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Peer reviewedMoore, John W., Ed. – Journal of Chemical Education, 1987
Included are two articles related to the use of computers. One activity is a computer exercise in chemical reaction engineering and applied kinetics for undergraduate college students. The second article shows how computer-assisted analysis can be used with reaction rate data. (RH)
Descriptors: Chemical Analysis, Chemical Engineering, Chemical Reactions, Chemistry
Peer reviewedGolnaraghi, Maryam; And Others – Chemical Engineering Education, 1985
Describes an interactive computer software package that uses graphics to teach staged operations (particularly the McCabe-Thiele method). Criteria used in developing the package and advantages for instructors and students are considered. (JN)
Descriptors: Chemical Engineering, College Instruction, Computer Graphics, Computer Software
Peer reviewedBuxton, Brian – Chemical Engineering Education, 1985
Examines the extent to which a process control computer system is assisting departmental research (by providing a comprehensive and flexible data logging and plant control system) and providing a teaching facility for the department by live demonstrations of plant monitoring and control applications, simulation, and student implementation of…
Descriptors: Chemical Engineering, Computer Oriented Programs, Computer Simulation, Computer Software
Peer reviewedRochefort, Skip; And Others – Chemical Engineering Education, 1985
The philosophy, structure, and organization of a chemical engineering (ChE) process laboratory are discussed. The laboratory emphasizes the oral and communication skills of students who are part of groups that resemble an industrial process research and development group. An annotated list of students' experimental projects is included. (JN)
Descriptors: Chemical Engineering, Course Descriptions, Engineering Education, Higher Education
Peer reviewedMansour, 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
Peer reviewedJelinski, Lynn W. – Chemical and Engineering News, 1984
Discusses direct chemical information that can be obtained from modern nuclear magnetic resonance (NMR) methods, concentrating on the types of problems that can be solved. Shows how selected methods provide information about polymers, bipolymers, biochemistry, small organic molecules, inorganic compounds, and compounds oriented in a magnetic…
Descriptors: Chemical Engineering, Chemistry, College Science, Higher Education
Peer reviewedLauffenburger, Douglas; And Others – Chemical Engineering Education, 1984
First year chemical engineering students are required to take a two-semester sequence in applied mathematics at the University of Pennsylvania, with the option of taking a third semester elective course. The content of the courses and the approaches used are discussed. A list of textbooks used is also provided. (JN)
Descriptors: Chemical Engineering, Course Content, Course Descriptions, Engineering Education
Peer reviewedBailie, Richard C.; And Others – Chemical Engineering Education, 1985
West Virginia University was designated by the National Science Foundation (NSF) as the NSF University/Industry Fluidization and Fluid Particle Cooperative Research Center. Background information about the center, its research program (focusing on fundamental problems of reacting systems at elevated temperatures), and future prospects are…
Descriptors: Chemical Engineering, Engineering Education, Higher Education, Industry
Wankat, Phillip C. – Engineering Education, 1986
Reports results of two surveys which explored current advising and counseling practices in chemical engineering departments. The first consisted of a short questionnaire sent to all chemical engineering department chairpersons in the United States and Canada. The second was a longer questionnaire sent to students and counselors at two schools. (JN)
Descriptors: Chemical Engineering, Counseling, Counseling Services, Educational Research
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
Peer reviewedHanesian, Deran – Chemical Engineering Education, 1984
Provides background information on Soviet Armenia and the Erevan Polytechnic Institute (EPI) located in this republic of the USSR. Also provides a description of chemical engineering programs and courses and faculty at the EPI. (JN)
Descriptors: Chemical Engineering, College Faculty, Engineering Education, Foreign Countries
Peer reviewedBonin, Hugues W.; Weir, Ronald D. – Chemical Engineering Education, 1984
Describes a course designed to assist students in writing differential equations to represent chemical processes and to solve these problems on digital computers. Course outline and discussion of computer projects and the simulation and optimization of a continuously stirred tank reactor process are included. (JN)
Descriptors: Chemical Engineering, Computer Simulation, Course Descriptions, Engineering Education
Peer reviewedPrausnitz, J. M. – Chemical Engineering Education, 1985
Provides a definition for creativity and illustrates it with examples from the history of science. Also indicates how the definition suggests some possibly useful procedures for educating creative scientists and engineers. (JN)
Descriptors: Chemical Engineering, Creativity, Definitions, Engineering Education
Peer reviewedCussler, E. L. – Chemical Engineering Education, 1984
Indicates that teaching of mass transfer can be improved by: (1) using a single, simple definition of mass transfer coefficients; (2) altering use of analogies; and (3) repeatedly stressing differences between mathematical models used for chemical reactions and the actual chemistry of these reactions. Examples for undergraduate/graduate courses…
Descriptors: Chemical Engineering, Chemical Reactions, College Instruction, Engineering Education
de Camilloni, Alicia W.; Fernandez, Marcela; Zadunaisky, Diana – 1998
The University of Buenos Aires (UBA) is committed to a reform process which involves, among others, the curricular axis. The work described in this paper is part of the activities specially concerned with the studies of engineering. Seventy-five professionals were invited to discuss new possible patterns for the perspective of the professional…
Descriptors: Chemical Engineering, Cooperation, Curriculum Development, Educational Change


