sustainability b. Evaluate a product/ engineering system’s environmental impacts using Life Cycle Assessment c. Design/ redesign a product/ engineering system to using the engineering principles to improve environmental impactsThe achievement of these goals was assessed through students’ self-evaluations and analysis ofstudents’ coursework. In addition, the objectives are also planned to be assessed throughstudents’ capstone senior projects. But at the time of creation of this work-in-progress paper, thestudents who took this course have not worked on their senior project yet, as a result, this part ofthe assessment is planned to be conducted once the students worked on their senior projects. Toextend and complete this work-in-progress, it
human-centered design approach, (2) the intersection of socialjustice and design thinking, and (3) the implications of design choices on historicallymarginalized groups. Course artifacts, student reflections, and instructional team reflections areused to understand the growth in mindset of the students and instructor through this course.Additionally, these resources are used to present key learnings for future implementation.This project focused on examining systems. Groups historically excluded from engineering,including people of color, disabled, LGBTQ+, and women, were recentered through the humancentered design process. Students evaluated engineering systems for exclusion and ideated on thesource of these design flaws. In doing so, they
conducted to measure friction and wear rate betweenmaterials. Also, these evaluations should consider temperature, humidity, and other criticalconditions that could affect the results. The data collected should be analyzed to determine theeffects of various metals and components on friction and wear. Finally, the results should becompared to theoretical predictions.The engineering technology curriculum envisioned this project as part of experiential learning.The project team should discuss the results and draw conclusions based on the data. They shouldthen present their findings and make recommendations to the appropriate stakeholders. Finally,they should demonstrate teamwork, proper scheduling and organization that ensures the successof the
produce an idea for a project and thengather a group of other students to bring that idea into fruition. One group chose to create a newtype of challenge-style running blade that would be more affordable to children. Two individualsfrom this group graduated from a TCU and continued to an RU to receive a bachelor’s degree inbiomedical engineering and are employed at their respective TCUs. This perspective brought lightto the inclusion of Native Americans. Together, the entire group learned of various resources thatboth TCUs and RUs have. One of the recent TCU graduates now serves as an instructor ofadvanced manufacturing at their TCU alma mater and informed the group of an opportunity toutilize the impressive array of equipment found there. Due to
sustainable green building design and construction.Miss Paula Alvarez Pino Paula Alvarez Pino is the Center Coordinator and Research Assistant of the Sustainable Smart Cities Research Center at University of Alabama Birmingham (UAB). Paula coordinates and communicates work effort and development within the center. She obtains, evaluates and processes materials related to different research projects, as well as, assists in publication of papers and grant proposals. Paula constantly collaborates with the City of Birmingham as liaison in several projects related to the field of sustainability, such as the IBM Smarter Cities Challenge, the Mobile Food Market, and Bikeshare Birmingham. Paula has also helped organize and
Engineering and Informatics. Between 2004 and 2013 he was one of the 19 German Bologna experts. He received the ars legendi award 2013 of the Stifterverband and the German Rectors Conference. c American Society for Engineering Education, 2017 Nontraditional, interdisciplinary immersive approach to Chemical Engineering design: A case study assessment and analysisAbstractIn our increasingly globalized world and project based, interdisciplinary industrial teams, there isa need for concurrent teaching and learning of design skills and professional skills, e.g., teamwork,global competence (awareness), etc. This paper describes, assesses, and analyzes a non-traditional,immersive approach to teaching a
end of itsfunding period. The results of this evaluation build upon the previously reported findings ofinterviews in a prior ASEE conference paper [1]. The PQI’s goal is to build national capacity forSTEM education research by engaging technical STEM from across the U.S. in cohorts thatparticipate in an 8-week course on qualitative and mixed methods educational researchtechniques, followed by engagement in several communities of practice and other opportunitiesto continue supporting participant research projects and building participants’ confidence aseducational researchers. This project was funded based on impact rather than research orknowledge generation; thus, this paper will report on the impacts of the PQI in terms ofparticipants
