Double-Walled Round and Oval HVAC Ductwork Systems Using Phenolic Insulation
20230054867 · 2023-02-23
Assignee
Inventors
Cpc classification
F24F13/0281
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F13/0245
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention involves the preparation and manufacture of phenolic insulation boards for use in double-walled ductwork systems. The preparation of the phenolic insulation board, having a first and second surface each having a foil coating, includes the cutting or grooving of V-grooves into the first surface of the phenolic insulation and first foil coating. This grooving process creates a continuous piece of phenolic insulation having trapezoidal shapes along the second surface and second foil coating. The prepared phenolic insulation board can then be wrapped around an inner sheet metal duct and then covered with an outer shell. Alternatively, the prepared phenolic insulation board can be inserted between an inner duct and outer shell. Both result in a double-walled phenolic insulation ductwork systems.
Claims
1. A double-walled ductwork segment comprising: a first cylindrical sleeve comprising an interior diameter; a second cylindrical sleeve comprising an outer diameter smaller than the interior diameter of the first cylindrical sleeve; and an insulation layer situated between the first cylindrical sleeve and the second cylindrical sleeve, the insulation layer comprising a first surface, a second surface, and a closed-cell membrane, wherein the insulation layer further comprises a plurality of trapezoidal segments comprising channels formed on the first surface and in the closed-cell membrane, wherein each trapezoidal segment comprises a first surface and a second surface, wherein when the insulation layer is situated between the first cylindrical sleeve and second cylindrical sleeve the first surface of a first trapezoidal segment abuts the second surface of an adjoining trapezoidal segment.
2. The double-walled ductwork segment of claim 1, wherein the first cylindrical sleeve is circular.
3. The double-walled ductwork segment of claim 2, wherein the second cylindrical sleeve is circular.
4. The double-walled ductwork segment of claim 1, wherein the first cylindrical sleeve is oval.
5. The double-walled ductwork segment of claim 4, wherein the second cylindrical sleeve is oval.
6. The double-walled ductwork segment of claim 1, wherein the insulation layer comprises phenolic insulation board.
7. The double-walled ductwork segment of claim 6, wherein the first surface of the insulation layer comprises a first foil coating.
8. The double-walled ductwork segment of claim 7, wherein the first surface of the insulation layer comprises a second foil coating.
9. The double-walled ductwork segment of claim 8, wherein the trapezoidal segments are shaped and angled to minimize voids between the first and second surfaces of the plurality of trapezoidal segments in the insulation layer when the insulation layer is wrapped around an exterior surface of the second cylindrical sleeve.
10. An apparatus comprising: a first circular tube comprising an interior diameter; a second circular tube comprising an outer diameter smaller than the interior diameter of the first circular tube; an insulation layer situated between the first circular tube and second circular tube, wherein the insulation layer comprises a first surface, a second surface, and a phenolic insulation board.
11. The apparatus of claim 10, wherein the insulation layer further comprises a plurality of v-shaped grooves formed on the first surface and in the phenolic insulation board, wherein each v-shaped groove comprises a first surface and a second surface.
12. The apparatus of claim 11, wherein when the insulation layer is situated between the first circular tube and the second circular tube the first surface of a first v-shaped groove of the plurality of v-shaped grooves abuts a second surface of an adjacent second v-shaped groove.
13. The apparatus of claim 12, wherein the first surface of the insulation layer is a first foil coating.
14. The apparatus of claim 13, wherein the second surface of the insulation layer is a second foil coating.
15. The apparatus of claim 12, wherein the first circular tube and second circular tube comprise sheet metal.
16. The apparatus of claim 14, wherein the first circular tube and second circular tube comprise sheet metal.
17. The apparatus of claim 16 wherein the v-shaped grooves are shaped and angled to minimize voids between the first and second surfaces of the plurality of v-shaped grooves in the insulation material when the insulation material is wrapped around the exterior surface of the second circular tube.
18. A method of preparing a double-walled ductwork segment comprising: routing a plurality of v-shaped grooves into an insulation material, wherein each v-shaped groove has a first surface and a second surface; wherein the plurality of v-shaped grooves are spaced and angled to allow the first surface of a first v-shaped groove to abut the second surface of an adjacent v-shaped groove when the insulation material is wrapped around an exterior surface of an interior duct; and insertion of the insulation material wrapped interior duct into an annular space of an exterior duct.
