Wireless Radiation Beyond the Near Magnetic Field: Difference between revisions
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Wireless Radiation Beyond the Near Magnetic Field |
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{{Infobox paper | |||
| title = Wireless Radiation Beyond the Near Magnetic Field | |||
| author = [[David Tombe]] | |||
| published = 2019 | |||
| url = https://www.researchgate.net/publication/335169091_Wireless_Radiation_Beyond_the_Near_Magnetic_Field | |||
}} | |||
==Abstract== | |||
Electromagnetic radiation in deep space, such as starlight, constitutes a propagated disturbance in the prevailing background magnetic field. EM waves can therefore either be directed along the magnetic lines of force, or perpendicular to them, or at any angle in between. With reference to the double helix theory of the magnetic field, the common denominator as between parallel radiation and perpendicular radiation will be established. | Electromagnetic radiation in deep space, such as starlight, constitutes a propagated disturbance in the prevailing background magnetic field. EM waves can therefore either be directed along the magnetic lines of force, or perpendicular to them, or at any angle in between. With reference to the double helix theory of the magnetic field, the common denominator as between parallel radiation and perpendicular radiation will be established. | ||
[[Category:Scientific Paper|wireless radiation beyond the near magnetic field]] | |||
[[Category:Electrodynamics|wireless radiation beyond the near magnetic field]] | |||
Latest revision as of 07:07, 22 July 2026
| Scientific Paper | |
|---|---|
| Title | Wireless Radiation Beyond the Near Magnetic Field |
| Read in full | https://www.researchgate.net/publication/335169091_Wireless_Radiation_Beyond_the_Near_Magnetic_Field |
| Author(s) | David Tombe |
| Published | 2019 |
Abstract
Electromagnetic radiation in deep space, such as starlight, constitutes a propagated disturbance in the prevailing background magnetic field. EM waves can therefore either be directed along the magnetic lines of force, or perpendicular to them, or at any angle in between. With reference to the double helix theory of the magnetic field, the common denominator as between parallel radiation and perpendicular radiation will be established.