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Alemdar, Meltem; Moore, Roxanne A.; Lingle, Jeremy A.; Rosen, Jeff; Gale, Jessica; Usselman, Marion C. – International Journal of Education in Mathematics, Science and Technology, 2018
Engineering and integrated STEM experiences are being promoted at the K-12 level to increase interest and retention in STEM and to reinforce learning of mathematics and science content. However, research is still emerging regarding best practices for curriculum development, student impacts, and transfer of knowledge across disciplines. The purpose…
Descriptors: Instructional Effectiveness, Middle School Students, Engineering Education, Academic Achievement
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Kirkman, Robert – Interdisciplinary Journal of Problem-based Learning, 2016
I describe the first stages of a process of design research in which I employ problem-based learning in a course in engineering ethics, which fulfills a requirement for students in engineering degree programs. The aim of the course is to foster development of particular cognitive skills contributing to moral imagination, a capacity to notice,…
Descriptors: Problem Based Learning, Engineering Education, Ethical Instruction, Undergraduate Students
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Mativo, John M.; Park, Jae H. – Journal of STEM Education: Innovations and Research, 2012
This study sought to find student perceptions of how the engineering design process is learned and applied by pre-service teachers at the University of Georgia. The course description read "demonstration and hands-on learning, including problem solving, designing, construction and testing of prototypes, and activities that increase aesthetic,…
Descriptors: Engineering, Cognitive Development, Elementary Secondary Education, Course Descriptions
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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
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Costantino, Tracie; Kellam, Nadia; Cramond, Bonnie; Crowder, Isabelle – Art Education, 2010
Creativity often has been associated with the arts, although creativity also is essential for innovative discoveries and applications in science and engineering. In this article, a pilot study is presented about an investigation concerning how creativity is fostered in an art education course in conjunction with an undergraduate engineering…
Descriptors: Interdisciplinary Approach, Art Education, Engineering Education, Educational Cooperation
Clough, G. Wayne – Education Digest: Essential Readings Condensed for Quick Review, 2008
The author states that the U.S. is at risk of falling behind in the global economic competition because too few of the young people are choosing to study fields like engineering and science. A 2005-06 Lemelson-MIT Invention Index survey found that while American teenagers are comfortable with rapid technological change and optimistic about the…
Descriptors: Undergraduate Study, Student Attitudes, Youth, Engineering
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Basu-Dutt, Sharmistha; Slappey, Charles; Bartley, Julie K. – Journal of Chemical Education, 2010
As part of a campus-wide, externally funded project to increase performance in, enthusiasm for, and retention within STEM disciplines, we developed an interdisciplinary, team-taught first-year seminar course. The construction and delivery of this course was designed to show the relevance of selected general chemistry topics such as matter and…
Descriptors: Concept Mapping, First Year Seminars, Grade Point Average, Chemistry
Georgia State Univ., Atlanta. Dept. of Vocational and Career Development. – 1984
This guide offers information and procedures necessary to train electromechanical engineering technicians. Discussed first are the rationale and objectives of the curriculum. The occupational field of electromechanical engineering technology is described. Next, a curriculum model is set forth that contains information on the standard…
Descriptors: Classroom Techniques, Course Content, Course Descriptions, Curriculum Development
Georgia State Univ., Atlanta. Dept. of Vocational and Career Development. – 1984
This guide offers information and procedures necessary to train mechanical engineering technicians. Discussed first are the rationale and objectives of the curriculum. The occupational field of mechanical engineering technology is described. Next, a curriculum model is set forth that contains information on the standard mechanical engineering…
Descriptors: Classroom Techniques, Computer Oriented Programs, Course Content, Course Descriptions
Georgia State Univ., Atlanta. Dept. of Vocational and Career Development. – 1984
This guide outlines the rationale, content, and methodology of a three-part high technology program that was developed in Georgia to provide secondary school students with training in the areas of electronics and electromechanical and mechanical technologies. Discussed first are the Georgia Initiative, the impact of high technology and the role of…
Descriptors: Associate Degrees, Career Choice, Computer Oriented Programs, Cooperative Planning
Georgia State Univ., Atlanta. Dept. of Vocational and Career Development. – 1984
This guide offers information and procedures necessary to train electronics engineering technicians. Discussed first are the rationale and objectives of the curriculum. The occupational field of electronics engineering technology is described. Next, a curriculum model is set forth that contains information on the standard electronics engineering…
Descriptors: Classroom Techniques, Computer Oriented Programs, Course Content, Course Descriptions