Paper ID #38463Preparing Women in STEM for Faculty Careers through a Job SearchWorkshop SeriesDr. Rebecca Marie Reck, University of Illinois at Urbana - Champaign Rebecca M. Reck is a Teaching Associate Professor of Bioengineering at the University of Illinois Urbana- Champaign. Her research includes alternative grading, entrepreneurial mindset, instructional laboratories, and equity-focused teaching. She teaches biomedical instrumentation, signal processing, and control systems. She earned a Ph.D. in Systems Engineering from the University of Illinois Urbana-Champaign, an M.S. in Electrical Engineering from Iowa State
Laboratory Majbah Uddin is currently a Postdoctoral Research Associate in the Energy and Transportation Science Division at the Oak Ridge National Laboratory. He obtained his Ph.D. in Civil Engineering from the University of South Carolina (UofSC). Prior to that, he obtained a master’s degree in Applied Statistics as well as an M.S. degree in Civil Engineering from the UofSC. His research interests include freight transportation systems, intermodal network design, supply chain and logistics, and transportation safety. c American Society for Engineering Education, 2020 Delivering Contextual Knowledge and Critical Skills of Disruptive Technologies through Problem-Based Learning in Research
director of the Nonlinear and Autonomous Systems Laboratory (NASLab). She is a recipient of 2015 National Science Foundation CAREER award and 2015 Office of Naval Research YIP award.Dr. Mo Rastgaar, Michigan Technological University Mo Rastgaar received the Ph.D. degree in mechanical engineering from Virginia Polytechnic Institute and State University, Blacksburg, VA, USA, in 2008. He is currently an Associate Professor in mechanical engineering and the Director of the Human-Interactive Robotics Lab. His present research focuses on assistive robots by characterizing the agility in the human gait. Dr. Rastgaar is a recipient of 2014 NSF CAREER Award.Saeedeh Ziaeefard, Michigan Technological University Saeedeh
Paper ID #14110A Hands-On, Arduino-Based Approach to Develop Student Engineering Skillsand Introduce Cybersecurity Concepts to K-12 StudentsMr. Robert Shultz, Drexel University Robert Shultz is a 3rd year Biomedical Engineering PhD student, and a GK-12 fellow at Drexel University.Mr. Daniel Edward Ueda, GRASP Laboratory, University of Pennsylvania Daniel Ueda is the Associate Director for Education and Outreach at the GRASP Laboratory, University of Pennsylvania. He earned a BS in Mechanical Engineering from Rensselaer Polytechnic Institute and a MS in Teaching Mathematics from Pace University. Ueda has worked as a product
Paper ID #15948Multidisciplinary Game-based Approach for Generating Student Enthusi-asm for Addressing Critical Infrastructure ChallengesMr. Timothy R McJunkin, Idaho National Laboratory Timothy R. McJunkin is a Senior Research Engineer at Idaho National Laboratory in the Energy and Environment Science and Technology Division, since 1999. He has also served as an adjunct instructor at Idaho State University, teaching control systems and resilient controls systems. Prior to joining INL, he was a design engineer at Compaq Computer Corporation in Houston Texas. Mr. McJunkin is the principal architect of the Grid Game
Paper ID #38482Panel: Graduate Student and Postdoctoral Fellow Perspectives onAdvancing Women and Gender Equity in Engineering - for the Next 130YearsDr. Baishakhi Bose, Lawrence Berkeley National Laboratory Baishakhi Bose is currently a Postdoctoral Scholar at Lawrence Berkeley National Lab (LBNL). Her cur- rent research focus is on life cycle assessment of novel polymers, building materials and plastic recycling processes. She obtained her PhD. in Materials Engineering from Purdue University in 2021. Since 2014, she has taught courses in Civil, Materials and First Year Engineering to undergraduates, and mentored
of Science and Technology, Beijing and Beijing Key Laboratory of KnowledgeEngineering for Materials Science Xiong Luo received the Ph.D. degree from Central South University, China, in 2004. He currently works as a Professor in the School of Computer and Communication Engineering, University of Science and Technology Beijing, China. His current research interests include machine learning, cloud computing, and computational intelligence. He has published extensively in his areas of interest in journals, such as the Future Generation Computer Systems, Computer Networks, IEEE Access, and Personal and Ubiquitous Computing.Prof. Chaomin Luo, University of Detroit Mercy Dr. Chaomin Luo received his Ph.D. in Department
activities. Table 1shows various topics and their corresponding laboratory activities. The hydraulic laboratoryactivities are already completed and available; however, the pneumatic laboratory activitiesare in the process of development. Table below shows the outline of a typical Fluid PowerCourse. Table 1. The contents of fluid power. Lecture Lab Principles and Laws No lab Pumps Labs 1 - 4 Cylinders Labs 6, 7, 9, and 10Hydraulics Valves Motors Labs 5 and 8
