Primjena Tinkercad web simulatora u nastavi tehničke kulture
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Ključne riječi

automatics
simulation tools
technical culture
technology education
Tinkercad automatika
nastava
simulacijski alati
tehnička kultura
Tinkercad

Kako citirati

Pivac, J. (2024). Primjena Tinkercad web simulatora u nastavi tehničke kulture. Politehnika, 8(2), 48-56. https://doi.org/10.36978/cte.8.2.3

Sažetak

Osposobljenost učitelja za korištenje digitalnih tehnologija u nastavi danas se smatra jednom od ključnih strategija i izazova suvremenog obrazovnog sustava. Prepoznavanje njezine važnosti i primjena u nastavi tehničke kulture rezultiraju modernim pristupom poučavanju, koji napušta isključivo korištenje tradicionalnih nastavnih metoda i alata. Ovaj rad bavi se značajem i primjenom simulacijskih alata u nastavi, s posebnim naglaskom na primjenu Tinkercad simulatora u nastavi tehničke kulture. Tinkercad je besplatna web aplikacija koja, između ostalog, podržava izradu i programiranje raznih automatskih elektroničkih sklopova te se može uspješno integrirati u nastavni proces kao alat za provedbu praktičnih radova iz područja elektronike i automatike. U uvodnom dijelu rada daje se pregled digitalnih tehnologija koje se mogu primijeniti u nastavi. Nadalje, opisuju se glavne značajke digitalnih alata za simulaciju u nastavi te njihove prednosti u usporedbi s tradicionalnim alatima. Zaključno, daje se kratak pregled Tinkercad web simulatora, s naglaskom na primjeni u nastavi tehničke kulture.
https://doi.org/10.36978/cte.8.2.3
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Reference

Afrić, V. (2014). Tehnologije e-obrazovanja i njihov društveni utjecaj. U: Lasić Lazić, J. (ur.), Informacijska tehnologija u obrazovanju, (str. 5-25). Zagreb: Zavod za informacijske studije Odsjeka za informacijske i komunikacijske znanosti Filozofskog fakulteta Sveučilišta.

Autodesk (2024). Autodesk Tinkercad. Dostupno na: https://www.tinkercad.com/

Bonde, M. T., Makransky, G., Wandall, J., Larsen, M. V., Morsing, M., Jarmer, H., i sur. (2014). Improving biotech education through gamified laboratory simulations. Nat. Biotechnol. 32, 694–697. doi: https://doi.org/10.1038/nbt.2955

Crick, T., Knight, C.,Watermeyer, R., Goodall, J. (2021). The International Impact of COVID-19 and “Emergency Remote Teaching” on Computer Science Education Practitioners, 2021 IEEE Global Engineering Education, Conference (IEEE), str. 1048–1055. doi: https://doi.org/10.1109/EDUCON46332.2021.9453846

De Jong, T., Linn, M. C., Zacharia, Z. C. (2013). Physical and virtual laboratories in science and engineering education. Science, 340(6130), 305–308. doi: https://doi.org/10.1126/science.1230579

Eryilmaz, S., Deniz, G. (2021). Effect of Tinkercad on students’ computational thinking skills and perceptions: A case of Ankara Province. TOJET: The Turkish Online Journal of Educational Technology, 20(1), 25–38.

Falstad (2024). Falstad. Dostupno na: https://www.falstad.com/circuit/

Furtak, E. M., Seidel, T., Iverson, H., Briggs, D. C. (2012). Experimental and quasi-experimental studies of inquiry-based science teaching: a meta-analysis. Rev. Educ. Res. 82, 300–329. doi: https://doi.org/10.3102/0034654312457206

Golubev L. P., Tkach M. M., Makatora, D. A. (2023). Using tinkercad to support online the laboratory work on the design of microprocessor systems at technical university. ILIT, 93(1), 80-95. doi: https://doi.org/10.33407/itlt.v93i1.4817

Halsey, S. (2007). Embracing emergent technologies and envisioning new ways of using them for literacy learning in the primary classroom. English Teaching: Practice and Critique, 6(2), 88-107

Hartley, J. (2007). Teaching, learning and new technology: A review for teachers. British Journal of Educational Technology, 38(1), 42-62. doi: https://doi.org/10.1111/j.1467-8535.2006.00634.x

Hogle, J. G. (1996). Considering games as cognitive tools: In search of effective “Edutainment.” Department of Instructional Technology: University of Georgia. (ERIC Document Reproduction Service No. ED 425 737)

Honey, M. A., Hilton, M. L. (eds). (2011). Learning science through computer games and simulations, in Board on Science Education and Division of Behavioral and Social Sciences and Education. Washington, DC: The National Academies Press.

Huffaker, D. (2005). The educated blogger: Using weblogs to promote literacy in the classroom. AACE Journal, 13(2), 91-98. doi: https://doi.org/doi:10.5210/fm.v9i6.1156

Kearney, M., Treagust, D. F. (2001). Constructivism as a referent in the design and development of a computer program using interactive digital video to enhance learning in physics. Australian Journal of Educational Technology, 17(1), 64-79. doi: https://doi.org/10.14742/ajet.1773

Lai, C. i Zhao, Y. (2006). Noticing in text-based online chat. Language Learning and Technology, 10(3), 102-120.

