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the new fuels with magnecular structure - Institute for Basic Research

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THE NEW FUELS WITH MAGNECULAR STRUCTURE 119<br />

which is necessary in <strong>the</strong> GC-MS scans of Fig. 27 to confirm <strong>the</strong> presence of<br />

methane (CH 4 ), is missing. Finally, <strong>the</strong> original MagneGas is created in <strong>the</strong><br />

10,000 ◦ F of electric arcs at which temperature no methane can survive. In view<br />

of <strong>the</strong> above, a more plausible possibility is that <strong>the</strong> “methane” detected by <strong>the</strong><br />

analyses of Fig. 37 is, in reality, <strong>the</strong> infrared signature of a magnecule.<br />

C) The study of <strong>the</strong> liquefaction of MagneGases on a comparative basis <strong>with</strong><br />

<strong>the</strong> liquefaction of <strong>the</strong> same gases <strong>with</strong> conventional molecular <strong>structure</strong>. This<br />

study is recommended particularly <strong>for</strong> rocket propulsion, due to <strong>the</strong> expected<br />

<strong>new</strong> species of liquid magnecules [5], <strong>the</strong> liquefaction itself at a temperature bigger<br />

than <strong>the</strong> conventional ones, <strong>the</strong> increase in trust and <strong>the</strong> reduction in liquefaction<br />

costs.<br />

D) The study of <strong>the</strong> possible storage of energy in inert gases via <strong>the</strong> mechanism<br />

of internal magnetic polarization and resulting <strong>new</strong> molecular bonds illustrated<br />

in Figs. 9 and 11. In fact <strong>the</strong>re exist patents as well as reported test engines<br />

operating on inert gases which are generally dismissed by academia because of<br />

<strong>the</strong> believed “inert” character of <strong>the</strong>se cases. Perhaps, a more open mind is<br />

recommendable <strong>for</strong> truly basic advances.<br />

E) The study of nonlinear deviations from <strong>the</strong> perfect gas law and <strong>the</strong> Avogadro<br />

number which are inherent in <strong>magnecular</strong> clustering since <strong>the</strong>y can break down<br />

into fragments due to collision and <strong>the</strong>n have different recombinations, resulting<br />

in a population <strong>with</strong> generally varying number of constituents, while keeping<br />

constant statistical averages.<br />

Needless to say, <strong>the</strong> author solicits <strong>the</strong> independent verification of all results<br />

presented in this section <strong>with</strong>out which no real scientific advance is possible.

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