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Loh, A. P.; Law, Elliot; Putra, Andi Sudjana; Koh, Edwin; Zuea, Tang Kok; Tat, Khoo Eng – Advances in Engineering Education, 2021
A quick literature survey shows that Engineering education has been undergoing change since more than a hundred years ago, largely due to the needs of industry. The current drive for change is not very different and comes from the perception that Engineering graduates of today are not able to function effectively in the workplace. This is in part…
Descriptors: Foreign Countries, Innovation, Design, Engineering Education
Johnson, Erik C.; Robbins, Brett A.; Loui, Michael C. – Advances in Engineering Education, 2015
In a course for engineering freshmen, peer leaders facilitated optional study sessions, which implemented peer-led team learning workshops. Some leaders were paid teaching assistants, but most were undergraduate volunteers. To understand the experiences of the peer leaders, we asked them to keep weekly reflective journals. By performing a basic…
Descriptors: Engineering Education, Peer Groups, Peer Teaching, Teamwork
Le Doux, Joseph M.; Waller, Alisha A. – Advances in Engineering Education, 2016
This paper describes the problem-solving studio (PSS) learning environment. PSS was designed to teach students how to solve difficult analytical engineering problems without resorting to rote memorization of algorithms, while at the same time developing their deep conceptual understanding of the course topics. There are several key features of…
Descriptors: Problem Solving, Apprenticeships, Engineering Education, Teaching Methods
Neumeyer, Xaver; McKenna, Ann – Advances in Engineering Education, 2016
Our work investigates students' perception of collaborative expertise and the role of inquiry-based learning in the context of team-based entrepreneurship education. Specifically, we examine students' perception of communication, division of work, shared goals, team conflicts and leadership in their respective teams. In addition, we look at the…
Descriptors: Interdisciplinary Approach, Gender Differences, Role, Inquiry
Douglas, Elliot P.; Chiu, Chu-Chuan – Advances in Engineering Education, 2013
This paper describes implementation and testing of an active learning, team-based pedagogical approach to instruction in engineering. This pedagogy has been termed Process Oriented Guided Inquiry Learning (POGIL), and is based upon the learning cycle model. Rather than sitting in traditional lectures, students work in teams to complete worksheets…
Descriptors: Active Learning, Teaching Methods, Team Teaching, Engineering
Layton, Richard A.; Loughry, Misty L.; Ohland, Matthew W.; Ricco, George D. – Advances in Engineering Education, 2010
A significant body of research identifies a large number of team composition characteristics that affect the success of individuals and teams in cooperative learning and project-based team environments. Controlling these factors when assigning students to teams should result in improved learning experiences. However, it is very difficult for…
Descriptors: Teamwork, Cooperative Learning, Computer Software, Validity
Barroso, Luciana R.; Morgan, James R. – Advances in Engineering Education, 2012
This paper describes the creation and evolution of an undergraduate dynamics and vibrations course for civil engineering students. Incorporating vibrations into the course allows students to see and study "real" civil engineering applications of the course content. This connection of academic principles to real life situations is in…
Descriptors: Civil Engineering, Undergraduate Study, Program Development, Undergraduate Students
Ssemakula, Mukasa; Liao, Gene; Ellis, Darin – Advances in Engineering Education, 2010
Industry has consistently identified lack of experience in manufacturing processes as one of the key competency gaps among new engineering graduates. This paper discusses a laboratory-based course that provides realistic hands-on manufacturing experiences to students. The course uses team-based projects that help students gain hands-on experience…
Descriptors: Engineering Education, Engineering Technology, Achievement Gap, Manufacturing