Almeida, E. A., Araújo, T. G., Torres, D. F. (2007). Modeling three-dimensional cladograms and learning concepts in phylogenetic systematics. In IV National Conference on Epistemology of Education Sciences—CNECE, Natal (Vol. 1, p. 1–4).
Google Scholar
Andrade, A. F. D., Vicari, R. M. (2003). Building a distance learning environment inspired by Vygotsky’s socio-interactionist conception. In Silva, M. (Ed.), Online education (pp. 255–270). Loyola.
Google Scholar
Annis, T. (2011). Seeing the possibilities: An analysis of STEM resources available for people with vision loss. AFB, 12(7).
http://www.afb.org/afbpress/pub.asp?DocID=aw120702 Google Scholar
Araújo, L. F. F., Aguiar, R. (2018). Quadratic function for blind students: A proposal for standardization of tactile graphics. Luso-Brazilian Education Colloquium. COLBEDUCA.
Google Scholar
Bacich, L., Moran, J. (2018). Active methodologies for innovative education: A theoretical-practical approach. Penso Editora.
Google Scholar
Barnes, J., Libertini, J. (2013). Introduction to special issue on tactile learning activities. Primus, 23(7), 585–589.
Google Scholar |
Crossref
Bastos, K. M., Faria, J. M. (2011). Application of didactic models to approach the animal and plant cells, a case study. In Biosphere Encyclopedia (Vol. 7, no.13, pp. 1867–1877). Scientific Center Knowing.
Google Scholar
Batista, C. G. (2005). Concept formation in blind children: Theoretical questions and educational implications. Psychology: Theory and Research, 21, 7–15.
Google Scholar
Beck-Winchatz, B., Riccobono, M. A. (2008). Advancing participation of blind students in science, technology, engineering, and math. Advances in Space Research, 42(11), 1855–1858.
Google Scholar |
Crossref |
ISI
Brand, D. (2005, January 21). Blind engineering student “reads” color-scaled weather maps using Cornell software that converts color into sound. Cornell Chronicle.
http://www.news.cornell.edu/stories/2005/01/blind-engineering-student-reads-color-sound Google Scholar
Burgstahler, S. (2008). Making science labs accessible to students with disabilities. DO-IT, University of Washington.
http://www.washington.edu/doit/making-science-labs-accessible-students-disabilities Google Scholar
Campos, L. M. L., Bortoloto, T. M., Felício, A. K. C. (2003). The production of educational games for the teaching of Science and Biology: A proposal to favor learning. Teaching Centers da Unesp.
Google Scholar
Carvalho, A. T., da Silva, A. S. R., Fenandes, A. F. C., Pagliuca, L. M. F. (2014). Health education for the blind: Evaluation of accessibility of an inclusive online course. Creative Education, 5(16), 1559.
Google Scholar |
Crossref |
Medline
Cerqueira, J. B., Ferreira, E. D. M. B. (1996). Didactic resources in special education. Benjamin Constant, 5, 24–29.
Google Scholar
Childers, G., Watson, K., Jones, M. G., Williamson, K., Hoette, V. (2015). Touching the stars: Making astronomy accessible for students with visual impairments. Science Scope, 38(9), 20.
Google Scholar |
Crossref
Dantas, A. P. J., Dantas, T. A. V., Farias, M. I. R., Silva, R. P., Costa, N. P. (2016). Importance of using didactic models in cytology teaching. In III National Congress of Education—CONEDU. Campina Grande: Realize Editora.
http://www.editorarealize.com.br/artigo/visualizar/21223 Google Scholar
Dewsbury, B., Brame, C. J. (2019). Inclusive teaching. Life Sciences Education, 18(2), e1–e5.
Google Scholar
Diesel, A., Baldez, A. L. S., Martins, S. N. (2017). The principles of active teaching methodologies: A theoretical approach. Journal Theme, 14(1), 268–288.
Google Scholar |
Crossref
Dumpel, R. (2011). Interactive cell models: Facilitators in understanding cell structures and in the process of including individuals with visual special educational needs [Master’s dissertation].
https://www.arca.fiocruz.br/bitstream/icict/6955/1/%20renata_dumpel_ioc_mest_2011.pdf Google Scholar
Gong, G., Liu, S. (2016). Consideration of evaluation of teaching at colleges. Open Journal of Social Sciences, 4, 82–84.
Google Scholar |
Crossref
Graven, T., Emsley, I., Bird, N., Griffiths, S. (2020). Improved access to museum collections without vision: How museum visitors with very low or no vision perceive and process tactile–auditory pictures. British Journal of Visual Impairment, 38(1), 79–103.
Google Scholar |
SAGE Journals
Harshman, J., Bretz, S. L., Yezierski, E. (2013). Seeing chemistry through the eyes of the blind: A case study examining multiple gas law representations. Journal of Chemical Education, 90(6), 710–716.
Google Scholar |
Crossref
Kastrup, V. (2007). The invention at your fingertips: The reversal of attention in visually impaired people. Psychology in Revista. Belo Horizonte, 13(1), 69–90.
Google Scholar
Lara, M. V., Borges, S. (2014). Learning objects as adjuvants to the teaching and learning process of human physiology. Biochemistry Teaching Journal, Rio Grande do Sul, 12(1), 36–44.
