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hi iam suthee
DEVELOPMENT OF SCIENCE INSTRUCTIONAL MODEL EMPHASIZING CONTEXTUAL
APPROACH TO ENHANCE ANALYTICAL THINKING AND APPLICATION OF
KNOWLEDGE FOR LOWER SECONDARY SCHOOL STUDENTS

A DISSERTATION
BY
KITTIMA PANPRUEKSA

Presented in Partial Fulfillment of the Requirements for the
Doctor of Education Degree in Science Education at Srinakharinwirot University
June 2012

DEVELOPMENT OF SCIENCE INSTRUCTIONAL MODEL EMPHASIZING CONTEXTUAL
APPROACH TO ENHANCE ANALYTICAL THINKING AND APPLICATION OF
KNOWLEDGE FOR LOWER SECONDARY SCHOOL STUDENTS

A DISSERTATION
BY
KITTIMA PANPRUEKSA

Presented in Partial Fulfillment of the Requirements for the
Doctor of Education Degree in Science Education at Srinakharinwirot University
June 2012
Copyright 2012 by Srinakharinwirot University

DEVELOPMENT OF SCIENCE INSTRUCTIONAL MODEL EMPHASIZING CONTEXTUAL
APPROACH TO ENHANCE ANALYTICAL THINKING AND APPLICATION OF
KNOWLEDGE FOR LOWER SECONDARY SCHOOL STUDENTS

AN ABSTRACT
BY
KITTIMA PANPRUEKSA

Presented in Partial Fulfillment of the Requirements for the
Doctor of Education Degree in Science Education at Srinakharinwirot University
June 2012

Kittima Panprueksa. (2012). Development of Science Instructional Model Emphasizing
Contextual Approach to Enhance Analytical Thinking and Application of
Knowledge for Lower Secondary School Students. Dissertation, Ed.D. (Science
Education). Bangkok: Graduate School, Srinakharinwirot University. Advisor
Committee: Assoc. Prof. Dr. Nason Phonphok, Acting Sub Lt. Dr. Manat
Boonprakob, Dr. Chanyah Dahsah.

The purpose of this study was to develop the science instructional model emphasizing contextual approach for lower secondary school students in order to enhance conceptual understanding, analytical thinking, and application of knowledge. This science instructional model consisted of five steps of learning namely 1) Focusing (F), 2) Exploring
(E), 3) Analyzing (A), 4) Conceptual Developing (C), and 5) Applying



Bibliography: Abraham, M.; & Williamson, V. (1994). A Cross-Age Study of the Understanding of Five Chemistry Concepts Alao, S.; & Guthrie, J. (1999). Predicting Conceptual Understanding with Cognitive and Motivational Variables Amer, A. (2005). Analytical Thinking. Center for Advancement of Postgraduate Studies and Research in Engineering Sciences. Anderson, J.; Simon, H.; & Reder, L. (1996). Situated Learning and Education. Educational Researcher Beasley, W. (2002). From Context to Concept: The Implications for the Teaching of Chemistry Bell, B. F. (1991). A Constructivist View of Learning and the Draft Forms 1-5 Science Syllabus Bennett, J.; & Lubben, F. (2006). Context-Based Chemistry: The Salters Approach. Bennett, J.; Lubben, F.; & Hogarth, S. (2006). Bringing Science to Life: A Synthesis of the Research Evidence on the Effects of Context-based and STS Approaches to Bloom, B. S. (1956). Taxonomy of Educational Objectives Book 1 Cognitive Domain. Britton, E.; et. al. (1999). Connecting Mathematics and Science to Workplace Contexts: A Guide to Curriculum Materials Brooks, J. G.; & Brooks, M. G. (1993). In Search of Understanding: The Case for Constructivist Classroom Brown, J; Collins, A; & Duguid, P. (1989). Situated Cognition and the Culture of Learning. Campbell, B.; et al. (1994). Science: the Salters’ Approach: A Case Study of the Process of Large-scale Curriculum Development Carpenter, T. P.: & Lehrer, R. (1999). Teaching and Learning with Understanding. In Fennema, E.;& Romberg, T Center for Occupational Research and Development (CORD). (1999). Teaching Scienec Contextually: The Cornerstone of Tech Prep Champugdee, Jiraporn. (2002). A Study of Relationship between Achievement of Science and Behavior in Science Daily Life Usage Knowledge of Mathayomsuksa 3 Cheentham, Chuleeporn. (1995). Scientific Application in Everyday Life of Prathomsuksa 5 Students in Cooperating Schools for Developing the Curriculum under the Office of Choi, Hee J; & Johnson, Scott. (2005). The Effect of Context-Based Video Instruction on Learning and Motivation in Online Courses Chunthup, Phannee. (2000). A Study of Ability in Using Science Knowledge for Daily Life of Mathayomsuksa 3 Student Chumporn Province Clancey, W. J. (1993). Situated Action: A Neuropsychological Interpretation Response to Vera and Simon Collins, A; Brown, J; & Newman, S. (1987). Cognitive Apprenticeship: Teaching the Craft of Reading, Writing, and Mathematics Draskovic, V; & Jovovic, T. (2008). Building Successful Knowledge Organization Trough Knowledge Application at the Individual and Organizational Levels Driver, R.; & Oldham, V. (1986). A Constructivist Approach to Curriculum Development in Science Educational Broadcasting Corporation. (2004). Constructivism as a Paradigm for Teaching and Learning Eggen, P. & Kanchak. D. (2001). Educational Psychology: Windows on Classrooms. New Jersey: Merrill. Enger, S. K.; & Yager, R. E. (2001). Assessing Student Understanding in Science. Finkelstein, N. D. (2001). Context in the Context of Physics and Learning. Paper presented at Physics Education Conference 2001 22, 2009, from http://www.per-central.org/items/detail.cfm?ID=4378&Relations=1. Gabel, D. (2003). Enhancing the Conceptual Understanding of Science. Educational Horizons Glynn, S; & Koballa, R. (2005). The Contextual Teaching and Learning Instructional Approach Greeno, J. (1997). Response: On Claims That Answer the Wrong Questions. Educational Research Gunstone, R. (1997). The Importance of the Contextual Dimension to Physics in Years 11 and 12 Hein, G. E. (1991). Constructivist Learning Theory. Paper Presented at International Committee of Museum Educators (CECA) Conference June 14, 2009, from http://www.exploratorium.edu/IFI/resources/constructivistlearning.html.

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