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Rothe, Erhard W.; Zygmunt, William E. – Chemical Engineering Education, 2016
We inserted a self-taught molecular modeling project into an otherwise conventional undergraduate chemical-reaction-engineering course. Our objectives were that students should (a) learn with minimal instructor intervention, (b) gain an appreciation for the relationship between molecular structure and, first, macroscopic state functions in…
Descriptors: Undergraduate Study, Molecular Structure, Chemical Engineering, Thermodynamics
Aucoin, Marc G.; Jolicoeur, Mario – Chemical Engineering Education, 2009
Undergraduate and graduate engineering training differ significantly. The former looks to established protocols and formulas to design and control processes while the latter often involves questioning established protocols and formulas to better suit and describe phenomena. Although we do not dispute the benefits of practical hands-on approaches,…
Descriptors: Engineering Education, Graduate Students, Research Problems, Research Design
Peer reviewedWhite, Mark G. – Chemical Engineering Education, 1984
A video-based format was used during a graduate seminar course designed to educate students on the nature of catalysis, to help transfer information among students working on similar problems, and to improve communication skills. The mechanics of and student reaction to this seminar course are discussed. (JN)
Descriptors: Audiovisual Instruction, Chemical Engineering, Course Descriptions, Course Objectives
Peer reviewedSilla, Harry – Chemical Engineering Education, 1986
Describes the design laboratory at the Stevens Institute of Technology (SIT). Considers course objectives, design projects, project structure, mechanical design, project management, and laboratory operation. This laboratory complements SIT's course in process design, giving students a complete design experience. (JN)
Descriptors: Chemical Engineering, Course Objectives, Design, Engineering Education
Peer reviewedMewis, Jan – Chemical Engineering Education, 1984
Discusses aims, objectives, and content of a safety course for chemical engineering students. Course emphasizes awareness of hazards, basic concepts and principles of safety engineering, and the ability to recognize, assess, and remedy specific risks occurring in chemical plants. Course implementation is also discussed. (JN)
Descriptors: Chemical Engineering, Course Content, Course Objectives, Engineering Education
Peer reviewedBienkowski, 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
Peer reviewedLee, William E., III – Chemical Engineering Education, 1989
Develops a course which would give students a chance to think critically, be exposed to recent developments including applications to other fields, and be exposed to the general field of the philosophy of science. Provides a course outline, required and referenced textbooks, and selected journal articles. (YP)
Descriptors: Chemical Engineering, College Science, Course Descriptions, Course Objectives
Peer reviewedMcNeill, Barry; Bellamy, Lynn – Chemical Engineering Education (CEE), 1999
Describes a matrix that can illustrate the educational relationship between a course's learning activities and learning objectives. Discusses the development of the matrix in the context of a first-year engineering design course, and gives alternative applications of the matrix, such as using it in course articulation and using it as part of the…
Descriptors: Academic Standards, Chemical Engineering, Course Objectives, Course Organization
Peer reviewedFlach, Lawrance – Chemical Engineering Education (CEE), 1999
Addresses some of the issues associated with teaching chemical engineering design, specifically the capstone design sequence developed at the University of Dayton and the experience gained developing and teaching these courses. Discusses the pros and cons of chemical-process flowsheet-simulator use. (Contains 11 references.) (WRM)
Descriptors: Chemical Engineering, Course Descriptions, Course Objectives, Design
Peer reviewedEdgar, T. F. – Chemical Engineering Education, 1990
Discusses a "process control" course in undergraduate chemical engineering. Describes current practices and philosophy and an outline for a course to be taught in the future. Appended are summaries of 12 participants' discussion. (YP)
Descriptors: Chemical Engineering, College Science, Course Content, Course Descriptions
Peer reviewedNg, Terry K-L.; And Others – Chemical Engineering Education, 1988
Describes a chemical engineering course for senior undergraduates and first year graduate students in biochemical engineering. Discusses five experiments used in the course: aseptic techniques, dissolved oxygen measurement, oxygen uptake by yeast, continuous sterilization, and cultivation of microorganisms. (MVL)
Descriptors: Biochemistry, Chemical Engineering, Chemistry, College Science
Peer reviewedValle-Riestra, J. Frank – Chemical Engineering Education, 1983
Describes a course designed to expose neophytes to methodology used in chemical process industries to evaluate commercial feasibility of proposed projects. Previously acquired disciplines are integrated to facilitate process synthesis, gain appreciation of nature of industrial projects and industrial viewpoint in managing them, and to become adept…
Descriptors: Chemical Engineering, Chemical Industry, Course Content, Course Descriptions

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