Google Scholar
Leander, S. (2012). Blind student presents 3-D tactile images to national microscopy conference. Arizona State University.
https://asunow.asu.edu/content/blind-student-presents-3-d-tactile-images-national-microscopy-conference Google Scholar
Lopez, M., Gavin Kearney, G., Hofstädter, K. (2020). Seeing films through sound: Sound design, spatial audio, and accessibility for visually impaired audiences. British Journal of Visual Impairment, 1–28.
https://doi.org/10.1177/0264619620935935 Google Scholar
Lyrio, E., Delou, C., Marinho, L., Castro, H. C. (2014). ATMK: A Monera Kingdom Atlas for presenting cell morphology and biotechnology for visually impaired students. Creative Education, 5(4), 290–296.
Google Scholar |
Crossref
Marinho, L., Castro, H., Lyrio, E., Delou, C. (2016). Construction of an affordable, tactile, didactical and inclusive material aimed to teach biology and biotechnology to blind and visually impaired students. Creative Education, 7, 2666–2677.
Google Scholar |
Crossref
Michelotti, A., Loreto, E. L. S. (2019). Use of tactile didactic models as a methodology for teaching cell biology in inclusive classes with visually impaired people. Context & Education Magazine, 34, Article 10.
Google Scholar
Moreira, M. A. (2013). Meaningful learning on concept maps. UFRGS, Institute of Physics.
http://www.if.ufrgs.br/public/tapf/v24_n6_moreira.pdf Google Scholar
Mrech, L. M. (2001). What is inclusive education? Integration, 10(20), 37–40.
Google Scholar
Nicolaides, C., Fernandes, V. (2007). Autonomy: Criteria for the choice of teaching material and its implications. In Leffa, V. J. (Ed.), Production of teaching materials: Theory and practice (2nd ed., pp. 44–68). Pelotas: Educat.
Google Scholar
Ormelezi, E. M. (2000). The ways of acquiring knowledge and blindness: From the universe of the body to the symbolic universe [Master’s dissertation].
https://teses.usp.br/teses/disponiveis/48/48131/tde-13072007-155541/en.php Google Scholar
Palaio, S. C. S., Almeida, M. V. L., Patreze, C. M. (2018). Development of 3D printed models for science education. Teaching Science and Technology in Magazine, 8(3), 70–82.
Google Scholar
Pereira, R. S., De Abreu Freitas, R. G., Silva, F. A. S., Lazzaretti, A. N., Peixoto, A. A., de Lima, E. T. C., . . . de Carvalho Camargo, W. L. (2021). IFAC science space: Teaching, research and extension in favor of meaningful learning. In Discourses, practices, ideas and subjectivities in education (Vol. 4, pp. 119–131). Organizers: Américo Junior Nunes da Silva, Ilvanete dos Santos de Souza, Reinaldo Feio Lima, Atena.
Google Scholar
Pinho, T. M. M., Delou, C. M. C., Lima, N. R. W. (2016). Origami as a tool to teach geometry for blind students. Creative Education, 7(17), 2652–2665.
Google Scholar |
Crossref
Power, C., Jürgensen, H. (2010). Accessible presentation of information for people with visual disabilities. Universal Access in the Information Society, 9(2), 97–119.
Google Scholar |
Crossref |
ISI
Qianna, S. (2021). Evaluation model of classroom teaching quality based on improved RVM algorithm and knowledge recommendation. Journal of Intelligent & Fuzzy Systems, 40(2), 2457–2467.
Google Scholar |
Crossref
Reed, M., Curtis, K. (2012). Experiences of students with visual impairments in Canadian higher education. Journal of Visual Impairment & Blindness, 106(7), 414–425.
Google Scholar |
SAGE Journals
Rule, A. C. (2011). Tactile Earth and space science materials for students with visual impairments: Contours, craters, asteroids, and features of Mars. Journal of Geoscience Education, 59(4), 205–218.
Google Scholar |
Crossref
Santos, J. F. L., Brito, M. F. G. (2019). Inclusive education: Fish didactic model for visually impaired students in Science and Biology teaching. Science & Ideas Magazine, 10(3), 203–206.
Google Scholar
Soares, K. D. A., Castro, H. C., Delou, M. C. (2015). Astronomy for the visually impaired: Innovating in accessible teaching materials. Electronic Journal of Science Education, 14(3), 377–391.
Google Scholar
Souza, R., Delou, C. M., Myriam, B. V., Machado, S., Rodrigues, C. R., Castro, H. C. (2012). Blindness and fungi kingdom: A new approach for teaching a biological theme for students with special visual needs. Creative Education, 3(5), 674–678.
Google Scholar |
Crossref
Sullivan, G., Miller, C., Goad, C. (2019). Helping students with visual impairments: Resources, tools and technology to foster school success. Accredited Schools Online.
https://www.accreditedschoolsonline.org/resources/helping-blind-low-vision-students/ Google Scholar
Supalo, C. A., Isaacson, M. D., Lombardi, M. V. (2014). Making hands-on science learning accessible for students who are blind or have low vision. Journal of Chemical Education, 91(2), 195–199.
Google Scholar |
Crossref
Universidade Federal Fluminense . (2016). Inclusion School. UFF.
http://escoladeinclusao.sites.uff.br Google Scholar
Van Gerven, C . (2015). 3D printing tactile graphics 101. National Federation of the Blind.
https://nfb.org/blog/3d-printing-tactile-graphics-101 Google Scholar
Wedler, H. B., Boyes, L., Davis, R. L., Flynn, D., Franz, A., Hamann, C. S., . . .Tantillo, D. J. (2014). Nobody can see atoms: Science camps highlighting approaches for making chemistry accessible to blind and visually impaired students. Journal of Chemical Education, 91(2), 188–194.
Google Scholar |
Crossref
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