Bridging Abstract Formulas and Real-World Applications: Developing Grade 10 Learners’ Conceptual Understanding of Cylinders in South African Mathematics Classroom
DOI:
https://doi.org/10.30862/jhm.v9i2.1311Keywords:
Cylinder, Experiential Learning, Mixed Methods, Real-World Applications, Total Surface AreaAbstract
Calculating the total surface area of a cylinder requires learners to coordinate concepts, representations, and procedures, yet classroom instruction may remain detached from contexts in which mathematical knowledge can be applied. Although real-world applications are widely promoted to contextualize mathematics learning, limited evidence has examined how such interventions influence Grade 10 learners’ surface-area performance and learning experiences in an Eastern Cape school. This study investigated changes in Grade 10 learners’ performance in calculating the total surface area of a cylinder following a real-world application intervention and explored their experiences. A pragmatic mixed-methods approach was employed using a single-group pre-test–post-test design within a case study. The quantitative component involved 39 Grade 10 Mathematics learners who completed pre- and post-tests, while the qualitative component involved nine selected learners representing high-, average-, and low-achievement groups. Qualitative data were generated through semi-structured interviews, classroom observations, and learner documents. Quantitative data were analyzed using descriptive statistics and a paired-samples t-test, whereas qualitative data were analyzed thematically. Post-test performance was significantly higher than pre-test performance, , with a large effect size (Cohen’s ). Learners reported that real-world contexts, visual representations, model construction, and collaborative activities helped connect surface-area calculations with familiar situations. Interpreted through Kolb’s Experiential Learning Theory, the findings suggest that experiential engagement can support mathematical understanding while providing evidence of improved performance and learner experiences, without establishing causal effects.
References
Alex, J. K., & Mammen, K. J. (2012). A survey of South African Grade 10 learners’ geometric thinking levels in terms of the van Hiele Theory. Anthropologist, 14(2), 123–129. https://doi.org/10.1080/09720073.2012.11891229
Amalia, L., Makmuri, M., & Hakim, L. E. (2024). Learning Design: To Improve Mathematical Problem-Solving Skills Using a Contextual Approach. JIIP - Jurnal Ilmiah Ilmu Pendidikan, 7(3), 2353–2366. https://doi.org/10.54371/jiip.v7i3.3455
Beard, C., & Wilson, J. P. (2018). Experiential learning: A practical guide for training, coaching and education (4th ed.). Kogan Page.
Biesta, G. (2010). Pragmatism and the philosophical foundations of mixed methods research. In A. Tashakkori & C. Teddlie (Eds.), SAGE handbook of mixed methods in social & behavioral research (2nd ed., pp. 95–118). SAGE Publications. https://doi.org/10.4135/9781506335193.n4
Boaler, J. (2022). Mathematical mindsets: Unleashing students’ potential through creative mathematics, inspiring messages and innovative teaching (2nd ed.). Jossey-Bass.
Braun, V., & Clarke, V. (2022). Thematic Analysis: A Practical Guide. QMiP Bulletin, 1(33), 46–50. https://doi.org/10.53841/bpsqmip.2022.1.33.46
Chiphambo, S. M. (2024). Grade 8 Learners’ Impediments When Learning Geometry: A Case Of One High School, Eastern Cape South Africa. IndoMath: Indonesia Mathematics Education, 7(2), 143. https://doi.org/10.30738/indomath.v7i2.106
Creswell, J. W., & Plano Clark, V. L. (2018). Designing and conducting mixed methods research (3rd ed.). SAGE Publications.
Johhn w. Creswell; Vicki L. Plano Clark. (2018). Designing and Conducting Mixed Methods Research. Organizational Research Methods, 12(4), 801–804. Retrieved from https://login.proxy.libraries.rutgers.edu/login?url=http://search.ebscohost.com.proxy.libraries.rutgers.edu/login.aspx?direct=true&db=buh&AN=44386156&site=ehost-live
Department of Basic Education. (2018). Mathematics teaching and learning framework for South Africa: Teaching mathematics for understanding. Dbe, 24(2), 6-10 ST-Teaching mathematics for understanding. https://www.education.gov.za/Portals/0/Documents/Publications/mathematics%20teaching%20and%20learning%20framework%20draft%206.pdf
Fauziah, R. (2020). Mathematical problem-solving ability using flipping classroom with relating, experiencing, applying, cooperating, and transferring learning strategy. In Journal of Physics: Conference Series (Vol. 1663). IOP Publishing Ltd. https://doi.org/10.1088/1742-6596/1663/1/012055
Felder, R. M., & Brent, R. (2016). Teaching and learning STEM: A practical guide (p. 336). San Francisco, CA: Jossey-Bass.
