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    Pioneering Progress : American Science, Technology, and Innovation Policy


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  • Handbook of Research on Science Teacher Education
    Handbook of Research on Science Teacher Education

    This groundbreaking handbook offers a contemporary and thorough review of research relating directly to the preparation, induction, and career long professional learning of K–12 science teachers. Through critical and concise chapters, this volume provides essential insights into science teacher education that range from their learning as individuals to the programs that cultivate their knowledge and practices.Each chapter is a current review of research that depicts the area, and then points to empirically based conclusions or suggestions for science teacher educators or educational researchers.Issues associated with equity are embedded within each chapter.Drawing on the work of over one hundred contributors from across the globe, this handbook has 35 chapters that cover established, emergent, diverse, and pioneering areas of research, including: Research methods and methodologies in science teacher education, including discussions of the purpose of science teacher education research and equitable perspectives; Formal and informal teacher education programs that span from early childhood educators to the complexity of preparation, to the role of informal settings such as museums; Continuous professional learning of science teachers that supports building cultural responsiveness and teacher leadership; Core topics in science teacher education that focus on teacher knowledge, educative curricula, and working with all students; and Emerging areas in science teacher education such as STEM education, global education, and identity development. This comprehensive, in-depth text will be central to the work of science teacher educators, researchers in the field of science education, and all those who work closely with science teachers.

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  • Handbook of Research on Science Teacher Education
    Handbook of Research on Science Teacher Education

    This groundbreaking handbook offers a contemporary and thorough review of research relating directly to the preparation, induction, and career long professional learning of K–12 science teachers. Through critical and concise chapters, this volume provides essential insights into science teacher education that range from their learning as individuals to the programs that cultivate their knowledge and practices.Each chapter is a current review of research that depicts the area, and then points to empirically based conclusions or suggestions for science teacher educators or educational researchers.Issues associated with equity are embedded within each chapter.Drawing on the work of over one hundred contributors from across the globe, this handbook has 35 chapters that cover established, emergent, diverse, and pioneering areas of research, including: Research methods and methodologies in science teacher education, including discussions of the purpose of science teacher education research and equitable perspectives; Formal and informal teacher education programs that span from early childhood educators to the complexity of preparation, to the role of informal settings such as museums; Continuous professional learning of science teachers that supports building cultural responsiveness and teacher leadership; Core topics in science teacher education that focus on teacher knowledge, educative curricula, and working with all students; and Emerging areas in science teacher education such as STEM education, global education, and identity development. This comprehensive, in-depth text will be central to the work of science teacher educators, researchers in the field of science education, and all those who work closely with science teachers.

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  • Handbook of Research on Science Education : Volume III
    Handbook of Research on Science Education : Volume III

    Volume III of this landmark synthesis of research offers a comprehensive, state-of-the-art survey highlighting new and emerging research perspectives in science education. Building on the foundations set in Volumes I and II, Volume III provides a globally minded, up-to-the-minute survey of the science education research community and represents the diversity of the field.Each chapter has been updated with new research and new content, and Volume III has been further developed to include new and expanded coverage on astronomy and space education, epistemic practices related to socioscientific issues,design-based research, interdisciplinary and STEM education, inclusive science education, and the global impact of nature of science and scientific inquiry literacy. As with the previous volumes, Volume III is organized around six themes: theory and methods of science education research; science learning; diversity and equity; science teaching; curriculum and assessment; and science teacher education.Each chapter presents an integrative review of the research on the topic it addresses, pulling together the existing research, working to understand historical trends and patterns in that body of scholarship, describing how the issue is conceptualized within the literature, how methods and theories have shaped the outcomes of the research, and where the strengths, weaknesses, and gaps are in the literature. Providing guidance to science education faculty, scholars, and graduate students, and pointing towards future directions of the field, Handbook of Research on Science Education Research, Volume III offers an essential resource to all members of the science education community.

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  • Is dry sand heavier than wet sand?

    No, dry sand is not heavier than wet sand. When sand becomes wet, the water fills the spaces between the grains of sand, adding weight but not necessarily making it heavier. In fact, wet sand can be easier to move and shape because the water helps the grains stick together.

  • Can bird sand be used as aquarium sand?

    No, bird sand should not be used as aquarium sand. Bird sand is typically made from crushed shells and can contain additives such as calcium and other minerals that are not suitable for aquarium use. Additionally, bird sand may not be the right size or texture for aquarium substrate, and it could potentially harm the aquatic life in the tank. It's best to use sand specifically designed for aquarium use to ensure the health and safety of your aquatic environment.

  • How do you mix play sand and Rhine sand?

    To mix play sand and Rhine sand, start by pouring both types of sand into a large container or wheelbarrow in equal parts. Use a shovel or rake to thoroughly mix the two sands together until they are evenly combined. Make sure to break up any clumps or chunks of sand to ensure a consistent mixture. Once the sands are well mixed, they can be used for various projects such as creating a sandbox or filling gaps in between pavers.

  • How do you mix play sand and river sand?

