研究生: |
張錡 Chang, chi |
---|---|
論文名稱: |
高中工程設計專題溝通表現評量工具之發展 Development of communication performance assessment tool of engineering design project for high school students |
指導教授: |
林坤誼
Lin, Kuen-Yi |
口試委員: |
游光昭
Yu, Kuang-Chao 范斯淳 Fan, Szu-Chun 林坤誼 Lin, Kuen-Yi |
口試日期: | 2022/12/30 |
學位類別: |
碩士 Master |
系所名稱: |
科技應用與人力資源發展學系 Department of Technology Application and Human Resource Development |
論文出版年: | 2023 |
畢業學年度: | 111 |
語文別: | 中文 |
論文頁數: | 97 |
中文關鍵詞: | 高中生 、工程設計專題 、溝通表現 、評量工具 |
英文關鍵詞: | assessment tool, communication performance, engineering design project, high school students |
DOI URL: | http://doi.org/10.6345/NTNU202300133 |
論文種類: | 學術論文 |
相關次數: | 點閱:85 下載:20 |
分享至: |
查詢本校圖書館目錄 查詢臺灣博碩士論文知識加值系統 勘誤回報 |
近年來,世界各國十分重視工程設計,並使用工程設計專題作為課程內容之一,以藉由工程設計專題,培養學生的溝通。然而,實務上較少針對高中生發展之工程設計專題溝通表現評量工具,因此本研究旨在發展一份「高中工程設計專題溝通表現評量工具」,據此瞭解學生在工程設計專題中所展現的溝通表現。在評量工具發展的過程中,本研究將工程設計專題中的溝通表現,分為個人及團隊溝通表現,個人溝通表現包含:「組織與建立」、「溝通與用詞」、「價值與可靠性」、「聆聽及回應」,團隊溝通表現包含:「促進互動」、「建立與維持團隊合作」。本研究之研究對象為雙北地區公立完全中學之高中部一至三年級學生,採用立意取樣抽取研究樣本,有效樣本數共212份。本研究使用驗證性因素分析、獨立樣本t檢定以及變異數分析(ANOVA)檢驗研究數據,結果顯示:(1)高中工程設計專題溝通表現評量工具具有適當的信效度;(2)高中生在工程設計專題溝通表現中,輔助溝通工具及提醒進度題項量尺程度說明不易理解;(3)不同性別高中生在工程設計專題中的團隊溝通整體表現有差異,顯示本研究之評量工具應將男女性溝通風格納入考量;(4)不同類組高中生在工程設計專題中的個人與團隊溝通表現相近,顯示本研究之評量工具適用於各類組。
In recent years, countries all over the world attach great interest in engineering design, and use engineering design project as course content. Through the engineering design project, student cultivated their communication skill. However, in practice, communication performance assessment tool in engineering design project still need to be improved. Therefore, this research aims to develop a "communication performance assessment tool of engineering design project for high school students," and apply assessment tool to demonstrate students' communication performance. We summarize two items of communication performance in engineering design project: personal and team communication performance. Personal communication performance includes “Organization and Structure”, “Style and Language”, “Value and Accountability” and “Listening and Responding”; Team communication performance includes “Foster interaction” and “Establishing and Maintaining team organization”. The subjects of this study are the tenth to twelfth grades public complete secondary school students in Taipei and New Taipei City. We use intentional sampling to select research samples, and 212 valid questionnaires are obtained for further analysis. We use confirmatory factor analysis, independent sample t-test, and analysis of variance to examine research data. The following conclusion are made: (1) The assessment tool has applicable reliability and validity. (2) It is difficult for high school students to understand the communication aids and scale instructions for monitoring team progress in the communication performance of engineering design project. (3) There are differences in the overall team communication performance of different genders in high school engineering design project, indicating that the evaluation tools of this study should take male and female communication styles into consideration (4) The personal and team communication performances of different high school classification groups in engineering design project are similar, indicating that the assessment tool in this study is applicable to all classification groups.
