US2012103824A1PendingUtilityA1

Multi-Cell Dual Voltage Electrolysis Apparatus and Method of Using Same

Assignee: DAVIDSON NEHEMIAPriority: May 30, 2007Filed: Jan 10, 2012Published: May 3, 2012
Est. expiryMay 30, 2027(~0.9 yrs left)· nominal 20-yr term from priority
C25B 1/04C25B 9/00Y02E60/36C25B 15/00
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Claims

Abstract

A method for achieving high output efficiency from an electrolysis system ( 100 ) using a plurality of electrolysis cells all located within a single electrolysis tank ( 101 ) is provided. Each individual electrolysis cell includes a membrane ( 105 - 107 ), a plurality of low voltage electrodes comprised of at least a first and second anode ( 117/118; 125/126 ) and at least a first and second cathode ( 121/122; 129/130 ), and a plurality of high voltage electrodes comprised of at least an anode ( 119; 127 ) and a cathode ( 123; 131 ). Within each cell, the high voltage anode is interposed between the first and second low voltage anodes and the high voltage cathode is interposed between the first and second low voltage cathodes. The low voltage applied to the low voltage electrodes and the high voltage applied to the high voltage electrodes is pulsed with the pulses occurring simultaneously.

Claims

exact text as granted — not AI-modified
1 . A method of operating a multi-cell electrolysis system comprising the steps of:
 applying a low voltage to at least a first low voltage anode, a second low voltage anode, a first low voltage cathode and a second low voltage cathode contained within each of a plurality of electrolysis cells contained within an electrolysis tank of said electrolysis system, said low voltage applying step further comprising the step of pulsing said low voltage at a first frequency and with a first pulse duration; and   applying a high voltage to at least a first high voltage anode and a first high voltage cathode contained within each of said plurality of electrolysis cells, said high voltage applying step further comprising the step of pulsing said high voltage at said first frequency and with said first pulse duration, wherein said high voltage pulsing step is performed simultaneously with said low voltage pulsing step, and wherein said first high voltage anode is interposed between said first low voltage anode and said second low voltage anode within a first region of each of said plurality of electrolysis cells, and wherein said first high voltage cathode is interposed between said first low voltage cathode and said second low voltage cathode within a second region of each of said plurality of electrolysis cells.   
     
     
         2 . A method of operating an electrolysis system comprising the steps of:
 positioning a plurality of electrolysis cells within an electrolysis tank, wherein each of said electrolysis cells is comprised of a membrane dividing each of said electrolysis cells into a first region and a second region;   filling said electrolysis tank with a liquid;   positioning a plurality of low voltage electrodes within each of said plurality of electrolysis cells, wherein said plurality of low voltage electrodes is comprised of at least a first low voltage anode, a second low voltage anode, a first low voltage cathode and a second low voltage cathode, wherein said positioning step further comprises the steps of positioning said first and second low voltage anodes within said first region of each of said electrolysis cells and positioning said first and second low voltage cathodes within said second region of each of said electrolysis cells;   positioning a plurality of high voltage electrodes within each of said plurality of electrolysis cells, wherein said plurality of high voltage electrodes is comprised of at least a first high voltage anode and a first high voltage cathode, wherein said positioning step further comprises the steps of positioning said first high voltage anode between said first and second low voltage anodes within said first region of each of said electrolysis cells and positioning said first high voltage cathode between said first and second low voltage cathodes within said second region of each of said electrolysis cells;   applying a low voltage to said plurality of low voltage electrodes, said low voltage applying step further comprising the step of pulsing said low voltage at a first frequency and with a first pulse duration; and   applying a high voltage to said plurality of high voltage electrodes, said high voltage applying step further comprising the step of pulsing said high voltage at said first frequency and with said first pulse duration, and wherein said high voltage pulsing step is performed simultaneously with said low voltage pulsing step.   
     
     
         3 . The method of  claim 2 , further comprising the step of selecting said liquid from the group consisting of water, deuterated water, tritiated water, semiheavy water, heavy oxygen water, water containing an isotope of hydrogen, or water containing an isotope of oxygen. 
     
     
         4 . The method of  claim 2 , further comprising the steps of:
 monitoring a liquid level within said electrolysis tank; and   adding more of said liquid to said electrolysis tank when said monitored liquid level falls below a preset value.   
     
     
         5 . The method of  claim 2 , further comprising the step of adding an electrolyte to said liquid. 
     
     
         6 . The method of  claim 2 , further comprising the steps of:
 monitoring pH of said liquid within said electrolysis tank; and   adding electrolyte to said liquid when said monitored pH falls outside of a preset range.   
     
     
         7 . The method of  claim 2 , further comprising the steps of:
 monitoring resistivity of said liquid within said electrolysis tank; and   adding electrolyte to said liquid when said monitored resistivity falls outside of a preset range.   
     
     
         8 . The method of  claim 2 , further comprising the steps of:
 fabricating said plurality of low voltage electrodes from a first material;   fabricating said plurality of high voltage electrodes from a second material; and   selecting said first material and said second material from the group consisting of steel, nickel, copper, iron, stainless steel, cobalt, manganese, zinc, titanium, platinum, palladium, aluminum, lithium, magnesium, boron, carbon, graphite, carbon-graphite, metal hydrides and alloys of steel, nickel, copper, iron, stainless steel, cobalt, manganese, zinc, titanium, platinum, palladium, aluminum, lithium, magnesium, boron, carbon, graphite, carbon-graphite and metal hydrides.   
     
     
         9 . The method of  claim 2 , further comprising the steps of:
 fabricating said first low voltage anode from a first material;   fabricating said second low voltage anode from a second material;   fabricating said first low voltage cathode from a third material;   fabricating said second low voltage cathode from a fourth material;   fabricating said first high voltage anode from a fifth material;   fabricating said first high voltage cathode from a sixth material; and   selecting said first, second, third, fourth, fifth and sixth materials from the group consisting of steel, nickel, copper, iron, stainless steel, cobalt, manganese, zinc, titanium, platinum, palladium, aluminum, lithium, magnesium, boron, carbon, graphite, carbon-graphite, metal hydrides and alloys of steel, nickel, copper, iron, stainless steel, cobalt, manganese, zinc, titanium, platinum, palladium, aluminum, lithium, magnesium, boron, carbon, graphite, carbon-graphite and metal hydrides.   
     
     
         10 . The method of  claim 2 , further comprising the step of selecting said first pulse duration to be between 0.01 and 75 percent of a time period defined by said first frequency. 
     
     
         11 . The method of  claim 2 , further comprising the steps of:
 monitoring a rate corresponding to said heat generation of said electrolysis system;   selecting an operating parameter from at least one of said low voltage, said high voltage, said first frequency, and said first pulse duration; and   optimizing said operating parameter of said electrolysis system in response to said monitored heat generation rate.

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