AC 2010-2063: A FUNCTIONAL K-12 CONCEPTUAL FRAMEWORK FORTEACHING TECHNOLOGICAL LITERACYSteve Macho, Buffalo State College Steve Macho completed a BS at St Cloud State University, and M.A. & Ed.D. in Technology Education at West Virginia University. Steve is a Minnesota farm boy who has been involved in technology his entire life. He worked at the Los Alamos National Laboratory, New Mexico Highlands University, and is currently an Assistant Professor of Technology Education for at Buffalo State College. He became a member of the Oxford Roundtable in 2008 and plans to present another paper there in 2010
AC 2010-2013: REFLECTIONS AND MEASURES OF STEM TEACHING ANDLEARNING ON K-12 CREATIVE AND PERFORMING ARTS STUDENTSSteven Essinger, Drexel University Steve Essinger is a graduate student at Drexel University in Electrical and Computer Engineering. His research involves applying machine learning techniques to the study of microbial communities. He has designed bioinformatics computer laboratories and improved image processing laboratories for the K-12 classroom.Ryan Coote, Drexel University Ryan Coote graduated from Drexel University in 2009 with a BS in Electrical and Computer Engineering.Pete Konstantopoulos, CAPA High School Pete Konstantopoulos is a mathematics teacher at the Creative
AC 2010-1218: TEACHING INQUIRY-BASED STEM IN THE ELEMENTARYGRADES USING MANIPULATIVES: A SYSTEMIC SOLUTION REPORTLouis Nadelson, Boise State University Louis S. Nadelson is an Assistant Professor in the College of Education at Boise State University. His research agenda is conducted within the context of STEM education and includes aspects of conceptual change, inquiry, and pre-service and in-service teacher education. He has published research ranging from teacher professional development to the impact of inquiry on STEM learning. Dr. Nadelson earned a B.S. degree in Biological and Physics Science from Colorado State University, a B.A. with concentrations in computing, mathematics and
track REU students 1999-2009, as well as a study on same-sex camps effects on course choice in high school and college. Dr. Dixon is also an adjunct instructor at Flagler College, developing their Science Methods for Elementary Teachers syllabus and teaching the course since 2001. In addition to overseeing all educational programs K-20 at the Magnet Lab, Dr. Dixon is actively engaged in educational research on the effects of programs from national laboratories on students and teachers.Sharon Schulze, North Carolina State University Dr. Sharon K. Schulze is the Director of The Science House and an Associate Faculty member of the Physics Department. She manages the day-to-day operations
science teachers of classrooms throughout the nation, hires program faculty and organizes their professional development, manages administrative issues of the program, and develops and oversees program evaluation processes. Taylor has 12 years experience teaching high school chemistry, biology, and physical science. She has 7 years of experience teaching biology and education at the university level. Taylor coordinated an alternative teacher licensing program in which she supervised student teachers, managed program coursework and faculty, and developed a distance component to education coursework that has allowed teacher candidates throughout vast geographical areas to pursue their teaching
that relate classroom topics to practical application. As a result of their comfort withthe use of information technology, contemporary students and teachers can find traditionalclassroom methods of lecture and guided laboratory experiments limiting. Recently, the need forincreasing the number of students graduating in Science, Technology, Engineering, andMathematics (STEM) fields United States has been recognized as a threat to continued economicdevelopment. This need, coupled with increasing technological literacy, has created anopportunity to leverage leading edge cyberinfrastructure in an outreach program targetingsecondary school teachers. This paper demonstrates the implementation of a targeted outreachprogram that engages pre- and in
academic workload, researchprojects, and GK-12 responsibilities, it is essential for Fellows to develop good planning andtime management strategies. Moreover, Fellows’ activities entail interactions with universitypersonnel, teachers, students, etc., which allow them to develop people skills and social aptitude. Page 15.764.94.3 Teaching Skills Through activities such as curriculum review, laboratory development, lesson planning,standards correlation, classroom presentation, teacher feedback, and student mentoring, Fellowsare developing teaching skills that will serve them in their professional careers. For example, in anon-academic
Engineers hostsCareer Day for Girls, a one-day event for girls in grades 7-12 to get girls excited about science,engineering, and technology. Through laboratory demonstrations, interactive multimedialectures, and hands-on activities, girls meet positive role models (both female and male) and getto think about the possibilities they have for careers in the technical fields.Many Career Day participants and their parents expressed a need for a multiple-day programheld over the summer--a kind of engineering day camp for girls to get more information andexperience with engineering, and to form relationships with female engineer role models.Undergraduate members of the Society of Women Engineers at Northwestern Universitytherefore went about designing
