System and method to remove moisture from wood coring
09945612 ยท 2018-04-17
Assignee
Inventors
Cpc classification
B63B81/00
PERFORMING OPERATIONS; TRANSPORTING
F26B21/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F26B2210/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A system and process is provided to deplete or remove moisture from wood coring in boats by piercing 20 a fiberglass outer skin; forming 30 bores or holes 200 in wood coring to form an exposed portion; processing ambient air 35 to create processed air; pumping or displacing 40 processed air into the bores or holes 200; penetrating 50 an exposed portion 80; with a sealant 100; and filling 60 the exposed portion 80 with a sealant 100.
Claims
1. A method of removing structural weakening moisture from wood, comprising the steps of: forming a plurality of bores of about of an inch to about of an inch in diameter each, in moist wood coring to expose the moist interior of said coring; processing ambient air to remove more than 50% of the moisture from said ambient air, thereby creating a source of drier processed air; providing a plurality of conduits, one for each of said plurality of bores, each said conduit extending from said source of drier processed air to its respective one of said bores; and pumping or displacing said processed drier air through said conduits directly into each of said bores to dry said wood from within said bores.
2. The method of claim 1, further comprising: filling said bores with a sealant after said coring has been dried.
3. The method of claim 1, wherein said forming step comprises the drilling of bores that are spaced apart by a distance of about 8 inches.
4. The method of claim 1, wherein said processing ambient air step uses a desiccant to reduce the moisture in said processed air by about 60% to about 70%.
5. The method of claim 1, wherein said processing ambient air uses a desiccant to reduce the moisture in said processed air by more than about 50%.
6. A method of removing structural weakening moisture from wood coring of a boat, comprising the steps of: forming a plurality of bores of about of an inch to about of an inch in diameter each, in moist wood coring to expose the moist interior of said coring; processing ambient air to remove more than 50% of the moisture from said ambient air, thereby creating a source of drier processed air; providing a plurality of conduits, one for each of said plurality of bores, each said conduit extending from said source of drier processed air to its respective one of said bores; and pumping or displacing said processed drier air through said conduits directly into each of said bores to dry said coring from within said bores.
7. The method of claim 1, wherein said forming bores step comprises forming a plurality of bores throughout said wood.
8. The method of claim 1, wherein each of said bores has an inlet end that is capable of receiving air directly from said conduit, and an outlet end that is capable of allowing air to exit from said bores.
9. The method of claim 1, wherein said forming step is performed to create a plurality of bores that interconnect within said wood.
10. The method of claim 6, said processing ambient air step includes pumping ambient air through a drier.
11. The method of claim 6, further comprising: filling said bores with a sealant after said coring has been dried.
12. The method of claim 6, wherein said coring is covered with a polymeric outer skin, and said bores are formed through said polymeric skin and into said wood coring.
13. The method of claim 6, wherein said forming step comprises the drilling of bores that are spaced apart by a distance of about 8 inches.
14. The method of claim 6, wherein said processing ambient air step uses a desiccant to reduce the moisture in said processed air by about 60% to about 70%.
15. The method of claim 6, wherein said processing ambient air step uses a desiccant to reduce the moisture in said processed air by more than about 50%.
16. The method of claim 6, wherein said forming bores step comprises forming a plurality of bores throughout said coring.
17. The method of claim 6, wherein said coring comprises stringers, and said forming bores step comprises forming a plurality of bores throughout said stringer, wherein each of said bores has an inlet end that is capable of receiving air directly from said conduit, and an outlet end that is capable of allowing air to exit from said plurality of bores.
18. The method of claim 6, wherein said forming step is performed to create a plurality of bores that interconnect within said coring.
19. The method of claim 6, said processing ambient air step includes pumping ambient air through a drier.
20. The method of claim 19, wherein said processing ambient air step uses a desiccant to reduce the moisture in said processed air by about 60% to about 70%.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(4)
DETAILED DESCRIPTION OF THE INVENTION
(5) The following detailed description is of the best currently contemplated modes of carrying out the invention. The description is not to be taken in a limiting sense, but is made merely for the purpose of illustrating the general principles of the invention, since the scope of the invention is best defined by the appended claims.
(6) Broadly, a preferred embodiment of the present invention may be used for removing moisture from wood by using processed air, not ambient air. Moisture includes liquid and water. One preferred embodiment of the present invention is of particular importance for use to remove moisture from the coring of boats.
(7) One preferred embodiment of the present invention differs from the prior art by, among other things, the use of a method that removes moisture but does not require destruction and reconstruction of the coring. A preferred embodiment of the present invention also differs by not using ambient air, but processed air. Processed air is air in which moisture is removed. This document refers to air in which moisture is removed as processed air or ultra-dry air.
(8) A preferred embodiment of the present invention allows the structural integrity of the coring to remain, which (1) reduces the cost involved in removing the coring and reconstructing new coring; (2) reduces the time in which the boat is unavailable for use because of the time involved to remove and reconstruct coring.
