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VanTassel-Baska, Joyce, Ed.; Little, Catherine A., Ed. – Prufrock Press, 2023
The fourth edition of "Content-Based Curriculum for Advanced Learners" provides readers with a complete and up-to-date introduction to core elements of curriculum development in gifted education with implications for school-based implementation. Written by key experts in the field, this text is essential to the development of…
Descriptors: Academically Gifted, Gifted Education, Curriculum Development, Culturally Relevant Education
Cunningham, Christine M. – Teachers College Press, 2018
Bolstered by new standards and new initiatives to promote STEM education, engineering is making its way into the school curriculum. This comprehensive introduction will help elementary educators integrate engineering into their classroom, school, or district in age-appropriate, inclusive, and engaging ways. Building on the work of a Museum of…
Descriptors: STEM Education, Engineering, Elementary Education, Curriculum Development
National Academies Press, 2012
The aim of this report is to encourage enhanced richness and relevance of the undergraduate engineering education experience, and thus produce better-prepared and more globally competitive graduates, by providing practical guidance for incorporating real world experience in US engineering programs. The report, a collaborative effort of the…
Descriptors: Engineering, Engineering Technology, Engineering Education, Undergraduate Study
Welch, Karla Conn; Hieb, Jeffrey; Graham, James – American Journal of Engineering Education, 2015
Coursework that instills patterns of rigorous logical thought has long been a hallmark of the engineering curriculum. However, today's engineering students are expected to exhibit a wider range of thinking capabilities both to satisfy ABET requirements and to prepare the students to become successful practitioners. This paper presents the initial…
Descriptors: Critical Thinking, Thinking Skills, Teaching Methods, Engineering Education
Drosopoulos, A.; Hatziprokopiou, M. – IEEE Transactions on Education, 2010
This paper discusses the planning and development of student training and activities for the Powerline Communications Laboratory at the Technical Education Institute (TEI), Patras, Greece. Powerline communications is currently an active area of research and development that combines three separate specializations from the standard training of…
Descriptors: Foreign Countries, Laboratory Training, Theory Practice Relationship, Engineering
Tank, Kristina; Pettis, Christy; Moore, Tamara; Fehr, Abby – Science and Children, 2013
With the integration of engineering into science instruction, teachers have been seeking ways to add engineering in their classrooms. This article presents a primary (K-2) STEM unit that took place in a half-day kindergarten classroom as a way to address the scientific and engineering practices (dimension 1, p.41) and the disciplinary core idea…
Descriptors: STEM Education, Engineering Education, Curriculum Design, Curriculum Development
Wong, Shin Y.; Connelly, Robin K.; Hartel, Richard W. – Journal of Food Science Education, 2010
The current generation of students coming into food science and engineering programs is very visually oriented from their early experiences. To increase their interest in learning, new and visually appealing teaching materials need to be developed. Two diverse groups of students may be identified based on their math skills. Food science students…
Descriptors: Foods Instruction, Curriculum Development, Engineering Education, Focus Groups
Apedoe, Xornam S.; Reynolds, Birdy; Ellefson, Michelle R.; Schunn, Christian D. – Journal of Science Education and Technology, 2008
Infusing engineering design projects in K-12 settings can promote interest and attract a wide range of students to engineering careers. However, the current climate of high-stakes testing and accountability to standards leaves little room to incorporate engineering design into K-12 classrooms. We argue that design-based learning, the combination…
Descriptors: Design, Chemistry, Heat, Engineering
National Academies Press, 2012
Science, engineering, and technology permeate nearly every facet of modern life and hold the key to solving many of humanity's most pressing current and future challenges. The United States' position in the global economy is declining, in part because U.S. workers lack fundamental knowledge in these fields. To address the critical issues of U.S.…
Descriptors: Science Education, Science Instruction, Elementary Secondary Education, Alignment (Education)
Jansson, P. M.; Ramachandran, R. P.; Schmalzel, J. L.; Mandayam, S. A. – IEEE Transactions on Education, 2010
To keep up with rapidly advancing technology, numerous innovations to the electrical and computer engineering (ECE) curriculum, learning methods and pedagogy have been envisioned, tested, and implemented. It is safe to say that no single approach will work for all of the diverse ECE technologies and every type of learner. However, a few key…
Descriptors: Engineering Education, Computer Science Education, Undergraduate Students, Student Projects
Herz, Lori; Russo, M. Jean; Ou-Yang, H. Daniel; El-Aasser, Mohamed; Jagota, Anand; Tatic-Lucic, Svetlana; Ochs, John – Advances in Engineering Education, 2011
The undergraduate Bioengineering Program at Lehigh University was established as part of the university's Bioscience and Biotechnology Initiative with support from the National Science Foundation through a grant from its Division of Engineering Education and Centers (EEC). The objective here is to describe the program development and…
Descriptors: Undergraduate Study, Engineering Education, Biotechnology, Program Descriptions
Katehi, Linda, Ed.; Pearson, Greg, Ed.; Feder, Michael, Ed. – National Academies Press, 2009
Engineering education in K-12 classrooms is a small but growing phenomenon that may have implications for engineering and also for the other STEM subjects--science, technology, and mathematics. Specifically, engineering education may improve student learning and achievement in science and mathematics, increase awareness of engineering and the work…
Descriptors: Engineering Education, Engineering, Technological Literacy, Educational Change
Williams, P. John – International Journal of Technology and Design Education, 2008
This study illustrates the use of the DEPTH model in the development of professional development for secondary teachers of Engineering. In the school context of Western Australia, Engineering is a new upper school subject which will be taught by Design and Technology teachers, the majority of whom have neither taught at this level before, nor…
Descriptors: Engineering, Foreign Countries, Faculty Development, Professional Development
Thomas, Charles R. – Engineering Education, 1985
Discusses programming projects in applied technology courses, examining documentation, formal reports, and implementation. Includes recommendations based on experience with a sophomore machine elements course which provided computers for problem solving exercises. (DH)
Descriptors: Computer Oriented Programs, Curriculum Development, Engineering, Engineering Education

Newell, R. B.; And Others – Chemical Engineering Education, 1985
Discusses current problems in chemical engineering education at the University of Queensland (including those related to the laboratory, student/staff ration, literacy, motivation, course content, and structural changes). Also describes a proposed plan of the Queensland department to implement a scheme for resource-based education in chemical…
Descriptors: Chemical Engineering, College Instruction, Curriculum Development, Engineering Education