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Alexis N. Prybutok; Ayinoluwa Abegunde; Kenzie Sanroman Gutierrez; Lauren Simitz; Chloe Archuleta; Jennifer Cole – Chemical Engineering Education, 2024
Engineering curriculum often fails to connect content and decisions to impacts on diverse, particularly marginalized, communities. Given that integration of social justice ideas into curriculum is currently uncommon among most faculty, we provide resources in the form of a workshop to help catalyze these efforts by teaching faculty how to…
Descriptors: Chemical Engineering, Social Justice, Racism, Workshops
Lewin, Daniel Roberto; Barzilai, Abigail – Chemical Engineering Education, 2021
The capstone design sequence provides chemical engineering students with the opportunity to demonstrate mastery in process engineering, acquired during their entire degree, and is the ultimate "reality check" in outcome verification. This paper describes the current status of the design sequence followed by chemical engineering students…
Descriptors: Capstone Experiences, Flipped Classroom, Chemical Engineering, Engineering Education
Butrus, Salwan; Greenman, Kevin; Khera, Eshita; Kopyeva, Irina; Nishii, Akira – Chemical Engineering Education, 2020
The interdisciplinary roots of chemical engineering have shaped its history and fostered its rapidly evolving nature. Through ongoing research, graduate students in chemical engineering departments remain abreast of the field's evolution. Yet core undergraduate curricula often fall short of introducing students to the breadth of current research…
Descriptors: Chemical Engineering, Student Research, Research Skills, Lecture Method
Godwin, Allison; Boudouris, Bryan W. – Chemical Engineering Education, 2020
An introductory sophomore-level chemical engineering course was redesigned, and this redesign included cyber-assisted learning through online videos, team formation, and team evaluation software. We compared the traditional 2018 course (n = 48) with the redesigned 2019 course (n = 67) on student persistence (DFW rates), motivation, and course…
Descriptors: Student Motivation, Chemical Engineering, Engineering Education, College Students
Helmbrecht, Hawley; Nance, Elizabeth – Chemical Engineering Education, 2022
Tutorials for EXperimentalisT Interactive LEarning (TEXTILE) is an interactive semi-linear module-based curriculum for training students at various educational levels on data science methodologies currently utilized by research laboratories. We show how we developed our eleven module TEXTILE program to train 15 students from high school,…
Descriptors: Data Science, Methods, Science Laboratories, High School Students
He, Q. Peter; Wang, Jin; Zhang, Rong; Johnson, Donald; Knight, Andrew; Polala, Ravali – Chemical Engineering Education, 2016
In view of potential demand for skilled engineers and competent researchers in the biofuels field, we have identified a significant gap between advanced biofuels research and undergraduate biofuels education in chemical engineering. To help bridge this gap, we created educational materials that systematically integrate biofuels technologies into…
Descriptors: Fuels, Teaching Methods, Researchers, Chemical Engineering
Koretsky, Milo; Montfort, Devlin; Nolen, Susan Bobbitt; Bothwell, Michelle; Davis, Susannah; Sweeney, James – Chemical Engineering Education, 2018
We describe progress on a comprehensive, programmatic change initiative whose goal is to create an inclusive culture that fosters diversity and a shift towards more meaningful, consequential work. While this initiative has several elements that target different aspects of unit practices and culture, we focus here on pedagogical change. Our…
Descriptors: Chemical Engineering, Teaching Methods, Curriculum Development, Academic Achievement
Davis, Richard A.; Klein, James A. – Chemical Engineering Education, 2012
This paper presents our pedagogy for chemical process safety (CPS) education across the curriculum. Building on a unifying theme of "Conservation of Life" (COL), we have four goals: 1) Make students aware of CPS/COL principles, 2) Promote a culture of safety, 3) Assess student learning, 4) Require minimal resources. We discuss our experience and…
Descriptors: Safety, Chemical Engineering, Curriculum Development, Curriculum Implementation
Wankat, Phillip C. – Chemical Engineering Education, 2009
The Massachusetts Institute of Technology started the first US chemical engineering program six score years ago. Since that time, the chemical engineering curriculum has evolved. The latest versions of the curriculum are attempts to broaden chemical engineering to add product engineering, biology and nanotechnology to the traditional process…
Descriptors: Chemical Engineering, Engineering Education, Curriculum Development, Interdisciplinary Approach

Newell, R. B.; And Others – Chemical Engineering Education, 1985
Discusses current problems in chemical engineering education at the University of Queensland (including those related to the laboratory, student/staff ration, literacy, motivation, course content, and structural changes). Also describes a proposed plan of the Queensland department to implement a scheme for resource-based education in chemical…
Descriptors: Chemical Engineering, College Instruction, Curriculum Development, Engineering Education

Heenan, William A.; Henley, Ernest J. – Chemical Engineering Education, 1977
Describes a sophisticated computer technique that analyzes subject matter to determine what prerequisite knowledge is needed. Presents illustrations of flow charts that can be constructed for a particular subject, showing the organization of curriculum modules. (MLH)
Descriptors: Computer Programs, Computers, Curriculum, Curriculum Development
Gray, Jeffrey J. – Chemical Engineering Education, 2006
I present modifications to the traditional course entitled, "Process dynamics and control," which I renamed "Modeling, dynamics, and control of chemical and biological processes." Additions include the central dogma of biology, pharmacokinetic systems, population balances, control of gene transcription, and large-scale…
Descriptors: Molecular Biology, Engineering Education, Mathematical Models, Chemical Engineering

Ng, 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

Mansour, 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

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