriptors: Job Skills, Engineering Technology, Engineering Education, Concept Formation
Davis, Martha E.; Cunningham, Christine M.; Lachapelle, Cathy P. – ZERO TO THREE, 2017
Engineering is Elementary (EiE) is a curriculum project of the Museum of Science, Boston, that promotes and supports engineering literacy and educational equity for all children. Building on the success of its award-winning curriculum for grades 1-5, the team has recently turned its attention to Wee Engineer, a research-based engineering…
Descriptors: Engineering Education, Museums, Preschool Education, Preschool Children
Woodcock, Andree; Osmond, Jane; Tovey, Michael; McDonagh, Deana – Design and Technology Education, 2019
Threshold concept models offer a useful way of understanding aspects of design education. A threshold concept represents a gateway, or portal, to a more developed understanding and level of capability (Meyer, Land & Davies, 2008). Passing through a threshold can be transformative, irreversible, integrative and troublesome. Key transformations…
Descriptors: Empathy, Design, Teaching Methods, Engineering Education