Paper ID #26456SISTEM: Increasing High School Students’ Engineering Career Awareness(Evaluation, Diversity)Dr. Schetema Nealy, University of Nevada, Las VegasDr. Erica J. Marti, University of Nevada, Las Vegas Erica Marti completed her PhD in Civil and Environmental Engineering at the University of Nevada, Las Vegas (UNLV). She holds a Master of Science in Engineering and Master of Education from UNLV and a Bachelor of Science in chemistry from the University of Illinois at Urbana-Champaign. Prior to graduate studies, Erica joined Teach for America and taught high school chemistry in Las Vegas. While her primary research
implementation of Science,Technology, Engineering, Arts and Mathematics (STEAM) programs. Evelyn has worked in developing curriculum, training, and pro- viding professional development to diverse audiences in the education and out-of school time sectors. Through her work managing the Scientists for Tomorrow programs at Columbia College Chicago, and across partners, she has proven experience implementing programs for schools and community centers in Chicago and nationwide. Evelyn remains an active advocate for STEM education, and college & career readiness. She has collaborated in panels and led educator workshops at state and national conferences: The Annual STEAM Conference, CR Annual Career Conference, STEAMCON, The
Paper ID #26404Board 120: Development of an Engineering Identity and Career AspirationsSurvey for Use with Elementary StudentsDr. Kelli Paul, Indiana University Dr. Kelli Paul is a postdoctoral researcher in science education at Indiana University. She received her Ph.D. in Educational Psychology specializing in Inquiry Methodology from Indiana University in 2006. She managed a consulting business for 10 years working on evaluations that focused primarily in the areas of education and STEM for middle and high school students, especially women and minority students. Her research interests include student engagement and
Paper ID #27387Board 126: Early Career Elementary Teachers’ Evolving Choices for Incor-porating Engineering into Their ClassroomDr. Jessica E S Swenson, University of Michigan Jessica Swenson is a post doctoral research fellow at the University of Michigan. She received her doc- torate and masters from Tufts University in mechanical engineering and STEM education. Her current research involves examining different types of homework problems in undergraduate engineering science courses, flexible classrooms, active learning, responsive teaching, and novice elementary engineering teacher development.Dr. Kristen B Wendell, Tufts
Paper ID #25750”Maybe If I Put My Mind To It”: 5th Graders’ Receptivity to Pursuing En-gineering Careers (Fundamental)Ms. Karen Miel, Tufts University Karen Miel is a PhD student in STEM Education at Tufts University. Karen served as the Director of Research and Innovation at the science center CuriOdyssey and the Education Director of the Palo Alto Junior Museum and Zoo after teaching elementary and middle school. Her research focuses on elementary students’ reasoning and decision-making in collaborative engineering design.Dr. Merredith D. Portsmore, Tufts University Dr. Merredith Portsmore is the Director for Tufts Center
. Her current work focuses on improving educational outcomes for students enrolled in K-12 schools and community colleges. She also serves as an associate teaching professor in the College of Education at North Carolina State University where she has taught Qualitative Research Methods Courses past three years.Mr. Braska Williams Jr., North Carolina State University 13 years experience in K-12 working for Newport News (VA) Public Schools and 11 years experience at North Carolina State University; managed over $10 million in grants over my career including several NSF grants; extensive work in K-12 with underrepresented minority students and the STEM pipeline;Ms. Angelitha Daniel, North Carolina State UniversityDr. Javon
Paper ID #26188Impact of Engineering Design-Focused Summer Academy Experience on In-terest Toward STEM Learning and Careers (Evaluation, Diversity)Dr. Kuldeep S. Rawat, Elizabeth City State University KULDEEP S. RAWAT is currently the Dean of Life, Physical Sciences, Mathematics and Technology and Director of Aviation Science program at Elizabeth City State University (ECSU).He has earned an M.S. in Computer Science, 2001, an M.S. in Computer Engineering, 2003; and, a Ph.D. in Computer Engineering, 2005, from the Center for Advanced Computer Studies (CACS) at University of Louisiana-Lafayette. He serves as the Site
Interest Levels of Male versus Female Students going into STEM Fields (Evaluation)IntroductionThe fields of Science, Technology, Engineering, and Mathematics, also known as STEM, haveexperienced rapid growth in terms of their importance and the demand for qualified graduates[1]. STEM careers provide an essential driving force behind new innovations and growth in theUnited States. STEM fields have seen a job growth rate three times that of non-STEM careers,and are continuing to grow [2]. Despite efforts to increase the number of STEM graduates, TheUnited States is struggling to supply enough qualified workers to fulfill these demands. TheUnited States is facing a problem as students’ interest, and therefore literacy in STEM has
