US2005036270A1PendingUtilityA1

Fluid deionization flow through capacitor systems

Priority: Aug 7, 2002Filed: Sep 24, 2004Published: Feb 17, 2005
Est. expiryAug 7, 2022(expired)· nominal 20-yr term from priority
C02F 2001/46152C02F 1/46109C02F 2001/46123C02F 1/4691C02F 1/4604
44
PatentIndex Score
0
Cited by
0
References
0
Claims

Abstract

Flow through capacitors are described herein having improved capabilities. In general, asymmetric flow through capacitors are formed, increasing overall capacitance. The asymmetry may be accomplished by utilizing electrodes of different materials, different dimensions, or the same materials with different capacitance properties.

Claims

exact text as granted — not AI-modified
1 . (Canceled)  
   
   
       2 . The flow-through capacitor as in  claim 28 , wherein the electrodes comprise similar materials.  
   
   
       3 . The flow-through capacitor as in  claim 2 , wherein the electrodes comprise high surface area conductive constituents.  
   
   
       4 . The flow-through capacitor as in  claim 3 , wherein the high surface area conductive constituents are supported on substrates.  
   
   
       5 . The flow-through capacitor as in  claim 4 , wherein the substrate is electrically conductive.  
   
   
       6 . The flow-through capacitor as in  claim 4 , wherein the substrate is electrically non-conductive.  
   
   
       7 . The flow-through capacitor as in  claim 6 , wherein the high surface area conductive constituents are impregnated in rigid sponge substrates.  
   
   
       8 . The flow-through capacitor as in  claim 5 , wherein the high surface area conductive constituents are impregnated in rigid sponge substrates.  
   
   
       9 . The flow-through capacitor as in  claim 3 , wherein the high surface area conductive constituents are selected from the group of materials consisting of graphite, activated carbon particles, activated carbon fibers, activated carbon particles formed integrally with a binder material, woven activated carbon fibrous sheets, woven activated carbon fibrous cloths, non-woven activated carbon fibrous sheets, non-woven activated carbon fibrous cloths; compressed activated carbon particles, compressed activated carbon particles fibers; azite, metal electrically conductive particles, metal electrically conductive fibers, acetylene black, noble metals, noble metal plated materials, fullerenes, conductive ceramics, conductive polymers, or any combination comprising at least one of the foregoing materials.  
   
   
       10 . A flow-through capacitor as in  claim 28 , wherein the electrodes comprise different materials.  
   
   
       11 . The flow-through capacitor as in  claim 10 , wherein the one of the electrodes comprises high surface area conductive constituents.  
   
   
       12 . The flow-through capacitor as in  claim 11 , wherein the high surface area conductive constituents are supported on substrates.  
   
   
       13 . The flow-through capacitor as in  claim 12 , wherein the substrate is electrically conductive.  
   
   
       14 . The flow-through capacitor as in  claim 12 , wherein the substrate is electrically non-conductive.  
   
   
       15 . The flow-through capacitor as in  claim 14 , wherein the high surface area conductive constituents are impregnated in rigid sponge substrates.  
   
   
       16 . The flow-through capacitor as in  claim 13  wherein the high surface area conductive constituents are impregnated in rigid sponge substrates.  
   
   
       17 . The flow-through capacitor as in  claim 11 , wherein the high surface area conductive constituents are selected from the group of materials consisting of graphite, activated carbon particles, activated carbon fibers, activated carbon particles formed integrally with a binder material, woven activated carbon fibrous sheets, woven activated carbon fibrous cloths, non-woven activated carbon fibrous sheets, non-woven activated carbon fibrous cloths; compressed activated carbon particles, compressed activated carbon particles fibers; azite, metal electrically conductive particles, metal electrically conductive fibers, acetylene black, noble metals, noble metal plated materials, fullerenes, conductive ceramics, conductive polymers, or any combination comprising at least one of the foregoing materials.  
   
   
       18 . The flow-through capacitor as in  claim 11 , wherein the opposing electrode is a gas evolving electrode.  
   
   
       19 . The flow-through capacitor as in  claim 11 , wherein the opposing electrode is a chlorine evolving electrode.  
   
   
       20 . The flow-through capacitor as in  claim 11 , wherein the opposing electrode is selected from the group of materials consisting of graphite or dimensionally stable anodes.  
   
   
       21 . (Canceled)  
   
   
       22 . (Canceled)  
   
   
       23 . (Canceled)  
   
   
       24 . (Canceled)  
   
   
       25 . (Canceled)  
   
   
       26 . The flow-through capacitor as in  claim 36 , wherein the movable electrode is a negative electrode for attracting sodium ions from a sodium chloride solution and the gas evolving electrode is a positive electrode for evolving chlorine gas.  
   
   
       27 . The flow-through capacitor as in  claim 36 , wherein the capacitance of both electrodes is substantially unlimited.  
   
   
       28 . A flow-through capacitor comprising a pair of opposing asymmetrical electrodes defining a flow path therebetween.  
   
   
       29 . The flow through capacitor as in  claim 28 , the electrodes comprise a positive electrode having a capacitance value C+, and a negative electrode having a capacitance value C−, wherein the overall capacitance C T  is defined by: 
       1/ C   T= (1 /C+ )+(1 /C −), 
     further wherein the value of C+ and C− differ sufficiently to form an asymmetrical capacitor.  
   
   
       30 . The flow through capacitor as in  claim 28 , wherein the electrodes comprise a positive electrode having a capacitance value C+ and a negative electrode having a capacitance value C−, wherein the capacitance value C+ is sufficiently large so that the expression 1/C+ approaches zero, wherein the overall capacitance C T  is 
       1 /C   T ≈1 /C−.   
   
   
       31 . The flow through capacitor as in  claim 28 , wherein the electrodes comprise a positive electrode having a capacitance value C+ and a negative electrode having a capacitance value C−, wherein the capacitance value C− is sufficiently large so that the expression 1/C− approaches zero, wherein the overall capacitance C T  is 
       1 /C   T ≈1/ C+.   
   
   
       32 . The flow through capacitor as in  claim 28 , wherein at least one of the electrodes comprise channels therein for fluid flow.  
   
   
       33 . The flow through capacitor as in  claim 28 , wherein the electrodes comprise channels therein for fluid flow.  
   
   
       34 . The flow through capacitor as in  claim 28 , wherein at least one electrode includes channels therein for fluid flow, and a separator laminated or otherwise integrally formed with the at least one electrode.  
   
   
       35 . The flow through capacitor as in  claim 28 , wherein the each electrode includes: channels therein for fluid flow, and a separator laminated or otherwise integrally formed with the electrode.  
   
   
       36 . The flow through capacitor as in  claim 28 , wherein the electrodes comprise a movable electrode and a gas evolving electrode.

Join the waitlist — get patent alerts

Track US2005036270A1 — get alerts on status changes and closely related new filings.

We store only your email — no account needed. See our privacy policy.