Skin care applicator
10322270 ยท 2019-06-18
Assignee
Inventors
Cpc classification
A61N2/06
HUMAN NECESSITIES
A61M37/00
HUMAN NECESSITIES
A61M2037/0007
HUMAN NECESSITIES
A45D40/28
HUMAN NECESSITIES
International classification
A61M35/00
HUMAN NECESSITIES
A61N2/06
HUMAN NECESSITIES
A61M37/00
HUMAN NECESSITIES
Abstract
An applicator for use with a skin care composition, comprising a magnetic element disposed inside the applicator and a cover that at least partially covers the magnetic element. The cover has a thickness of between 0.1 mm and 0.55 mm and is formed of a material having a thermal conductivity of at least 50 W/mK.
Claims
1. An applicator for use with a skin care composition, comprising: a) a magnetic element that has an overall magnetic field strength of between 12 mT and 32 mT; b) a cover that at least partially covers the magnetic element, wherein the cover has a thickness of between 0.1 mm and 0.55 mm, is formed of a material having a thermal conductivity of at least 50 W/mK; and c) an applicator body, wherein the magnetic element, the cover, and the applicator body each comprise a substantially elongate flat section and a curved tip which are fitted together such that the curved tip of the magnetic element is contiguous with the curved tip of each of the cover and the applicator body to form the applicator.
2. An applicator as claimed in claim 1, wherein the cover is formed of metal.
3. An applicator as claimed in claim 1, wherein the magnetic element is formed of a magnetic substrate having a skin facing side positioned substantially in parallel with an inside surface of the cover.
4. An applicator as claimed in claim 3, wherein the skin facing side of the magnetic substrate lies flush with the inside surface of the cover.
5. An applicator as claimed in claim 3, wherein a skin facing side of the cover has a lower co-efficient of friction than the skin facing side of the magnetic substrate.
6. An applicator as claimed in claim 3, wherein the thermal conductivity of the cover is greater than a thermal conductivity of the magnetic substrate.
7. An applicator as claimed in claim 3, wherein the cover exhibits a coefficient of friction that is up to 10 times less than that of the magnetic substrate.
8. An applicator as claimed in claim 3, wherein the magnetic substrate is formed of strontium ferrite and the cover is formed of aluminium.
9. An applicator as claimed in claim 8, wherein the cover is formed of plated aluminium.
10. An applicator as claimed in claim 1, wherein the cover is removable.
11. An applicator as claimed in claim 1, wherein the cover extends over the curved tip of the applicator body.
12. An applicator as claimed in claim 1, further comprising a handle formed integrally with the cover.
13. An applicator as claimed in claim 12, wherein the applicator has an elongate shape and a ratio of length of handle to cover on the skin contact side of the applicator is between 1:1 and 4:1.
14. An applicator as claimed in claim 12, wherein the handle is formed of polyvinyl chloride.
15. An applicator as claimed in claim 1, wherein the magnetic element is a magnetic array formed of one or more dipole pairs of alternating north and south poles.
16. The applicator of claim 1, wherein a ratio of length of the substantially flat section to the curved tip is between 1:1 and 2:1.
17. The Applicator of claim 1, wherein the magnetic element is disposed between the cover and the applicator body in a sandwich configuration.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments of the invention will hereinafter be described, by way of example, with reference to the accompanying drawings, in which:
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION OF THE INVENTION
(8) This invention is applicable to applicators comprising one or more magnetic element. The applicator is suitable for either applying a skin care composition to a target portion of skin or for placing above a target portion of skin to which a skin care composition has already been applied. The specific form and ergonomics of the applicator may vary according to the intended target area of application on skin. For example, in some cases, when the skin care composition is a cream intended for application to the whole body, the applicator may be required to apply the cream to large surface body parts, for example, the legs, arms, abdomen and/or back. In this case, the applicator will need to be of a suitable size and shape to enable a user to quickly and easily cover a relatively large surface area. Alternatively, the skin care composition may be intended for use in smaller areas such as the face (e.g., cheeks, forehead, chin, nose, and peri-orbital regions). In such cases, the applicator will need to be smaller to allow more precise application of the skin care composition.