Fraihat, M. A. K., Khasawneh, A. A., & Al-Barakat, A. A. (2022). The effect of situated learning environment in enhancing mathematical reasoning and proof among tenth grade students. Eurasia Journal of Mathematics, Science and Technology Education, 18(6). https://doi.org/10.29333/ejmste/12088
González, G. (2017). Teachers’ Understandings of Realistic Contexts to Capitalize on Students’ Prior Knowledge. School Science and Mathematics, 117(7–8), 329–340. https://doi.org/10.1111/ssm.12249
Johnson, R. B., & Onwuegbuzie, A. J. (2007). Toward a Definition of Mixed Methods Research. Journal of Mixed Methods Research, 1(2), 112–133. https://doi.org/10.1177/1558689806298224
Kolb, D. A. (1984). Experiential Learning: Experience as The Source of Learning and Development. Prentice Hall, Inc., 20–38. https://doi.org/10.1016/B978-0-7506-7223-8.50017-4
Meeran, S., & Van Wyk, M. M. (2022). Mathematics teachers’ perceptions of socio-cultural diversities in the classroom. Journal of Pedagogical Research, 6(3), 72–87. https://doi.org/10.33902/JPR.202215441
Merriam, S. B., & Tisdell, E. J. (2016). Qualitative research: A guide to design and implementation (4th ed.). Jossey-Bass.
Mthethwa, H., Ogbonnaya, U., & Van Putten, S. (2024). Context in geometry in secondary school mathematics textbooks. Acta Didactica Napocensia, 17(2), 112–124. https://doi.org/10.24193/adn.17.2.9
Qetrani, S., & Achtaich, N. (2022). Evaluation of procedural and conceptual knowledge of mathematical functions: A case study from Morocco. Journal on Mathematics Education, 13(2), 211–238. https://doi.org/10.22342/jme.v13i2.pp211-238
Sitopu, J. W., Khairani, M., Roza, M., Judijanto, L., & Aslan, A. (2024). The importance of integrating mathematical literacy in the primary education curriculum: A literature review. International Journal of Teaching and Learning, 2(1), 121–134.
Tashakkori, A., Johnson, R. B., & Teddlie, C. (2021). Foundations of mixed methods research: Integrating quantitative and qualitative approaches in the social and behavioral sciences (2nd ed.). SAGE Publications.
Tessema, G., Michael, K., & Areaya, S. (2024). Realist hands-on learning approach and its contributions to learners’ conceptual understanding and problem-solving skills on solid geometry. Pedagogical Research, 9(1), em0186. https://doi.org/10.29333/pr/14096
United Nations. (2015). Transforming our world: The 2030 agenda for sustainable development. https://sdgs.un.org/2030agenda
Van den Heuvel-Panhuizen, M., & Drijvers, P. (2020). Realistic mathematics education. In S. Lerman (Ed.), Encyclopedia of mathematics education (pp. 713–717). Springer. https://doi.org/10.1007/978-3-030-15789-0_170
Yin, R. K. (2018). Case study research and applications: Design and methods (6th ed.). SAGE Publications.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2026 Okuhle Somacala, Shakespear Chiphambo

This work is licensed under a Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International License.
License and Copyright Agreement
In submitting the manuscript to the journal, the authors certify that:
- They are authorized by their co-authors to enter into these arrangements.
- The work described has not been formally published before, except in the form of an abstract or as part of a published lecture, review, thesis, or overlay journal. Please also carefully read Journal of Honai Math Posting Your Article Policy at http://journalfkipunipa.org/index.php/jhm/about
- That it is not under consideration for publication elsewhere,
- That its publication has been approved by all the author(s) and by the responsible authorities – tacitly or explicitly – of the institutes where the work has been carried out.
- They secure the right to reproduce any material that has already been published or copyrighted elsewhere.
- They agree to the following license and copyright agreement.
Copyright
Authors who publish with Journal of Honai Math agree to the following terms:
- Authors retain copyright and grant the journal right of first publication with the work simultaneously licensed under a Creative Commons Attribution License (CC BY-NC-SA 4.0) that allows others to share the work with an acknowledgment of the work's authorship and initial publication in this journal.
- Authors are able to enter into separate, additional contractual arrangements for the non-exclusive distribution of the journal's published version of the work (e.g., post it to an institutional repository or publish it in a book), with an acknowledgment of its initial publication in this journal.
- Authors are permitted and encouraged to post their work online (e.g., in institutional repositories or on their website) prior to and during the submission process, as it can lead to productive exchanges, as well as earlier and greater citation of published work.


