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Kober, Nancy – National Academies Press, 2015
The undergraduate years are a turning point in producing scientifically literate citizens and future scientists and engineers. Evidence from research about how students learn science and engineering shows that teaching strategies that motivate and engage students will improve their learning. So how do students best learn science and engineering?…
Descriptors: Science Instruction, Undergraduate Students, Undergraduate Study, Engineering

Koppel, Lowell B.; Sullivan, Gerald R. – Chemical Engineering Education, 1986
This article: (1) traces some of the history behind the International Business Machines (IBM) and academic arrangement; (2) describes the Advanced Control System and how it is used in undergraduate process control courses; (3) discusses benefits to students and teachers; and (4) summarizes future plans. (JN)
Descriptors: Chemical Engineering, Engineering Education, Higher Education, Undergraduate Study

Luecke, Richard H.; Lin, Hsin-Ying – Chemical Engineering Education, 1986
Summarizes and compares time domain and Z-transformation methods for sampled data process control design and analysis. Shows that all of the results and concepts usually considered in undergraduate exercises can be developed more quickly, clearly, and intuitively in the time domain. (JN)
Descriptors: Chemical Engineering, Engineering Education, Higher Education, Undergraduate Study

Williams, Dennis C.; Tarrer, A. Ray – Chemical Engineering Education, 1986
The process control sequence at Auburn University consists of two four-credit hour lecture courses and a two-credit hour laboratory course. Descriptions of the courses and of the laboratory are provided. Various comments about the sequence are included. Authors report that students are better prepared in process control under this sequence. (JN)
Descriptors: Chemical Engineering, Course Descriptions, Engineering Education, Higher Education

Whitaker, Stephen – Chemical Engineering Education, 1985
The connection between single phase transport phenomena and multiphase transport phenomena is easily accomplished by means of the spatial averaging theorem. Although different routes to the theorem have been used, this paper provides a route to the averaging theorem that can be used in undergraduate classes. (JN)
Descriptors: Chemical Engineering, Engineering Education, Fluid Mechanics, Higher Education
Peters, James E. – Engineering Education, 1985
Describes a combustion laboratory facility and experiments for a senior-level (undergraduate) course in mechanical engineering. The experiment reinforces basic thermodynamic concepts and provides many students with their first opportunity to work with a combustion system. (DH)
Descriptors: Engineering, Engineering Education, Higher Education, Laboratory Experiments
Ernst, Edward W. – Engineering Education, 1985
The Quality of Engineering Education Project Task Force on the Undergraduate Engineering Laboratory used questionnaires to gather information/opinions (from academia, industry, and professional societies) on the laboratory's value and objectives. Findings and recommendations are presented and discussed, including one encouraging cooperation with…
Descriptors: Educational Improvement, Educational Quality, Engineering, Engineering Education
Himmelblau, D. M. – International Journal of Applied Engineering Education, 1985
Discusses preparation for and problems of electronic publishing applied to text modules for individual/classroom use in undergraduate chemical engineering. Also describes how the modules are authored and evaluated and how text, equations, and figures are entered into the computer for use with a wide variety of computers and terminals. (Author/JN)
Descriptors: Chemical Engineering, Electronic Publishing, Engineering Education, Higher Education
Goulter, I. C. – Engineering Education, 1985
Reviews and discusses objectives of the humanities and social science (HSS) component in undergraduate engineering programs, examining variations in HSS requirements among engineering disciplines. Also suggests some innovative approaches intended to resolve the conflict between the objectives and the current reality in engineering curricula. (JN)
Descriptors: Curriculum Development, Educational Objectives, Engineering Education, Higher Education

Anderson, W. F.; And Others – European Journal of Engineering Education, 1985
Geotechnics (which encompasses soil and rock mechanics, engineering geology, foundation design, and ground engineering methods) is a major component of virtually all civil engineering courses. Show how mini-projects are used to teach this subject. Format of projects, development of presentation skills, and assessment considerations are discussed.…
Descriptors: Civil Engineering, College Instruction, Engineering Education, Geology

Sekhon, J. G.; Shannon, A. G. – European Journal of Engineering Education, 1985
Graduates and employers were surveyed on the mathematical education of engineers in Australia. This paper summarizes their views and contrasts undergraduate and postgraduate courses. The undergraduate courses tend to be more traditional and structured, while there is a need for more work emphasizing mathematical modeling for postgraduate courses.…
Descriptors: Employer Attitudes, Engineering Education, Graduate Study, Higher Education
Davis, Thomas W. – Engineering Education, 1980
Provides a checklist for microprocessor laboratories and outlines the programs offered at Milwaukee School of Engineering, where students are introduced to two microprocessor elective courses. (CS)
Descriptors: Engineering Education, Engineering Technology, Laboratory Equipment, Microcomputers
Engineering Education, 1989
Summarizes the report of the Massachusetts Institute of Technology Commission on industrial productivity, "Made in America: Regaining the Productive Edge." Provides six comments on the report's implications of the role of engineering education. (YP)
Descriptors: College Science, Educational Change, Engineering, Engineering Education
National Academy of Sciences - National Research Council, Washington, DC. Commission on Engineering and Technical Systems. – 1986
The Panel on Undergraduate Engineering Education prepared this report as part of the overall effort of the National Research Council's Committee on the Education and Utilization of the Engineer. The panel studied the academic preparation of engineers for practicing their profession. This document provides an analysis of the research done by the…
Descriptors: College Science, Engineering Education, Higher Education, Science Curriculum
Wiggins, Edwin G. – Engineering Education, 1984
Discusses some of the reasons in favor of hiring non-Ph.D's to teach undergraduate engineering courses. Also presents results of a survey at the United States Merchant Marine Academy to determine student opinions on the importance of a doctorate to teaching. Results indicate non-Ph.D's earned a higher rating. (BC)
Descriptors: College Faculty, Doctoral Degrees, Engineering Education, Higher Education