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Burkholder, Eric; Hwang, Lisa; Wieman, Carl – Chemical Engineering Education, 2021
We have developed an assessment of authentic problem-solving in chemical engineering, which we used to measure students' problem-solving at the beginning and end of a cornerstone design course. We measured how much problem-solving students learned, and how these students compared with data collected from seniors at the beginning of the capstone…
Descriptors: Authentic Learning, Problem Solving, Chemical Engineering, Student Evaluation
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Pott, Robert W. M.; Nortjé, Sunel – European Journal of Engineering Education, 2021
A concern in engineering education is students adopting a 'recognise and reproduce' approach to problem solving. In this study, an assignment was conceived and analysed through Legitimation Code Theory -- which allows for visualisation of students' thinking, and to illuminate how students construct knowledge in open-ended problem solving. The…
Descriptors: Teaching Methods, Learning Processes, Engineering Education, Problem Solving
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Seay, Jeffrey R.; Eden, Mario R. – Chemical Engineering Education, 2008
This paper introduces, via case study example, the benefit of including risk assessment methodology and inherently safer design practices into the curriculum for chemical engineering students. This work illustrates how these tools can be applied during the earliest stages of conceptual process design. The impacts of decisions made during…
Descriptors: Engineering Education, Chemical Engineering, Methods, Risk
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Ehrman, Sheryl H.; Castellanos, Patricia; Dwivedi, Vivek; Diemer, R. Bertrum – Chemical Engineering Education, 2007
A particle technology design problem incorporating population balance modeling was developed and assigned to senior and first-year graduate students in a Particle Science and Technology course. The problem focused on particle collection, with a pipeline agglomerator, Cyclone, and baghouse comprising the collection system. The problem was developed…
Descriptors: Chemical Engineering, Engineering Education, Graduate Students, Design
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Soares, Joao B. P.; Penlidis, Alexander; Hamielec, Archie E. – Chemical Engineering Education (CEE), 1998
Describes how interaction with several polymer manufacturing companies through industrial short courses and research projects has led to the development of dynamic and up-to-date undergraduate and graduate curriculums in polymer science and engineering technology. (DDR)
Descriptors: Chemical Engineering, Competition, Course Content, Design
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Mackenzie, J. G.; Allen, R. M.; Earl, W. B.; Gilmour, I. A. – Chemical Engineering Education (CEE), 1999
Discusses strategies for teaching problem-solving techniques during an engineering design course in the third year of a four-year degree program. Describes the content of six problem-solving curricular modules, course organization, evaluation and assessment, and results. (Contains 28 references.) (WRM)
Descriptors: Chemical Engineering, Course Descriptions, Creative Thinking, Design
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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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Willey, Ronald J.; Price, John M. – Chemical Engineering Education (CEE), 1998
Describes the incorporation of health and safety issues into the engineering curriculum and focuses on an approach that introduces students to open-ended problems early in the curriculum. Reports that students are able to provide fresh solutions to mundane problems. (DDR)
Descriptors: Chemical Engineering, Course Content, Design, Environmental Education
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Joo, Yong Lak; Choudhary, Devashish – Chemical Engineering Education, 2006
For decades, every chemical engineer has been asked to have a background in separations. The required separations course can, however, be uninspiring and superficial because understanding many separation processes involves conventional graphical methods and commercial process simulators. We utilize simple, user-­friendly mathematical software,…
Descriptors: Visualization, Computation, Chemical Engineering, Engineering Education