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Peer reviewedIngen-Housz, A. J. – European Journal of Engineering Education, 1987
Presents an overview of the teaching of plastics at various levels of technological education in the Netherlands focusing on mechanical engineering. Highlights the design process and discusses the Dutch perspective of the role of materials engineering in engineering curricula. (ML)
Descriptors: College Science, Course Descriptions, Engineering Education, Engineering Technology
Peer reviewedGedeon, David V. – CoED, 1981
Describes a course to make technical managers more aware of computer technology and how data loggers, programmable controllers, and larger computer systems interact in a hierarchical configuration of manufacturing process control. (SK)
Descriptors: College Science, Computer Science, Computer Science Education, Course Descriptions
Peer reviewedKenney, C. N. – Chemical Engineering Education, 1980
Describes a course, including content, reading list, and presentation on chemical reactors at Cambridge University, England. A brief comparison of chemical engineering education between the United States and England is also given. (JN)
Descriptors: Chemical Industry, Chemical Reactions, Chemistry, College Science
Peer reviewedRobinson, Arthur L. – Science, 1980
Discusses the problem of the shortage of engineers capable of designing advanced integrated circuits (IC) and presents some suggestions for increasing the number of IC designers in universities and semiconductor companies. (HM)
Descriptors: Electric Circuits, Electronics Industry, Engineering Education, Engineering Technology
Peer reviewedFelder, Richard M.; Marsland, David B. – Chemical Engineering Education, 1979
Describes an undergraduate chemical engineering course which was designed at North Carolina State University to introduce the experimental side of chemical process technology. The course lectures, experiments, objectives, evaluation and information sources are also discussed. (HM)
Descriptors: Chemical Industry, Chemistry, College Science, Course Descriptions
Stever, H. Guyford – Engineering Education, 1988
States that an expanding future in space requires new technology. Stresses that from engineering education, space requires people with a fundamental knowledge of modern science instruments, all engineering sciences, an appreciation and capability for detail and systems design, and an understanding of costs and competitiveness, machines, materials,…
Descriptors: Aerospace Education, College Science, Engineering, Engineering Education
Brodsky, Stanley M. – Engineering Education, 1987
Reports on a study designed to determine the current status of courses in engineering materials and their relationship to machine design and design project courses in mechanical engineering technology programs. Includes discussions of two recommendations of the study that were endorsed by a national conference. (TW)
Descriptors: Associate Degrees, Bachelors Degrees, College Science, Course Content
Peer reviewedBell, T. – European Journal of Engineering Education, 1987
Reviews the scope and dimensions of engineering new surface technologies. Focuses specifically on thermochemical treatments. Identifies the more widely used thermochemical treatments and describes the nitrocarburising and bonding treatments in particular. (ML)
Descriptors: Chemical Engineering, Chemical Industry, Engineering Education, Engineering Technology
Peer reviewedReid, S. A. – European Journal of Engineering Education, 1987
Presents a rationale for the teaching of materials in engineering degree courses. Reviews the requirements established by various professional engineering bodies in the United Kingdom for accredited engineering degree courses. Discusses the aims of the course as well as instructional concerns. (ML)
Descriptors: College Science, Course Descriptions, Developed Nations, Engineering Education
Goodson, Carole E. – Engineering Education, 1981
Offers the self-contained technical support unit with administrative direction, representation, and funding as a solution to ensuring content and quality control in engineering technology curricula. A self-paced or combination self-paced/lecture approach is described in terms of cost-effectiveness. (CS)
Descriptors: Administrative Problems, College Curriculum, Costs, Curriculum Problems
Peer reviewedGeysen, W.; And Others – European Journal of Engineering Education, 1990
Presented is a philosophy for the education of professional engineers in Belgium. Modern techniques that may be used in classical studies are analyzed. Described is a curriculum that is specific for the Belgium situation in an unified Europe. (KR)
Descriptors: College Science, Computer Assisted Design, Computer Assisted Instruction, Computer Simulation
Chapman, George L. – 1979
The ELEXTEC project was initiated to provide better technical education to students enrolled in electronics technology. It was designed to convert a set of materials developed by the U.S. Air Force for teaching electronic principles in a form which could be utilized by civilian technical education institutions. Fourteen colleges participated in…
Descriptors: Curriculum Development, Educational Media, Educational Objectives, Electric Circuits
Whitelaw, Robert L. – 1973
The purpose of the Nuclear Power Plant Modules, NPP-1, is to determine the total cost of electricity from a nuclear power plant in terms of all the components contributing to cost. The plan of analysis is in five parts: (1) general formulation of the cost equation; (2) capital cost and fixed charges thereon; (3) operational cost for labor,…
Descriptors: College Science, Computer Programs, Cost Effectiveness, Electricity
Peer reviewedSciance, C. T. – Chemical Engineering Education, 1987
Offers perspectives on the future of chemical engineering. Addresses concerns related to changes in the engineering industry, the role of chemical engineers, and changes in the education of engineers. Includes recommendations for curricular change. (ML)
Descriptors: Chemical Engineering, College Science, Educational Trends, Engineering Education
Rudnick, Diane Tarmy; Kirkpatrick, Susan E. D. – Engineering Education, 1981
Reports results of a study exploring why more women are not attracted to engineering technology (ET). Lists percentages of men and women recruited into ET programs, their family backgrounds, achievement and expectations, extracurricular and cultural interests, and choice of vocation and work attitudes. Recommends steps to improve recruitment and…
Descriptors: College Admission, College Applicants, Engineering, Engineering Education