-minded learning (EML) strategy has been of recent interest incollegiate-level courses to encourage an application-focused framework of thought. EMLapproaches to coursework involve the development of assignments or projects that lead studentsto actively think and participate in designing and justifying the practical application of products.For biomedical engineering (BMEG) students, this approach has value due to the high degree ofimportance that design in healthcare and commercial BME-related ventures entails. We created anEML project in a sophomore-level biomechanics course that aimed to develop entrepreneurialskills through designing an orthopedic implant using biomechanical concepts. We have previouslydemonstrated that this approach increased
where this study is being conducted. With overseven years of experience in teaching and research in engineering education, the researcher nowserves as the course's instructor and coordinator within the research setting.Setting of the study This study is conducted at a public university in the northeastern region of Indiana,United States. The FYE program plays a crucial role in introducing fundamental engineeringconcepts for all new engineering students across the four engineering programs (computer,electrical, civil, and mechanical engineering) in two core engineering courses, the EngineeringFundamentals I (ENGR127) and II (ENGR128). Each engineering fundamentals course includesa lecture, a project studio, and a computer lab component
and human performance. Dr. DeGoede teaches upper-level undergraduate mechanical engineering using mastery-based assessment models and project-based learning, design courses, and first-year multidisciplinary courses.Dr. Rachel Koh, Smith College ©American Society for Engineering Education, 2024 Impacts of social and equity-centered instruction on students’ ability to navigate related tradeoffs in systems-level designAbstractEngineers effective at creating value for society must frame their work through a lens of equityand social justice. They need to identify who is affected positively and negatively by theirsolutions across all stages of development: manufacture, distribution, use, and
the field, there are not always theresources to do so, and thus, engineering educators must find creative ways to expose students tothe ways in which they can support sustainable development goals and engage with stakeholders.This paper reports on two activities focused on incorporating sustainable development projectsinto engineering design courses. Both approaches were part of larger projects aimed at reducingor eliminating the use of mercury in mineral processing systems used by artisanal and small-scale mining (ASM) communities in Latin America. In the courses discussed in this paper,interdisciplinary groups of undergraduate engineering students were assigned design challengesthat focused on developing context specific, mercury-free
Paper ID #15508Integration of a Short-term International Humanitarian Engineering Expe-rience into Engineering Undergraduate StudiesJeremy Smith, Australian National University Jeremy is a research engineer at the Australian National University (ANU) in Canberra. He has worked on introducing a number of humanitarian engineering and service-learning projects into engineering un- dergraduate studies at the ANU, covering both international and domestic opportunities. Jeremy has also worked on a number of industry focused research projects in the automotive and aerospace industries.Ms. Jennifer Patricia Turner, Engineers Without
Biomedical Engineering Design and Bioinstrumentation and has taken initiative to develop hands-on blended learning based courses on the same topics. His research interest is on global health and engineering and had worked on projects in Honduras, Ethiopia, India and Vietnam. He has received the Recognition Award for Achievement in Global Engaged Scholarship in 2013 through the Wisconsin Without Borders at the University of Wisconsin-Madison, the Professor of the Year Award in 2012, through the Biomedical Engineering Society at the University of Wisconsin-Madison, and a number of teaching awards.Dr. John P. Puccinelli, University of Wisconsin, Madison Dr. Puccinelli is the Associate Chair of the Undergraduate Program in
in multiple projects, including the Development of a Model for The Metal Laser Powder Bed Fusion Additive Manufacturing Process. Dr. Ahmed Cherif Megri was the chair of the NCAT CAM’s Education subcommittee. He contributed to the outreach CAM since 2015. He is currently, responsible for the outreach program for the STEAM’s research project.Dr. Sameer Hamoush P.E., North Carolina A&T State University Professor and Chair of Civil and Architectural Engineering DepartmentDr. Rachid Belmasrour, Southern University at New Orleans Dr. Belmasrour holds a Ph.D. from University of New Orleans in Mathematics, and he obtained his M.S degree in Mathematical Informatics from University of Versailles Saint Quentin, France
