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Christopher Greer; Devon Eichfeld; Sara Sattarzadeh; Siu Ling Leung – Advances in Engineering Education, 2024
When engineering students are unable to evaluate the validity of their solutions, they are unprepared to solve complex, real-world engineering problems that require decomposition or knowledge transfer. A proper framework is key to successful implementation and can encourage more institutions to adopt problem-solving engineering labs. This paper…
Descriptors: Problem Solving, Engineering Education, Learning Laboratories, Scientific Concepts
Bettina Dahl; Hans Hüttel; Jakob Gulddahl Rasmussen; Morten Grud Rasmussen – For the Learning of Mathematics, 2023
Many universities throughout the world apply student-centered approaches. Common to these is that projects, problems, challenges etc. stem from "real life". Mathematics is an effective tool to solve problems, but in this paper, we discuss how we reconcile the fact that mathematics is both a pure and an applied discipline with…
Descriptors: Problem Based Learning, Student Centered Learning, Universities, Problem Solving
Kockmann, Norbert; Lutze, Philip; Gorak, Andrzej – Universal Journal of Educational Research, 2016
Chemical processing industry is progressively focusing their research activities and product placements in the areas of Grand Challenges (or Global Megatrends) such as mobility, energy, communication, or health care and food. Innovation in all these fields requires solving high complex problems, rapid product development as well as dealing with…
Descriptors: Foreign Countries, Engineering, Chemistry, Manufacturing Industry
Ahern, Aoife; Dominguez, Caroline; McNally, Ciaran; O'Sullivan, John J.; Pedrosa, Daniela – Studies in Higher Education, 2019
Developing optimum solutions to engineering problems typically relies on structured and complex thought processes that require evaluation, interpretation and opinion. Well-developed critical thinking (CT) skills are essential for dealing with the multi-dimensional nature of these problems. CT in an engineering context is well reported in teaching…
Descriptors: Critical Thinking, Engineering Education, Problem Solving, Thinking Skills
Urbanic, R. J. – Journal of Learning Design, 2011
In Canadian engineering institutions, a significant design experience must occur in the final year of study. In the Department of Industrial and Manufacturing Systems at the University of Windsor, unsolved, open ended projects sponsored by industrial partners from a variety of sectors are provided to the student teams in order for them to apply…
Descriptors: Foreign Countries, Engineering Education, Interaction, Teamwork
Hayden, Nancy J.; Rizzo, Donna M.; Dewoolkar, Mandar M.; Neumann, Maureen D.; Lathem, Sandra; Sadek, Adel – Advances in Engineering Education, 2011
This paper presents a brief overview of the changes made during our department level reform (DLR) process (Grant Title: "A Systems Approach for Civil and Environmental Engineering Education: Integrating Systems Thinking, Inquiry-Based Learning and Catamount Community Service-Learning Projects") and some of the effects of these changes on…
Descriptors: Systems Approach, Engineering Education, Civil Engineering, Environmental Education
Costantino, Tracie; Kellam, Nadia; Cramond, Bonnie; Crowder, Isabelle – Art Education, 2010
Creativity often has been associated with the arts, although creativity also is essential for innovative discoveries and applications in science and engineering. In this article, a pilot study is presented about an investigation concerning how creativity is fostered in an art education course in conjunction with an undergraduate engineering…
Descriptors: Interdisciplinary Approach, Art Education, Engineering Education, Educational Cooperation
Warnock, Scott; Kahn, Michael – Journal of Technical Writing and Communication, 2007
While the importance of "expressive writing," or informal, self-directed writing, has been well established, teachers underutilize it, particularly in technical writing courses. We introduce the term expressive/exploratory technical writing (XTW), which is the use of informal, self-directed writing to problem-solve in technical fields. We describe…
Descriptors: Technical Writing, Engineering, Expressive Language, College Curriculum

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

Truxal, John G. – Change, 1986
The importance of technological literacy in liberal arts education, and approaches to teaching the concepts behind systems analysis and artifacts in engineering, are outlined and discussed. (MSE)
Descriptors: College Curriculum, College Role, Educational Objectives, Engineering Education

Wilczynski, V.; Douglas, S. M. – Journal of Engineering Education, 1995
Reports on the advances of one institution in integrating design across the undergraduate engineering curriculum. Design education is treated as a developmental process to be practiced during each year of the program. Presents examples of design work from courses in each year to illustrate the variety of design problems used to incorporate design…
Descriptors: College Curriculum, Curriculum Development, Design, Educational Objectives

Installe, Michel – European Journal of Engineering Education, 1996
Explains that European engineering students are not well prepared to integrate socio-economic and environmental issues efficiently into their future professional activities. Argues that necessary changes include a more interdisciplinary and systems-oriented approach to problems and better training in communication skills. Provides an example of an…
Descriptors: College Curriculum, Course Content, Engineering Education, Environmental Education

Van Kasteren, Johannes M. N. – European Journal of Engineering Education, 1996
Reports the development and implementation of a multi-disciplinary course on sustainable development within engineering education. Students from different disciplines cooperate with each other in a project that aims to find more sustainable solutions for an environmental issue or problem. (DDR)
Descriptors: College Curriculum, Course Content, Educational Strategies, Engineering Education

Vlachos, Evan C.; Kulacki, F. A. – Journal of Engineering Education, 1995
Proposes that the current highly impacted curriculum for baccalaureate degrees give way to a reduced program oriented toward engineering science that can be completed in four years. This curriculum must be based on a limited set of core educational outcomes and educate engineers within an integrated, liberal framework while preparing graduates for…
Descriptors: College Curriculum, Curriculum Development, Educational Objectives, Educational Philosophy
Friedman, Edward A., Ed. – The Forum for Liberal Education, 1980
Programs that illustrate the ways in which colleges and universities are helping students understand technological methods and issues are described. Some of the programs approach technological literacy from a humanities vantage point that integrates technology into the coursework, while others employ a strict technological approach that touches…
Descriptors: College Curriculum, Computer Oriented Programs, Energy, Engineering