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Courtney A. Pfluger; Jennifer R. Weiser; Kristine Horvat – Chemical Engineering Education, 2024
As understanding of STEM education pedagogy deepens, traditional lecture-based courses evolve to include new philosophies, such as active learning, project-based learning, and inquiry-based learning (IBL). Additionally, hands-on educational experiences at the early stages of an undergraduate program are seminal in propelling students into the…
Descriptors: Experiential Learning, Active Learning, Inquiry, Teaching Methods
Max Chen; Yichen Li; Hilson Shrestha; Noe¨lle Rakotondravony; Andrew Teixeira; Lane Harrison; Robert E. Dempski – Journal of Chemical Education, 2024
Industrial and academic laboratories are undergoing a paradigm shift in process technology from batch to modular flow. Implementation of modular flow processes can enable more efficient operation with superior throughput, scalability, and safety factors owing to superior transport and reaction kinetics. However, both fine chemical and…
Descriptors: Chemical Engineering, Chemistry, Undergraduate Students, Science Instruction
Falconer, John L.; Hendren, Neil – Chemical Engineering Education, 2021
A virtual catalytic reactor laboratory (VCRL) experiment, which can be used in most browsers, is described. Students select feed conditions and use the VCRL to take data for a gas-phase catalytic reaction and fit kinetic parameters to a Langmuir-Hinshelwood rate expression. The VCRL contains instructions, equipment descriptions, an animated…
Descriptors: Science Instruction, Computer Simulation, Laboratory Experiments, Laboratory Equipment
Melvin, Adam T.; Bullard, Lisa G. – Chemical Engineering Education, 2021
Scenario-based academic integrity videos previously developed by the authors have been updated to address changes in technology and on-line resources, expand the application to more general STEM courses, and include new scenarios. Student understanding of academic integrity expectations before and after watching the video was assessed, and initial…
Descriptors: Chemical Engineering, Vignettes, Video Technology, Teaching Methods
Clay, John D.; Collins, Eric – Chemical Engineering Education, 2020
Generating a problem that addresses multiple course learning objectives can be a challenging, but worthwhile exercise for a professor. These types of problems are particularly useful late in a course to help students tie together seemingly disparate concepts to solve an integrated problem that requires them to review concepts mastered throughout…
Descriptors: Smoking, Electronic Equipment, Educational Objectives, Teaching Methods
Using Familiar Contexts to Ease the Transition between A-Level and First-Year Degree-Level Chemistry
Turner, John J. – School Science Review, 2013
This article endeavours to define how an understanding of the context of chemical principles and processes investigated at A-level (post-16) and earlier can be continued and contribute to easing the tensions and uncertainties encountered by chemistry and chemical engineering students on entry to university. The importance of using chemistry…
Descriptors: Chemistry, Science Instruction, Chemical Engineering, Scientific Concepts
Koretsky, Milo D.; Brooks, Bill J. – Chemical Engineering Education, 2012
Changes in student perceptions to a novel technology-based, active-learning pedagogy using a custom, sophisticated, personal response system called WISE were studied over the first five years it was used. Students tended to view active learning more favorably over time, particularly in regards to statements that required them to be interpretive of…
Descriptors: Student Attitudes, Active Learning, Attitude Change, Educational Technology
Liberatore, Matthew W. – Chemical Engineering Education, 2013
The delivery of a material and energy balances course is enhanced through a series of in-class and out-of-class exercises. An active learning classroom is achieved, even at class sizes over 150 students, using multiple instructors in a single classroom, problem solving in teams, problems based on YouTube videos, and just-in-time teaching. To avoid…
Descriptors: Active Learning, Energy, Team Teaching, Teaching Methods
Liberatore, Matthew W.; Marr, David W. M.; Herring, Andrew M.; Way, J. Douglas – Chemical Engineering Education, 2013
Inspired by YouTube videos, students created homework problems as part of a class project. The project has been successful at different parts of the semester and demonstrated learning of course concepts. These new problems were implemented both in class and as part of homework assignments without significant changes. Examples from a material and…
Descriptors: Homework, Science Instruction, Social Networks, Educational Technology
Faraji, Sepideh – Chemical Engineering Education, 2012
In this study, an investigation into the proper use of weekly quizzes in chemical engineering program has been conducted. The traditional weekly homework assignments were replaced with weekly paper quizzes. Achievement levels of students were compared with those students who learn through traditional homework assignments only. The results show the…
Descriptors: Academic Achievement, Homework, Tests, Chemical Engineering
Vigeant, Margot; Prince, Michael; Nottis, Katharyn – Chemical Engineering Education, 2011
This study examines the use of inquiry-based instruction to promote the understanding of critical concepts in thermodynamics and heat transfer. Significant research shows that students frequently enter our courses with tightly held misconceptions about the physical world that are not effectively addressed through traditional instruction. Students'…
Descriptors: Science Activities, Thermodynamics, Heat, Chemical Engineering
Liu, Xue; Howley, Maureen A.; Johri, Jayati; Glasser, Benjamin J. – Chemical Engineering Education, 2008
A simplified model of an industrially relevant fluid-particle flow system is analyzed using linear stability theory. Instabilities of the uniform state of a fluidized bed are investigated in response to small flow perturbations. Students are expected to perform each step of the computational analysis, and physical insight into key mechanistic…
Descriptors: Models, Investigations, Chemical Engineering, Problem Solving