Insulation sleeve
10323784 ยท 2019-06-18
Assignee
Inventors
Cpc classification
B32B2307/3065
PERFORMING OPERATIONS; TRANSPORTING
B32B2597/00
PERFORMING OPERATIONS; TRANSPORTING
B32B25/02
PERFORMING OPERATIONS; TRANSPORTING
F16L59/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B32B5/26
PERFORMING OPERATIONS; TRANSPORTING
B32B5/02
PERFORMING OPERATIONS; TRANSPORTING
B32B2260/048
PERFORMING OPERATIONS; TRANSPORTING
F16L59/161
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B32B2260/021
PERFORMING OPERATIONS; TRANSPORTING
B32B19/06
PERFORMING OPERATIONS; TRANSPORTING
B32B2250/40
PERFORMING OPERATIONS; TRANSPORTING
B32B25/10
PERFORMING OPERATIONS; TRANSPORTING
F16L57/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L57/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B32B25/10
PERFORMING OPERATIONS; TRANSPORTING
B32B25/02
PERFORMING OPERATIONS; TRANSPORTING
F16L59/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L57/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L59/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An insulation sleeve for insulating a component includes an inner layer, an outer layer, an insulating material, and a flap covering a seam passing from an outside surface to an internal surface of the insulation sleeve. The inner layer is a material having low thermal conductivity, resistance to high temperatures, is elastic/semi-rigid, and has an inner surface formed to a shape to fit the component. The outer layer has a material having low thermal conductivity, resistance to high temperatures, and is elastic/semi-rigid. The insulating material is positioned between the inner layer and the outer layer and has low thermal conductivity, low heat storage, and resistance to high temperatures. The flap is a material having low thermal conductivity and resistance to high temperatures, and is secured to the outer layer at a first location and releasably secured outer layer at a second location.
Claims
1. An insulation sleeve for insulating a component, comprising: an inner layer comprising a first material having low thermal conductivity, resistance to high temperatures, and is elastic/semi-rigid, wherein the inner layer has an inner surface formed to a shape to fit the component; an outer layer comprising a second material having low thermal conductivity, resistance to high temperatures, and is elastic/semi-rigid; an insulating material between the inner layer and the outer layer, the insulating material having low thermal conductivity, low heat storage, and resistance to high temperatures; a flap comprising a third material having low thermal conductivity and resistance to high temperatures, the flap secured to the outer layer at a first location and releasably secured outer layer at a second location; extensions formed on each end of the sleeve sized to cover secondary, mating components adjacent the component; wherein the inner layer, outer layer, and insulating material have a seam, and the internal layer and external layer are self-biased to close the seam, and the flap covers the seam with the first location and the second location on opposing sides of the seam wherein the inner layer comprises at least one ply of fiberglass impregnated silicone.
2. The insulation sleeve of claim 1, wherein the outer layer comprises at least one ply of fiberglass impregnated silicone.
3. The insulation sleeve of claim 1, wherein the insulating layer comprises a mineral wool.
4. The insulation sleeve of claim 1, wherein the flap is releasably secured to the outer layer by hook and loop fasteners.
5. The insulation sleeve of claim 1, wherein the insulating layer is encapsulated by a layer of fiberglass impregnated silicone rubber.
6. A method for forming an insulation sleeve for a component, comprising: forming an inner layer of a first material that is insulating, resistant to high temperature, and is elastic/semi-rigid to a shape to fit the component to be insulated, the inner layer comprising at least one ply of fiberglass impregnated silicone; forming an outer layer of a second material that is insulating, resistant to high temperature, and is elastic/semi-rigid; forming extensions on each end of the sleeve sized to cover secondary, mating components adjacent the component; placing an insulating material between the inner layer and the outer layer; securing the inner layer to the outer layer in at least one area to encapsulate the insulating material while leaving a seam; securing a high temperature resistant flap to the outer layer adjacent the seam; and securing a releasable attachment mechanism to the flap for securing the flap to the outer layer.
7. The method of claim 6, wherein the first material is fiberglass impregnated silicone rubber.
8. The method of claim 6, wherein the insulating material is comprised of mineral fibers.
9. The method of claim 6, wherein the releasable attachment mechanism is a hook and loop fastener.
10. The method of claim 6, wherein the inner layer and the outer layer are self-biased to an orientation closing the seam.
