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Showing 1 to 15 of 179 results Save | Export
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Tharuesean Prasoplarb; Chatree Faikhamta; Samia Khan; Kornkanok Lertdechapat; Nguyen Van Bien; R. Ahmad Zaky El Islami; Song Xue; Vipavadee Khwaengmek; Alison Hennessey – Asia-Pacific Science Education, 2024
Southeast Asian countries are embracing updated integrated curricula, such as STEM, which are impacted by socio-scientific, political, and economic reasons related to global educational reform. This study compares science curricula regarding science and engineering practices (SEP?s) in Indonesian, Thai, and Vietnamese science curricula. The SEP?s…
Descriptors: Foreign Countries, Comparative Education, Science Curriculum, Integrated Curriculum
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Miri Barak; Tamar Ginzburg; Sibel Erduran – Science & Education, 2024
Engineering education has slowly been making its way into schools with the aim of promoting engineering literacy, which is central to learning and working in a technology-oriented society. Educators and policy makers advocate the need for developing students' understanding of the nature of engineering (NOE); yet, there is an ongoing debate on the…
Descriptors: Engineering Education, Science Curriculum, Integrated Curriculum, Educational Research
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Moloi, Mabel Julia; Motlhabane, Abraham Tlhalefang – South African Journal of Education, 2023
The aim with this study was to analyse and explore how physical sciences, engineering science and technology subjects (technical electrical technology, technical civil technology, technical mechanical technology) can contribute to the alignment of the technical sciences curriculum. We used document analysis to collect data. An analysis of the…
Descriptors: Integrated Curriculum, Science Curriculum, Physical Sciences, Engineering Education
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John Mitchell; Emanuela Tilley – Journal of Problem Based Learning in Higher Education, 2024
This paper will present the argument that while Problem Based Learning (PBL) (or its variant Project Based Learning, PjBL) provides significant benefits and advantages to student learning in of itself, the full benefit of PBL is only completely realised as part of an "integrated" curriculum that provides a variety of learning…
Descriptors: Foreign Countries, College Faculty, Engineering Education, Educational Researchers
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Arefin, Md. Arman; Nabi, Md. Nurun; Sadeque, Saalem; Gudimetla, Prasad – International Journal of Sustainability in Higher Education, 2021
Purpose: Literature limited in scope regarding the incorporation of sustainability into engineering curriculum encouraged authors to look at the current approaches of universities to the integration of sustainability into university curricula. The purpose of this study is to evaluate the literature published and analyse the university secondary…
Descriptors: Sustainable Development, Environmental Education, Engineering Education, Integrated Curriculum
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Fan, Szu-Chun; Yu, Kuang-Chao; Lin, Kuen-Yi – International Journal of Science and Mathematics Education, 2021
Integrated science, technology, engineering, and mathematics (STEM) curricula have taken center stage in the recent education reforms. However, the challenge in teaching STEM curricula lies in finding ways to develop students' content knowledge and plan suitable learning activities and instructional strategies. This paper is focused on the…
Descriptors: Curriculum Implementation, Engineering Education, STEM Education, Integrated Curriculum
Abt Global, 2024
The purpose of this report is to provide findings from the Abt Global independent evaluation of the PreK-12 STEM Pathway program. The Community Training and Assistance Center (CTAC), a nonprofit organization focused on supporting educational innovation and community change, received an Education Innovation and Research (EIR) Early Phase grant from…
Descriptors: STEM Education, Guided Pathways, Evaluation, Elementary Secondary Education
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Bernstein, Debra; Puttick, Gillian; Wendell, Kristen; Shaw, Fayette; Danahy, Ethan; Cassidy, Michael – Educational Technology Research and Development, 2022
In most middle schools, learning is segregated by discipline. Yet interdisciplinary approaches have been shown to cultivate creative thinking, support problem solving, and develop interest while supporting knowledge gains (NAE & NRC in STEM Integration in K-12 Education: Status, Prospects, and an Agenda for Research. National Academies Press,…
Descriptors: Robotics, Design, Middle School Students, Problem Based Learning
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Grohs, J. R.; Gillen, A. L.; Matusovich, H. M.; Kirk, G. R.; Lesko, H. L.; Brantley, J.; Carrico, C. – Journal of STEM Outreach, 2020
Broadening participation in engineering is an important national priority and has led to increasing demands for engineering content to be integrated into traditional K-12 curriculum. However, expecting teachers to incorporate engineering into their classrooms without additional training or resources is unreasonable. Partnering teachers with…
Descriptors: Capacity Building, Integrated Curriculum, Engineering Education, Science Education
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Santos, José; Escórcio, Patrícia – European Journal of Engineering Education, 2022
Building Information Modelling (BIM) has changed the way many civil engineers organise and execute their job in recent years. Many universities around the world have been adapting their curricula to include BIM education. However, this adaptation has been incomplete, occurring only in a small number of subjects. To fill this gap, this paper…
Descriptors: Civil Engineering, Engineering Education, Construction (Process), Construction Management
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Brand, Brenda R. – International Journal of STEM Education, 2020
Background: The Next Generation Science Standards accentuate engineering design along with scientific inquiry, emphasizing the relationship between scientific investigations and engineering design in solving problems and devising new ideas and technologies. The goal is for students to realize the importance of science and engineering in innovation…
Descriptors: Science Education, Engineering Education, STEM Education, Design
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Roehrig, Gillian H.; Dare, Emily A.; Ring-Whalen, Elizabeth; Wieselmann, Jeanna R. – International Journal of STEM Education, 2021
Background: Few tools or rubrics exist to assess the quality of integrated STEM curricula, and existing tools focus on checklists of characteristics of integrated STEM. While such instruments provide important information about the presence and quality of certain curricular components, they do not assess the level and nature of integration of the…
Descriptors: STEM Education, Integrated Curriculum, Check Lists, Units of Study
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Adriana D. Cimetta; Rebecca S. Friesen; Shaun M. Davis; Martha R. C. Bhattacharya – Scholarship and Practice of Undergraduate Research, 2025
Vertically integrated project courses (VIPs) are successful models for embedding long-term research participation into engineering curricula. Whether this model can be translated into gains for laboratory-based projects in biological sciences is unknown. Most biological sciences course-based undergraduate research experiences (CUREs) are a single…
Descriptors: Neurosciences, Educational Benefits, STEM Education, Self Efficacy
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Steve Sternberg; Lyndon Ramrattan; Richard Davis; Moe Benda; Victor Lai; Michael Rother; Guy Sander; Tsutomu Shimotori; Sam Toan; Zhihua Xu; Weiguo Xie – Chemical Engineering Education, 2024
CACAO (Chocolate Across the Curriculum and Outreach) is a vertical curriculum augmentation designed to help students across the ChE undergraduate program. The students use a chocolate-based food engineering lab to make connections between core chemical engineering topics using hands-on and project-based learning. Costs to create this component are…
Descriptors: Food, Industry, Integrated Curriculum, Chemistry
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Klassen, Mike; Reeve, Doug; Evans, Greg J.; Rottmann, Cindy; Sheridan, Patricia K.; Simpson, Annie – New Directions for Student Leadership, 2020
Engineering is developing extensive leadership education, supporting future professional engineers to engage with others in solving complex sociotechnical problems. A contemporary challenge is to integrate leadership learning into foundational coursework requirements.
Descriptors: Engineering Education, Leadership Training, Problem Solving, Integrated Curriculum
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