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Maungchang, Rasimate; Dam-O, Punsiri – Physics Education, 2021
This paper demonstrates an experimental integrated lesson of physics and calculus in a topic of fluid force applying on different shapes of dams. This lesson was designed for the first year students in engineering program in an attempt to show them the connection between these two disciplines, as well as to introduce more advanced…
Descriptors: Physics, Calculus, Science Instruction, Scientific Concepts
Latimer, Benjamin; Bergin, David A.; Guntu, Vinay; Schulz, David J.; Nair, Satish S. – IEEE Transactions on Education, 2019
Contribution: This paper demonstrates curricular modules that incorporate engineering model-based approaches, including concepts related to circuits, systems, modeling, electrophysiology, programming, and software tutorials that enhance learning in undergraduate neuroscience courses. These modules can also be integrated into other neuroscience…
Descriptors: Integrated Curriculum, Models, Neurosciences, Interdisciplinary Approach
Jenkins, Samir V.; Gohman, Taylor D.; Miller, Emily K.; Chen, Jingyi – Journal of Chemical Education, 2015
The rapid academic and industrial development of nanotechnology has led to its implementation in laboratory teaching for undergraduate-level chemistry and engineering students. This laboratory experiment introduces the galvanic replacement reaction for synthesis of hollow metal nanoparticles and investigates the optical properties of these…
Descriptors: Molecular Structure, Technology, Interdisciplinary Approach, Science Instruction
Henkel, Marius; Zwick, Michaela; Beuker, Janina; Willenbacher, Judit; Baumann, Sandra; Oswald, Florian; Neumann, Anke; Siemann-Herzberg, Martin; Syldatk, Christoph; Hausmann, Rudolf – Biochemistry and Molecular Biology Education, 2015
Bioprocess engineering is a highly interdisciplinary field of study which is strongly benefited by practical courses where students can actively experience the interconnection between biology, engineering, and physical sciences. This work describes a lab course developed for 2nd year undergraduate students of bioprocess engineering and related…
Descriptors: Undergraduate Students, College Science, Biology, Engineering Education
Paluri, Sesha L. A.; Edwards, Michelle L.; Lam, Nhi H.; Williams, Elizabeth M.; Meyerhoefer, Allie; Pavel Sizemore, Ioana E. – Journal of Chemical Education, 2015
In recent years, nanoscience and nanotechnology have been drawing enormous attention due to the numerous applications of nanomaterials. In an attempt to nurture interest towards these areas in young minds and to develop the next generation of environmentally conscious scientists and engineers, this new laboratory module focuses on the green and…
Descriptors: Molecular Structure, Technology, Science Instruction, Chemistry
Piergiovanni, Polly R. – Chemical Engineering Education, 2012
Sophomore liberal arts and engineering students enrolled in a course to learn and practice some basic chemical engineering side by side. The course was developed around the theme of indigo dyeing, which has an interesting history, fascinating chemistry and is accessible to all students. The students participated in a variety of active learning…
Descriptors: Liberal Arts, Active Learning, Engineering Education, Interdisciplinary Approach
Engaging Undergraduates in an Interdisciplinary Program: Developing a Biomaterial Technology Program
Liang, Jia-chi; Kung, Shieh-shiuh; Sun, Yi-ming – Chemical Engineering Education, 2009
Yuan Ze University targeted Biomaterials Science and developed a curriculum related to Biotechnology, Biochemical Engineering, and Biomaterials for engineering students to cultivate talents for both engineering and biotechnology. After several years of operation, recruiting students has succeeded, and students are satisfied with the course design…
Descriptors: Engineering Education, Biotechnology, Chemical Engineering, Interdisciplinary Approach
de Silva, Eugene, Ed. – IGI Global, 2015
While the great scientists of the past recognized a need for a multidisciplinary approach, today's schools often treat math and science as subjects separate from the rest. This not only creates a disinterest among students, but also a potential learning gap once students reach college and then graduate into the workforce. "Cases on…
Descriptors: Teaching Methods, Science Education, Hands on Science, Elementary Secondary Education
Rodenberger, Charles A. – Journal of Engineering Education, 1972
Important points are that invention and innovation are important elements of technological change, that creative engineering and innovation can be encouraged, and that understanding of the innovation process can be taught on an interdisciplinary base. Course involves developing a project to solve one of the important problems in the world today.…
Descriptors: College Science, Course Descriptions, Design, Engineering Education
Gregg, Lucius P. – Engineering Education, 1971
Descriptors: College Science, Curriculum Development, Design, Engineering Education
Nevill, Gale E., Jr.; O'Connor, John A. – Engineering Education, 1972
Describes an experimental design course for engineering and art students based on the concepts of creativity and innovation. Class involvement was encouraged and groups of three people worked best with mixing of engineering and non-engineering students. Students expressed interest and enthusiasm for the course. (DF)
Descriptors: Art, College Science, Creativity, Design

Roy, Rustum – Chemical and Engineering News, 1977
Presents an argument in favor of interdisciplinary science education at the university level for engineering students. (SL)
Descriptors: College Science, Curriculum, Engineering, Engineering Education
Batra, Pradeep; Rubenstein, Moshe F. – Journal of Engineering Education, 1973
Descriptors: College Science, Computer Assisted Instruction, Course Descriptions, Curriculum
Romualdi, James P.; Hoel, Lester A. – Journal of Engineering Education, 1971
Some characteristics of interdisciplinary research institutes are identified. Some operational guidelines are recommended with particular emphasis on their structure with respect to the framework of the university. (TS)
Descriptors: College Administration, College Science, Engineering Education, Interdisciplinary Approach

Masarnau, Juan – European Journal of Engineering Education, 1988
Discusses a product development structure, including marketing, design, technology, industrial manufacturing, reasoning, and objects. Describes needs of the interface in terms of marketing, industrial design, technology, and industry. (YP)
Descriptors: College Science, Design, Engineering Education, Industry