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Articles 121 - 150 of 187
Full-Text Articles in Engineering Education
Design Problems For Secondary Students, David H. Jonassen
Design Problems For Secondary Students, David H. Jonassen
Publications
Are there different kinds of design problems? According to Brown and Chandrasekaran (1989), Class 1 design problems are open-ended, non-routine creative activities where the goals are ill-structured, and there is no effective design plan specifying the sequence of actions to take in producing a design model. Class 2 problems use existing, well-developed design and decomposition plans (e.g. designing a new automobile). Class 3 designs are routine where design and decomposition plans are known as well as customary actions taken to deal with failures (e.g., writing a computer program). Jonassen (2011) argued that problems vary in terms of structuredness, complexity, and …
Integrating Engineering Design Challenges Into Secondary Stem Education, Ronald L. Carr
Integrating Engineering Design Challenges Into Secondary Stem Education, Ronald L. Carr
Publications
Engineering is being currently taught in the full spectrum of the P-12 system, with an emphasis on design-oriented teaching (Brophy, Klein, Portsmore, & Rogers, 2008). Due to only a small amount of research on the learning of engineering design in elementary and middle school settings, the community of practice lacks the necessary knowledge of the trajectory of students' learning progressions towards design mastery and expertise and the appropriateness of otherwise established design pedagogies. The issue is even more pressing since many states are embedding engineering into their standards without a clear notion of how engineering (often conceptualized as design) works …
Building A Framework For Engineering Design Experiences In Stem: A Synthesis, Cameron D. Denson
Building A Framework For Engineering Design Experiences In Stem: A Synthesis, Cameron D. Denson
Publications
Since the inception of the National Center for Engineering and Technology Education in 2004, educators and researchers have struggled to identify the necessary components of a “good” engineering design challenge for high school students. In reading and analyzing the position papers on engineering design many themes emerged that may begin to form a narrative for engineering design in a high school setting. Before educators can provide a framework for engineering design in STEM courses, four questions need to be answered: (a) To what degree should engineering design challenges be open-ended or well-structured? (b) What are the relationships between engineering design …
Design Principles For High School Engineering Design Challenges: Experiences From High School Science Classrooms, Christian Schunn
Design Principles For High School Engineering Design Challenges: Experiences From High School Science Classrooms, Christian Schunn
Publications
At the University of Pittsburgh, we have been exploring a range of approaches to design challenges for implementation in high school science classrooms (Apedoe, Reynolds, Ellefson, & Schunn, 2008; Ellefson, Brinker, Vernacchio, & Schunn, 2008; Schunn, Silk, & Apedoe, in press). In general, our approach has always involved students working during class time over the course of many weeks. So, our understanding of what works must be contextualized to that situation (i.e., without significant home support, by students enrolled in traditional classrooms, involving content that is connected to traditional science classrooms). However, our approach has been implemented with thousands of …
Infusing Engineering Design Into High School Stem Courses, Morgan Hynes, Merredith Portsmore, Emily Dare, Elissa Milto, Chris Rogers, David Hammer, Adam Carberry
Infusing Engineering Design Into High School Stem Courses, Morgan Hynes, Merredith Portsmore, Emily Dare, Elissa Milto, Chris Rogers, David Hammer, Adam Carberry
Publications
Society is recognizing the need to improve STEM education and introduce engineering design concepts before college. In the recent National Academy of Engineers report, Engineering in K-12 Education: Understanding the Status and Improving the Prospects, the authors suggest that the STEM disciplines not be treated as ―silos‖ and that engineering might serve as a motivating context to integrate the four STEM disciplines (Katehi, Pearson, & Feder, 2009). Recent research has suggested that integrated technology and engineering design curriculum can serve as a positive model for mathematics and science learning and retention (Ortiz, 2010; Wendell, 2011). The Tufts University Center for …
Engineering Design Challenges In A Science Curriculum, Arthur Eisenkraft
Engineering Design Challenges In A Science Curriculum, Arthur Eisenkraft
Publications
Create a light and sound show to entertain your friends. Design an improved safety device for a car. Develop a 2-3 minute voice-over for a sports clip explaining the physics involved in the sport. Modify the design of a roller coaster to meet the needs of a specific group of riders. Design an appliance package for a family limited by the power and energy of wind generator. Develop a museum exhibit to acquaint visitors with the atom and nucleus and create a product that can be sold at the museum store after visitors leave your exhibit. All of these challenges …