19. The method of claim 18 wherein the insulation material comprises phenolic insulation board further comprising a first surface, a second surface, and a close-cell membrane situated between the first and second surfaces.
20. The method of claim 19 wherein the v-shaped grooves are shaped and angled to minimize voids between the first and second surfaces of the plurality of v-shaped grooves in the insulation material.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
[0015] This invention includes a method for producing a double-walled HVAC ductwork system with traditional double-walled duct characteristics, but utilizing a phenolic insulation board as an interstitial insulation media in lieu of traditional mineral glass products. The presently described double-walled ductwork systems can be installed on the jobsite in a single operation and by the HVAC contractor. This differs from attempting to use phenolic insulation board to cover an HVAC ductwork, then lag the exterior—a process that involves both the HVAC installer and an insulation installer. Also, double-walled ductwork products are traditionally made with an outer sheet metal shell functioning as both the pressure containment shell and the primary protective layer (inner sheet metal ducts are often perforated metal for sound absorption). Existing rectangular phenolic insulation ductwork systems utilize a phenolic insulation board itself as pressure containment. The phenolic insulation board is usually covered with a foil surface or scrim on a front and rear surface of the phenolic insulation board, so a secondary process must be used to repair any breaks or tears on the foil surface abutting the exterior surface of the inner sheet metal duct so as to isolate interaction between the phenolic insulation and the airstream. A tertiary process is needed to form a more durable layer on an outer sheet metal shell exterior, usually a metal lagging.
[0016] The fabrication steps of this invention are as follows: (1) an inner sheet metal duct and outer sheet metal shell are manufactured and prepared. (2) A section of phenolic insulation board is “grooved” using a router or cutting blade by cutting into one of the foil coatings formed on a first surface of the phenolic insulation board. It should be appreciated that the V-grooves can be varied and do not need to be parallel to each other, but can be angled or vary their direction and spacing to allow various shapes to be formed when the grooved phenolic board is wrapped or rolled. By way of example, one or more V-grooves are formed on the phenolic insulation board are triangular with an apex at the second foil coating or scrim layer on a second surface of the phenolic insulation board. The angle and frequency of the V-grooves or cuts are calculated to produce a substantially round or oval polygon shape, when the first surface of the phenolic insulation is wrapped around the inner sheet metal duct, so that the cut, first surface abuts the exterior surface of the inner sheet metal duct. When “rolled” the V-grooves should fill the annular space between the inner sheet metal duct and the outer sheet metal shell while minimizing voids between segments and the inner sheet metal duct and outer sheet metal shell. (3) The grooved phenolic insulation board is then wrapped around the inner sheet metal duct, then the resulting assembly of the wrapped inner sheet metal duct is then inserted into the outer metal shell. This process forms a complete double-walled phenolic insulation ductwork, which can then be installed in a single step by a single installer.
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[0021] This process and system produces a single finished apparatus that can be assembled with traditional external HVAC joining methods. As a “double-walled” ductwork, the phenolic insulation board is isolated from both the airstream within the inner sheet metal duct and the elements outside the assembly. With regards to the Table depicted in
[0022] Alternatively, an outer sheet metal shell can be wrapped and then sealed, clamped or otherwise joined around the phenolic insulation board and inner sheet metal duct assembly instead of the “stuffing” method described above.
[0023] Alternatively, the phenolic insulation board can be initially formed or machined as a cylinder for inserting into the annular space between the inner sheet metal duct and outer sheet metal shell. This would eliminate the need for grooving, as described above. It should be appreciated that different transverse ductwork connections can be used in place of those described in the preferred embodiments herein, such as those depicted in
[0024] It should be appreciated that other rigid insulation products, such as polyisocyanurate, could also be used by the above-described grooving and insertion methods. Alternatively, the system and methods described herein could also be completed using high density foams as the insulating material in the double-walled duct. It should be appreciated that the fabrication method described herein could be applied to other types of ductwork, such as grease ducts, boiler ducts, fire-rated chimneys or the like.