Promoting quality STEM Education in the time of Social Distancing (Other)AbstractThe pandemic produced by COVID-19 has forced a radical change in the strategies andmethodologies used to share and transmit knowledge. With the closure of the Schools /Universities, the educational process has been radically transformed from one day to the next.STEM education is based on collaborative work, inquiry, experimentation, problem-solving, andproject generation. This type of education encounters many obstacles in the present situation:students do not have access to laboratories, materials, and other essential supplies to implementan educational process of quality.The Institution has developed alternative ways to promote quality STEM education for
to actively engage students in these topics and togenerate enthusiasm for further study in structural dynamics and structural health topics likedamage detection in engineered structures. Assessment of student laboratory reports fordemonstration of stated learning objectives and student survey results are presented.IntroductionWhile there is plenty of discussion about technology in the classroom, exposing students tocutting edge approaches to structural health monitoring using familiar devices may have apositive influence on learning in a laboratory session. Creating laboratory procedures to simulatepractical field scenarios increases the inherent connection between education and practicalexperience. The purpose of this paper is to document
Engineering Education, 2023 2023 ASEE Southeastern Section Conference Which is More Equitable: Hands-on Labs, Virtual Labs, or No Lab at All? Charles Newhouse and Matthew Swenty Professor Virginia Military Institute / Professor Virginia Military InstituteAbstractLast year, the Virginia Military Institute’s (VMI) Civil and Environmental Engineering (CEE)Department investigated the depth and breadth of engineering laboratory classes both at VMI andnine peer institutions in the Virginia Region as defined by the American Society of Civil Engi-neers (ASCE). The study concluded that engineering laboratory experiences were still valued
Hardware-Based Dynamic Systems Course for a Mechanical Engineering Undergraduate ProgramAbstractMany mechanical engineering undergraduate laboratory courses in dynamic systems and controlsare primarily software-based, with laboratory assignments involving computer simulationmodeling. While such simulation assignments may appeal to traditional mechanical engineeringundergraduate students, especially male students, laboratory exercises that are hardware-basedmay appeal to a wider variety of students. In particular, the addition of physical experimentationshould have an impact on male / female diversity, as there is some scientific evidence that femaleundergraduate students prefer kinesthetic learning to males, which involves moving the body
the goal of hands-on experiences in system dynamics and controlexperiments in a mechanical engineering curriculum. A single-credit, co-requisite requiredlaboratory course in system dynamics and control is redesigned to effectively quadruplethroughput of student participation and credit-earning potential from prior course offerings. Thestrategy to accomplish this goal is described in this paper, as are examples of the experiments,activities related to the experiments, and the methods of assessment.IntroductionThe goal of a hands-on laboratory course in dynamic systems and control is to realize physicalsystem experiments while maintaining meaningful experiential learning. Hands-on experimentsare augmented with tightly coupled simulation
of Idaho Professor John Crepeau received his BS degree in mechanical engineering from the University of California, Berkeley, and his MS and PhD degrees from the University of Utah. After serving as an NSF-NATO Postdoctoral Research Fellow at Humboldt University in Berlin, Germany, he began teaching at the University of Idaho. He was a Fulbright Scholar at the Escuela Superior Politecnica del Litoral in Guayaquil, Ecuador. He has served as Department Chair, Associate Dean and Interim Dean at the University of Idaho. ©American Society for Engineering Education, 2024Enhancing Pathways from Community Colleges to Four-Year Schools with an Online Lecture/Laboratory Course in
University Dr. Sundaram is a Professor in the Electrical and Computer Engineering Department at Gannon Univer- sity. His areas of research include computational architectures for signal and image processing as well as novel methods to improve engineering education pedagogy. c American Society for Engineering Education, 2016 Teaching of Design of Experiment to the First Year Electrical Engineering StudentsAbstract: In the traditional Electrical Engineering curriculum, courses are introduced and taughtprogressively from the most fundamental subjects, such as circuit theory, for example, to moreadvanced subjects such as power electronics and electric drives. To complement the teaching ofconcepts, laboratory
