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Showing all 12 results Save | Export
Angi Stone-MacDonald; Kristen Wendell; Anne Douglass; Mary Lu Love; Amanda Wiehe Lopes – Brookes Publishing Company, 2024
Boost young children's problem-solving skills and set them up for long-term success with the second edition of this practical guidebook! Enhanced with new lessons and timely topics--including equity and the use of makerspaces--this book will help you get all children ready for kindergarten by teaching them basic practices of engineering design and…
Descriptors: Young Children, Infants, Toddlers, Preschool Children
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Nihal Eres; Tugba Ecevit – Journal of Inquiry Based Activities, 2025
This study aimed to design, implement, and evaluate the feasibility of an activity titled "Space Adventure for Little Explorers", integrating the engineering and entrepreneurship design model within the STEM education framework into preschool education. The activity was structured in four stages: (1) Discovery with the Family, (2)…
Descriptors: Engineering Education, Entrepreneurship, Preschool Education, Learning Activities
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Edwards, Kirsten D.; Gotwals, Amelia Wenk; Wright, Tanya S. – Science and Children, 2020
Young children love opportunities to build, discover, and solve problems. Teachers can take advantage of these natural tendencies by introducing students to aspects of engineering design while they engage in classroom activities. Engineering also lends itself to supporting students in developing disciplinary literacy practices such as learning…
Descriptors: Engineering, Kindergarten, Interdisciplinary Approach, Language Arts
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Reuter, Timo; Leuchter, Miriam – European Journal of STEM Education, 2022
Introducing kindergarten children to the engineering design process (EDP) is an important objective of early STEM education. Studies indicate that children often miss the crucial steps of testing and optimising during the EDP and do not persist in making solutions better. The present study explores how children's goal awareness, self-evaluation…
Descriptors: Kindergarten, Young Children, Goal Orientation, Perception
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Xing, Wanli; Li, Chenglu; Chen, Guanhua; Huang, Xudong; Chao, Jie; Massicotte, Joyce; Xie, Charles – Journal of Educational Computing Research, 2021
Integrating engineering design into K-12 curricula is increasingly important as engineering has been incorporated into many STEM education standards. However, the ill-structured and open-ended nature of engineering design makes it difficult for an instructor to keep track of the design processes of all students simultaneously and provide…
Descriptors: Engineering Education, Design, Feedback (Response), Student Evaluation
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Lin, Xunyi; Yang, Weipeng; Wu, Lizhen; Zhu, Lifen; Wu, Duanping; Li, Hui – Early Education and Development, 2021
Research Findings: The present study investigated the effects of a 12-week inquiry-based science and engineering (IBSE) program on preschoolers' science and engineering learning experiences. The treatment versus control condition was randomly assigned to four preschool classes, which included 122 preschoolers (M = 61.10 month, SD = 3.73).…
Descriptors: Active Learning, Inquiry, Science Education, Engineering Education
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Yuhyun Choi; Euisuk Sung; Seungwon Lee – Technology and Engineering Teacher, 2022
The International Technology and Engineering Educators Association's (ITEEA's) "Standards for Technological and Engineering Literacy" ("STEL") describes design thinking as an approach that allows students and educators to integrate other content areas by considering relevant contextual information to guide design and making…
Descriptors: Design, Engineering Education, Thinking Skills, Context Effect
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Ehsan, Hoda; Rehmat, Abeera P.; Cardella, Monica E. – Science and Children, 2019
Computational thinking can provide a basis for problem solving, for making evidence-based decisions, and for learning to code or create programs. Therefore, it is critical that all students across the K-12 continuum--including students in the early grades--have opportunities to begin developing problem solving and computational thinking skills.…
Descriptors: Teaching Methods, STEM Education, Computer Science Education, Thinking Skills
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Wao, Hesborn; Kersaint, Gladis; Smith, Chrystal A. S.; Campbell-Montalvo, Rebecca; Puccia, Ellen; Skvoretz, John; Martin, Julie P.; Lee, Reginald; MacDonald, George – International Journal of STEM Education, 2023
Background: Women and under-represented minority (URM) students continue to be under-represented in STEM and earn the lowest proportion of undergraduate engineering degrees. We employed a mixed methods research approach grounded in social capital theory to investigate "when" they first consider pursuing engineering as a college degree…
Descriptors: Females, Minority Group Students, Disproportionate Representation, Engineering Education
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Douglass, Helen – Science and Children, 2016
This column presents ideas and techniques to enhance science teaching. In today's classrooms, teachers face numerous challenges. They are preparing students for jobs and careers that are not even conceived of yet. Assessments are being used to address students' college and career readiness and to promote critical thinking and problem solving.…
Descriptors: Teaching Methods, Science Instruction, Critical Thinking, Problem Solving
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Grubbs, Michael E.; Strimel, Greg J.; Kim, Eunhye – International Journal of Technology and Design Education, 2018
Cultivating students' design abilities can be highly beneficial for the learning of science, technology, engineering, and mathematics (STEM) concepts, and development of higher-order thinking capabilities (National Academy of Engineering and National Research Council in STEM integration in k-12 education: status, prospects, and an agenda for…
Descriptors: Design, Engineering Education, Technology Education, Developmentally Appropriate Practices
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Hefty, Lukas J. – Teaching Children Mathematics, 2015
The National Council of Teachers of Mathematics' (NCTM's) "Principles and Standards for School Mathematics" (2000) outlines fi ve Process Standards that are essential for developing deep understanding of mathematics: (1) Problem Solving; (2) Reasoning and Proof; (3) Communication; (4) Connections; and (5) Representation. The Common Core…
Descriptors: Mathematics Instruction, Problem Solving, Mathematical Logic, Validity