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{{Infobox paper
{{Infobox paper
| title = Cold Fusion Research: Models and Potential Benefits
| title = Cold Fusion Research: Models and Potential Benefits
| url = [https://web.archive.org/web/20060313154649/http://www.padrak.com/ine/NICONF96.html Link to paper (Internet Archive)]
| author = [[Patrick G Bailey]], [[James J Hurtak]]
| author = [[Patrick G Bailey]], [[James J Hurtak]]
| keywords = [[Cold Fusion]]
| keywords = [[Cold Fusion]]
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| pages = 261-277
| pages = 261-277
}}
}}
'''Read the full paper''' [https://web.archive.org/web/20060313154649/http://www.padrak.com/ine/NICONF96.html here] ''(archived copy — the original link is no longer available)''


==Abstract==
==Abstract==

Revision as of 09:19, 20 July 2026

Scientific Paper
TitleCold Fusion Research: Models and Potential Benefits
Read in fullLink to paper (Internet Archive)
Author(s)Patrick G Bailey, James J Hurtak
KeywordsCold Fusion
Published1996
Pages261-277

Read the full paper here (archived copy — the original link is no longer available)

Abstract

Observations have been made of deuteron-deuteron fusion at room temperature during low-voltage electrolytic infusion of deuterons into metallic titanium or palladium electrodes. Neutrons with an energy of approximately 2.45 meV have been clearly detected with a sensitive neutron spectrometer at a rate of 2 x 10-3 n/s which cannot be accounted for by ambient neutron background variations. The reaction has been known to yield excess (or "latent") heat, where D + D yields 4He + 23.8 meV. This paper will examine the latest experimental results from several international researchers and summarize several new theories of nuclear model interactions that have been put forth to explain these intriguing results.