; sequential vs. global;visual vs. verbal).3 Students are then matched up in groups of four with balanced learning styles,major, and gender. The undergraduates are simultaneously enrolled in a skills laboratory as partof the course that provides a framework for oral and written communication, teamwork, andeffective teaching styles. The objective of the K-12 outreach project is to interest more childrenin the field of engineering while strengthening the engineering and communication skill sets ofthe undergraduates.There is strong evidence that outreach to the K-12 sector is a vital part of maintaining andimproving the numbers of current and potential students who study engineering at the universitylevel.4 Many children are naturally interested in the
science and math to solve problems. However, thetraditional method for teaching science and mathematics has been rote memorization offacts quantified by student achievement based on multiple choice or fill-in-the blanktests. Science and mathematics were not integrated but, rather have been taught asseparate subjects. Current research suggests that science and mathematics be taughttogether to students prior to college1. An effective strategy for the integration of scienceand mathematics is the incorporation into the instructional strategies of topics thatdirectly apply both disciplines, such as engineering and technology topics. Althoughstudents are taught about mathematics and science, most students are relativelyuninformed about technology and
AC 2010-783: NDEP-SUPPORTED K-12 STEM OUTREACH ACTIVITIES OF THEUS AIR FORCEGerald Mora, New Mexico Tech Gerald Mora is the Director of New Mexico Tech's Technology Transfer Support Group and the State of New Mexico Partnership Intermediary for the Air Force Research Laboratory at the Kirtland Air Force Base. Mr. Mora was awarded the 2001 New Mexico Distinguished Public Service Award for his development Kirtland’s La Luz program. Mr Mora has numerous publications based on his Systems Engineering work and his passion for education outreach.Ricardo Negron, WPAFB RICARDO NEGRON--Ricardo Negron is currently the Chief of the Domestic Partnering Branch at Wright-Patterson Air Force Base (AFRL
AC 2010-1101: RESEARCH EXPERIENCE FOR TEACHERS SITE: APROFESSIONAL DEVELOPMENT PROJECT FOR TEACHERSVikram Kapila, Polytechnic University VIKRAM KAPILA is an Associate Professor of Mechanical Engineering at Polytechnic Institute of NYU, Brooklyn, NY, where he directs an NSF funded Web-Enabled Mechatronics and Process Control Remote Laboratory, an NSF funded Research Experience for Teachers Site in Mechatronics, and an NSF funded GK-12 Fellows project. He has held visiting positions with the Air Force Research Laboratories in Dayton, OH. His research interests are in cooperative control; distributed spacecraft formation control; linear/nonlinear control with applications to robust control
Faculty from a Research UniversityAbstractAs part of an extensive University - K-12 partnership program in STEM (science, technology,engineering and math) disciplines, more than 20 faculty members at Clarkson University havedeveloped and taught summer institutes and workshops for area middle and high school teachers.The goals of these interventions are to provide rigorous and state-of-the-art STEM contentknowledge, to model effective and active teaching strategies, and to prepare the teachers to bringthe new STEM content into their classrooms. The 5-day summer institutes provide rigorouscontent and hands-on activities for the teachers. The objective of this paper is to describe thedevelopment and assessment of the institutes.The design of the
supported in part by NSF Award DGE-0538476.References1 Roth, W. M. Learning science through technological design. J Res Sci Teach 38, 768-790 (2001).2 Puntambekar, S. & Kolodner, J. L. Toward implementing distributed scaffolding: Helping students learn science from design. J Res Sci Teach 42, 185-217, doi:Doi 10.1002/Tea.20048 (2005).3 Hmelo, C. E., Holton, D. L. & Kolodner, J. L. Designing to learn about complex systems. J Learn Sci 9, 247-298 (2000).4 Wolf, S. J. & Fraser, B. J. Learning environment, attitudes and achievement among middle-school science students using inquiry-based laboratory activities. Res Sci Educ 38, 321-341, doi:DOI 10.1007/s11165-007- 9052-y (2008).5 Mayer, R. E. Should
-service teacher program. The MSP is apartnership between The University of Texas at Austin's School of Engineering, Collegeof Education, and UTeach Natural Sciences program and the Austin Independent SchoolDistrict. These partners are collaborating to develop and deliver an innovative design-based curriculum for preparing secondary teachers of engineering.The participants in this study were high school teachers in the first cohort of the UTeachEngineering Summer Institutes for Teachers (ESIT) program. The 23 participants had anaverage of six years classroom experience teaching mathematics or science. While someof the teachers were also teaching engineering or engineering-related courses, most werepreparing for their first experience in an
