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50 Years of ERIC
50 Years of ERIC
The Education Resources Information Center (ERIC) is celebrating its 50th Birthday! First opened on May 15th, 1964 ERIC continues the long tradition of ongoing innovation and enhancement.

Learn more about the history of ERIC here. PDF icon

Showing 1 to 15 of 95 results
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Kopelevich, Dmitry I.; Ziegler, Kirk J.; Lindner, Angela S.; Bonzongo, Jean-Claude J. – Chemical Engineering Education, 2012
Because rapid growth of nanotechnology is expected to lead to intentional and non-intentional releases, future engineers will need to minimize negative environmental and health impacts of nanomaterials. We developed two upper-level undergraduate courses centered on life-cycle assessment of nanomaterials. The first part of the course sequence…
Descriptors: Curriculum Design, Engineering Education, Higher Education, Science Education
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Silverstein, David L.; Vigeant, Margot A. S. – Chemical Engineering Education, 2012
A survey of faculty teaching the chemical reaction engineering course or sequence during the 2009-2010 academic year at chemical engineering programs in the United States and Canada reveals change in terms of content, timing, and approaches to teaching. The report consists of two parts: first, a statistical and demographic characterization of the…
Descriptors: Chemistry, Chemical Engineering, Foreign Countries, Teaching Methods
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Grassi, Vincent G.; Luyben, William L.; Silebi, Cesar A. – Chemical Engineering Education, 2011
This paper discusses a two-semester senior design course that combines traditional steady-state economic process design with dynamic plantwide control. This unique course has been taught at Lehigh for more than a decade and has garnered rave reviews from students, industry, and ABET. Each student design group has its own industrial consultant who…
Descriptors: Chemical Engineering, Engineering Education, Design, Advanced Courses
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Carta, Jungbauer – Chemical Engineering Education, 2011
We describe an intensive course that integrates graduate and continuing education focused on the development and scale-up of chromatography processes used for the recovery and purification of proteins with special emphasis on biotherapeutics. The course includes lectures, laboratories, teamwork, and a design exercise and offers a complete view of…
Descriptors: Chemistry, Chemical Engineering, Engineering Education, Graduate Study
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Minerick, Adrienne R. – Chemical Engineering Education, 2010
An implementation and assessment of three creative-learning mechanisms in a research-inspired split undergraduate/graduate course in Analytical Microdevice Technology is described. Microscale research is challenging to incorporate into the classroom due to the phenomena length-scales and the creating learning strategies were used to promote…
Descriptors: Cognitive Style, Elective Courses, Learning Strategies, Concept Formation
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Evans, Steven T.; Huang, Xinqun; Cramer, Steven M. – Chemical Engineering Education, 2010
The commercial simulator Aspen Chromatography was employed to study and optimize an important new industrial separation process, weak partitioning chromatography. This case study on antibody purification was implemented in a chromatographic separations course. Parametric simulations were performed to investigate the effect of operating parameters…
Descriptors: Computer Simulation, Biotechnology, Problem Based Learning, Courses
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Ortiz-Rodriguez, Estanislao; Vazquez-Arenas, Jorge; Ricardez-Sandoval, Luis A. – Chemical Engineering Education, 2010
An overview of a course on modeling and simulation offered at the Nanotechnology Engineering undergraduate program at the University of Waterloo. The motivation for having this course in the undergraduate nanotechnology curriculum, the course structure, and its learning objectives are discussed. Further, one of the computational laboratories…
Descriptors: Course Content, Laboratories, Undergraduate Students, Universities
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Harris, Andrew T. – Chemical Engineering Education, 2009
The University of Sydney has offered an undergraduate course in particle technology using a contemporary problem based learning (PBL) methodology since 2005. Student learning is developed through the solution of complex, open-ended problems drawn from modern chemical engineering practice. Two examples are presented; i) zero emission electricity…
Descriptors: Feedback (Response), Problem Based Learning, Course Evaluation, Foreign Countries
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Bullard, Lisa G.; Felder, Richard M. – Chemical Engineering Education, 2007
This two-part series describes the structure of the stoichiometry course at North Carolina State University. The course had a variety of learning objectives, and several nontraditional pedagogies were used in the course delivery. The first paper outlined the course structure and policies, the preparation given to the teaching assistants who played…
Descriptors: Course Content, Course Organization, Stoichiometry, Educational Objectives
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Dorathy, Brian D.; Mooers, Jamisue A.; Warren, Matthew M.; Mich, Jennifer L.; Murhammer, David W. – Chemical Engineering Education, 2001
Points out the need to educate undergraduate chemical engineering students on chemical process safety and introduces the content of a chemical process safety course offered at the University of Iowa. Presents laboratory experiments demonstrating flammability limits, flash points, electrostatic, runaway reactions, explosions, and relief design.…
Descriptors: Chemical Engineering, Chemistry, Course Content, Engineering Education
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Gomes, Vincent G.; Langrish, Timothy A. G. – Chemical Engineering Education (CEE), 1999
Argues against excessive content fragmentation in engineering courses, particularly in the early stages of engineering education. Discusses attempts to encourage cooperative learning and integrative reconciliation between courses. (WRM)
Descriptors: Chemical Engineering, Cooperation, Cooperative Learning, Course Content
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Prausnitz, Mark R. – Chemical Engineering Education (CEE), 1998
Describes Controlled-Operation Mechanical Energy Transducers (COMETs), which are part of a project to introduce sophomore chemical engineering students to a number of important engineering concepts that are usually addressed later in the academic program. (DDR)
Descriptors: Chemical Engineering, Competition, Course Content, Design
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Carlson, Eric D.; Gast, Alice P. – Chemical Engineering Education (CEE), 1998
Presents an open-ended project tailored for a senior kinetics and reactor design course in which basic reactor design equations are used to model the digestive systems of several animals. Describes the assignment as well as the results. (DDR)
Descriptors: Animals, Chemical Engineering, Course Content, Design
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Davis, Robert H. – Chemical Engineering Education (CEE), 1998
Summarizes the content of handouts prepared for a workshop on effective teaching. Lists several tips on course preparation and organization, classroom communication, and rapport with students to be reviewed periodically. (DDR)
Descriptors: Communication Skills, Course Content, Higher Education, Professional Development
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Harb, John N.; Solen, Kenneth A. – Chemical Engineering Education (CEE), 1998
Discusses the needs of freshmen chemical engineering students in terms of courses related to the field. Describes the nature and content of a course designed to involve freshmen in a chemical engineering curriculum. (DDR)
Descriptors: Chemical Engineering, Course Content, Hands on Science, Higher Education
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