11. The insulation sleeve of claim 1, wherein the extensions are made up of the inner layer and the outer layer without a void between the inner layer and the outer layer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF THE DRAWINGS AND THE PRESENTLY PREFERRED EMBODIMENTS
(7) The present embodiments will now be further described. In the following passages, different aspects of the embodiments are defined in more detail. Each aspect so defined may be combined with any other aspect or aspects unless clearly indicated to the contrary. In particular, any feature indicated as being preferred or advantageous may be combined with any other feature or features indicated as being preferred or advantageous.
(8)
(9) The insulation sleeve 20 has a multilayer wall 22 as will be described in reference to
(10) The multilayer wall 22 has a first extension 26 on a first end 28 and a second extension 30 on a second end 32. The extensions 26, 30 provide an elongated opening into the cavity 24 for access to the check valve 10, while providing limited insulation for secondary components, such as hydraulic lines. Although the current embodiment is shown having two extensions 26, 30 and are cylindrical in shape, other shapes and configurations are possible. For example, a hydraulic component such as a valve could have three hydraulic lines and be generally square in shape. Thus, the insulation sleeve may be generally square in shape with three extensions, one for each of the hydraulic lines.
(11) Between the first extension 26 and the second extension 30 is the main portion 34 of the insulation sleeve 20. Within the main portion 34, the multilayer wall 22 has an access seam 36 for accessing the cavity 24 through the multilayer wall 22. The access seam 36 is sized to be large enough to pass the component through the multilayer wall 22. Additionally, a flap 38 covers the access seam 36 to inhibit gasses from passing though the access seam 36 into the cavity 24. The flap 38 is secured to the multilayer wall at a first side of the seam and is releasably secured to the multilayer wall at an opposing side of the seam. The flap 38 may be formed of the same material as an outer layer of the multilayer wall 22. The flap 38 may be secured using common fastening techniques such stitching, riveting, and adhesives, and may be releasably secured using common fastening techniques such as hook and loop fasteners, snaps, zippers, and buttons. In one embodiment, the flap 38 has a pad of stainless steel hook and loop fasteners stitched to the flap 38 using stainless steel thread, and a corresponding pad of stainless steel hook and loop fasters is stitched to the outer layer of the multilayer wall 22 to form a releasable connection.
(12)
(13) In addition to being elastic/semi-rigid, the inner layer 44 is resistant to high temperatures. In some embodiments, the inner layer 44 is formed of a silicone impregnated glass fiber. Because the inner layer 44 is semi-rigid and maintains its shape, it may be made to fit tightly around a shape. For example, a fabric of silicone impregnated glass fiber may be laid up over a mandrel corresponding to the component being insulated. When the silicone impregnated glass fiber blanket is removed, it will have a natural shape that complements the outer surface of the component. In some embodiments, multiple layers of fabric may be laid up over a mandrel to increase the rigidity of the layer.
(14) The outer layer 40 is formed of an elastic/semi-rigid material and in some embodiments, it may be the same material that formed the inner layer 44. In the main portion 34 of the insulation sleeve 20, the inner layer 44 and the outer layer 40 have an annular space formed between them. The annular space is filled with the middle layer 52 of material. Because the inner layer 44 and the outer layer 40 are semi-rigid and maintain their shape, the middle layer 42 may include a less durable insulating material 46, such as mineral fiber.
(15) The inner layer 44 and the outer layer 40 enclose the insulating material 46 such that it is not exposed to the ambient environment. As shown in
(16) The extensions 26, 30 have a layered construction that may be the same as the inner layer 44 and the outer layer 40 of the main portion 34, but without the middle layer 42. In some embodiments, the extensions 26, 30 are made up of the inner layer 44 and the outer layer 40 without the void between the layers. For example, in one embodiment the inner layer 44 is formed of three plies of material while the outer layer 40 is formed of a single ply of material. The extension may then be formed of four layers, the three from the inner layer 44 and the one from the outer layer 40.
(17) The extensions 26, 30 may be sized and shaped to fit over components that are to be connected to the component being insulated. For example, the check valve 10 of
(18) Installation of the described insulation sleeve 20 is intuitive and may be performed quickly. To install, the flap 38 is undone and the seam 36 spread open to allow access to the cavity 24. The insulation sleeve 20 is then placed over the component being insulated and allowed to return to its original shape. The flap 38 is then folded over to cover the seam 36 and secured to using the fastener.