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Kopelevich, Dmitry I.; Ziegler, Kirk J.; Lindner, Angela S.; Bonzongo, Jean-Claude J. – Chemical Engineering Education, 2012
Because rapid growth of nanotechnology is expected to lead to intentional and non-intentional releases, future engineers will need to minimize negative environmental and health impacts of nanomaterials. We developed two upper-level undergraduate courses centered on life-cycle assessment of nanomaterials. The first part of the course sequence…
Descriptors: Curriculum Design, Engineering Education, Higher Education, Science Education

Waintraub, Jack L. – Industry and Higher Education, 1997
The holistic approach to restructuring engineering technology education at the New Jersey Center for Advanced Technological Education includes partnerships for articulated programs, recruitment and retention of underrepresented groups, involvement of industrial personal, and faculty development in innovative instructional methods. (SK)
Descriptors: Curriculum Design, Educational Change, Engineering Education, Engineering Technology
Irwin, Armond – Technical Education News, 1973
Descriptors: Curriculum Design, Curriculum Development, Engineering Technology, Integrated Curriculum
Gershon, J. J. – Engineering Education, 1977
Summarizes curriculum guidelines for the following engineering technologies: chemical, industrial, mining, petroleum, nuclear, civil, mechanical, electrical, automotive, and manufacturing. In a few years, these Engineering Council for Professional Development committee guidelines are intended to become the criteria by which programs will be judged…
Descriptors: Curriculum Design, Curriculum Development, Engineering Education, Engineering Technology

Weathers, Pamela J. – Journal of Chemical Education, 1988
Explores a graduate level bioprocess engineering course in protein purification and downstream processing. Designed to provide students with hands-on training in the design and implementation of product processing for the biotechnology industry. Includes syllabus and plan of study. (MVL)
Descriptors: Biochemistry, College Science, Course Descriptions, Curriculum Design
Ernst, Edward W. – Engineering Education, 1989
Discusses the Undergraduate Curriculum Development in Engineering program. Provides a short history of the program. Describes 10 curriculum projects ranging from engineering design to industry participation. Each program is encouraged to develop: analytical ability, ability to innovate and synthesize, integrating ability, and contextual…
Descriptors: College Science, Curriculum Design, Curriculum Development, Engineering
Morgan, Robert P. – Engineering Education, 1989
Compares two engineering education reports which urge the following needs and emphases: attract and retain minorities, retain students already in engineering school, and allow students to enter the engineering program at various levels. Criticizes the Office of Technology Assessment's report and supplies prescriptions for the future. (MVL)
Descriptors: College Science, Curriculum Design, Curriculum Development, Curriculum Evaluation
Troxler, G. William – Engineering Education, 1989
Discusses the relative roles of engineering and engineering technology. Questions where the baccalaureate engineering technology graduate fits within the engineering field. Lists four methods to improve marketing engineering to potential students and the public. Presents job production and the international picture. (MVL)
Descriptors: College Science, Curriculum Design, Curriculum Development, Employment Opportunities
Center for Occupational Research and Development, Inc., Waco, TX. – 1982
Developed as a resource to assist in a major revision underway in Georgia area technical schools to change curricula for preparing engineering technicians, this preliminary program-planning guide describes curriculum structures for specialized programs in three major areas--electronics, electromechanics, and mechanics. The handbook, which is…
Descriptors: Competency Based Education, Course Descriptions, Curriculum Design, Curriculum Development