are proposing a model that can help narrow the cybersecurity workforcegap by introducing students to cybersecurity by building a pipeline towardscybersecurity careers for students and empowering teachers to integrate cybersecurityinto their own classrooms and becoming advocates for cybersecurity awareness in theirschool districts.Our long-term vision is to have cybersecurity taught at every high school using ourmodules as a standalone subject or to weave it into computer science courses, or APcourses in particular. The goal is to have every high school in the region establishcybersecurity clubs with diverse group of students and a teacher mentor who canprovide them with the training to participate in local, regional and nationalcybersecurity
-schoolcurricula that align to states’ science and reading standards. The curricula first require students towork collaboratively and establish their own engineering process. Initial survey data shows thatafter engaging with the FLEET curriculum, students’ interest in STEM careers increases andthey find their STEM experiences beneficial. Further development and research efforts areexplained.BackgroundThe Department of the Navy is strengthening the science, technology, engineering, andmathematics (STEM) workforce [1]. The Office of Naval Research funds an engineering videogame called FLEET as part of its Naval STEM efforts. FLEET gamifies the engineering designprocess as students design ships for various missions, collect data on how the ship meets
studies from Old Dominion University in 2015. Isaac’s consultancy, HEDGE Co., focuses on working with formal and informal educators to grow the numbers of females pursuing engineering or technology careers. Additionally, she is a conferred Fellow of the Society of Women Engineers. c American Society for Engineering Education, 2019 Does How Pre-College Engineering and Technology Role Models See Themselves Relate to Girls' Engagement in the Fields? [Research to Practice]IntroductionSince the Equal Pay Act in 1963, female participation in engineering has increased only eightpoints, from less than 5 to 13% [1], while, in the fields of medicine, female participation
lack anunderstanding of what an engineering career entails [14, 15]. Thus, to increase the number anddiversity of students choosing STEM careers, it is important to develop pipelines for students tointroduce them to STEM careers before college and to increase their confidence in STEM-relatedskills.Programs to address STEM skills, self-confidence, or understanding of STEM careers havetargeted various time frames throughout the STEM pipeline, including high school [16, 17],summer bridge programs for high school to college [14, 18, 19], co-curricular support in college[20, 21], and 2-year to 4-year college bridge programs [13]. The majority of summer bridgeprograms target students already accepted to a college for an intensive summer program
Paper ID #251684th Grade Engineering – Building Upon the Curriculum of Science, Math,and Creativity to Inspire the Next Generation of Engineers (Evaluation)Dr. John C. Oliva, Corteva Agriscience Dr. John C. Oliva has had a diverse career spanning the fields of academia and industry. John spent the first part of his career teaching mechanical engineering as a full-time faculty member, first at Kettering University and later at Grand Valley State University. He then transitioned to the corporate world where he has spent the more recent portion of his career as a professional engineer. John currently works as the Tools &
for whom this program would betransformative in their personal lives and academic careers. These students are generallyidentified early in high school (if not in middle school) as high-potential scholars for whomaccess to opportunities like this STEM program are not common in their own school orcommunity centers. Effectively, the academic and social characteristics of each section aredesigned through this admissions process.Section instructors are asked to recruit teaching assistants for their projects with a target of oneTA per 4-5 high school students where classes ranges in size between 16 and 25. This class sizeis dependent on room size and/or laboratory capacity. These TA’s are drawn almost entirelyfrom the undergraduate engineering
research focus relates to STEM career pathways (K-12 through early career) and conceptual understanding of core engineering principles. She is currently a Member-at-Large for the Pre-college Division of ASEE. Dr. Carrico’s consulting company specializes in research evaluations and industry consulting. Dr. Carrico received her B.S. in chemical engineering from Virginia Tech, Masters of Engineering from North Carolina State University, MBA from King University, and PhD in Engineering Education from Virginia Tech. Dr. Carrico is a certified project management professional (PMP) and licensed professional engineer (P.E.).Dr. Holly M. Matusovich, Virginia Tech Dr. Matusovich is an Associate Professor in Virginia Tech’s