Undergraduate Studies (2009- 2013) and Interim Dean (2015) in the College of Engineering. Dr. VanderGheynst’s research focuses on next generation biofuels and bioproducts and agricultural biotechnology. Current projects examine the management of microbial communities in applications including water treatment, food and energy production, and soil treatment for the control of pests and pathogens. More than $9 million of her ex- tramural funding at UC Davis has been in support of undergraduate and graduate student preparation in engineering. This includes a NSF GK-12 award to improve leadership, communication and collaboration skills, and teaching capabilities in engineering graduate students pursuing research in the
International University Dr. Fletcher is currently an Assistant Professor at Florida International University. Her research focus includes people of color and women in STEM and quality in K-12 and higher education. Prior to FIU, Dr. Fletcher served as the Director of Pre-college Programs for NSBE. Additionally, she spent time in industry holding technical and operations-based roles and has experience with outreach projects focused on STEM education and mentoring.Dr. Araceli Martinez Ortiz, Texas State University Araceli Martinez Ortiz, PhD., is Research Associate Professor of Engineering Education in the College of Education at Texas State University. She leads a comprehensive research agenda related to issues of
sensors to data analysis and insight enabled by dashboards, [Midwestern]University designed and implemented a graduate course in partnership with local industries. Thiscourse has the dual purpose of training the next generation of manufacturing professionals and inthe process supporting regional companies in addressing problems that could be solved with IoTor AI innovations. The goal of this study is to describe how the course was organized anddelivered following design principles of Experiential Learning Theory, and as outcomes of theapproach, we provide a description of the projects the students implemented within the regionalmanufacturing companies.2. Pedagogical FrameworkKolb's Experiential Learning Theory (ELT) [4], [5] was used as an
]that specifically engaged middle school students in learning about fossils and the science of paleontology,researchers from the University of Florida and St. Mary’s College of Maryland designed a year-long teacherPD experience. The Shark AI project leverages middle school students’ interest in fossil shark teeth toexplore ML concepts. Sharks captivate public interest, as evidenced by the popular Shark Weekprogramming on the Discovery Channel [3]. Fossil shark teeth also have a simplistic morphology that variesby species and dietary preference, providing the ideal basis for developing and testing ML models thatcategorize objects using 2-dimensional images.The state of Florida is known for the ability to easily find fossil shark teeth along
Paper ID #17215Introducing High-Performance Computing to Undergraduate StudentsDr. Suxia Cui, Prairie View A&M University Suxia Cui is an associate professor in the Department of Electrical and Computer Engineering at Prairie View A&M University (PVAMU). She joined PVAMU right after she obtained her Ph.D. degree in Com- puter Engineering from Mississippi State University in 2003. Her research interests include image and video processing, data compression, wavelets, computer vision, remote sensing, and computing educa- tion. Her projects are currently funded by NSF, United States Department of Agriculture, and
Hydro Kinetic Energy Devices would fit the call in the graduatedivision and it is consistent with the division objectives. Furthermore, the study is relevant to theASEE division’s mission and the scope is interdisciplinary including design, development andresearch. The research paper was a term project for a public works engineering and managementclass that is offered each fall semester. This makes it relevant to the theme of the ASEE GraduateStudies Division.How Tidal Energy Works Tidal Energy uses the earth’s gravitational interactions with the sun and moon to converthydraulic energy into usable electric power for various uses. The orbital and rotational effects ofthe sun and moon create tidal patterns which may be reasonably predicted
perceived divisions between STEM andthe liberal arts by linking those perspectives and assignments to broader habits of mind that arenecessary for engineers and designers. We then describe our strategies for integrating a richdesign experience into the course and consider how that integration alters typical approaches todesign projects. Finally, we discuss our plan to implement assessments that account for bothstudents’ technical abilities and their application of course theories and concepts.Course development was supported at the Institution by a summer course development grant thatencouraged faculty to partner across disciplines to create unique course offerings. Thepartnership between the Humanities & Social Sciences (HSS) and the
TransformationThe National Science Foundation’s funded ($625,179) SPIRIT: Scholarship Program Initiativevia Recruitment, Innovation, and Transformation at Western Carolina University creates a newapproach to the recruitment, retention, education, and placement of academically talented andfinancially needy engineering and engineering technology students. Twenty-Seven new andcontinuing students were recruited into horizontally and vertically integrated cohorts that will benurtured and developed in a Project Based Learning (PBL) community characterized byextensive faculty mentoring, fundamental and applied undergraduate research, hands-on designprojects, and industry engagement. Our horizontal integration method creates sub-cohorts withsame-year students from
