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Main Author: Yıldırım, Begüm
Format: Recurso digital
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Published: Zenodo 2026
Online Access:https://doi.org/10.5281/zenodo.20273462
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author Yıldırım, Begüm
author_facet Yıldırım, Begüm
contents <p>This paper introduces and supports the Cold Potential Energy (CPE) model, represented by the equation:</p> <p>E_CPE = (1/ΔT) * m * c</p> <p>where ΔT is the temperature difference, m the mass, and c the specific heat capacity. The model suggests that systems at very low temperature differences possess significantly high potential energy due to their increased energy responsiveness. This study presents a theoretical framework and correlates it with experimental calorimetric data from cryogenic physics literature to validate the model.</p> <p> </p> <p> </p> <br><br> <p><strong>Originality and AI-use statement:</strong><br> This work is an original research output by Begüm Yıldırım. AI tools, if used, were limited to language refinement, grammar correction, formatting, translation assistance, and clarity improvement. The conceptual framework, research direction, interpretation, models, and conclusions belong to the author. External sources, datasets, or prior works are cited where applicable.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_20273462
institution Zenodo
language
publishDate 2026
publisher Zenodo
record_format zenodo
spellingShingle Experimental Support for the Cold Potential Energy Model via Inverse Temperature Scaling
Yıldırım, Begüm
<p>This paper introduces and supports the Cold Potential Energy (CPE) model, represented by the equation:</p> <p>E_CPE = (1/ΔT) * m * c</p> <p>where ΔT is the temperature difference, m the mass, and c the specific heat capacity. The model suggests that systems at very low temperature differences possess significantly high potential energy due to their increased energy responsiveness. This study presents a theoretical framework and correlates it with experimental calorimetric data from cryogenic physics literature to validate the model.</p> <p> </p> <p> </p> <br><br> <p><strong>Originality and AI-use statement:</strong><br> This work is an original research output by Begüm Yıldırım. AI tools, if used, were limited to language refinement, grammar correction, formatting, translation assistance, and clarity improvement. The conceptual framework, research direction, interpretation, models, and conclusions belong to the author. External sources, datasets, or prior works are cited where applicable.</p>
title Experimental Support for the Cold Potential Energy Model via Inverse Temperature Scaling
url https://doi.org/10.5281/zenodo.20273462