SOUND PROOF UNDERLAYMENT MEMBRANE

20170314259 · 2017-11-02

    Inventors

    Cpc classification

    International classification

    Abstract

    A soundproof underlayment membrane is disclosed. The membrane comprises a main layer having a given thickness made of a flexible material and a plurality of points extending from one of the surfaces of the main layer. The points are located on the surface in order to create an absorbing chamber between the main layer and an adjacent surface on which the membrane is placed, while reducing a surface of contact between floor coverings installed on the membrane and the adjacent surface. By combining at least two different structural elements, the membrane is particularly efficient for sound reduction in a construction such as the impact or structure borne noise (Impact Insulation Class—IIC) and the sound transmission or airborne sound (Sound Transmission Class—SCC). Compared to existing membranes in the fields, the present invention provides a light material, easy to manufacture, ship and install, while providing effective soundproof properties.

    Claims

    1. A soundproof underlayment membrane, the membrane comprising: a main layer having two opposite surfaces and a thickness and made of a flexible material; and a plurality of points extending from at least from one of the opposite surfaces of the main layer; the points being located on the at least one surface in order to create an absorbing chamber between the main layer and an adjacent surface on which the membrane is placed in order to reduce sounds, the plurality of points also reducing a surface of contact between a floor covering installed on the membrane and the adjacent surface.

    2. The membrane of claim 1, wherein the given thickness of the main layer and/or the number of points are selected in order to customize the soundproof property of the membrane.

    3. The membrane of claim 1, wherein the plurality of points are regularly located on the surface from which they extend from and spaced apart of a distance of about 4 to about 12 mm.

    4. The membrane of claim 3, wherein the plurality of points are spaced apart of a distance of about 6 mm.

    5. The membrane of claim 1, wherein the flexible material is made of a non-woven fabric.

    6. The membrane of claim 1, wherein the flexible material is made of a needle-punched non-woven fabric.

    7. The membrane of claim 6, wherein the needle-punched non-woven fabric comprises polyester.

    8. The membrane of claim 7, wherein the needle-punched non-woven fabric has a density of about 250 gsm.

    9. The membrane of any one of claim 1, wherein the points are made of a material selected from the group consisting of rubber, Polyvinylchloride or PVC, silicone or wood.

    10. The membrane of claim 9, wherein the points are made of PVC having a density of about 60 gsm.

    11. The membrane of claim 1, wherein the points have a round base in contact with the main layer with a diameter of from about 1 mm to about 5 mm.

    12. The membrane of claim 11, wherein the diameter is about 2.5 mm.

    13. The membrane of claim 1, wherein the points have a height of from about 1 to about 3 mm.

    14. The membrane of claim 13, wherein the height is about 2 mm.

    15. The membrane of claim 1, wherein the surface opposite to the surface comprising the plurality of points is laminated.

    16. The membrane of claim 15, wherein the laminated surface comprises Polyvinylchloride or PVC.

    17. The membrane of claim 16, wherein the laminated surface has a density of about 100 gsm.

    18. The membrane of claim 1, wherein the membrane is configured to be placed on a floor, walls and/or ceiling of a room.

    19. A method for reducing sound in a construction, the method comprising the steps of: providing a soundproof underlayment membrane as defined in claim 1; and placing the membrane on an adjacent surface with the plurality of points extending from the main layer towards the adjacent surface creating as such an absorbing chamber for reducing a surface of contact between a floor covering installed on the membrane and the adjacent surface.

    20. The method according to claim 19, further comprising the steps of: modifying the thickness of the membrane; and/or selecting the number of points to be provided in the membrane; in order to customize the soundproof property of the membrane.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0030] The above and other objects, features and advantages of the invention will become more readily apparent from the following description, reference being made to the accompanying drawings in which:

    [0031] FIG. 1 is a schematic view of the membrane in contact with a support in accordance with a preferred embodiment of the invention;

    [0032] FIG. 2 is bottom schematic view of the membrane illustrated in FIG. 1;

    [0033] FIG. 3 is a picture of the membrane in accordance with a preferred embodiment of the invention; and

    [0034] FIG. 4 is a close-up view of the top and bottom of the membrane in accordance with a preferred embodiment of the invention.

    DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS

    [0035] A novel soundproof underlayment membrane will be described hereinafter. Although the invention is described in terms of specific illustrative embodiment(s), it is to be understood that the embodiment(s) described herein are by way of example only and that the scope of the invention is not intended to be limited thereby.

    [0036] As illustrated in FIGS. 1 to 4, the invention first consists in a soundproof underlayment membrane (1). The membrane comprises a main layer (3) having a given thickness. The main layer (3) can be made of a flexible material, generally a light material. For instance, the flexible material can be made of a non-woven fabric, preferably a needle-punched non-woven fabric.

    [0037] In accordance with a preferred embodiment of the invention, the main layer is made of a needle-punched non-woven fabric of polyester. Other materials having similar properties than polyester can be used.