disciplines become more a part of day-to-day life forchildren and teens, it is important to understand how these interactions affect children’s views ofthe engineering field and their place in it.One way to investigate pre-college students’ views of engineering and their place in theengineering field is through the construct of identity. Identity has many definitions, but is oftenframed around the question “Who are you?” [15], or “the ‘kind of person’ one is seeking to beand enact in the here and now”[16]. However, since pre-college students are still in the processof making career decisions, it may be more appropriate to look at identity as who students seethemselves becoming, such as through the framework of possible future selves [17] or
Paper ID #25056A STEM-based, Project-driven, Introductory Programming Class for Pre-service TeachersProf. Wesley G. Lawson, University of Maryland, College Park Prof. Lawson has earned five degrees from the University of Maryland, including a Ph,D, in Electrical Engineering in 1985. In his professional career at College Park, where he has been a full professor since 1997, he has worked on high-power microwave devices, medical devices, and engineering and STEM education. He is an author or coauthor on 5 books and over 70 refereed journal articles and 200 conference presentations and publications.Dr. Jennifer Lee Kouo
, acousticenergy propagation, antibiotic resistance of environmental bacteria, and muon flux detection. Ina post-experience survey, all students indicated that they had a positive experience and that theywould “recommend the program to their friends”. All responded that they were interested inpursuing a career in science. In the fall, students were encouraged to submit their researchfindings to national and regional high school science competitions.Introduction There has always been a need for people with expertise at various levels and specialtiesof science and technology [1],[2]. Despite the demand, there has been a decrease in theproportion of students graduating with non-biological science, engineering and technologydegrees, resulting in a need
consortium incollaboration with a former Research Experiences for Teachers (RET) intern. Efforts by theconsortium included providing and evaluating interactive activities to the former RET intern’smiddle school students during a field trip to the university.BackgroundThere continues to be a significant disconnect between properly prepared graduates and thepredicted millions of jobs to be filled in the science, technology, engineering, and mathematics(STEM) fields [4]. Research on developing the engineering workforce often indicates the needfor early exposure to the field in order to increase awareness and interest in careers related toSTEM [3]. The result is a growing emphasis on developing K-12 instructional materials focusedon engineering concepts
by the President’s Council of Advisors onScience and Technology [1]. Despite the 68% increase in engineering bachelor’s degrees from2008 to 2017, large attrition rates continue to exist with only 14-17% of the students enrolled asengineering freshman graduating with a bachelor’s degree in engineering [2]. Introducingengineering in K-12 classrooms is thought to prepare college freshmen for engineering courseworkby increasing students’ understanding of and affinity for science and mathematics concepts,college readiness, technological literacy and interest, and excitement and confidence in their abilityto pursue engineering as a career [3].Existing Highschool Engineering CurriculaMultiple initiatives have successfully incorporated engineering
, engineering, and math education and careers for which she recently served two years at the National Science Foundation as a grant adminis- trator. Dr. Rogers provides statistical and methodological consulting on a variety of research, evaluation, and assessment projects.Ms. J. Jill Rogers, University of Arizona J. Jill Rogers is the assistant director for ENGR 102 HS at the University of Arizona. ENGR 102 HS is an AP-type, dual credit college level, introductory engineering course offered to high school students. In 2014, the ENGR 102 HS program won the ASEE best practices in K-12 and University partnerships award. Over the years Rogers has developed K-12 science summer camps, conducted K-12 educational re- search
and STEM careers as well as the development of instruments and evaluation tools to assess these constructs.Dr. Euisuk Sung, Indiana University Euisuk Sung is a postdoctoral researcher at Indiana University. He earned a Ph.D. degree in Engineering and Technology Teacher Education at Purdue University. He has computer science degree and worked as a computer software developer for three years. then he served as an engineering and technology educator in high school for 9 years in South Korea. Currently he is working in NSF Funded project, titled TRAILS. His research interests are design cognition, maker education, computer science education, and all about STEM education.Dr. Adam V. Maltese, Indiana University
highly desirable, asexposure to such role models is known to increase STEM interest among girls. Several outreachevents and similar education programs are described in the literature, with most reportingincreased STEM knowledge and interest among participating girls. Interestingly, the majority ofresearch studies related to STEM outreach have middle school students as participants. However,the results of several studies show that girls should be exposed to STEM in the 10 to 13 years oldage range, when career goals are still undecided. It is this younger group of girls that receives theattention of GEE.STEM Role ModelsLee and Anderson [12] found that middle school students were about three times more likely toname a male mathematical role model