Engineering Design Challenges In High School Stem Courses A Compilation Of Invited Position Papers, Daniel L. Householder
Engineering Design Challenges In High School Stem Courses A Compilation Of Invited Position Papers, Daniel L. Householder
Publications
Since its initial funding by the National Science Foundation in 2004, the National Center for Engineering and Technology Education (NCETE) has worked to understand the infusion of engineering design experiences into the high school setting. Over the years, an increasing number of educators and professional groups have participated in the expanding initiative seeking to acquaint all students with engineering design. While there is strong support for providing students with engineering design experiences in their high school STEM courses, the lack of consensus on purposes and strategies has become increasingly apparent as the work continues. Among the unsettled issues are the …
Year Six Annual Report: Activities, Findings And Evaluators' Reports, Ncete Faculty
Year Six Annual Report: Activities, Findings And Evaluators' Reports, Ncete Faculty
Reports to NSF
The National Center for Engineering and Technology Education (NCETE) is a collaborative network of scholars with backgrounds in technology education, engineering, and related fields. Our mission is to build capacity in technology education and to improve the understanding of the learning and teaching of high school students and teachers as they apply engineering design processes to technological problems.
Design Assessment: Consumer Reports Style, Todd R. Kelley
Design Assessment: Consumer Reports Style, Todd R. Kelley
Publications
The article analyzes a design assessment-based activity, in which students are asked to evaluate an existing technology through a Consumer Reports-style approach. According to H. Petroski, the exposure of students to several design examples is important to start learning the basic elements needed in the design process. It claims that the activity will enable students to sharpen their knowledge in several areas including identifying design constraints and criteria, training via study of open designs, and practicing engineering design methods for optimization. It suggests that these are important skills for creating the student's capacity to undertake bigger design activities.
Engineering Professional Development Design For Secondary School Teachers: A Multiple Case Study, Jenny L. Daugherty
Engineering Professional Development Design For Secondary School Teachers: A Multiple Case Study, Jenny L. Daugherty
Publications
The effectiveness of teachers has been regarded as crucial to the success of standards-based reform (Fishman, Marx, Best, & Tal, 2003). Research, particularly within science and mathematics, has underscored the need for professional development to help teachers understand (a) subject matter, (b) learners and learning, and (c) teaching methods (Loucks-Horsley, 1999). In addition to focusing on teacher professional development, national reform efforts have also emphasized science, technology, engineering, and mathematics (STEM) education (i.e., Rising Above the Gathering Storm, NRC, 2006). While substantial work has been conducted in mathematics and science, the efforts in technology and engineering education are much less …
Xperts And Novices: Differences In Their Use Of Mental Representation And Metacognition In Engineering Design, Raymond Anthony Dixon
Xperts And Novices: Differences In Their Use Of Mental Representation And Metacognition In Engineering Design, Raymond Anthony Dixon
Dissertations
Research shows that mental representation such as analogical reasoning is a fundamental cognitive tool for design problem solving (Daugherty & Mentzer, 2008; Hey, Lensey, Agogino, & Wood, 2008; Lewis, 2008). Not much is known, however, about the way students and professional engineers actively generate and change their mental representation when solving a engineering design problem. There are very few studies that show how different types of mental representations; such as metaphors, propositions, and analogies; interplay with higher order cognitive processes; such as planning, monitoring, and evaluation; as engineering designers navigate their problem and solution spaces. This empirical study investigated the …
Optimization, An Important Stage Of Engineering Design, Todd R. Kelley
Optimization, An Important Stage Of Engineering Design, Todd R. Kelley
Publications
The presents information on optimization, an important stage of engineering design. Criteria and design constraints are used in the optimization stage of the engineering design process to allow the designer to locate the optimal solution. Before initiating a prototype work, both analysis and optimization are done in designing a product. Optimization is done to create the best design relative to a set of prioritized criteria or constraints, including maximizing factors such as productivity, strength, reliability, longevity, efficiency and utilization.