吳明隆、涂金堂(2006)。SPSS 與統計應用分析。五南圖書出版股份有限公司。https://doi.org/10.978.9578859/210
教育部(2018)。十二年國民基本教育課程綱要國民中學暨普通型高級中等學校:科技領域。教育部。
游光昭、林坤誼、周家卉(2016)。英美日科技教科書分析及其對十二年國教之啟示。教科書研究,9(1),135-166。https://doi.org/10.6481/JTR.201604_9(1).05
劉惠美、張鑑如(2011)。口語和閱讀關連性研究之文獻回顧與展望。教育心理學報,閱讀專刊,43,251-268。https://doi.org/10.6251/BEP.201111_43(S).0006
謝小芩、楊佳羚(2012)。「分組」的性別意涵:制度因素與其效果。性別平等教育季刊,58,40-51。https://doi.org/10.6486/GEEQ.201206.0040
Accreditation Board for Engineering and Technology (ABET). (2010). Criteria for accrediting computing programs. http://www.abet.org/uploadedFiles/Accreditation/Accreditation_Process/Accreditation_Documents/Current/cac-criteria-2012-2013.pdf
Accreditation Board for Engineering and Technology (ABET). (2014). Criteria for accrediting engineering programs. http://www.abet.org/uploadedFiles/Accreditation/Accreditation_Process/Accreditation_Documents/Current/eac-criteria-2012-2013.pdf
Atman, C. J., Adams, R. S., Cardella, M. E., Turns, J., Mosborg, S., & Saleem, J. (2007). Engineering design processes: A comparison of students and expert practitioners. Journal of Engineering Education, 96(4), 359-379. https://doi.org/10.1002/j.2168-9830.2007.tb00945.x
Australia Curriculum, Assessment and Reporting Authority. (2016). ACARA STEM connection project report. https://www.australiancurriculum.edu.au/resources/stem/stem-report/
Baker, D., Ganesh, A., Ganesh, T. G., Krause, S., Morrell, D., Roberts, C., & White-Taylor, J. (2018). Engineering: An introduction for high school. https://www.ck12.org/book/engineering-an-introduction-for-high-school/
Ballesteros-Sánchez, L., Ortiz Marcos, I., Rodríguez-Rivero, R., & Juan- Ruiz, J. (2017). Project management training: An integrative approach for strengthening the soft skills of engineering students. International Journal of Engineering Education, 33(6), 1912-1926.
Ballesteros-Sánchez, L., Ortiz Marcos, I., Rodríguez-Rivero, R., & Juan- Ruiz, J. (2021). Investigating the Gap Between Engineering Graduates and Practicing Project Managers. International Journal of Engineering Education, 37(1), 31–43.
Barros, F. L., & Bittencourt, R. A. (2018). Evaluating the influence of PBL on the development of soft skills in a computer engineering undergraduate program. 2018 IEEE Frontiers in Education Conference (FIE) (pp. 1-9). https://doi.org/10.1109/FIE.2018.8658832
Bentler, P. M. (1990). Comparative fit indexes in structural models. Psychological Bulletin, 107(2), 238–246. https://doi.org/10.1037/0033-2909.107.2.238
Bowen, N. K., & Guo, S. (2011). Structural equation modeling. Oxford University Press. https://doi.org/10.1093/acprof:oso/9780195367621.003.0005
Bryman, A., & Cramer, D. (1997). Quantitative data analysis with SPSS for windows: A guide for social scientists. Routledge. https://doi.org/10.1111/j.1751-5823.2012.00187_14.x
Chen, F., Curran, P. J., Bollen, K. A., Kirby, J., & Paxton, P. (2008). An empirical evaluation of the use of fixed cutoff points in RMSEA test statistic in structural equation models. Sociological Methods and Research, 36(4), 462-494. https://doi.org/10.1177/0049124108314720
Clarkson, J., & Eckert, C. (Eds.). (2010). Design process improvement: A review of current practice. Springer. https://doi.org/10.1007/978-94-011-4154-3_17
Comrey, A. L. (1988). Factor analytic methods of scale development in personality and clinical psychology. Journal of Consulting and Clinical Psychology, 56, 754-761. https://doi.org/10.1037/0022-006X.56.5.754