summer, along with activities focused on issuesin STEM pedagogy and engineering career readiness. Professional development took placethrough an orientation session, weekly Wednesday lunch talks, and Friday curriculumdevelopment sessions. Sustained academic year interactions helped to ensure translation of RETknowledge and experience to the classroom and dissemination to other teaching colleagues.The broad goal for this program was to build awareness of the utility of using engineering conceptsand skills in the teaching of math and science concepts in secondary education settings. In thisgoal the program fit with countless other programs across the country. The chief focus of thisprogram was tuned more specifically to enhance key competencies of
. Previous research supports science self-efficacy asbeing positively associated with achieving science literacy (Bryan, Glynn, & Kittleson, 2011)and science achievement (Britner & Pajares, 2001). This study examines if exposing students toyoung model “engineering experts” would impact middle schoolers’ science self-efficacy. If so,the motivation for k-12 teachers to invite engineers into their classroom is two fold. It increasesstudents’ awareness of engineering careers as well as increases student’s achievement in science.But would such a short intervention have an impact? Students were surveyed at the beginningand end of a one day event at Washington State University, which included “engineering experts”who interacted with the students in
. Green. All of the students were either Juniors (n=8) or Seniors(n=2) and all had completed pre-requisite engineering coursework with Ms. Green the previousyear. Student responses to a career interest item on the survey taken at the beginning of theschool year indicate that the students began the course with a strong interest in engineering. Allthe students who completed the survey listed an engineering field among their career interests,with students expressing specific interests in civil, mechanical, geospatial, aerospace, andchemical engineering. Several students listed multiple engineering fields among their interestsand five students listing engineering as their top career choice. Six students reported that theyplan to major in engineering
engineering at these grade levels has been shown to predictfuture college majors and possible careers in engineering [4]. To meet the demand for moreengineers, we sought to understand how summer camps, five days in length, influenced studentinterest in engineering and engineering identity. Building engineering interest in middle and high school, before students enter college, isbest achieved by exposing students to engineering related tasks and learning activities [5]. Withthe adoption of the Next Generation Science Standards by some states, but not all, educators nowhave a framework for implementing and building engineering activities into their classroomexperiences [6]. However, there are indications that engineering is underutilized in K-12
education undergraduates. During thisprogram, 79% of Engineering Ambassadors were engineering majors who had first-handexperiences with engineering concepts. The remaining 21% were math or science educationmajors whose expertise included developing lesson plans and teaching to the needs of middleand high school students.The second group comprises middle and high school students. Career choices begin formingtoward the end of middle and beginning of high school. When students demonstrate an interestand talent in STEM, it is important to encourage these students in their pursuit of this interest. Tomeasure the success of the encouragement, one must begin asking some valuable questions.Which lesson plans were most successful? Did the students seem
career pathways. The Cooper Union is acollege located in New York City that has been delivering STEM programming in the summerfor over 30 years. The high school summer STEM program offered by Cooper Union has varioussections that have traditionally been instructed by professors specializing in one of the fourengineering majors at the college: chemical, civil, electrical, and mechanical engineering. Eachyear, the program lasted six weeks and consisted of 120 hours of informal project-based learning,with each section grounded in different engineering challenges.Starting in 2015, the institution began to offer a new section called the “Makerspace” section inorder to address the demand for modern technologies and skills sets, such as rapid
amongunderrepresented youth who often decide from an early age that STEM careers are not “forme” (Riegle-Crumb, Moore, & Ramos-Wanda, 2011).To address this problem, educators and researchers have designed many instructionalapproaches intended to inspire young adolescents to pursue STEM careers. In the discipline ofscience, one especially promising approach has been literacy-infused instruction, whichincreases adolescents’ understandings of scientific principles (Hand, Wallace, & Yang, 2004;Romance & Vitale, 1992: Spence, Yore, & Williams, 1999) with even greater effect sizes forunderrepresented populations (Cervetti, Barber, Dorph, Pearson, & Goldschmidt, 2012; Chen,Hand, & McDowell, 2013; Greenleaf et al., 2011). Experiences with