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Elizabeth F. Hasseler – ProQuest LLC, 2022
Since the launch of Sputnik by the U.S.S.R. on October 4, 1957, the United States has aimed to bolster nationwide STEM education with the intention of creating a strong STEM pipeline. Despite many efforts, there remains a distinct lack of diversity in the STEM career fields, and many people cannot accurately describe what engineers do. These two…
Descriptors: School Districts, Engineering Education, Science Instruction, STEM Education
Smithsonian Science Education Center, 2015
Science education has undergone extraordinary change in recent years. The Smithsonian Science Education Center has been producing world-class science curriculum for decades that integrates the arts, history, culture, and science of the Smithsonian. In the growing global marketplace, American students need to excel in science, technology,…
Descriptors: Science Education, Strategic Planning, Teaching Methods, Learning Processes
Lasky, Dorothea; Yoon, Susan A. – Science Educator, 2011
Creativity continues to be an important goal for 21st century learning. However, teachers often have difficulties fostering creativity in their classrooms. Current creativity research suggests that the act of making can enhance the teaching of creativity. Hands-on engineering design lessons are ideal contexts for studying this effect. Through…
Descriptors: Creativity, Science Programs, Engineering, Engineering Education

Abualhamayel, H. I.; Shuaib, A. N. – European Journal of Engineering Education, 1988
Describes the objectives, development, program, and supporting laboratories of a preparatory year workshop program (PWP) at King Fahd University. Lists five PWP topics with historical brief descriptions. (YP)
Descriptors: College Science, Engineering Education, Engineering Graphics, Foreign Countries
Campbell, Clifton P. – 1980
Presented is a two-year associate degree curriculum for Engineering Technology. Specializations are provided in civil, electronics, and mechanical technology. The civil engineering technology specialization facilitates three major areas of study, and mechanical technology includes design and production options. Each curriculum was designed to…
Descriptors: Engineering Education, Engineering Technology, Higher Education, Program Descriptions

Kirkup, L.; Johnson, S.; Hazel, E.; Cheary, R. W.; Green, D. C.; Swift, P.; Holliday, W. – Physics Education, 1998
Explores the issue of physics laboratory work for engineering students and discusses the design, implementation, and evaluation of a laboratory program developed for first year engineering students. (DDR)
Descriptors: Engineering Education, Foreign Countries, Higher Education, Laboratory Training

Morari, M.; Ray, W. H. – Chemical Engineering Education, 1980
Presents Part II of a description of a computer-oriented course on process control which has been offered at the University of Wisconsin for undergraduate students. Lecture topics and laboratory experiments are also included. (HM)
Descriptors: College Science, Computer Oriented Programs, Course Descriptions, Engineering Education

Marshall, Stewart – European Journal of Engineering Education, 1988
Describes a course designed to improve the professional qualities and skills of students by using a design project as the focal point of the course. Gives an example of a product development program including the introduction, stages, and evaluation. (Author/YP)
Descriptors: College Science, Course Descriptions, Engineering Education, Engineers

King, Mary C. – European Journal of Engineering Education, 1988
Examines reasons for dissatisfaction with the limitations of single-discipline approaches to engineering education. Considers the development of a systems-based interdisciplinary course. Provides an example at the University of Bradford. (YP)
Descriptors: College Science, Curriculum Design, Engineering Education, Foreign Countries

Fincham, Robin; Roslender, Robin – European Journal of Engineering Education, 1988
Describes the development of systems thinking and the form taken in the study of work and organizations. Discusses some criticisms from social scientists. Explores the relationship among systems, interdisciplinarity, and engineering education. (Author/YP)
Descriptors: College Science, Curriculum Design, Engineering Education, Higher Education

Vasko, Tibor – European Journal of Engineering Education, 1988
Discusses the necessity of interdisciplinary and systems approaches in engineering education for analyzing complex issues. Presents several recent problems. (YP)
Descriptors: College Science, Curriculum Design, Engineering Education, Higher Education

Niemi, Antti J. – European Journal of Engineering Education, 1988
Recommends systems subjects as part of college curricula for providing students with broader skills and with background that does not become outdated. Topics included are requirements of a basic examination, cooperation with other professionals, and examples of systems technologies and interdisciplinary research. (Author/YP)
Descriptors: College Science, Curriculum Design, Engineering Education, Higher Education

Fordyce, Derek – European Journal of Engineering Education, 1988
Argues that systems thinking can be developed by experiential learning activities which complement both intradisciplinary projects and technical knowledge inputs. Discusses the development of systems thinking, the form of engineering curricula, and assessment. (Author/YP)
Descriptors: College Science, Curriculum Design, Engineering Education, Higher Education

White, R. E.; Hall, K. R. – Chemical Engineering Education, 1979
Describes activities of the Chemical Engineering Department at the Agriculture and Mechanical University (A&M) of Texas. Brief history of Texas (A&M) University's graduate and undergraduate programs, research efforts and the foreseeable future of the department are also included. (HM)
Descriptors: Chemical Industry, Chemistry, College Science, Engineering Education

Smith, Karl A. – European Journal of Engineering Education, 1988
The nature of engineering is examined along with the nature of expertise. School knowledge and out-of-school knowledge are compared. Suggested are four strategies for the development of engineering expertise including problem-based instruction, cognitive apprenticeship, reflective practicum, and cooperative learning. (YP)
Descriptors: College Science, Engineering Education, Engineers, Higher Education
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