Cruz, M. L., Saunders-Smits, G. N., & Groen, P. (2020). Evaluation of competency methods in engineering education: A systematic review. European Journal of Engineering Education, 45(5), 729-757. https://doi.org/10.1080/03043797.2019.1671810
Danaher, M., Schoepp, K., & Kranov, A. A. (2016). A new approach for assessing ABET’s professional skills in computing. World Transactions on Engineering and Technology Education, 14(3), 355-360. https://doi.org/10.21125/edulearn.2016.0118
Davis, D. C., Gentili, K. L., Trevisan, M. S., & Calkins, D. E. (2002). Engineering design assessment processes and scoring scales for program improvement and accountability. Journal of Engineering Education, 91(2), 211-221. https://doi.org/10.1002/j.2168-9830.2002.tb00694.x
Department of Education. (2013). Design and technology programs of study key stage 3. https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/239089/SECONDARY_national_curriculum_-_Design_and_technology.pdf
Détienne, F., Boujut, J. F., & Hohmann, B. (2004). Characterization of collaborative design and interaction management activities in a distant engineering design situation. In 6th International Conference on the Design of Cooperative Systems-COOP'04 (pp. 83-98). IOS press.
Dym, C. L., Agogino, A. M., Eris, O., Frey, D. D., & Leifer, L. J. (2005). Engineering design thinking, teaching, and learning. Journal of Engineering Education, 94(1), 103-120. https://doi.org/10.1002/j.2168-9830.2005.tb00832.x
Education Standard Authority. (2011). Engineering studies stage 6 syllabus. https://educationstandards.nsw.edu.au/wps/wcm/connect/c20e351c-7675-438b-b2fc-7e20f582c1d8/engineering-studies-st6-syl-from2013+Engineering+Studies.pdf?MOD=AJPERES&CVID=
English, L. D., & Moore, T. (Eds.). (2018). Early engineering learning. Springer. https://doi.org/10.1007/978-981-10-8621-2_14
Esparragoza, I. E., Lascano, S., & Nunez, J. (2013). Framework for an engineering design course using a project-based and competency-based learning approach. Paper presented at the Eleventh LACCEI Latin American and Caribbean Conference for Engineering and Technology.
Farrell, A. M. (2010). Insufficient discriminant validity: A comment on Bove, Pervan, Beatty, and Shiu (2009). Journal of Business Research, 63(3), 324-327. https://doi.org/10.1016/j.jbusres.2009.05.003
Fornell, C., & Larcker, D. F. (1981). Evaluating structural equation models with unobservable variables and measurement error. Journal of Marketing Research, 18(1), 39-50. https://doi.org/10.2307/3151312
Gorsuch, R. L. (1983). Factor Analysis. Lawrence Earlbaum Associates. https://doi.org/10.1002/0471264385.wei0206
Hadisantono, H., Rowe, G., & Giacaman, N. (2018). Assessment of Engineering Professional Skills through EPSA Rubric Class Administrations. 2018 AAEE Conference (pp. 9-12).
Hertel, J. D., Cunningham, C. M., & Kelly, G. J. (2017). The roles of engineering notebooks in shaping elementary engineering student discourse and practice. International Journal of Science Education, 39(9), 1194-1217. https://doi.org/10.1080/09500693.2017.1317864
Hirsch, P. L., Shwom, B. L., Yarnoff, C., Anderson, J. C., Kelso, D. M., Olson, G. B., & Colgate, J. E. (2001). Engineering design and communication: The case for interdisciplinary collaboration. International Journal of Engineering Education, 17(4/5), 343-348.