Stem Education And Leadership: A Mathematics And Science Partnership Approach, Chris Merrill, Jenny Daugherty
Stem Education And Leadership: A Mathematics And Science Partnership Approach, Chris Merrill, Jenny Daugherty
Publications
The issue of attracting more young people to choose careers in science, technology, engineering, and mathematics (STEM) has become critical for the United States. Recent studies by businesses, associations, and education have all agreed that the United States’ performance in the STEM disciplines have placed our nation in grave risk of relinquishing its competitive edge in the marketplace (e.g., Rising above the gathering storm, 2007). A Congressional Research Service (2006) report stated that, a “large majority of secondary students fail to reach proficiency in math and science, and many are taught by teachers lacking adequate subject matter knowledge” (Congressional Research …
Engineering Student Outcomes For Infusion Into Technological Literacy Programs: Grades 9-12, Craig Rhodes, Vincent Childress
Engineering Student Outcomes For Infusion Into Technological Literacy Programs: Grades 9-12, Craig Rhodes, Vincent Childress
Publications
In 2004, the National Center for Engineering and Technology Education (NCETE) secured funding from the National Science Foundation (NSF) to infuse engineering design into the schools through technology education. In order to reach this goal the researchers, in cooperation with NCETE, conducted a two phase study to identify outcomes for high-school students studying engineering. The first study (referred to as a Phase I) focused on students who intended to enter an engineering program after high school, answering the question:
What are the engineering student outcomes that prospective engineering students in grades 9 through 12 should know and be able to …
Year Five Annual Report: Activities, Findings And Evaluators' Reports, Ncete Faculty
Year Five Annual Report: Activities, Findings And Evaluators' Reports, Ncete Faculty
Reports to NSF
The National Center for Engineering and Technology Education (NCETE) received funding from the National Science Foundation on September 15, 2004. Originally NCETE proposed the following goals for the Center: • To build capacity in graduate education and develop a new cadre of leaders who are engaged in research, teacher preparation, and professional development with the knowledge and skill to integrate engineering into technology education • To conduct research in how students learn engineering and technological concepts; how students learn design and problem solving, assessment and evaluation strategies; and how best to prepare technology teachers • To refocus technology teacher education …
Delivering Core Engineering Concepts To Secondary Level Students, Chris Merrill, Rodney L. Custer, Jenny Daugherty, Martin Westrick, Yong Zeng
Delivering Core Engineering Concepts To Secondary Level Students, Chris Merrill, Rodney L. Custer, Jenny Daugherty, Martin Westrick, Yong Zeng
Publications
Within primary and secondary school technology education, engineering has been proposed as an avenue to bring about technological literacy (Lewis, 2005; Dearing & Daugherty, 2004). Different initiatives such as curriculum development projects (i.e., Project ProBase and Project Lead The Way) and National Science Foundation funded projects such as the National Center for Engineering and Technology Education (NCETE) have been developed to infuse engineering into primary and secondary education. For example, one key goal of the technology teacher education component of NCETE is to impact the focus and content of the technology education field at the secondary level (National Center for …
Resources - Thinking Small: Nano Small, David Stricker
Resources - Thinking Small: Nano Small, David Stricker
Publications
The article provides information on the "Nanooze" magazine publication. It notes the significance of nanotechnology to the development of latest innovations that come from materials at smallest dimensions or at the nanoscale levels. It presents resources published within the publication that explore the emerging issues in nanotechnology.
