Science Teachers' Insights on Students' Misconceptions in Acceleration: Need for Scaffold Inquiry-Based Learning Instruction
Authors
Department of Science and Mathematics Education, College of Education (Philippines)
Department of Science and Mathematics Education, College of Science and Mathematics MSU-Iligan Institute of Technology, Iligan City (Philippines)
Article Information
DOI: 10.47772/IJRISS.2026.100600946
Subject Category: Physics
Volume/Issue: 10/6 | Page No: 13436-13444
Publication Timeline
Submitted: 2026-06-21
Accepted: 2026-06-26
Published: 2026-07-09
Abstract
This study examined Grade 8 learners’ conceptual understanding of acceleration by identifying their misconceptions and exploring the effectiveness of scaffolded inquiry-based learning in addressing these misconceptions. An explanatory mixed-methods research design was employed, integrating quantitative data from a 50-item pretest–posttest assessment with qualitative data obtained through student interviews, reflective journals, and teacher-researcher field notes. The participants consisted of Grade 8 learners selected through purposive sampling from intact class sections in a natural classroom setting. Quantitative data were analyzed using mean scores, standard deviation, and paired-samples t-test, while qualitative data were used to explain and enrich the quantitative findings. The results revealed that learners initially held misconceptions about acceleration, commonly associating it only with increasing speed and experiencing difficulty distinguishing it from related concepts such as speed and velocity. Following the implementation of scaffolded inquiry-based learning, learners demonstrated a statistically significant improvement in conceptual understanding, with mean scores increasing from 25.69 in the pretest to 36.12 in the posttest, t(41) = 7.854, p < .001. Qualitative findings further indicated that teacher scaffolding, guided inquiry, contextualized examples, and structured learning activities supported learners in reconstructing prior knowledge, addressing misconceptions, and developing a deeper understanding of acceleration. Although the study did not include a comparison group, the findings suggest that scaffolded inquiry-based learning is a promising instructional approach for enhancing learners’ conceptual understanding of abstract physics concepts.
Keywords
scaffolding, inquiry-based learning, conceptual understanding
Downloads
References
1. Alanazi, A. A., Osman, K., & Halim, L. (2024). Effect of scaffolding strategies and guided discovery on higher-order thinking skills in physics education. Eurasia Journal of Mathematics Science and Technology Education, 20(9), em2496. https://doi.org/10.29333/ejmste/14980 [Google Scholar] [Crossref]
2. Beaumont, C. (2025, July). Inquiry-Based Learning in Physics: Overview, Benefits, and Implementation Strategies - maixua.com. WordPress. https://maixua.com/inquiry-based-learning-in-physics-overview-benefits-and-implementation-strategies/ [Google Scholar] [Crossref]
3. Chu, C., Dewey, J. L., & Zheng, W. (2023). An Inorganic Chemistry Laboratory Technique Course using Scaffolded, Inquiry-Based Laboratories and Project-Based Learning. Journal of Chemical Education, 100(9), 3500–3508. https://doi.org/10.1021/acs.jchemed.3c00547 [Google Scholar] [Crossref]
4. Creswell, J.W., & Guettterman, T. C. (2021). Educational research: planning, conducting, and evaluating quantitative and qualitative research (Sixth, global edition). Pearson. [Google Scholar] [Crossref]
5. Gillies, R. M., & Nichols, K. (2014). How to support Primary Teachers’ implementation of Inquiry: Teachers’ Reflections on Teaching Cooperative Inquiry-Based Science. Research in Science Education, 45(2), 171–191. https://doi.org/10.1007/s11165-014-9418-x [Google Scholar] [Crossref]
6. MacLeod, M., & Van Der Veen, J. T. (2019). Scaffolding interdisciplinary project-based learning: a case study. European Journal of Engineering Education, 45(3), 363–377. https://doi.org/10.1080/03043797.2019.1646210 [Google Scholar] [Crossref]
7. Johnson, R. B., Onwuegbuzie, A. J., & Turner, L. A. (2007). Toward a definition of mixed methods research, Journal of Mixed Methods Research, 1 (2), 112-133. https://doi.org/10.1177/1558689806298224 [Google Scholar] [Crossref]
8. Petersen, M. R. (2022). Strategies to Scaffold Students’ inquiry learning in Science. Science Education International, 33(3),267275. https://doi.org/10.33828/sei.v33.i3.1 [Google Scholar] [Crossref]
9. Thiagarajan, S., (1974). Instructional Development for Training Teachers of Exceptional Children: A Sourcebook. https://eric.ed.gov/?id=ED090725 [Google Scholar] [Crossref]
10. Ouch, S., & Widiyatmoko, A. (2023). The role of students’ misconceptions in science teaching and learning. AIP Conference Proceedings, 2705, 030038. https://doi.org/10.1063/5.0126151 [Google Scholar] [Crossref]
11. Van de Pol, J., Volman, M. & Beishuizen, J. Scaffolding in Teacher–Student Interaction: A Decade of Research. Educ Psychol Rev 22, 271–296 (2010). https://doi.org/10.1007/s10648-010-9127-6 [Google Scholar] [Crossref]
12. Yeoh, C. P., Li, C. T., & Hou, H. T. (2025). Game-based collaborative scientific inquiry learning using realistic context and inquiry process-based multidimensional scaffolding. International Journal of Science Education, 47(8), 961–983. https://doi.org/10.1080/09500693.2024.2354944 [Google Scholar] [Crossref]
Metrics
Views & Downloads
Similar Articles
- A Comparative Study on the Thermal and Electrical Conductivity of Common Materials
- Thickness Dependent Thermoelectric Properties of Pb0.4In0.6Se Thin Films Deposited by Physical Evaporation Technique
- Optimization of a Patch Antenna Using Genetic Algorithm
- Kinematic Constraints On Brown Dwarf Atmospheric Variability And Evidence For Bimodal Formation From Multi-Survey Analysis
- Reservoir Characterization through the Application of Petrophysical Evaluation of Well Logs of Animaux Field, Niger Delta Basin, Nigeria