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Canan Mesutoglu; Durdane Bayram-Jacobs; Johanna Vennix; Anne Limburg; Birgit Pepin – Research in Science & Technological Education, 2024
Background: In responding to the global problems facing humankind, there is great value in equipping science and engineering students with skills to function well in multidisciplinary teams. Little attention has been paid into the factors that influence multidisciplinary collaboration and teamwork of science and engineering students. Purpose: This…
Descriptors: Teamwork, Physics, Engineering Education, Problem Based Learning
Salgado-Chavarría, David; Palacios-Alquisira, Joaquín – Science Education International, 2021
A problem-based learning (PBL) methodology was implemented to a project, whose main objectives were to discuss and apply the Twelve Principles of Green Chemistry to the study of poly(vinyl alcohol)'s cross-linking reaction with dicarboxylic acids. The five participating students were oriented to be responsible for their own learning and the…
Descriptors: Problem Based Learning, Chemistry, Science Instruction, Scientific Principles
Sumrall, William J.; Sumrall, Kristen M. – Science Activities: Classroom Projects and Curriculum Ideas, 2018
The NGSS MS-ETS1 Engineering Design (1-4) is the focus of the article. Development of a challenging problem-based activity that is an improvement over the traditional egg drop competition is emphasized. Quantification of data collected and real-world relevance are two activity components that are viewed as improvements over the egg drop. The…
Descriptors: Engineering, Design, Problem Based Learning, Science Activities
McPherson, Heather – Science Teacher, 2018
Students often confuse the functional differences between motion "transmission" and "transformation" systems. Students find it difficult to conceptualize differences between the specific systems. In this article, the author describes a technology and engineering unit that incorporates problem-based learning (PBL) to assist…
Descriptors: Science Instruction, Scientific Concepts, Motion, Problem Based Learning
Gale, Jessica; Koval, Jayma; Ryan, Mike; Usselman, Marion; Wind, Stefanie – Journal of Pre-College Engineering Education Research, 2018
With the inclusion of engineering disciplinary core ideas (DCIs), the Next Generation Science Standards (NGSS) position engineering as a new priority in K-12 science classrooms. This paper reports findings from the implementation of SLIDER, a problem-based learning 8th grade physical science curriculum that integrates engineering and physical…
Descriptors: Engineering, Middle School Students, Problem Based Learning, Grade 8
Zalewski, Janusz; Novak, Gregor; Carlson, Randall E. – Education Sciences, 2019
This paper is an overview of approaches to teaching physics courses delivered to students of engineering disciplines. It addresses, first, the history of teaching physics to engineering students starting in the early 20th century, then reviews the main issues presented and discussed over the last decade in a series of conferences on Physics…
Descriptors: Physics, Science Instruction, Engineering Education, Undergraduate Students
Cian, Heidi; Marshall, Jeff; Cook, Michelle – Science Teacher, 2019
The "Framework" (NRC 2012) and "Next Generation Science Standards" (NGSS Lead States 2013) require science teachers to think differently. Specifically, NGSS's performance expectations now require that three domains (disciplinary core ideas (DCI), crosscutting concepts (CCC), and scientific and engineering practices (SEP)) be…
Descriptors: Science Instruction, Teaching Methods, Standards, Science Teachers
Brennan, Janie; Solomon, Erin D. – Chemical Engineering Education, 2019
A unit operations laboratory course was significantly modified to be an open-ended problem-based experience with an emphasis on teamwork and communication skills. Students were surveyed to assess gains in engineering self-efficacy as well as to indicate which course structure components were most beneficial to learning. Students showed significant…
Descriptors: Science Instruction, Science Laboratories, Self Efficacy, Chemistry
Nielsen, Rudi P.; Sørensen, Jens L.; Simonsen, Morten E.; Madsen, Henrik T.; Muff, Jens; Strandgaard, Morten; Søgaard, Erik G. – Journal of Chemical Education, 2016
Chemical engineering is mostly taught using traditional classroom teaching and laboratory experiments when possible. Being a wide discipline encompassing topics such as analytical chemistry, process design, and microbiology, it may be argued that brewing of beer has many relations to chemical engineering topic-wise. This work illustrates how…
Descriptors: Chemical Engineering, Science Instruction, Scientific Principles, Microbiology
Dailey, Debbie; Cotabish, Alicia; Jackson, Nykela – Journal for the Education of the Gifted, 2018
Present and future challenges in our society demand a solid science, technology, engineering, and mathematics (STEM) knowledge base, innovative thinking, and the ability to ask the right questions to generate multiple solutions. To prepare innovators to meet these challenges, we must recognize and develop their talents. This advancement and growth…
Descriptors: STEM Education, Science Instruction, Science Interests, Engineering Education
Gonczi, Amanda L.; Bergman, Brenda G.; Huntoon, Jackie; Allen, Robin; McIntyre, Barb; Turner, Sheri; Davis, Jen; Handler, Rob – Science Activities: Classroom Projects and Curriculum Ideas, 2017
Decision matrices are valuable engineering tools. They allow engineers to objectively examine solution options. Decision matrices can be incorporated in K-12 classrooms to support authentic engineering instruction. In this article we provide examples of how decision matrices have been incorporated into 6th and 7th grade classrooms as part of an…
Descriptors: Decision Making, Matrices, Teaching Methods, Middle School Students
Gomez Puente, S. M.; Van Eijck, M.; Jochems, W. – European Journal of Engineering Education, 2011
Design-based learning is a teaching approach akin to problem-based learning but one to which the design of artefacts, systems and solutions in project-based settings is central. Although design-based learning has been employed in the practice of higher engineering education, it has hardly been theorised at this educational level. The aim of this…
Descriptors: Expertise, Engineering Education, Problem Based Learning, Engineering
Woods, Donald R. – Chemical Engineering Education, 2012
Many different versions of Problem-based Learning (PBL) are used today. To be consistent in evaluating the effectiveness of PBL, the focus in this paper is on what Howard Barrows called authentic PBL (aPBL). In aPBL students are empowered with the learning process; key distinguishing features are that the students teach each other the new…
Descriptors: Evidence, Graduation Rate, Dropouts, Problem Based Learning
Bueno, Patricia Morales – Journal of Technology and Science Education, 2014
This article reports the development and validation study of tests to assess achievements at three levels of knowledge structure, following the model proposed by Sugrue to measure problem-solving skills. The literature has reported this proposal as a model consistent with the theoretical constructs underlying problem-based learning (PBL)…
Descriptors: Problem Solving, Chemistry, Science Instruction, Problem Based Learning
Lawrence, Maria; Yang, Li-Ling; Briggs, May; Hession, Alicia; Koussa, Anita; Wagoner, Lisa – Science Activities: Classroom Projects and Curriculum Ideas, 2016
A fifth grade life science lesson was implemented through a lesson study approach in two fifth grade classrooms. The research lesson was designed by a team of four elementary school teachers with the goal of emphasizing engineering practices consistent with the "Next Generation Science Standards" (NGSS) (Achieve Inc. 2013). The fifth…
Descriptors: Biological Sciences, Elementary School Science, Grade 5, Engineering