(9) The applicator described herein has at least one magnetic element embedded therein. It is known, for example in WO 2011/156869, that applying a skin care composition using a magnetic element (for example, a dipolar magnetic array) can improve penetration of certain skin care actives into skin by exploiting the unique diamagnetic properties of the skin care actives. Diamagnetism is the property of an object or material which causes it to create a magnetic field in opposition to an externally applied magnetic field, thus causing a repulsive effect. Controlling this repulsive effect, and thereby penetration into skin, requires careful design of the magnetic element or array to ensure compatibility with the target skin care active. As external factors may also affect or influence this repulsive effect, the applicator within which the magnetic element or magnetic array is embedded also requires careful design.
(10) The applicator described herein is provided with a cover that partially or wholly covers the magnetic element embedded within the applicator. The cover may have a thickness of between 0.1 mm and 5.5 mm and a thermal conductivity of at least 50 W/mK. Surprisingly, it has been discovered that providing an applicator with such a cover provides sensory benefits, such as cooling of skin, without negatively impacting diamagnetic repulsion of a compatible skin care active using.
(11)
(12) The cover is formed of a material having thermal conductivity of at least 50 W/mK, 100 W/mK or 200 W/mK. The cover described herein acts as a heat sink for the skin's surface, drawing heat away and providing a beneficial cooling effect on the user's skin. The higher the thermal conductivity of a material, the more efficient it will be at transferring heat. However, materials with high conductivity tend to be more expensive and are oftentimes more brittle, thus making them more difficult to manufacture at the thicknesses required herein. Thus, for practical reasons relating to manufacturability, cost and compatibility with the magnetic element, the cover may have a maximum thermal conductivity of up to 500 W/mK, 1000 W/mK, 2000 W/mK or 3000 W/mK.
(13) The cover will generally be formed of material that has higher thermal conductivity than the magnetic substrate from which the magnetic element is formed. The cover may be formed from, for example, a metal, metal alloy, plated metal or plastic (e.g., galvanized, electroplated or vacuum metalized with, for example, chrome, nickel or tin), or loaded plastic (for example, plastic such as PE, PP, PET or ABS, loaded with a material such as metal powder, compounds, minerals (chalk/calcium carbonate/ceramic) or black carbon or graphite), glass, ceramics, etc. For example, the cover may be formed of materials such as aluminium, brass, copper, silver, graphite, diamond, diamond like carbon or combinations thereof.
(14) A suitable cover may, for example, be formed of aluminium or plated aluminium, having a thermal conductivity of approximately 167 W/mK. Using aluminium or plated aluminium additionally provides a desirable aesthetic finish to the cover.
(15) Providing a thick skin contact surface area with high thermal conductivity maximizes the amount of heat transfer from a target area of skin into the applicator, thus also maximizing the cooling benefit during use. Conversely, however, if the cover is made too thick, the cover would interfere with the magnetic field generated by the magnetic element and, as a result, the depth of penetration of a target skin active into skin. It has been found that there is an optimal thickness for the cover where the cover can provide a perceivable cooling effect on skin, without significantly impacting penetration of the skin care active. Thus, the cover has a thickness of from 0.1 mm, 0.15 mm, 0.2 mm, 0.25 mm or 0.3 mm to 0.35 mm, 0.4 mm, 0.5 mm or 0.55 mm.
(16) The skin contact surface of the cover may be substantially flat and/or slightly rounded to provide good thermal contact with skin tissue when in use. For example, when the applicator is intended for use around peri-orbital areas, it is desirable to provide a cover with a slightly rounded and pointed tip, as shown in
(17) The cover may be permanently joined to the applicator, or the cover may be removable, detachable and/or replaceable. In some instances, the cover may be removed and reattached, for example, to facilitate cleaning the cover and/or applicator. In some instances, the cover may be disposable. For example, the cover may be removed and discarded after one or more uses and replaced with a different cover. The cover may be joined to the applicator by any suitable means known in the art.
(18) It may be desirable for the cover to have a coefficient of friction that is less than that of the magnetic substrate, to provide a more desirable user experience when applying a skin care composition with the applicator. For example, the cover may have a dry coefficient of friction (i.e., a coefficient of friction measured without a composition) that is between 10 and 50% less than the magnetic substrate (e.g., 15%, 20%, 25%, 30%, 35%, 40%, or even 45% less) according to the Friction Test described below. When used to apply a skin care composition, the cover may exhibit a coefficient of friction that is up to 10 times less than the magnetic substrate (for example, between 2 and 10 less, 3 and 7 or even between 4 and 6 less).
