Students' mechanistic reasoning in practice
Enabling functions of drawing, gestures and talk
Dados Bibliográficos
| ID | 21392646 |
|---|---|
| Autores | Vanessa de Andrade (0000-0001-9031-7770, Instituto de Educação, Universidade de Lisboa, Alameda da universidade Lisboa Lisboa Portugal, autor correspondente), Yael Shwartz (0000-0002-5145-3486, Department of Science Teaching Weizmann Institute of Science Rehovot Israel), Sérgio Freire (0000-0002-9394-9738, Instituto de Educação, Universidade de Lisboa, Alameda da universidade Lisboa Lisboa Portugal), Marlyse Baptista (0000-0003-1609-5764, Instituto de Educação, Universidade de Lisboa, Alameda da universidade Lisboa Lisboa Portugal) |
| Ano | 2022 |
| Volume | 106 |
| Fascículo | 1 |
| Páginas | 199-225 |
| Data de publicação | 2022-01-01 |
| Peer Reviewed | Sim |
| Open Access | Sim |
| Tipo | ARTICLE |
| Periódico | Science Education (JOURNAL) |
| Identificadores do periódico | ISSN: 0036-8326 • E-ISSN: 1098-237X |
| Editora | Wiley (PUBLISHER • GB) |
| DOI | 10.1002/sce.21685 |
| OpenAlex | W3206654781 |
| Idioma | EN |
| Citações recebidas | 9 |
| Referências citadas | 52 |
Mechanistic reasoning is a powerful form of reasoning central to scientific explanations. Despite mechanistic reasoning being an important dimension of scientific practice and a central dimension of science curricula, students face difficulties in developing such type of reasoning. Many authors have been proposing tools for supporting its development; drawing is one such tool. Studies that purposefully explore how drawing leverages and supports students' mechanistic reasoning while engage in a process of constructing explanations are still scarce. The goal of the current study was to understand how students' mechanistic reasoning emerges and is enacted when students are jointly involved in drawing creation. For that, we drew on a recent framework that identifies essential characteristics of students' mechanistic reasoning and also on theories of distributed and embodied cognition. In this paper, we present a pair of middle school students who jointly explain a chemical phenomenon by creating drawings and reasoning with them. Using a fine‐grain analysis we examined the elements of students' mechanistic reasoning in relation to drawing creation and how talk and embodied actions on and with the drawings were used to support students' reasoning. Findings reveal that drawings played a key role in paving the way for students reasoning about mechanisms and in enacting mechanistic reasoning. In particular, drawings were essential for pushing students to look for a mechanism, for enabling and supporting mechanistic reasoning‐in‐action, and for facilitating productive interactions between the students that ended up in the construction of a sophisticated mechanistic explanation
Action (physics) · Cognition · Cognitive science · Curriculum · Deductive reasoning · Dimension (graph theory) · Embodied cognition · Epistemology · Mathematics education · Mechanism (biology) · Pedagogy · Process (computing) · Qualitative reasoning · Spatial intelligence · Action Observation and Synchronization · Artificial Intelligence · Computer Science · Innovative Teaching and Learning Methods · Psychology · Science Education and Pedagogy
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Working toward a stronger conceptualization of scientific explanation for science education
Plan‐Draw‐Evaluate (PDE) pattern in students' collaborative drawing
Cognition as Communication
Explanation
Strategies for Discovering Mechanisms
Thinking about Mechanisms
Encapsulating Concepts in Gestures and Drawings During Educational Design Team Meetings
Grounded Cognition
| Obras citantes distintas | 9 |
|---|---|
| Citações por ano | 3 |
| Intervalo de citações | 2023 - 2025 (3) |
| Velocidade de citação | recent |
| Altamente citado | Não |
| Tipos de citação | Neutras: 9 |