    To mix play sand and river sand, start by determining the ratio you want to use. For example, you could mix them in equal parts or adjust the ratio based on your specific needs. Next, combine the two types of sand in a large container or wheelbarrow and use a shovel or rake to thoroughly mix them together. Make sure the sands are evenly distributed throughout the mixture before using it for your project.

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  • Gender Differences in Technology and Innovation Management : Insights from Experimental Research
    Gender Differences in Technology and Innovation Management : Insights from Experimental Research

    Even though the number of working women has steadily increased over the last few years, women are still significantly under-represented in STEM activities (i.e. mathematics, informatics, science and technology). In order to eliminate this under-representation, numerous education policies and corporate initiatives, particularly in the recent past, have been aimed at increasing women's enthusiasm for STEM activities and professions.According to the latest surveys, however, it is clear that these efforts have not yet led to the desired success.Compared to their male counterparts, women continue to do fewer STEM activities. One possible reason for this is that relatively little is yet known about the concrete impact of the above education policies on working with innovation and technology: What are the gender differences between women and men?Is it enough to recognize these differences, or should these differences ideally not only be recognized, but also treated appropriately or even encouraged? This anthology deals with current topics in technology and innovation management against the background of these and other gender-relevant aspects.Empirical analyses and experiments in collaboration with companies from various sectors provide a sound scientific basis on which new results and findings are presented: How do women and men deal with creativity and competition?How are technologies applied and how can differences in access to technology be deduced? Answers to these and other questions help decision-makers in politics and business to proactively use the differences between women and men to motivate women to work in the STEM field and to strengthen them by acknowledging existing differences.

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  • Makerspaces, Innovation and Science Education : How, Why, and What For?
    Makerspaces, Innovation and Science Education : How, Why, and What For?

    This book provides an overview to a range of theories in science and technology that inform the different ways in which makerspaces can be educative.Makerspaces are an indispensable site for science, technology, engineering, and mathematics (STEM) instruction and pose novel risks and opportunities for STEM instruction.Educators are likely to reach towards activities that have a high degree of engagement, but this might result in observations like 'it looks like fun, but what are they learning?'. Beginning from the question of how we know what we know in science, the author asserts that understanding scientific knowledge requires us to know more than the abstract concepts typically presented in schools.The social and material aspects of knowledge are also important—these take the form of questions such as: What is the interplay between knowledge and power?How do we understand that we can have a ‘feel’ for materials and artefacts that we cannot completely describe in words?How do we know what ideas ought to be made real though technology and engineering?Significantly, this book also discusses the ethical dimensions of STEM education, in thinking about the kinds of STEM education that could be useful for open futures. This book will be useful to graduate students and educators seeking an expansive view of STEM education.More generally, these ideas outline a possible new strategy for a vision of school that is not merely training or preparing students for work.Education needs to also prepare students for sociopolitical participation, and with STEM being central to our contemporary lives, this book provides insights for how this can happen in makerspaces.

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  • Dialogues Between Artistic Research and Science and Technology Studies
    Dialogues Between Artistic Research and Science and Technology Studies

    This edited volume maps dialogues between science and technology studies research on the arts and the emerging field of artistic research.The main themes in the book are an advanced understanding of discursivity and reasoning in arts-based research, the methodological relevance of material practices and things, and innovative ways of connecting, staging, and publishing research in art and academia.This book touches on topics including studies of artistic practices; reflexive practitioners at the boundaries between the arts, science, and technology; non-propositional forms of reasoning; unconventional (arts-based) research methods and enhanced modes of presentation and publication.

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  • Hydraulic Excavator DIY Student Technology Small Production Science and Education Toy Model Science
    Hydraulic Excavator DIY Student Technology Small Production Science and Education Toy Model Science

    Hydraulic Excavator DIY Student Technology Small Production Science and Education Toy Model Science

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  • How much sand is in a sand filter system?

    The amount of sand in a sand filter system can vary depending on the size and capacity of the filter. Typically, a residential sand filter system may contain anywhere from 100 to 600 pounds of sand. Commercial or larger systems may have even more sand. The sand is used to trap and filter out impurities from the water as it passes through the system.

  • "Is sand edible?"

    No, sand is not edible. It is made up of small particles of rock and mineral, which are not suitable for consumption. Ingesting sand can be harmful to the digestive system and can cause damage to the teeth and gums. It is important to avoid eating sand and to seek out safe and appropriate food sources.

  • 'Sand or hair?'

    Sand is a granular material made up of small rock and mineral particles, while hair is a protein filament that grows from follicles found in the skin of mammals. Both sand and hair have different properties and uses. Sand is often used in construction and landscaping, while hair is used for insulation, protection, and sensory functions in animals. Ultimately, the choice between sand and hair depends on the specific application and desired outcome.

  • Is sand healthy?

    Sand itself is not inherently healthy or unhealthy. It is a natural material that can have both positive and negative effects on health depending on how it is used. For example, walking barefoot on sand can be a form of natural exfoliation and can help improve circulation, but inhaling large amounts of sand particles can be harmful to the respiratory system. Overall, it is important to consider the context and use of sand when determining its impact on health.

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