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Golter, Paul B. – ProQuest LLC, 2011
In order to address some of the challenges facing engineering education, namely the demand that students be better prepared to practice professional as well as technical skills, we have developed an intervention consisting of equipment, assessments and a novel pedagogy. The equipment consists of desktop-scale replicas of common industrial…
Descriptors: Chemical Engineering, Engineering Education, Skill Development, Intervention
Forbes, Neil S. – Chemical Engineering Education, 2008
This article describes a teaching module designed to enhance engineering creativity in an introductory chemical engineering course. The module includes an exercise to design column packing material, and an open-ended research project to describe the societal impact of chemical engineering. These assignments were created to illustrate the benefit…
Descriptors: Creativity, Research Projects, Chemical Engineering, Engineering Education
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

Woods, Donald R.; Kourti, Theodora; Wood, Philip E.; Sheardown, Heather; Crowe, Cameron M.; Dickson, James M. – Chemical Engineering Education, 2002
Carries on from an article about the context for assessment of problem solving skills. Describes other forms of evidence in problem solving skill besides the options given in the previous article. Lists eight forms of evidence related more directly to the problem solving process. Analyzes the relationship among some of these suggested forms of…
Descriptors: Chemical Engineering, Evaluation, Higher Education, Problem Solving

Case, Jennifer; Gunstone, Richard; Lewis, Alison – Research in Science Education, 2001
Investigates the metacognitive development of students in a second year chemical engineering course which had such development as an explicit goal. Concludes, among other results, that there is a shift in student approach from a focus on solving problems towards a stronger valuing of conceptual understanding. (Author/MM)
Descriptors: Chemical Engineering, Concept Formation, Educational Strategies, Higher Education
Case, Jennifer; Marshall, Delia – Studies in Higher Education, 2004
This article describes two approaches to learning (in addition to the classic deep and surface approaches) identified in studies of student learning in engineering contexts. The first study identified the 'procedural deep' approach in a group of engineering foundation programme students in the UK, while the second study identified the 'procedural…
Descriptors: Problem Solving, Learning Strategies, Higher Education, Engineering Education

Reeves, Deborah E.; Schork, F. Joseph – Chemical Engineering Education, 1988
Presents six problems from an alternative approach to homework traditionally given to follow-up lectures. Stresses the advantage of longer term exercises which allow for creativity and independence on the part of the student. Problems include: "System Model,""Open-Loop Simulation,""PID Control,""Dahlin…
Descriptors: Chemical Engineering, College Science, Engineering Education, Higher Education

Bunge, Annette L.; Miller, Ronald L. – Chemical Engineering Education (CEE), 1997
Undergraduate and graduate students are often confused about several aspects of modeling physical systems. Describes an approach to address these issues using a single physical transport problem that can be analyzed with multiple mathematical models. (DKM)
Descriptors: Chemical Engineering, Engineering Education, Higher Education, Mathematical Concepts

Grinbaum, Baruch; Semiat, Raphael – Journal of Chemical Education, 1998
Cites the shortcomings of the traditional educational experiences of chemists. Focuses on their training in engineering and concludes that training is lacking in the areas of mass balances in flow processes, heat balances, reactors, separation processes, and scaleup. (DDR)
Descriptors: Chemical Engineering, Chemistry, College Curriculum, Curriculum Development

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

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

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

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

Beveridge, G. S. C.; Mathews, T. – Assessment and Evaluation in Higher Education, 1986
The use of case studies for training in problem solving in a Scottish chemical engineering program is outlined, and problems in assessing both changes in student behavior and the quality of the learning experience are examined. (MSE)
Descriptors: Case Studies, Chemical Engineering, Classroom Techniques, Engineering Education

Woods, Donald R. – Chemical Engineering Education, 1983
Describes a graduate or senior elective course combining fundamentals of surface phenomena with practical problem-solving structured around a series of case problems. Discusses topics covered and their development through acquiring new knowledge applied to the case problem, practical calculations of solutions, and applications to additional…
Descriptors: Chemical Engineering, Course Content, Course Descriptions, Engineering Education
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