federally funded projects. Dr. Sydlik’s interests are in supporting efforts to improve the educational experiences and outcomes of undergraduate and graduate STEM students. She is or has been the lead external evaluator for a number of STEM and NSF-funded projects, including an ERC education project, an NSF TUES III, a WIDER project, an NSF EEC project through WGBH Boston, two NSF RET projects, an S-STEM project, a CPATH project, and a CCLI Phase II project. She also currently serves as the internal evaluator for WMU’s Howard Hughes Medical project, and has contributed to other current and completed evaluations of NSF-funded projects.Dr. Allison Godwin, Purdue University at West Lafayette Allison Godwin, Ph.D. is
Paper ID #29080Strategies for increasing enrollment, retention, and graduation in twobaccalaureate degree STEM programs: Mechanical Engineering Technology(MET) and Safety Management (SM)Dr. A. Mehran Shahhosseini, Indiana State University A. Mehran Shahhosseini is a Professor in the Department of Applied Engineering and Technology Man- agement and director of the PhD Program in Technology Management at Indiana State University. He has published over 50 articles in different journals and conference proceedings. He has served as an investi- gator for research projects sponsored by National Science Foundation, Ford Motor Company
wheresustainability is only in environmental engineering or biology, this minor is open to every students.Undergraduates interested in sustainability can also apply for Experiential Learning in CUAS (EL CUAS).Through EL CUAS, 8 to 10 undergraduates per year work collaboratively in a yearlong program wherethey complete courses, participate in professional development and carry out a project with a sustainabilityor urban agricultural focus. Students selected for the experiential learning (both science and non-sciencemajors) gain valuable project management skills, communication skills and the ability to scientificallyanalyze project data. All groups are also required to design and build technology to solve a sustainabilityor urban agriculture problem. Thus
Paper ID #43262Board 130: An International, Bilingual Engineering Design Course: Faculty/StudentExperiences and Lessons LearnedDr. Jorge Ivan Rodriguez-Devora, University of Georgia Dr. Rodriguez serves as the industry capstone project coordinator for the College of Engineering at the University of Georgia. He is a faculty member of the School of Environmental, Civil, Agricultural and Mechanical Engineering.David Emory Stooksbury, University of Georgia I am an atmospheric scientist with a background in agriculture, astrophysics, and applied statistics that turned up in an engineering program. My major engineering
design process because ENGR 180 has no prerequisites. Throughvarious projects and in-class activities, students are made aware of the significance. As a resultof the course’s learning outcomes, oral communication is the focus of the class rather thantechnical writing.Boise State University has not previously offered a course that focuses on communicationthroughout the design process. The State Board of Education has requested for undergraduatestudents to graduate with specific competencies in oral communication. ENGR 180 was designedto emphasize the importance of oral communication as an engineer.In early 2018, the State Board of Education (SBOE) mandated the four state universities in Idahorequire a Foundations of Oral Communication (FC) course
researchers both nationally and internationally. She has been PI or co-PI on multiple NSF awards and leading PINC project (Promoting Inclusivity in Computing) c American Society for Engineering Education, 2018
Paper ID #17911First Year Experience of Running the Research Experience for Teachers inAlternative Energy and Automotive Engineering ProgramProf. Xia Wang, Oakland University Dr. Xia Wang is an associate professor in the department of Mechanical Engineering at Oakland Uni- versity. Her research and teaching interests lie in the areas of fluid mechanics and heat transfer, with an emphasis on fuel cell and battery technology. She was the program director for the NSF-funded project entitled ”Research Experience for Teachers in Alternative Energy and Automotive Engineering: Energize K-12 Teaching and Learning” at Oakland
,technology, engineering and mathematics (STEM). The goals of this project were to develop anintroductory engineering design course for MSEN students with mentoring from undergraduatesin MEP, improve the self-efficacy and interest in engineering among student participants, and builda pipeline of minority students interested in pursuing an engineering degree at NC State.It has been widely reported that the U.S. must produce more highly skilled individuals in the STEMfields in order to sustain its historical competitive advantage in these areas. According to anexecutive report issued by the President’s Council of Advisors on Science and Technology(PCAST), the U.S. will need to increase the number of students who receive undergraduate STEMdegrees by