Essential Concepts Of Engineering Design Curriculum In Secondary Technology Education, Robert G. Wicklein, Phillip C. Smith Jr., Soo Jung Kim
Essential Concepts Of Engineering Design Curriculum In Secondary Technology Education, Robert G. Wicklein, Phillip C. Smith Jr., Soo Jung Kim
Publications
Technology education is a field of study that seeks to promote technological literacy for all students. According to a recent study, in the United States, technology education is part of the state framework for 38 states, there are approximately 35,909 middle or high school technology teachers, and technology education is most frequently an elective course (Meade & Dugger, 2004). Indeed, students have an opportunity to learn about the processes and knowledge related to technology that are needed to solve problems and extend human capabilities through technology education. Wright and Lauda (1993) defined technology education as a program designed to help …
Examination Of Assessment Practices For Engineering Design Projects In Secondary Education (Part 2), Todd R. Kelley, Robert C. Wicklein
Examination Of Assessment Practices For Engineering Design Projects In Secondary Education (Part 2), Todd R. Kelley, Robert C. Wicklein
Publications
There is a growing interest in the topic of engineering design for technology education. At the 2007 and 2008 International Technology Education Association (ITEA) conference held in San Antonio, over 80 presentations were related to engineering topics. Further evidence of the influence and impact of engineering design content comes from the large number of well documented curriculum projects designed to infuse engineering content into technology education such as Engineering by Design; Project ProBase; Project Lead the Way, and Introduction to Engineering (Dearing & Daugherty, 2004). Likewise, state curriculum standards exist for the teaching of engineering design in technology education (Massachusetts …
A Theoretical Framework To Guide The Re-Engineering Of Technology Education, Todd R. Kelley, Nadia Kellam
A Theoretical Framework To Guide The Re-Engineering Of Technology Education, Todd R. Kelley, Nadia Kellam
Publications
Before leaders in technology education are able to identify a theoretical framework upon which a curriculum is to stand, they must first grapple with two opposing views of the purpose of technology education – education for all learners or career/technical education. Dakers (2006) identifies two opposing philosophies that can serve as a framework for technology education, both inspired by ancient Greece, with the works of Descartes and the birth of positivism. Later reappearing in Pascal’s writings of the mathematical mind, and finally with Rousseau in the mid 1700s, the theoretical arguments of academic verses vocational were established in education, and …
Integrating Engineering Design Into Technology Education: Georgia's Perspective, Cameron Denson, Todd Kelley, Robert C. Wicklein
Integrating Engineering Design Into Technology Education: Georgia's Perspective, Cameron Denson, Todd Kelley, Robert C. Wicklein
Publications
This descriptive research study reported on Georgia’s secondary level (grades 6-12) technology education programs capability to incorporate engineering concepts and/or engineering design into their curriculum. Participants were middle school and high school teachers in the state of Georgia who currently teach technology education. Participants completed a Likert-type online-survey which reported on technology education teacher’s (a) current instructional practices to teach engineering-based instruction, (b) curricular value placed on engineering-based instruction, and (c) instructional needs to teach engineering-based topics. General demographic information was collected from all participants. The results from the study aided in informing the educational community on the perspective of …
Teacher Challenges To Implement Engineering Design In Secondary Technology Education (Part 3), Todd R. Kelley, Robert C. Wicklein
Teacher Challenges To Implement Engineering Design In Secondary Technology Education (Part 3), Todd R. Kelley, Robert C. Wicklein
Publications
This descriptive study examined the current status of technology education teacher practices with respect to engineering design. This article is the third article in a three-part series presenting the results of this study. The first article in the series titled Examination of Engineering Design Curriculum Content highlighted the research findings regarding engineering design curriculum content delivered by technology education teachers. The second article in the series titled Examination of Assessment Practices for Engineering Design Projects in Secondary Technology Education reported technology education teachers’ assessment practices when implementing engineering design projects in the classroom. The sample for this study was drawn …
Examination Of Assessment Practices For Engineering Design Projects In Secondary Education (Part 1), Todd R. Kelley, Robert C. Wicklein
Examination Of Assessment Practices For Engineering Design Projects In Secondary Education (Part 1), Todd R. Kelley, Robert C. Wicklein
Publications
The following descriptive study was designed to determine the national status of secondary technology education curriculum content and assessment practices as they relate to engineering design. The results of this study were divided into a three-part article series. Although this study focused on the larger construct of the national status of the infusion of engineering design into technology education, three separate sub-constructs emerged. The three sub-constructs were: a) status of engineering design curriculum content; b) the status of assessment practices of engineering design projects, and c) what selected challenges are identified by secondary technology educators in teaching engineering design.
