(132)
Arrays
Also written triple wave-guide clusters arrays · wave- guide arrays · array · triple array · cell array · gas converters devices · wave- guides · cluster
Where it is first named
[0007] Drawing FIG. 4 shows the electronic impedance matching circuits 102 connected between the dual three phase generators (A&B) 110FIG. 3 and each of the wave- guide arrays 132 in cell 120FIG. 3. Note that only generator Ais depicted in the drawing VIG. 4 as being connected to arrays A-B-C using PC cards 1-3. Generator B is connected to arrays D-E-F using cards 4-6.
How it is written
- (arrays 132) 6×
- (array 132) 3×
- (cluster 132) 1×
- (gas converters devices 132) 1×
- (triple array 132) 1×
- (triple wave-guide clusters arrays 132) 1×
- (wave- guide arrays 132) 1×
- (wave- guides 132) 1×
Drawings 4
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ABSTRACT · Hydroxyl Filling Station
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[0004] Drawing FIG. 1 shows the configuration of appa- ratus used in the MLS-hydroxyl filling Station (MLS-HFS). · Hydroxyl Filling Station
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[0021] FIG. 5 · Hydroxyl Filling Station
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[0006] Drawing FIG. 3 shows the methods, configuration, and apparatus used in the hydroxyl producing cell 120 system. · Hydroxyl Filling Station
Where it is named · 16
Hydroxyl Filling Station 16×
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wave- guide arrays (wave- guide arrays 132)
[0007] Drawing FIG. 4 shows the electronic impedance matching circuits 102 connected between the dual three phase generators (A&B) 110FIG. 3 and each of the wave- guide arrays 132 in cell 120FIG. 3. Note that only generator Ais depicted in the drawing VIG. 4 as being connected to arrays A-B-C using PC cards 1-3. Generator B is connected to arrays D-E-F using cards 4-6.
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gas converters devices (gas converters devices 132)
… 3 shows the configuration of our proprietary hydroxyl producing apparatus 120 consisting of dual three phase power source 110 impedance matching electronic circuits 102 and gas converters devices 132 submersed in a bath of water 133 in cell 120. …
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triple array (triple array 132)
… These signals are then coupled to the triple array 132 elements (Inside, Middle, outside) by alternating the connection between the inside and outside elements of the arrays 132FIG. 3.
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array (array 132)
Note that the center wave-guide element is used as the electrical reference point for both outside and inside elements of array 132. It is this composite signal applied to the surface of the stainless steel elements in array 132 submerge in water bath 133 that allow the ions from the elements in array 132 to cross its water 133 surface barriers and contribute to the hydroxyl production.
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array (array 132)
Note that the center wave-guide element is used as the electrical reference point for both outside and inside elements of array 132. It is this composite signal applied to the surface of the stainless steel elements in array 132 submerge in water bath 133 that allow the ions from the elements in array 132 to cross its water 133 surface barriers and contribute to the hydroxyl production.
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array (array 132)
Note that the center wave-guide element is used as the electrical reference point for both outside and inside elements of array 132. It is this composite signal applied to the surface of the stainless steel elements in array 132 submerge in water bath 133 that allow the ions from the elements in array 132 to cross its water 133 surface barriers and contribute to the hydroxyl production.
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arrays (arrays 132)
Note the de bias voltage +,- on either side of the center electrical reference point OV in FIG. 5. It is this bias voltage being modulated by multi polarity differential signals from 102 FIG. 4 that contributes to the wave-guide action of arrays 132. Also, the frequency of FIG. 5 is adjusted to match the electrical wave-length of the arrays 132 FIG. 3 and the impedance of water bath 133.
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arrays (arrays 132)
Note the de bias voltage +,- on either side of the center electrical reference point OV in FIG. 5. It is this bias voltage being modulated by multi polarity differential signals from 102 FIG. 4 that contributes to the wave-guide action of arrays 132. Also, the frequency of FIG. 5 is adjusted to match the electrical wave-length of the arrays 132 FIG. 3 and the impedance of water bath 133.
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arrays (arrays 132)
[0024] FIG. 6 shows the high-frequency ringing signals that contribute to the operation of the hydroxyl production. Just as a tuning fork rings when struck by a hammer, so does the wave-guide elements in arrays 132 immersed into the hydroxyl generating liquid 133 then struck by the electrical signals FIG. 5,6 from impedance matching circuits 102 depicted in FIG. 4.
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triple wave-guide clusters arrays (triple wave-guide clusters arrays 132)
[0044] The impedance matching circuits 102FIG. 4 converts the sinewave signals from the three phase power source L1O FIG. 3 into multi polarity differential signals FIG. 5 that are applied to the triple wave-guide clusters arrays 132 A,B,C,D,L,I installed in cell 120.
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cluster (cluster 132)
[0045] Its is this converted signal FIG. 5 along with the phase relationship of the power source 110 and the triple wave-guides element in cluster 132 that are submerge in a water bath 133 that produces the hydroxyl gases. …
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cell array (cell array 132)
… The converted signals from 102 are then applied to cell array 132 for processing. …
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arrays (arrays 132)
… 5,6; the cell configuration and materials used in arrays 132 and the rotational phase relationship between arrays AD, BL' and Cl' and the submersion of these arrays 132 in a bath of water 133 that allows the MLS-HFS to produce large amounts hydroxyl gases. …
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arrays (arrays 132)
… 5,6; the cell configuration and materials used in arrays 132 and the rotational phase relationship between arrays AD, BL' and Cl' and the submersion of these arrays 132 in a bath of water 133 that allows the MLS-HFS to produce large amounts hydroxyl gases. …
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wave- guides (wave- guides 132)
4. The system according to claim 1 further enhances the production of hydroxyls based on the application of the electrical signals FIG. 5 applied to signal traveling wave- guides 132 submersed in a bath of water 133 installed in cell 120 and configured as depicted in FIG. 3.