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Tarmy Rudnick, Diane – Engineering Education, 1985
Provides data on recruitment, family, academic background, attitudes, and extracurricular/cultural interests of 1288 minority engineering technology students. Indicates that although their high school achievement was superior to average freshmen, their limited finances and low self-esteem remain as problems. Recommendations for addressing the…
Descriptors: Engineering, Engineering Education, Engineering Technology, Extracurricular Activities
O'Hair, Michael T. – Engineering Education, 1984
Presents results of two studies, conducted 4 years apart, which reveal trends in 4-year engineering technology (ET) programs. Areas considered include administrative features and programs, funding, faculty, student characteristics and recruiting, retention, placement and follow-up. One trend reported is that ET may be drifting toward and perhaps…
Descriptors: College Faculty, Educational Trends, Engineering, Engineering Education
Lee, Lung-Sheng; Lai, Chun-Chin – Online Submission, 2004
In comparison with engineering, engineering technology is more practical and purposeful. The engineering technology education programs in Taiwan have been mainly offered in 56 universities/colleges of technology (UTs/CTs) and are anticipated to continuously improve their performance to prepare quality engineering technologists. However, it is…
Descriptors: Program Effectiveness, Engineering Technology, Engineering, Foreign Countries
Rohles, Frederick H., Jr.; Nevins, Ralph G. – Eng Educ, 1969
Descriptors: Biological Sciences, Computer Assisted Instruction, Curriculum Development, Engineering Education
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Gedeon, 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
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Kenney, 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
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Robinson, 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
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Friedman, Edward A. – Liberal Education, 1979
The impact of technology on higher education from increasingly complex computers and technological systems will cause higher education to include technological courses in the liberal arts curriculum, prepare liberal arts students for careers in nontraditional areas in which technology is an important component, and broaden the base of engineering…
Descriptors: Curriculum, Curriculum Design, Curriculum Development, Educational Change
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Felder, 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
Engineering Education, 1989
This volume includes 303 entries of programs on engineering and engineering technology; 239 entries on engineering programs, and 64 entries on engineering technology programs. The information includes the school name and address; school profile; admission information including student expenses and financial aid; graduation requirements; and…
Descriptors: College Admission, College Choice, College Instruction, College Programs
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
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Dodigovic, Marina – CALICO Journal, 1993
The properties of German as a special language of mechanical engineering are examined on the basis of a newly compiled corpus including samples from all important disciplines and discourse styles. The syntactic, semantic, and pragmatic aspects of passive voice are the chief research goal. (Contains five references.) (Author/LB)
Descriptors: Computer Assisted Instruction, Computer Software Development, Courseware, Engineering Education
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Reed, John A.; Afjeh, Abdollah A. – Computers & Education, 1998
Illustrates the design and implementation of a Java applet for use in educational propulsion engineering curricula. The Java Gas Turbine Simulator applet provides an interactive graphical environment which allows the rapid, efficient construction and analysis of arbitrary gas turbine systems. The simulator can be easily accessed from the World…
Descriptors: Computer Graphics, Computer Simulation, Computer Software Development, Computer System Design
Peer reviewed Peer reviewed
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Bauer, P.; Rompelman, O. – European Journal of Engineering Education, 2005
Present engineering has to deal with increasingly complex systems. In particular, this is the case in electrical engineering. Though this is obvious in microelectronics, also in the field of power systems engineers have to design, operate and maintain highly complex systems such as power grids, energy converters and electrical drives. This is…
Descriptors: Animation, Engineering Education, Engineering, Engineering Technology
Conley, David T.; Langan, Holly; Veach, Darya; Farkas, Virginia – Educational Policy Improvement Center (NJ1), 2007
The Oregon Pre-engineering Learning Outcomes Project was conducted by the Educational Policy Improvement Center (EPIC) with grant funding from the Engineering and Technology Industry Council (ETIC). The study sought to improve student preparation and success in pre-engineering programs through the development of the Oregon Pre-engineering Learning…
Descriptors: Educational Policy, Outcomes of Education, Engineering Technology, Academic Standards
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