Householder, D. L., & Hailey, C. E. (2012). Incorporating engineering design challenges into STEM courses. https://0-www.proquest.com.opac.lib.ntnu.edu.tw/reports/incorporating-engineering-design-challenges-into/docview/1312417823/se-2?accountid=14228
Hynes, M. M. (2012). Middle-school teachers' understanding and teaching of the engineering design process: A look at subject matter and pedagogical content knowledge. International Journal of Technology and Design Education, 22(3), 345-360. https://doi.org/10.1007/s10798-010-9142-4
Hynes, M., Portsmore, M., Dare, E., Milto, E., Rogers, C., Hammer, D., & Carberry, A. (2011). Infusing engineering design into high school STEM courses. https://0-www.proquest.com.opac.lib.ntnu.edu.tw/reports/infusing-engineering-design-into-high-school-stem/docview/1312421648/se-2?accountid=14228
International Technology Education Association. (2000). Standards for technological literacy: Content for the study of technology. Author.
Jordan, M.E. (2010). Collaborative robotics engineering projects: Managing uncertainty in multimodal literacy practice in a fifth-grade class. Yearbook of the National Reading Conference, 59, 260–275. https://doi.org/10.18404/ijemst.440342
Jöreskog, K. G., & Sörbom, D. (1996). LISREL 8: User's reference guide. Scientific Software International.
Jung, K. G., & McFadden, J. (2018). Student justifications in engineering design descriptions: Examining authority and legitimation. International Journal of Education in Mathematics Science and Technology, 6(4), 398–423.
Kranov, A. A., Beyerlein, S. W., McCormack, J. P., Pedrow, P. D., & Ater-Kranov, E. R. (2014). Using the EPSA Rubric to Evaluate Student Work in a Senior Level Professional Issues Course. 2014 ASEE Annual Conference & Exposition (pp. 24-1349). https://doi.org/10.18260/1-2--23282
Leydens, J. A. (2012). Sociotechnical communication in engineering: An exploration and unveiling of common myths. Engineering Studies, 4(1), 1-9. https://doi.org/10.1080/19378629.2012.662851
Lin, K.-Y., Wu, Y.-T., Hsu, Y.-T., & Williams, P. J. (2021). Effects of infusing the engineering design process into STEM project-based learning to develop preservice technology teachers' engineering design thinking. International Journal of STEM Education, 8(1), 1-15. https://doi.org/10.1186/s40594-020-00258-9
Maier, A. M., Eckert, C. M., & Clarkson, P. J. (2005). A meta-model for communication in engineering design. CoDesign, 1(4), 243-254. https://doi.org/10.1080/15710880500478353
Mangold, J., & Robinson, S. (2013). The engineering design process as a problem solving and learning tool in K-12 classrooms. American Society for Engineering Education-ASEE. https://doi.org/10.18260/1-2--22581
Mauer, G. (2003). Hands on robot design in an introductory engineering course. In 2003 American Society For Engineering Education Annual Conference & Exposition (pp. 8-625). https://doi.org/10.18260/1-2--11874
Miller, E., & Bailey, R. (2018). Influences on variability of perceptions of behavior on student engineering project teams. In 2018 ASEE Annual Conference & Exposition. https://doi.org/10.18260/1-2--30660
Ministry of Education Singapore. (2007). Design & technology syllabus (Lower Secondary :Special/Express/Normal). https://www.moe.gov.sg/docs/default-source/document/education/syllabuses/sciences/files/design-and-technology-lower-secondary-2007.pdf
Ministry of education. (2015). The national curriculum for the primary and secondary schools. http://www.koreaneducentreinuk.org/wp-content/uploads/2021/02/The-National-Curriculum-for-the-Primary-and-Secondary-Schools-2015.pdf
Moore, T. J., Glancy, A. W., Tank, K. M., Kersten, J. A., Smith, K. A., & Stohlmann, M. S. (2014). A Framework for Quality K-12 Engineering Education: Research and Development. Journal of Pre-College Engineering Education Research (J-PEER), 4(1), Article 2. https://doi.org/10.7771/2157-9288.1069
National Assessment Governing Board (NAGB). (2018). Technology and engineering literacy framework for the 2018 national assessment of educational progress. U.S. Department of Education.