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(10) In one exemplary embodiment of the present invention, the piercing step 20 includes the forming 30 of bores or holes 200 that are spaced apart by a distance of about 8 inches. In one exemplary embodiment of the present invention, the holes 200 may have a diameter of about of an inch. In one exemplary embodiment of the present invention, the holes 200 may have a diameter of about of an inch. The processing of ambient air 35 may include removing at least about 50% of the moisture from ambient air. The processing step 35 may employ the use of a desiccant to convert ambient air into processed air or ultra-dry air. The pumping or displacing 40 of dry air into the holes 200 may be performed by injection hoses that are adapted to fit the holes 200.
(11) The holes 200 with the larger diameter, i.e. about of an inch, may be used to receive injection hoses with a larger diameter; to displace or pump 40 more dry air that the injection hoses having a smaller diameter, such as about of an inch. In one exemplary embodiment, the forming 30 of bores or holes 200 can be created by drilling the bores or holes 200. In one exemplary embodiment, the spacing 70 of the bores or holes 200 may be greater than 8 inches. In one exemplary embodiment, the spacing 70 of the bores or holes 200 may be less than 8 inches. In one exemplary embodiment, the spacing 70 of the bores or holes 200 may vary. The forming 30 of bores or holes 200 creates an exposed portion 80 of the coring. In one exemplary embodiment the holes 200 are about 95% of the length of the wood in which the hole 200 may be in. For example, if a hole 200 is formed in a stringer, and the stringer is 100 inches long, the hole 200 may be 95 inches long. In one exemplary embodiment of the present invention, the dry air may be displaced or pumped 40 through the holes 200 at a rate of about 100 cubic feet per minute. Sometimes, it may take up to about 9 days to dry the coring, with use a preferred embodiment of the present invention.
(12) The pumping step 40 may be performed by pumping in processed air or ultra dry air from an inlet end 300 of the bore 200, so that the ultra dry air is displaced adjacent to the exposed portion 80, to remove moisture from the coring.
(13) In one exemplary embodiment the pumping of air step 40 may include the processing of ambient air step 35. In this embodiment the pumping step 40 may be performed in two stages, first the ambient air may be processed 35 at the time in which it may be pumped in by using a first pumping step 42. The first pumping step 42 may include the use of an air dryer. In one exemplary embodiment, the air dryer may be a desiccant.
(14) This first step 42 may be followed by a second step 44. In one exemplary embodiment the second pumping step 44 may include the use of a mid pressure, high volume pump. The first pumping step 42 may be used to dry the air in and around the exposed portion 80. The second pumping step 44 may be used to pump air into the exposed portion 80. In one exemplary embodiment, the first pumping step 42 may be used to dry the air to create and ultra dry air 90. The second pumping step 44 may include capturing 110 the ultra dry air 90, and then displacing the ultra dry air 90 into the exposed portion 80.
(15) In one exemplary embodiment, the penetrating step 50 may include penetrating the exposed portion 80 with a first sealant 100 or epoxy. The filling step 60 may include the filling 60 of the exposed portion 80 with a second sealant 100 or epoxy.
(16)
(17) After moisture is removed, then the bores 200 can be filled with a sealant 100 or an epoxy in a filling step 60. For example, a first sealant 100 or epoxy may be used to penetrate the exposed portion 80. And a second sealant 100 or epoxy may be used to fill the bores 200.
(18) The applicants processed air is not ambient air. The process uses ambient at its start, and process with desiccant, to create processed air, or ultra dry air, not ambient air. Low grain moisture air has 65%-75% less moisture than ambient air, which allows that air to remove more moisture, which allows the process to be faster.
(19) A preferred embodiment of the present invention includes the process of processing air (removing moisture) and then using that processed air to dry the coring by pumping it in to the damaged area.
(20) The applicants' process is currently used by one of the largest boat manufacturer's in the world for a number of reasons:
(21) 1. A preferred embodiment of the present invention process is able to dry coring faster than the prior art. This is possible because the applicants' process dries the air used in drying the coring. The process of the present invention uses a desiccant to reduce the moisture in the processed air by about 60% to about 70%. The percentages are averages obtained on site;
(22) 2. The applicants' process is simply less destructive than the prior art. For example, using the applicants' process, the worst case scenario is a number of holes and in most cases on the exterior of boats, the holes are . When the prior art process or apparatus, such as that disclosed in DeTurris is used, this vacuum process requires holes having a diameter of about 1 inch up to about and can go to 2 inches. To repair a hole that is greater than 1 inch in diameter requires structural repair. Whereas a hole smaller than 1 inch, such the applicants process that only requires inch diameter holes, only requires cosmetic repair. Therefore, after using the applicants' process, one only needs to dry and perform cosmetic repairs. However using the process of the prior art, requires drying and performing structural repairs;
(23) 3. The applicants' process takes much less time than that of the prior art. For example, one of the applicant's was using a preferred embodiment of the present invention, and the process of A preferred embodiment of the present invention performed the complete process in two months and three weeks, at the time another boat was being dried using the prior art, and it took about seven months to complete the drying process.
(24) The process of a preferred embodiment of the present invention is faster, costs less, and more convenient to use than the prior art.
(25) It should be understood, of course, that the foregoing relates to exemplary embodiments of the invention and that modifications may be made without departing from the spirit and scope of the invention as set forth in the following claims.