content.For this paper, two student groups, in an EET laboratory experience, are compared based onthe primary metric number of failed attempts to meet circuit board test specifications. Thestudent test body was divided into two groups. A control course section group, where notroubleshooting instruction was given and designated the “As Is” state. The second sectiongroup, “Improved State” was given an extensive troubleshooting methodology as part of theirinitial training. The primary metric, number of failed attempts to meet specification, waschosen as it is easy to measure by student Teaching Assistants (TA) and was also used to assessthe Sigma process capability for each group. The Sigma capability of each group provided afurther measure of the
and made almost 170 papers and poster presentations. While much of externally-funded research has focused of environmental and water resources engineering, his work in the areas of education, trans- portation and construction have included improving instructional processes in laboratories, delineation of roadway systems and NEPA compliance for highways using remotely-sense data, modeling highway evac- uation strategies and environmental impacts for predicting pavement performance, evaluating resources and their allocation in the management of waterways, and comparing the economics of transportation management alternatives
. McGraw Award; Purdue’s life-time Murphy Teaching Award for outstanding undergraduate teaching; induction into Purdue’s Book of Great Teachers (an honor reserved for only 267 faculty in the history of Purdue University at the time of his induction); Purdue Teaching Academy Fellow and Execu- tive Board (charter member); the Ronald Schmitz Award for Outstanding Service to FIE; the ASEE IL-IN Outstanding Campus Representative; the ASEE Hewlett Packard Award for Excellence in Laboratory In- struction; the ASEE IL-IN Outstanding Teaching Award; Marquis’ Who’s Who in the World, in America, in Engineering and Science, and in Education.Dr. Anne M. Lucietto, Purdue University, West Lafayette Dr. Lucietto has focused her
Engineering, Hydraulic Structures, Construction, Sharif Univ. of Technology, Tehran, Iran (1996) B.S. Civil Engineering, Shari ©American Society for Engineering Education, 2023 Effects of Distance Learning on African- American Students in Engineering Technology Courses During COVID-19 PandemicAbstractUntil 2019, many students enrolled in online courses for advantages such as flexibility andfinancial benefits. Research shows that online students made up 32% of the total enrollment in2013. The number continued to grow for many majors; however, previous research does notinvestigate online learning for laboratory-based engineering courses and its effect on minoritystudents. When the US declared COVID-19
actions (student activities to improve learning without any evaluation grades,namely, 1.Student support; 2.Technical Staff; 3.Video classes, and 4. Teaching service) anddirect learning actions (student activities to improve learning with evaluation grade, namely, 5.Online exercises; 6. Pre-Exam; 7. Laboratory reports; 8. Active Learning Projects; 9. LaboratorySeminars, and 10. Preparatory Discussion Laboratory Questions).Keywords: Physics, Engineering Education, Active LearningIntroductionLearning is a process. The assessment of learning is a powerful diagnosis that allows teachers toredirect their efforts towards assisting the weaknesses of the learning process as presented bystudents. This paper discusses 10 ways to improve learning Physics as
into circuits and communication links. c American Society for Engineering Education, 2020 Measurement of the Effect of Interactive Questions in Lab Manuals on LearningAbstract -- This research paper will describe the results of an experiment in which two groups ofstudents in a laboratory class received different web-based lab manuals featuring interactivequestions, the treatment with many more interactive questions than the control. The hypothesiswas that asking students more questions would cause the students to reflect on the task at hand,which would in turn increase learning. This study was motivated by work on experientiallearning, particularly Kolb’s Experiential Learning Cycle, which suggests that
Mathematics (STEM) graduatesspecifically trained to handle the technical challenges and meet the job market demand. Thisproject is funded through the Advanced Technological Education (ATE) program of NationalScience Foundation (NSF), and has been conducted at New Jersey Institute of Technology(NJIT) with the objective to train the required workforce for the solar photovoltaic (PV) jobmarket through several activities that will provide benefits to university students, K-12 students,faculty members and instructors, and remote users all around the U.S.In this paper, the five major activities of the project are explained, which include: (i) Design anddevelopment of the new laboratory entitled “Renewable Energy Systems Training (REST)” andthe associated