NGSS Lead States. (2013). Next Generation Science Standards: For states, by states. National Academies Press.
Organization for Economic Cooperation and Development (OECD). (2017). PISA 2015 collaborative problem-solving framework. https://www.oecd.org/pisa/pisaproducts/Draft%20PISA%202015%20Collaborative%20Problem%20Solving%20Framework%20.pdf
Pattison, S.A., Gontan, I., Ramos-Montan˜ez, S., &Moreno, L. (2018). Identity negotiation within peer groups during an informal engineering education program: The central role of leadership-oriented youth. Science Education, 102(5), 978–1006. https://doi.org/10.1002/sce.21459
Schmeckpeper, E. R., Kranov, A. A., Beyerlein, S. W., Pedrow, P. D., & McCormack, J. P. (2015). Using the EPSA rubric and EPSA score to evaluate student learning at the course and program level. In 2015 ASEE Annual Conference & Exposition (pp. 26-1689). https://doi.org/10.18260/p.25025
Schnittka, J., & Schnittka, C. (2016). ‘‘Can I drop it this time?’’ gender and collaborative group dynamics in an engineering design-based afterschool program. Journal of Pre-College Engineering Education Research (J-PEER), 6(2), 1-24. https://doi.org/10.7771/2157-9288.1120
Schoepp, K., Danaher, M., & Kranov, A. A. (2016). The computing professional skills assessment: An innovative method for assessing ABET's student outcomes. In 2016 IEEE Global Engineering Education Conference (EDUCON) (pp. 45-52). IEEE. https://doi.org/10.1109/EDUCON.2016.7474529
Schreiber, J. B., Nora, A., Stage, F. K., Barlow, E. A., & King, J. (2006). Reporting structural equation modeling and confirmatory factor analysis results: A Review. Journal of Educational Research, 99(6), 323-337. https://doi.org/10.3200/JOER.99.6.323-338
Schumacker, R. E., & Lomax, R. G. (2004). A beginner’s guide to structural equation modeling (2nd ed.). Lawrence Erlbaum Associates. https://doi.org/10.1080/10705511.2017.1280798
Shanahan, L. E., Silvestri, K. N., & McVee, M. B. (2018). Digital engineering design team journals: Providing multimodal opportunities for English learners to explain design choices. Journal of Adolescent & Adult Literacy, 61(4), 445–451. https://doi.org/10.1002/jaal.707
Soto Ortiz, J. D. & Torres, L. & Calle, M. & de Castro, A. & García, L. & Schettini, N. (2017). Communication skills training effect on academic performance: the case of ABET student outcomes f and g. In Conference: Research in Engineering Education Symposium, REES2017.
Uruburu Colsa, Á., Ortiz Marcos, I., & Cobo Benita, J. R. (2015). Improving engineering students' communication competence: designing innovative learning strategies. International Journal of Engineering Education, 31(1), 361-367.
Van Til, R. P., Sengupta, S., Srodawa, R. J., & Latcha, M. A. (2003). Robotic assembly cell. 33rd Annual Frontiers in Education, 2003. FIE 2003. (Vol. 2, pp. F4E1-F4E5). IEEE. https://doi.org/10.1109/FIE.2003.1264765
Wieselmann, J. R., Dare, E. A., Roehrig, G., & Ring-Whalen, E. (2019). Participation in small group engineering design activities at the middle school level: An investigation of gender differences. 2019 ASEE Annual Conference & Exposition. https://doi.org/10.18260/1-2--33158
Zhang, A. (2012). Peer assessment of soft skills and hard skills. Journal of Information Technology Education: Research, 11(1), 155-168. https://doi.org/10.28945/1634
Zhang, M., Kranov, A. A., Beyerlein, S. W., McCormack, J. P., Pedrow, P. D., & Schmeckpeper, E. (2015). Investigating a scenario-based performance assessment of engineering professional skills. 2015 IEEE Integrated STEM Education Conference (pp. 230-235). IEEE. https://doi.org/10.1109/ISECon.2015.7119930