Lim, C.P.,Tay, L.Y. (2003). Information and communication technologies (ICT) in an elementary school: Engagement in higher order thinking’. Journal of Educational Multimedia and Hypermedia, 12(4), 425-451.

Makransky, G., Bonde, M. T., Wulff, J. S. G., Wandall, J., Hood, M., Creed, P. A., i sur. (2016). Simulation based virtual learning environment in medical genetics counseling: an example of bridging the gap between theory and practice in medical education. BMC Med. Educ. 16, 98. doi: https://doi.org/10.1186/s12909-016-0620-6

Meyer, H. (2002). Didaktika razredne kvake. Zagreb: Educa.

Mistretta, S. (2022). Virtual robotics in hybrid teaching and learning, in New Updates in E-Learning. London, UK: IntechOpen. doi: https://doi.org/10.5772/intechopen.102038

MZO (2017). Nacionalni kurikulum za osnovnoškolski odgoj i obrazovanje (Prijedlog nakon javne rasprave). Dostupno na: https://mzom.gov.hr/

Neo, K. T. K., Neo, M. (2001). A constructivist learning experience: reconstructing a web site using web based multimedia authoring tools. Australian Journal of Educational Technology, 17(3), 330-350. doi: https://doi.org/10.14742/ajet.1799

NN 7/2019 (2019). Odluka o donošenju kurikuluma za nastavni predmet Tehničke kulture za osnovne škole u Republici Hrvatskoj. Dostupno na: https://narodne-novine.nn.hr/clanci/sluzbeni/2019_01_7_161.html

Oliver, K., Hannafin, M.Y. (2000). Student Management of Web-based Hypermedia Resources during Open-Ended Problem Solving. Journal of Educational Research, 94(2). doi: https://doi.org/10.1080/00220670009598746

Lim, C. P., Oakley, G. (2013). Information and Communication Technologies (ICT) in Primary Education. U: TAY, L.Y., LIM, C.P. (ur.) Creating Holistic Technology-Enhanced Learning Experiences. SensePublishers, Rotterdam. https://doi.org/10.1007/978-94-6209-086-6_1

Pathak R., Sheth M. (2023). Stem education: an interdisciplinary and integrated approach of teaching. U Eknath Mundhe S. M. (ur.) Interdisciplinary approaches and strategies for sustainable development, str. 80-87. Maharashtra, (India): Joshi College.

PhET Interactive Simulations (2024). Interactive Simulations for Science and Math. Dostupno na: https://phet.colorado.edu/

Reding, V. (2004). Preface Key Data on Information and Communication Technology in Schools in Europe. Brussels: Eurydice.

Rosić, V. (Ur.), Nastavnik i suvremena obrazovna tehnologija. Zbornik radova s međunarodnoga znanstvenoga kolokvija. Rijeka: Sveučilište u Rijeci, Odsjek za pedagogiju.

Sapounidis, T., Alimisis, D. (2021). Educational robotics curricula: current trends and shortcomings. Stud. Comp. Intellig. 982, 127–138. doi: https://doi.org/10.1007/978-3-030-77022-8_12

Shang, H. (2007). An exploratory study of e-mail application on FL writing performance. Computer Assisted Language Learning, 20(1), 79-96. doi: https://doi.org/10.1080/09588220601118479

Shen FY., Roccosalvo J., Zhang. J, Tian Y., Yi Y. (2023). Online technological STEM education project management. Education and Information Technologies (2023) 28,12715–12735 doi: https://doi.org/10.1007/s10639-022-11521-7

Smetana, L. K, Bell, R. L. (2012). Computer Simulations to Support Science Instruction and Learning: A critical review of the literature. International Journal of Science Education, 34(9), 1337-1370. doi: https://doi.org/10.1080/09500693.2011.605182

Souza, I. M. L., Andrade, W. L., Sampaio, L. M. R., Araujo, A. L. S. O. (2018). A Systematic Review on the use of LEGO Robotics in Education. 2018 IEEE Frontiers in Education Conference (FIE), str. 1–9. doi: https://doi.org/10.1109/FIE.2018.8658751

Stein, G., Jean, D., Brady, C., Lédeczi, Á. (2023) Browser-based simulation for novice-friendly classroom robotics. Front. Comput. Sci., 4, 1031572, doi: https://doi.org/10.3389/fcomp.2022.1031572

Thisgaard, M., Makransky, G. (2017). Virtual Learning Simulations in High School: Effects on Cognitive and Non-cognitive Outcomes and Implications on the Development of STEM Academic and Career Choice. Front. Psychol., 8, 805. doi: https://doi.org/10.3389/fpsyg.2017.00805

Tupac-Yupanqui, M., Vidal-Silva, C., Pavesi-Farriol, L., Sanchez Ortiz, A., Cardenas-Cobo, J., i Pereira, F. (2022). Exploiting Arduino Features to Develop Programming Competencies. IEEE Access, 10, 20602–20615. https://doi.org/10.1109/ACCESS.2022.3150101

Zovko, V., Didović, A. (2013). The Use of ICT in Primary Schools – Analysis of the Digital Divide in the Republic of Croatia. Croatian Journal of Education, 15(2), 331-364.

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