IP Library Granted Patent US 9,796,609
Granted Patent B2
US 9,796,609 · App. 14/713,408 · Granted Oct 24, 2017

Method for preventing scale deposits and removing contaminants from fluid columns

Inventor: Herbert William Holland (Houston, TX)
Assignee: Wilsa Holdings, LLC
C02F1/485B01D35/06B03C1/02B03C1/0335B03C1/288C02F1/48C02F1/484C02F1/487C02F5/00B03C2201/18C02F2101/32C02F2103/02C02F2103/023C02F2103/10C02F2103/16C02F2201/483C02F2303/22
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Quick Facts
Patent No.
US 9,796,609
App. No.
14/713,408
Granted
Oct 24, 2017
Kind
B2
Abstract

A method for providing magnetic fluid treatment in which at least one electrical conductor comprising at least one length of an electrical conducting material having a first conductor lead and a second conductor lead is energized. The electrical conductor is coiled with at least one turn to form at least one uninterrupted coil of electrical conductor encircling at least a section of an outer surface of a conduit. Energizing the at least one electrical conductor establishes a magnetic field having lines of flux directed along the flow path and concentrated in a non-magnetically conductive region located between two magnetically conductive regions. A fluid is directed through the conduit past the non-magnetically conductive region to provide magnetic fluid treatment to the fluid.

Claims (14)

1. A method for providing magnetic fluid treatment, comprising:

energizing at least one electrical conductor comprising at least one length of an electrical conducting material having a first conductor lead and a second conductor lead, the electrical conductor coiled with at least one turn to form at least one uninterrupted coil of electrical conductor encircling at least a section of an outer surface of a conduit, the conduit including at least two magnetically conductive conduit segments and a non-magnetically conductive conduit segment, wherein at least one of the two magnetically conductive conduit segments has a tapered end, said tapered end oriented to form a coupling between the at least one of the two magnetically conductive conduit segments and the non-magnetically conductive conduit segment, and wherein energizing the at least one electrical conductor establishes a magnetic field having lines of flux directed along a flow path formed by the conduit and concentrated in the non-magnetically conductive conduit segment located between two magnetically conductive conduit segments; and

directing a fluid through the conduit past the non-magnetically conductive region to provide magnetic fluid treatment to the fluid.

2. The method of claim 1 , wherein at least one electrical conductor is coiled around the outer surface of at least one magnetically conductive conduit segment.

3. The method of claim 1 , wherein at least one electrical conductor is coiled around the outer surface of at least two magnetically conductive conduit segments.

4. The method of claim 3 , wherein a first electrical conductor forms at least one uninterrupted coil of electrical conductor encircling at least a section of the outer surface of a first magnetically conductive conduit segment of the conduit and a second electrical conductor forms at least one uninterrupted coil of electrical conductor encircling at least a section of the outer surface of a second magnetically conductive conduit segment of the conduit.

5. The method of claim 1 , further comprising at least one coil core, said coil core comprising a tubular conduit defining a boundary wall with an inner surface and an outer surface and having a port at a proximal end of the tubular conduit and a port at a distal end of the tubular conduit, the outer surface of the boundary wall receiving the at least one coiled electrical conductor and the ports at the proximal and distal ends of the tubular conduit and the inner surface of the boundary wall sleeving at least a section of the outer surface of the conduit.

6. The method of claim 1 , further comprising at least one magnetically conductive sleeving conduit, each at least one magnetically conductive sleeving conduit comprising a magnetically conductive material having a boundary wall with an inner surface and an outer surface and having a port at one end of the magnetically conductive sleeving conduit and port at the other end of the magnetically conductive sleeving conduit sleeving the conduit, whereby at least a section of the inner surface of the boundary wall of the magnetically conductive sleeving conduit is coaxially disposed in substantially concentric surrounding relation to at least a section of an outer surface of a boundary wall of at least one magnetically conductive conduit segment in the conduit.

7. The method of claim 6 , wherein at least a section of the inner surface of the boundary wall of the magnetically conductive sleeving conduit is coaxially disposed in substantially concentric surrounding relation to at least a section of the outer surface of the boundary wall of a first segment of the magnetically conductive conduit segments, the outer surface of the boundary wall of the non-magnetically conductive conduit segment and at least a section of an outer surface of a boundary wall of a second segment of the magnetically conductive conduit segments in the conduit.

8. The method of claim 6 , wherein at least a section of the inner surface of the boundary wall of a first magnetically conductive sleeving conduit is coaxially disposed in substantially concentric surrounding relation to at least a section of the outer surface of the boundary wall of a first magnetically conductive conduit segment in the conduit and at least a section of the inner surface of the boundary wall of a second magnetically conductive sleeving conduit is coaxially disposed in substantially concentric surrounding relation to at least a section of the outer surface of the boundary wall of a second magnetically conductive conduit segment in the conduit.

9. The method of claim 6 , wherein the outer surface of at least one magnetically conductive sleeving conduit is encircled by the at least one coiled electrical conductor.

10. The method of claim 6 , further comprising at least one coil core encircled by the at least one coiled electrical conductor, and wherein at least a section of the inner surface of the boundary wall of at least one coil core is coaxially disposed in substantially concentric surrounding relation to at least a section of the outer surface of the boundary wall of a magnetically conductive sleeving conduit.

11. The method of claim 1 , further comprising at least one nucleus having an outer surface, said nucleus disposed within the conduit.

12. The method of claim 1 , wherein the conduit surrounds a fluid flow path, and wherein the at least one uninterrupted coil of electrical conductor encircles at least the section of the outer surface of the conduit and oriented substantially orthogonal to the fluid flow path.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 18, 2015
From: WILSA, INC.
To: WILSA HOLDINGS, LLC
Reel/Frame 035863/0182 →
Continuity (7)
Continuation 14466639 · Aug 22, 2014
Continuation 14319824 · Jun 30, 2014
Division 13317628 · Oct 22, 2011
Continuation 12655196 · Dec 26, 2009
Continuation 12215745 · Jun 29, 2008
Continuation In Part 11054131 · Feb 10, 2005
Related Publication 20150246833A1 · Sep 3, 2015