High Efficiency Cast Iron Anode
20180066369 ยท 2018-03-08
Inventors
Cpc classification
F16L58/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C23F13/16
CHEMISTRY; METALLURGY
International classification
Abstract
An enhanced anode includes a modulated body which improves anode current output efficiency by maximizing the surface area to increase surface area to weight ratio. A toroidally modulated embodiment of the enhanced anode enlarges surface area by 48 percent increasing current output efficiency by 48 percent, only increases weight by three percent, and improves surface/weight ratio 44 percent, compared to know cylindrical anodes. The enhanced anode is preferably made from cast iron or other suitable materials (e.g. magnesium, zinc, aluminum) as well, and the design of the improved anode is applicable to galvanic cast anodes in general. The enhanced anode is suitable for molding and casting and does not increase production costs.
Claims
1. An enhanced anode, comprising: an elongated body made from an anodic material; modulations on the body; and an electrical connection at, at least one head of the body;
2. The enhanced anode of claim 1, wherein the modulations are sequentially repeated along the length of the body.
3. The enhanced anode of claim 2, wherein the repeated modulations are radially symmetric.
4. The enhanced anode of claim 3, wherein the repeated modulations are sequentially repeated toroid shapes separated by troughs.
5. The enhanced anode of claim 4, wherein the toroid shapes have a major axis of at least 1.5 times a minor axis of the troughs.
6. The enhanced anode of claim 5, wherein the toroid shapes have a major axis of about twice a minor axis of the troughs.
7. The enhanced anode of claim 4, wherein the troughs are rounded.
8. The enhanced anode of claim 7, wherein transitions between the toroids and the troughs are smooth transitions.
9. The enhanced anode of claim 3, wherein the repeated modulations are sequentially repeated cylindrical shapes separated by troughs.
10. The enhanced anode of claim 9, wherein the repeated modulations are separated by cylindrical troughs.
11. The enhanced anode of claim 9, wherein the body is longitudinally fluted.
12. The enhanced anode of claim 1, wherein a second electrical connection resides at a second head of the body opposite to the first head.
13. The enhanced anode of claim 1, wherein the body is made of an anodic material.
14. The enhanced anode of claim 13, wherein the anodic material is selected from the group consisting of iron alloy, magnesium alloy, aluminum alloy, and zinc alloy.
15. The enhanced anode of claim 14, wherein the anodic material is a silicon iron.
16. The enhanced anode of claim 15, wherein the silicon iron alloy made up of 14.20 to 14.75 percent by weigh of silicon, a maximum of 1.5 percent by weigh of manganese, 0.7 to 1.1 percent by weigh of carbon, 3.25 to 5 percent by weigh of silicon chromium, 0.2 maximum percent by weigh of molybdenum, 0.5 maximum percent by weigh of copper, and the remainder iron.
17. The enhanced anode of claim 1, wherein the body has a surface area to weight ratio about 44 percent higher than a cylindrical shaped body.
18. An enhanced anode, comprising:: an elongated body made from silicon iron material; sequentially longitudinally spaced apart, radially symmetric, convex, toroidal shaped modulations formed on the body; rounded, concave troughs residing between each consecutive pair of the modulations, the modulations having a maximum diameter at least 1.5 times a minimum diameter of the troughs; smooth transitions between the consecutive modulations and the troughs; and an electrical connection at, at least one head of the body.
19. An enhanced anode for corrosion/cathodic protection systems, comprising: a rectifier receiving an alternating current electrical signal and producing a direct current electrical signal; buried metal pipes electrically connected to a negative terminal of the rectifier to receive a flow of negative direct current; at least one anode buried proximal to the buried metal pipes and electrically connected to a positive terminal of the rectifier to receive a flow of positive direct current, the anode comprising: an elongated body made from silicon iron material; sequentially longitudinally spaced apart toroidally shaped modulations formed on the body; concave troughs residing between each consecutive pair of the modulations; smooth transitions between the consecutive modulations and the troughs; and an electrical connection at, at least one head of the body for electrically connecting to the rectifier.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
[0011] The above and other aspects, features and advantages of the present invention will be more apparent from the following more particular description thereof, presented in conjunction with the following drawings wherein:
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[0021] Corresponding reference characters indicate corresponding components throughout the several views of the drawings.
DETAILED DESCRIPTION OF THE INVENTION
[0022] The following description is of the best mode presently contemplated for carrying out the invention. This description is not to be taken in a limiting sense, but is made merely for the purpose of describing one or more preferred embodiments of the invention. The scope of the invention should be determined with reference to the claims.
[0023] Where the terms about or generally are associated with an element of the invention, it is intended to describe a feature's appearance to the human eye or human perception, and not a precise measurement.
[0024] A prior art anode 10 is shown in
[0025] A side view of an enhanced anode 20 according to the present invention is shown in
[0026] A cross-sectional view of the head 26 of the enhanced anode 20 taken along line 3-3 of
[0027] A cross-sectional side view of the enhanced anode 20 is shown in
[0028] An impressed current anode for corrosion/cathodic protection systems according to the present invention is shown in
[0029] The anode 20 may be made from anode materials, for example, iron, magnesium, aluminum, and zinc alloys, and a preferred material is a silicon iron alloy made up of 14.20 to 14.75 percent by weigh of silicon, a maximum of 1.5 percent by weigh of manganese, 0.7 to 1.1 percent by weigh of carbon, 3.25 to 5 percent by weigh of silicon chromium, 0.2 maximum percent by weigh of molybdenum, 0.5 maximum percent by weigh of copper, and the remainder iron.
[0030] While the anode 20 is described as having a series of toroid shaped convex rings separated by troughs comprising rounded concave rings to increase the surface to weight (or volume) ratio, those skilled in the art will recognize various shaped anodes which provide this advantage. Such variations include serially spaced apart cylindrical modulations, and various shapes between such cylindrical modulations and the toroidal modulations described above. Any anode including serially spaced apart modulations is intended to come within the scope of the present invention. Further, the anode may include longitudinal flutes to increase surface area, and a fluted anode is intended to come within the scope of the present invention.
[0031] While the invention herein disclosed has been described by means of specific embodiments and applications thereof, numerous modifications and variations could be made thereto by those skilled in the art without departing from the scope of the invention set forth in the claims.