Paper ID #23512Guided Modules Emphasizing Process-Based Troubleshooting Techniques HelpBelow-Average Performing Students Improve Instrumentation SkillsDr. Renata Fortuna Ramos, Rice University Renata Ramos is an Associate Teaching Professor and the Director of Undergraduate Studies in the De- partment of Bioengineering at Rice University, 6100 Main St., Houston, TX 77005: rfr1@rice.edu c American Society for Engineering Education, 2018 Guided Modules Emphasizing Process-Based Troubleshooting Techniques Help Below-Average Performing Students Improve Instrumentation SkillsAbstractInstrumentation laboratory
to teach students the basic principles ofdrone aeronautics through laboratory programming.This course was designed by professors from Vaughn College of Aeronautics andTechnology for high school students who work on after-school and weekend programs duringthe school year or summer. In early 2021, the college applied for and was approved to offer acertificate program in UAS (Unmanned Aerial Systems) Designs, Applications and Operationsto college students by the Education Department of New York State. Later that year, thecollege also received a grant from the Federal Aviation Administration (FAA) to providetuition-free early higher education for high school students, allowing them to complete themajority of the credits in the UAS certificate
].Exposure to relevant technologies is most often accomplished through the laboratory portion ofapplicable courses2; yet while many technologies may be easily adopted for use in laboratorydemonstration (e.g. DNA purification, gel electrophoresis, etc.), some are too cost-prohibitive tobe feasible.Flow cytometry and cell sorting are powerful technologies that are currently being employed byin both industrial and academic research settings. Both technologies allow single cells to beisolated from a population and individually analyzed, revealing characteristics about complexsamples at the cellular and sub-cellular levels. Flow cytometry and cell sorting assays can revealimportant information describing gene and protein expression, cell cycle, and
Engineering Education, 2023 Achieving Active Learning through Collaborative Online Lab ExperiencesAbstract In engineering education, laboratory learning that is well aligned with core contentknowledge is instrumental as it plays a significant role in students’ knowledge construction,application, and distribution. Learning in laboratories is interactive in nature, and thereforestudents who learn engineering through online platforms can face many challenges with labs,which were frequently documented during the recent pandemic. To address those reportedchallenges, innovative online lab learning modules were developed and learning strategies wereimplemented in five courses in electrical engineering, Circuits I, Electronics I, Electronics II
also one of the first technical courses that ECE students areexposed to. Field Programmable Gate Arrays (FPGAs) is a versatile and adaptable technologywith many applications ranging from medical image processing to cryptography. By combiningan FPGA course and a digital logic design course, students can learn the basics and beintroduced to new implementation tools and platforms at the same time. This paper describes anumber of academic approaches to incorporate FPGA design in digital design courses andpresents a number of laboratory experiments and tutorials that pave the path for designing asophomore-level four semester credit hour (SCH) course. The results of a survey conducted togauge student interest of such a course are included as
building. Simultaneously,students are exposed to a college learning environment while actively participating in theseactivities. This paper will discuss the strategies employed to create these activities usingresources from existing college laboratory exercises and projects within the engineeringtechnology programs. Fifty-six students from different grades participated in the program basedon their interests. The emphasis on underrepresented minority groups aligns with xxxxUniversity’s commitment to diversity and aims to increase recruitment from schools with ahigher proportion of such students.BackgroundThe project’s goal was to enhance STEM awareness among minority communities and toincrease enrollment at the xxxxx campus of XXXXXX University. A
place of formal laboratory reports, students create technical memos, written by rotating teamleaders, that includes their recommendations or responses to the presented problem. Allrecommendations must be based on their devised experimental approach and the actual data thatwas obtained. Students are also required to complete an error analysis by considering changes toimprove data acquisition, should the experiment be run again. The technical memos are gradedagainst a defined rubric that assesses the work with a focus on the designed experimentalapproach, data reporting and presentation, and recommendations based heavily upon thoseresults. The grading is designed to allow students a level of academic freedom from right andwrong answers, focusing