be taught; 3) knowledge of how to teach others in that area (content pedagogy), in particular how to use hands-on learning techniques (e.g.- lab work in science and manipulatives in mathematics) and how to develop higher-order thinking skills. 4) an understanding of learners and their learning and development– including how to assess and scaffold learning, how to support students who have learning differences or difficulties, and how to support the learning of language and content for those who are not already proficient in the language of instruction. Page 15.108.2 5) adaptive expertise that allow teachers to
. Pandy, M. G., Petrosino, A. J., Austin, B. A., & Barr, R. E. (2004). Assessing adaptive expertise in undergraduate biomechanics. Journal of Engineering Education, 93, 211–222.14. Roselli, R. J., & Brophy, S. P. (2003). Redesigning a biomechanics course using challenge-based instruction. Engineering in Medicine and Biology, 22(4), 66–70.15. Yalvac, B., Smith, D., Hirsch, P. L., & Birol, G. (2007). Teaching writing in a laboratory-based engineering course with a “How People Learn” framework. In A. J. Petrosino, T. Martin, & V. Svihla (Eds.), Developing Student Expertise and Community: Lessons from How People Learn. San Francisco: Jossey-Bass.16. Abdelrahman, M., Stretz, H., McCully, A., & Pugh, B
facultyprovide a similar curriculum taught in Engineering 101 and Pre-calculus college courses.The afternoon classes are project-oriented. Students design mousetrap cars usingSolidWorks, and build their cars in the Mechanical Engineering Laboratory. At night,students work on group projects that include designing and building robots using LEGOMindstorms NXT. To recruit students, we created a partnership between our College andfive different academic enrichment programs in Southern California. By working withcommunity organizations, we have reached highly motivated students who have a strongaptitude for science and mathematics. Since 2001, 203 students from 66 different highschools in the Greater Los Angeles Area have participated in SECOP. Of these
detection. Adam has also performed research on electron plasmonic energy loss spectroscopy in gold thin films and nanoparticles as a Sandia National Laboratories MESA Student Intern. Adam has received significant educational experience at the high school and collegiate level as an NSF GK-12 Fellow for the 2009-2010 academic year, a graduate teaching assistant for 5 semesters at Georgia Tech during which time he received the Georgia Tech ECE Graduate Teaching Assistant Excellence Award, and as an adjunct faculty member at Southern Polytechnic State University in 2008 and 2010 in the department of Electrical and Computer Engineering Technology.William Hunt, Georgia Institute of Technology William D
and engineering-based content and activities in their teaching, they must themselves experience learning throughinquiry, collaborate with other teachers, have access to and competence in using technology, andhave experience with engineering.8,9The interdisciplinary nature of engineering merges laboratory, field, and classroom inquiry withhistorical and cultural perspectives and the technology in the students’ worlds.10 Effectiveclassroom practices include conceptual understanding, thinking skills, inquiry, cooperativelearning, graphic organizers, computer simulations, actual observation, clear objectives, and on-going feedback.11 Students develop deeper understanding when they generate and testhypotheses, compare and contrast, summarize, and
students and teachers, allowing forcollaboration and brainstorming on lesson plans that will be implemented during the academicyear. The bond between the graduate students and the teachers begins to develop during thesummer and is strengthened throughout the academic year. These workshops are taught incollaboration with expert district teachers, CSM faculty, and, since 2009, engineers and scientistsfrom the National Renewable Energy Laboratory (NREL). Each workshop further offers theoption of continuing education credits which are necessary for participating teachers to maintainstate teaching certification.Partnership Roles: The graduate student’s role in the classroom is to share their excitement,knowledge and research of mathematics, science and
Incorporating Engineering Research Experiences into High School Physical Science CurriculaAbstractAs high school teachers, it is rare that we have the opportunity to see the engineeringapplications for the mathematics and science concepts we teach. In Summer 2009, however, weparticipated in a Research Experience for Teachers (RET) project at Tennessee Tech University.Our research experiences varied: the second author conducted research that explored packcementation processes and the variables affecting the aluminide coatings on nickel-based alloysin terms of composition and microstructure. Pack runs were conducted on the samples usingdifferent methods. Scanning electron microscopy (SEM) was used to look at