    [0038] In accordance with a preferred embodiment of the invention, the polyester needle-punched non-woven fabric has a density of about 250 gsm.

    [0039] By “about”, it is meant that the data value can vary within a certain range depending on the margin of error of the method or device used to evaluate such data. A margin of error of 10% is generally accepted.

    [0040] As illustrated on FIGS. 1, 3 and 4, the membrane (1) also comprises a plurality of points (5) extending from the bottom surface (7) of the main layer. The points could also extend from the other surfaces of the main layer (3), but this embodiment is not illustrated therein.

    [0041] The points (5) create an absorbing chamber (11) between the main layer (3) and an adjacent surface (9) on which the membrane is placed. The air trapped in the chamber (11) allows reducing sounds. The presence of the points between the main floor of the construction (11) and any sort of covering elements (19) such as laminate, (hard)wood floor, engineered floor, mat or carpet, or the like, placed on the membrane also considerably reduce the surface of contact between the covering element (19) and the construction (9) and therefore considerably reduce the structure borne noise, for instance when someone walk on the covering element (19) of the floor or an object falls on the same.

    [0042] In accordance with a preferred embodiment of the invention, the given thickness of the main layer and/or the number of points can be selected in order to customize the soundproof property of the membrane.

    [0043] As illustrated on FIG. 2, the plurality of points can be regularly located on the surface from which they extend from and spaced apart of a distance of about 4 to 12 mm, more preferably of about 6 mm. FIG. 2 shows a pattern of points organised as columns and rows in view of the edges of the membranes (13), whereas FIG. 4 shows a different pattern in view of the edge (13) of the membrane (1) wherein the points form diamonds (15) or intercalated columns and rows. Other patterns could be considered without departing from the present invention.

    [0044] In accordance with a preferred embodiment of the invention, wherein the points are made of a resilient or non-resilient material, such as but not limited to rubber, Polyvinylchloride or PVC, wood such as cork, or silicone. In case of PVC, the plurality of points made of PVC form a layer having a density of about 60 gsm.

    [0045] In accordance with a preferred embodiment of the invention, the points may have a round base in contact with the main layer, such as the base illustrated on FIG. 1. In general, the diameter of the base is of from 1 to 5 mm, more preferably of about 2.5 mm. The points can have a height of from 1 to 3 mm, more preferably of about 2 mm. The present invention is not limited to the sized and shape of the points forming the chamber (11).

    [0046] By “about” used in the present application, it is meant that the value of length (mm) can vary within a certain range depending on the margin of error of the method or device used to evaluate such length. A margin of error of 10% is generally accepted.

    [0047] As illustrated on FIG. 1, the membrane of the invention can have the surface opposite to the surface comprising the plurality of points, laminated (17). Preferably, the laminated surface comprises Polyvinylchloride or PVC. The laminated surface may have a density of about 100 gsm. The laminate (17) is used to reinforce the membrane, to provide better resistance and soundproof properties, and to reduce or avoid vapor transmission. Indeed, the laminate plays the role of vapor retarder with a given perm rating, generally inferior to 1. For instance, a laminate of unplasticized PVC with a thickness of 0.002 inch has a perm rate of about 0.68.

    [0048] Regarding the making of the membrane, the points can be applied to the main layer either by extrusion or by adhesion.

    [0049] As aforesaid, the intention also concerns a method for reducing sound in a construction. The method comprising the steps of: [0050] a) providing a main layer of a membrane having a given thickness and made of a flexible material; [0051] b) providing a plurality of points extending from the surface of the main layer; [0052] c) creating an absorbing chamber in order to reduce sounds by placing the membrane on an adjacent surface with the plurality of points extending from the main layer towards the adjacent surface.

    [0053] The different elements of the method are as disclosed above.

    [0054] In accordance with a preferred embodiment of the invention, the method further comprises the steps of modifying the given thickness of the membrane and/or of selecting the number of points to be provided in the membrane, in order to customize the soundproof property of the membrane. The thickness of the main layer and the number of points of the membrane, their size and location, and the nature of the material used to make the points can be selected for customizing the membrane in view of the building construction requirements for soundproof property.

    [0055] By combining at least two different elements, the membrane is particularly efficient for sound reduction in a construction. The membrane absorbs the impact and/or structure borne noise (Impact Insulation Class—IIC) but also the sound transmission or airborne sound (Sound Transmission Class—SCC). The membrane considerably reduces the surface of contact between the floor covering and the main construction floor. Compared to existing membranes in the fields, the present invention provides a light material, easy to manufacture, ship and install, while providing effective soundproof properties.

    [0056] While illustrative and presently preferred embodiment(s) of the invention have been described in detail hereinabove, it is to be understood that the inventive concepts may be otherwise variously embodied and employed and that the appended claims are intended to be construed to include such variations except insofar as limited by the prior art.