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Chapman, Kayla E.; Davidson, Megan E.; Liberatore, Matthew W. – Chemical Engineering Education, 2021
Student success and attempts on hundreds of online homework problems housed in a fully interactive online textbook, Material and Energy Balances zyBook, were studied over three cohorts of students (n=284). Auto-graded homework questions with randomized numbers and content can explore proficiency in the course material. Students are allowed to…
Descriptors: Energy, Homework, Science Instruction, Textbooks
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
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

Skaates, J. Michael – Chemical Engineering Education, 1987
Describes a polymerization reactor engineering course offered at Michigan Technological University which focuses on the design and operation of industrial polymerization reactors to achieve a desired degree of polymerization and molecular weight distribution. Provides a list of the course topics and assigned readings. (TW)
Descriptors: Chemical Engineering, Chemical Reactions, College Science, Course Content

McCready, Mark J. – Chemical Engineering Education, 1989
A course where students were required to choose projects and provide studies of the feasibility, consumer need, and process design is discussed. Other projects such as advertising campaigns used to encourage student creativity are discussed. The need to keep second semester seniors interested is stressed. (MVL)
Descriptors: Chemical Engineering, Chemical Industry, Chemical Reactions, College Science

Takoudis, Christos G. – Chemical Engineering Education, 1987
Describes a 15-week course in the fundamentals of microelectronics processing in chemical engineering, which emphasizes the use of very large scale integration (VLSI). Provides a listing of the topics covered in the course outline, along with a sample of some of the final projects done by students. (TW)
Descriptors: Chemical Engineering, College Science, Computer Uses in Education, Course Content

Douglas, J. M.; Kirkwood, R. L. – Chemical Engineering Education, 1989
Discussed is a method to teach undergraduate students how to complete a conceptual design. Presents three tools to use: (1) how to use order-of-magnitude arguments to simplify problems, (2) how to derive design heuristics, and (3) how to decompose large problems into a set of small, simple problems. (Author/MVL)
Descriptors: Chemical Engineering, College Science, Course Content, Engineering

McCready, Mark J.; Leighton, David T. – Chemical Engineering Education, 1987
Discusses the problems created in graduate chemical engineering programs when students enter with a wide diversity of understandings of transport phenomena. Describes a two-semester graduate transport course sequence at the University of Notre Dame which focuses on fluid mechanics and heat and mass transfer. (TW)
Descriptors: Chemical Engineering, College Science, Course Content, Course Descriptions

Miranda, R. – Chemical Engineering Education, 1989
Described is a heterogeneous catalysis course which has elements of materials processing embedded in the classical format of catalytic mechanisms and surface chemistry. A course outline and list of examples of recent review papers written by students are provided. (MVL)
Descriptors: Chemical Analysis, Chemical Engineering, Chemical Industry, Chemical Reactions

DeCoursey, W. J. – Chemical Engineering Education, 1987
Describes the organization of a graduate course dealing with mass transfer, particularly as it relates to chemical reactions. Discusses the course outline, including mathematics models of mass transfer, enhancement of mass transfer rates by homogeneous chemical reaction, and gas-liquid systems with chemical reaction. (TW)
Descriptors: Chemical Engineering, Chemical Nomenclature, Chemical Reactions, College Science

Eckert, Roger E.; Ybarra, Robert M. – Chemical Engineering Education, 1988
Describes a senior level chemical engineering course at Purdue University that parallels an industrial process development department. Stresses the course organization, manager-engineer contract, evaluation of students, course evaluation, and gives examples of course improvements made during the course. (CW)
Descriptors: Chemical Engineering, Chemistry, College Science, Course Content

Brewster, B. S.; Hecker, W. C. – Chemical Engineering Education, 1988
Describes an undergraduate chemical engineering course at Brigham Young University to provide training and experience in oral presentation, familiarity with the chemical engineering literature and exposure to a wide range of engineering topics. Summarizes the course description. Discusses the course evaluation. (CW)
Descriptors: Chemical Engineering, Chemistry, College Science, Course Content

Lane, Alan M. – Chemical Engineering Education, 1989
Reported are the results of a 1987 survey of U.S. chemical engineering departments on health and safety. Some details of what is being done at the University of Alabama are provided. A syllabus and reading resources for a survey course on safety, health, environmental, and ethical issues are included. (MVL)
Descriptors: Chemical Engineering, College Science, Course Content, Curriculum Development

Lewandowski, Gordon A.; Tomkins, Reginald P. T. – Journal of Chemical Education, 1987
Describes a 16-week course on fundamentals of chemical engineering offered to high school science teachers by the New Jersey Institute of Technology. Discusses the course structure, including the topics addressed. Provides two material balance problems in the appendices. (TW)
Descriptors: Chemical Engineering, Chemistry, College Science, Course Content