) program at Tennessee TechUniversity during the summer of 2009. The program provided the teachers with the opportunityto experience the full cycle of research from formulating a research question and a research plan,to carrying out the research plan along side mentors who acted as consultants to the teachers.The two of the participants were a high school math teacher and a pre-service high schoolchemistry teacher. Although the two participants worked in the same fuel cell laboratory andshared to some extent the same mentor, the focus of their research and how they would take backtheir experience to class was completely different. The math teacher focused on research aimedat trying to identify patterns in the response of a PEM fuel cell under
was comprised of a diverse group of high schoolsophomores, juniors and seniors, deriving from geographically disparate locations throughoutNorth Carolina. The camp provided intensive, hands-on learning experiences for campers.Science (K-14) teachers (who also were participants in the University’s RET program),undergraduate students in bioengineering and professors in mechanical engineering andbioengineering served as camp instructors.There were two over-arching goals for the camp, specifically, to introduce campers tobioengineering and to encourage campers to pursue a baccalaureate degree in tissue engineering.The content for camp teaching and learning largely focused upon tissue engineering, and morebroadly bioengineering, a field of study
nontraditional careers such as engineering. Joan also displays her dedication to mentorship as advisor to the Society of Women Engineers (SWE) student chapter on campus along with advising the Tau Alpha Pi (TAP) National Honor Society for engineering technology students of the Iota Beta Chapter, Penn State New Kensington. Over the years, Joan has received numerous awards including the prestigious Penn State University’s Women’s Achievement Award in 2003 because of her commitment to the FIRSTE Program and other effective mentoring activities both on campus as well as within the community. In addition, Joan was the recipient of the Excellence in Teaching Award at Penn State New Kensington in 2005
Student Association Outstanding Mentor Award, the Drexel University ECE Outstanding Research Achievement Award and the International Liquid Crystal Society Multimedia Prize. In 2003, he received a NASA/ASEE Summer Faculty Fellowship to research NEMS/MEMS adaptive optics in the Microdevices Laboratory at the Jet Propulsion Laboratory.Eli Fromm, Drexel University Dr. Eli Fromm is the Roy A. Brothers University Professor and Director of the Center for Page 15.1273.1 Educational Research in the College of Engineering of Drexel University. He has held a number of academic leadership positions and
≠ Submit documents to campus housing ≠ Arrange food for summer camp ≠ Purchase additional equipment ≠ Purchase movie tickets ≠ Train student mentors ≠ Meeting with camp personnelWe adapted our camp curriculum from the Colorado School of Mines (CSoM).15 16 The CSoMutilized basic computer programs to teach middle school students about computer engineeringand programming, including ALICE basic programming software,17 Lego Mindstorms robot kits,FrontPage website design, and GPS tracking systems. Engaging students with introductorycomputing programs became an important component of our summer camp program. We had toanticipate
by Making it FunAbstractThis paper describes a workshop, led by female Engineering Technology students with supportfrom female faculty members, that introduces engineering concepts to 4th -7th grade girls througha series of interactive laboratory experiments. The day-long workshops are offered to area GirlScouts and are intended to increase the girls’ interest in engineering. In support of this goal,hands-on experiments are carefully designed to: 1) show the girls that science can be both funand creative 2) connect science and engineering to things in everyday life that they already knowand care about 3) demonstrate that women can make a positive impact on the world with a careerin engineering.The workshops take place on the college campus
this paper are the ExxonMobilBernard Harris Summer Science Camp (EMBHSSC) for rising sixth, seventh, and eighth graders,Introduction to Engineering (ITE) for rising high school juniors and seniors, and the Leadership,Education, and Development Summer Engineering Institute (LEAD-SEI) which is also gearedtowards rising high school juniors and seniors.Each of these curriculums consists of hands on activities, lectures and presentations given byUniversity professors and graduate students, team building exercises, field excursions and toursof both faculty laboratories and the campus. In addition to these traditional enrichment activities,the LEAD-SEI program initiated a group research project strategy, which was highly praised byvisiting sponsors
. The weeklong TEC camp is Page 15.962.2designed to expose campers to a wide range of engineering disciplines early in their educationsin order to inspire campers to consider college majors and careers in these important fields. Thecamp is highly interactive with hands-on projects in areas such as webpage design, robotics,structural design, and transportation engineering. Campers are given the opportunity to exploreengineering through interactive courses, seminars and laboratories that are lead by Georgia Techprofessors and graduate students. Campers are encouraged to interact directly with the graduatestudents and to ask questions about life