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Showing 1 to 15 of 17 results
Sutton, Kevin; Grubbs, Michael E.; Ernst, Jeremy – Technology and Engineering Teacher, 2014
Engineering design has been suggested as a viable instructional approach for Technology Education (TE) to intentionally provide students the opportunity to apply multidisciplinary concepts to solve ill-defined design challenges (Wells & Ernst, 2012; Sanders & Wells, 2010; Wicklein, 2006). Currently, the context for design challenges in TE…
Descriptors: Design, Design Crafts, Design Requirements, Engineering Technology
Roman, Harry T. – Technology and Engineering Teacher, 2014
A serious drawback to electric vehicles [batteries only] is the idle time needed to recharge their batteries. In this challenge, students can develop ideas and concepts for battery change-out at automotive service stations. Such a capability would extend the range of electric vehicles.
Descriptors: Motor Vehicles, Auto Mechanics, Power Technology, Energy Education
Bianco, Andrew S. – Technology and Engineering Teacher, 2014
All technology educators have favorite lessons and projects that they most desire to teach. Many teachers might ask why teach robotics when there are many other concepts to cover with the students? The answer to this question is to engage students in science, technology, engineering, and math (commonly referred to as STEM) concepts. In order for…
Descriptors: Robotics, Class Activities, Classroom Techniques, Technology Education
Roman, Harry T. – Technology and Engineering Teacher, 2014
Biomedical and robotic technologies are merging to present a wonderful opportunity to develop artificial limbs and prosthetic devices for humans injured on the job, in the military, or due to disease. In this challenge, students will have the opportunity to design a store or online service that specifically dedicates itself to amputees. Described…
Descriptors: Engineering Education, Robotics, Biomedicine, Online Vendors
Kelley, Todd R. – Technology and Engineering Teacher, 2014
Members of the technology and engineering education community have provided a clear message that (Standards for Technological Literacy) STL provides multiple opportunities to teach engineering concepts within K-12 education. This article will review recent research within technology education and the technological literacy standards…
Descriptors: Technology Education, Technological Literacy, Scientific Research, Literature Reviews
Mitts, Charles R. – Technology and Engineering Teacher, 2013
In order for technology and engineering education (T&EE) students to meet the design challenges of this century, T&EE teachers will need to deepen their content pedagogy in the areas of science and math. This raises the question: Will the need to deepen content pedagogy initiate a process of change that transforms technology and engineering…
Descriptors: Engineering Education, Engineering, STEM Education, Scientific Principles
Rogers, Stephen – Technology and Engineering Teacher, 2013
In a middle school classroom, the science of fluidics was introduced using the rig. Afterwards the students were able to make informed choices about using air or water as the medium inside their syringes. The three kits available through the NFPA were explored, reverse-engineered, discussed, and analyzed as a lead-in to the in-house culminating…
Descriptors: Portfolios (Background Materials), STEM Education, Middle Schools, Design
Love, Tyler S.; Strimel, Greg – Technology and Engineering Teacher, 2013
Exposing students to the application of math and science through a design-based activity can make them more technologically literate and teach integration between the STEM disciplines at an early age. This article discusses an activity that originated as a portion of a green residential house project conducted by the authors with their high school…
Descriptors: Teaching Methods, Technological Literacy, Science Activities, STEM Education
Song, Ting; Becker, Kurt – Technology and Engineering Teacher, 2013
Science, technology, engineering, and mathematics (STEM) educators are facing the challenge of attracting more students. The disparity between the need for engineers and the enrollment of engineering students is growing (Genalo, Bruning, & Adams, 2000), and career aspirations of high school students are inconsistent with the employment…
Descriptors: Engineering Education, Engineering Technology, Design, Middle School Students
Mitts, Charles R. – Technology and Engineering Teacher, 2013
This design/problem-solving activity challenges students to design a replacement bridge for one that has been designated as either structurally deficient or functionally obsolete. The Aycock MS Technology/STEM Magnet Program Virtual Bridge Design Challenge is an authentic introduction to the engineering design process. It is a socially relevant…
Descriptors: Problem Solving, Facility Planning, Design, Engineering Education
Mitts, Charles – Technology and Engineering Teacher, 2013
The kite design activity described in this article is "hands-on" and provides students the opportunity to learn and apply STEM concepts in the process of building and flying a traditional diamond-shaped bowed kite from scratch. Important components of the activity are that students read and follow instructions and lessons about the…
Descriptors: Hands on Science, Design, Science Activities, Scientific Concepts
Smith, Karianne; Hughes, William – Technology and Engineering Teacher, 2013
In the fall of 2011, Park Forest Middle School (PFMS) students approached the STEM faculty with numerous questions regarding the popular television show Myth Busters, which detailed Greek mathematician, physicist, engineer, and inventor, Archimedes. Two episodes featured attempts to test historical accounts that Archimedes developed a death ray…
Descriptors: STEM Education, Science Course Improvement Projects, Student Projects, Scientific Concepts
Mitts, Charles R. – Technology and Engineering Teacher, 2012
A simple machine does one of two things: create a mechanical advantage (lever) or change the direction of an applied force (pulley). Fluid foils are unique among simple machines because they not only change the direction of an applied force (wheel and axle); they convert fluid energy into mechanical energy (wind and Kaplan turbines) or vice versa,…
Descriptors: Power Technology, Global Approach, Mathematics Teachers, Physics
McGrew, Cheryl – Technology and Engineering Teacher, 2012
Can engineering technology be taught at the elementary level? Designing and building trebuchets, catapults, solar cars, and mousetrap vehicles in a west central Florida elementary class was considered very unusual in recent years. After a review of current research on failing schools and poor curriculum, the author wondered what her school could…
Descriptors: Scientific Concepts, Innovation, STEM Education, Experiential Learning
Litowitz, Len S. – Technology and Engineering Teacher, 2012
Photovoltaics is a term that refers to thin cells that have the ability to directly convert sunlight into electricity. This process occurs without the use of any moving parts, and the sunlight is free for the taking if it can be captured for useful purposes like heating water or air or producing electricity. As the cost of installing a…
Descriptors: Science Activities, Engineering, Energy, Sustainable Development
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