Using Engineering Cases In Technology Education, Todd R. Kelley
Using Engineering Cases In Technology Education, Todd R. Kelley
Publications
The article discusses issues related to the use of engineering case studies in technology education in K-12 classrooms. Experts from K-12 education, universities, industry and U.S. government officials came to an agreement on the need to implement engineering in K-12 schools. In relation to the proposed use of engineering case studies in technology education, several definitions of the term "design case studies." The presentation of cases using multimedia formats is also cited as a powerful format of engineering design cases.
Motivation While Designing In Engineering And Technology Education Impacted By Academic Preparation, Nathan Mentzer, Kurt Becker
Motivation While Designing In Engineering And Technology Education Impacted By Academic Preparation, Nathan Mentzer, Kurt Becker
Publications
The purpose of this study was to determine if high school students’ academic preparation was correlated with change in motivation during an engineering design challenge. The research was conducted in a high school classroom in which elements of engineering design were taught in a technology education context to eleventh-grade student from diverse academic backgrounds (measured by grade point average [GPA]). Participant motivation was assessed by the California Measure of Mental Motivation (CM3). The CM3 measures student motivation to apply critical thinking skills and reasoning to solve problems in five subscales: mental focus, learning orientation, creative problem solving, cognitive integrity, and …
Year Four Annual Report: Activities, Findings And Evaluators' Reports, Ncete Faculty
Year Four Annual Report: Activities, Findings And Evaluators' Reports, Ncete Faculty
Reports to NSF
The National Center for Engineering and Technology Education is a collaborative network of scholars with backgrounds in technology education, engineering, and related fields. Our mission is to build capacity in technology education and to improve the understanding of the learning and teaching of high school students and teachers as they apply engineering design processes to technological problems.
Resources: Staying In Touch - Gone Global, Todd R. Kelley
Resources: Staying In Touch - Gone Global, Todd R. Kelley
Publications
The article highlights two classroom activities that help classrooms communicate globally using communication technologies. They include the pen-pal/classroom exchange program and the online exchange program using web cams and videoconferencing. Moreover, it discusses how the cited communication technologies enhance learning as well as the challenges inherent in using them in a classroom setting.
Join The Mission, Design A Patch, Nathan Mentzer, Fay Mentzer, Krista Jones
Join The Mission, Design A Patch, Nathan Mentzer, Fay Mentzer, Krista Jones
Publications
The article presents a classroom activity designed for third grade and up that requires students to design their own mission patch. The activity references the patches developed and designed by the U.S. National Aeronautics & Space Administration. Moreover, the article discusses the design of the activity, the available resources, the evaluation process and interdisciplinary connections.
Design Activity: Students Designing Their Own Video Games, Steve Shumway
Design Activity: Students Designing Their Own Video Games, Steve Shumway
Publications
The article presents a school activity helping students to design their own computer video games. In the past, advanced programming using Java or C++ was used to design video games. At present, there are many free, easy-to-use software programs available to help elementary-age children create their own video games. The article suggests that teachers download a free version of this software and begin the tutorial.
Cognitive Processes Of Students Participating In Engineering-Focused Design Instruction, Todd R. Kelley
Cognitive Processes Of Students Participating In Engineering-Focused Design Instruction, Todd R. Kelley
Publications
Since the publication of the Standards for Technological Literacy in 2000 (ITEA), there have been a number of new programs developed that are designed to teach pre-engineering. Project Lead the Way is one such program. Project Lead the Way boasts serving over 1250 schools in 44 states and teaching over 160,000 students (McVearry, 2003). Efforts are also being made to infuse engineering design into technology education programs. One example of this is the work of the National Center for Engineering and Technology Education (NCETE) partnering with high school technology educators in summer inservice workshops to help teachers develop activities and …