US2024263323A1PendingUtilityA1

Spiral induction electrode used for an electrolytic circuit and electrolytic circuit thereof

Assignee: DAI SHAO TINGPriority: Feb 4, 2023Filed: Jan 30, 2024Published: Aug 8, 2024
Est. expiryFeb 4, 2043(~16.5 yrs left)· nominal 20-yr term from priority
Inventors:Shao-Ting Dai
C25B 11/075C25B 11/061C25B 11/052C25B 11/046C25B 9/70C25B 1/50C25B 11/02C25B 11/04
46
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Claims

Abstract

A spiral induction electrode used for an electrolytic circuit and an electrolytic circuit thereof are disclosed. In an electrolytic discharge system, at least one of electrodes is the spiral induction electrode. A potential difference is formed between at least two of the electrodes for the electrolytic discharge system to discharge. A magnetic field is formed on the spiral induction electrode. The magnetic field induces an ion flow to accelerate, and/or the magnetic field induces an electric current to increase in magnitude. Through the spiral induction electrode, the efficiency of the electrolysis effect is improved greatly, and the output efficiency has a net gain of energy.

Claims

exact text as granted — not AI-modified
What is claimed is: 
     
         1 . An electrolytic circuit, comprising:
 at least two electrodes, at least one of the electrodes being a spiral induction electrode;   an electrolyte, connected in series with the electrodes;   the spiral induction electrode extending spirally in an axial direction;   in the axial direction, the spiral induction electrode having a first end and an opposing second end, an interior of the spiral induction electrode being fully hollow from the first end to the second end;   wherein in an electrolytic discharge system, a potential difference is formed between the electrodes for the electrolytic discharge system to discharge, a magnetic field is formed on the spiral induction electrode, the magnetic field induces an ion flow of the electrolyte to accelerate, and/or the magnetic field induces an electric current on the spiral induction electrode to increase in magnitude.   
     
     
         2 . The electrolytic circuit as claimed in  claim 1 , wherein the electrodes include a first electrode, a second electrode and a third electrode that are in contact with the electrolyte, at least the first electrode, the third electrode and the electrolyte are connected in series to form the electrolytic circuit; before the electrolytic discharge system is discharged, the electrolytic discharge system is powered on and then powered off after an ignition time, through a process for destroying electrical neutrality, a potential difference is formed between the first electrode and the second electrode due to a difference in material energy levels of the first electrode and the second electrode and/or an electrical neutrality of the electrolyte being destroyed, the first electrode, the second electrode and the electrolyte further form a self-electrolytic discharge circuit for discharge. 
     
     
         3 . The electrolytic circuit as claimed in  claim 1 , wherein in a radial direction perpendicular to the axial direction, the spiral induction electrode has at least two different radial widths; when the magnetic field is formed on the spiral induction electrode, the magnetic field induces the ion flow of the electrolyte to further accelerate and/or the magnetic field induces the electric current to further increase in magnitude. 
     
     
         4 . The electrolytic circuit as claimed in  claim 3 , wherein the spiral induction electrode is gradually enlarged or tapered from the first end to the second end. 
     
     
         5 . The electrolytic circuit as claimed in  claim 3 , wherein the spiral induction electrode has a first section and an adjacent second section from the first end to the second end; from the first end, the first section is gradually enlarged and the second section is gradually tapered; or, from the first end, the first section is gradually tapered and the second section is gradually enlarged. 
     
     
         6 . The electrolytic circuit as claimed in  claim 1 , wherein in a radial direction perpendicular to the axial direction, the spiral induction electrode has a consistent radial width. 
     
     
         7 . The electrolytic circuit as claimed in  claim 1 , wherein adjacent pitches of the spiral induction electrode are equal or unequal. 
     
     
         8 . The electrolytic circuit as claimed in  claim 1 , wherein the spiral induction electrode is formed by an electrode material that is a bundle of a plurality of wires extending together in a spiral shape, or the spiral induction electrode is formed by a single wire that serves as the electrode material and directly extends in a spiral shape; the wire is one of a tin-plated copper wire, a silver-plated copper wire, a lead-containing solder wire and a lead-free solder wire, or a combination thereof; the electrolyte is a single electrolyte or a composite electrolyte. 
     
     
         9 . The electrolytic circuit as claimed in  claim 8 , wherein the at least two electrodes of the electrolytic discharge system are the spiral induction electrodes, and the spiral induction electrodes each include a different number of the wires. 
     
     
         10 . A spiral induction electrode used for an electrolytic circuit, comprising:
 in an electrolytic discharge system, at least two electrodes and an electrolyte are connected in series to form an electrolytic circuit, at least one of the electrodes being a spiral induction electrode;   the spiral induction electrode extending spirally in an axial direction;   in the axial direction, the spiral induction electrode having a first end and an opposing second end, an interior of the spiral induction electrode being fully hollow from the first end to the second end;   wherein a potential difference is formed between the electrodes for the electrolytic discharge system to discharge, a magnetic field is formed on the spiral induction electrode, the magnetic field induces an ion flow of the electrolyte to accelerate, and/or the magnetic field induces an electric current on the spiral induction electrode to increase in magnitude.

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