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Vicente, Aileen Joan; Tan, Tiffany Adelaine; Yu, Alvin Ray – Journal of Information Technology Education: Innovations in Practice, 2018
Aim/Purpose: This study was aimed at enhancing students' learning of software engineering methods. A collaboration between the Computer Science, Business Management, and Product Design programs was formed to work on actual projects with real clients. This interdisciplinary form of collaboration simulates the realities of a diverse Software…
Descriptors: Interdisciplinary Approach, Computer Science Education, Engineering Education, Business Administration Education

Pao, Y. C. – CoED, 1985
Advocates that introductory computer aided design (CAD) courses be incorporated into engineering curricula in close conjunction with the system dynamics course. Block diagram manipulation/Bode analysis and finite elementary analysis are used as examples to illustrate the interdisciplinary nature of CAD teaching. (JN)
Descriptors: College Instruction, Design, Engineering, Engineering Education

Mansour, Ali H.; And Others – Chemical Engineering Education, 1986
Presents a critique of existing methodology used in curriculum updates in academic institutions, suggesting that an integrated approach is more realistic and meaningful to study and to bridging the gap between academic curriculum and industry's needs. Specifically recommends that curriculum-related and job-related data be analyzed simultaneously.…
Descriptors: Chemical Engineering, Curriculum Development, Engineering Education, Higher Education

McConica, Carol M. – Chemical Engineering Education, 1984
A graduate program at Colorado State University which focuses on integrated circuit processing is described. The program utilizes courses from several departments while allowing students to apply chemical engineering techniques to an integrated circuit fabrication research topic. Information on employment of chemical engineers by electronics…
Descriptors: Chemical Engineering, Electronics, Engineering Education, Higher Education

Bienkowski, Paul R.; And Others – Chemical Engineering Education, 1989
Outlines a graduate course, "Microbial Systems Analysis," for students in chemical and environmental engineering or engineering mechanics, as well as microbiology, ecology and biotechnology. Describes the objectives, structure and laboratory experiments for the course. (YP)
Descriptors: Chemical Engineering, College Science, Course Descriptions, Course Objectives
Gravander, Jerry – Engineering Education, 1976
Supports a program format in which engineering is integrated with other subjects in order to displace the public's misconceptions of engineers. Offers program guide along with a funding-formula to distribute the cost of such a multidisciplinary approach in a university setting. (CP)
Descriptors: College Science, Curriculum Development, Engineering Education, Higher Education

Getzin, Donald R. – Journal of Chemical Education, 1985
Describes an interdisciplinary chemistry course at the New Jersey Institute of Technology (NJIT) in which at least one quarter of the time is devoted to materials science. Includes information on course content, laboratory work, and assessment of student performance on chemistry and materials science topics. (JN)
Descriptors: Chemical Engineering, Chemistry, College Science, Course Descriptions

Page, N. W.; Murthy, D. N. P. – European Journal of Engineering Education, 1990
Described is an integrated framework used to teach engineering, creativity, and management that emulates the working environment of a modern and dynamic engineering organization. This is done through the use of case studies. (KR)
Descriptors: Case Studies, College Science, Curriculum Development, Engineering Education
Bruckmann, Clive G. – 1983
Evidence from studies in South Africa and Britain indicates a lack of consensus on whether communication studies should be taught in the engineering curriculum, who should teach it, how or when it should be taught, and what should be taught. Those planning communication courses must understand both engineering rhetoric and professional and student…
Descriptors: Cooperation, Curriculum Development, Education Work Relationship, Educational Research
Ircha, M. C.; McLaughlin, J. D. – Engineering Education, 1988
Identifies problems involved in the implementation of a course designed to explore issues at the interface of technology and society. Suggests steps for successfully maintaining this type of program. (RT)
Descriptors: Curriculum Enrichment, Elective Courses, Engineering, Engineering Education

Rallo, Joseph C. – International Studies Notes, 1991
Urges the internationalization of the engineering curriculum to prepare students for the rigors of global competition in the international marketplace. Lists accreditation pressures and market incentives as barriers to needed diversity. Discusses engineering programs at several schools. Concludes that interdisciplinary inquiry is needed to provide…
Descriptors: Competition, Curriculum Development, Economic Opportunities, Educational Objectives

Burnett, J. Nicholas – Weaver, 1986
Describes a chemical engineering course for liberal arts students that is taught from a scientific, social, and symbolic perspective. A summary of the early days of oil refining is included as representative of one of the major content segments of the course. (ML)
Descriptors: Chemical Engineering, Chemistry, College Science, Course Descriptions

Caceres, L.; And Others – Chemical Engineering Education, 1992
Proposes that inclusion of waste water treatment subjects within the chemical engineering curriculum can provide students with direct access to environmental issues from both a biotechnological and an ethical perspective. The descriptive details of water recycling at a copper plant and waste water stabilization ponds exemplify this approach from…
Descriptors: Chemical Engineering, Conservation (Environment), Course Content, Course Descriptions
Engineering Education, 1987
Presents a view of future engineering education as perceived by the Technion faculty group on the basis of their own analysis and the insights gathered from workshop discussions. Contrasts basic and specialized education. Reviews the technologies and skills of the future engineer. Gives an overview of curriculum requirements. (CW)
Descriptors: College Science, Continuing Education, Curriculum Design, Engineering Education
Robinson, Bill – 1985
An English scientific language course developed for the professional communications engineering program at the University of Technology of Papua New Guinea was designed to incorporate some of the principles of language across the curriculum and to accompany an introductory electronics course. The language and subject area courses are taught in…
Descriptors: College Faculty, Communications, Course Descriptions, Curriculum Development
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