(19) The magnetic element is located within the applicator adjacent an inside surface 32 of the cover. The magnetic element may be positioned substantially in parallel to the cover such that, in use, the magnetic element will be substantially parallel to any surface on which the applicator is used. In one example, the magnetic element is positioned flush with the inside surface with no air-gaps between the skin facing side 22 of the magnetic element and the inside face 32 of the cover 30 to minimize losses of magnetic field strength across the cover.
(20) The magnetic element may be formed of any one of numerous known ferromagnetic substrates, including, but not limited to: an iron compound (e.g., a ferrite such as barium ferrite, magnetite, or mild steel), a cobalt material, a strontium material, a barium material, a nickel material, alloys and oxides of these, combinations thereof and the like. The material may have a metalloid component such as boron, carbon, silicon, phosphorous or aluminium. Rare materials such as neodymium or samarium may also be used. A suitable magnetic substrate may be formed of a ferromagnetic material such as strontium ferrite, having a thermal conductivity of approximately 4 W/mK.
(21) The magnetic substrate may be formed of a rigid or flexible material, dependent on the intended use or design of the applicator. For example, where the applicator has one or more curved skin contact surfaces, or is formed as, for example, a roller-ball applicator, the substrate may be formed of a flexible material, such as strontium ferrite impregnated in polyvinyl chloride. Alternatively, where the applicator has a generally flat skin contact surface, the substrate may be formed of a rigid material.
(22) The magnetic element may have an overall magnetic field strength of between 12 mT and 32 mT to enable targeted penetration of compatible skin care actives to a pre-determined layer of skin.
(23) The applicator is optionally provided with a handle. The handle may be formed integrally with and of the same material as the cover. Alternatively, the handle may be formed of a different material to the cover, for example, the plastic, polymeric material or ceramic. In an example, the cover may be formed of polyvinyl chloride or rubber to provide a nice tactile handle for use during application of the skin care composition.
(24) The applicator shown in
(25) As shown in
(26) An alternative form of applicator 200, shown in
(27) The applicator shown in
(28) The applicator shown in
(29) It will be appreciated that although the covers shown herein are generally rectangular or annular in shape, the cover may be formed in a number of different shapes, for example, triangular, square, oval etc. Furthermore, although the handle is shown generally in parallel with or perpendicular to the cover, the handle could extend in a number of different ways. For example, the handle of the applicator shown in
(30) In use, a user should be able to hold the handle and should have an appropriately sized and shaped skin contact surface with which to either apply a composition or to smooth over skin after application of a skin care composition.
(31) The cover may be transparent to enable a user to see the magnetic element situated beneath the cover. The magnetic element may be attached to the cover by any known means, for example, using adhesive. Alternatively, the magnetic element may be secured in place by the cover.
(32) Coefficient of Friction Method
(33) This method provides a means to determine the coefficient of friction of material surfaces herein. Wet coefficient of friction refers to the coefficient of friction measured on a surface on which a skin care composition is present. Dry coefficient of friction refers to the coefficient of friction measured on a surface on which a skin care composition is not present.
(34) Coefficient of friction is the ratio of the force of friction between two bodies and the force pressing them together. In the present method, the instrument used to determine the coefficient of friction is a Bruker UMT-2 tribometer. However, an equivalent tribometer may be used, as desired. A purple nitrile glove material is used as one of the two materials in the test. The other material the test surface (e.g., skin contacting surface of the applicator or cover). The purple nitrile glove material is placed over the probe of the tribometer. The test surface to be measured is placed in contact with the nitrile-covered probe of the instrument, and the force is measured according to the manufacturer's operating instructions for the instrument.
(35)
(36) Each leg of the test was repeated three times. The coefficient of friction results are shown in Table 13 below.
(37) TABLE-US-00001 TABLE 13 Coefficient of Friction Surface 1 2 3 Avg. Applicator surface (dry) 1.90 1.97 1.86 1.91 Applicator surface (wet) 0.45 0.62 0.45 0.50 Cover surface (dry) 0.77 0.96 1.09 0.94 Cover surface (wet) 0.06 0.06 0.06 0.06
(38) The dimensions and values disclosed herein are not to be understood as being strictly limited to the exact numerical values recited. Instead, unless otherwise specified, each such dimension is intended to mean both the recited value and a functionally equivalent range surrounding that value. For example, a dimension disclosed as 40 mm is intended to mean about 40 mm.
(39) All documents cited in the Detailed Description of the Invention are, in relevant part, incorporated herein by reference; the citation of any document is not to be construed as an admission that it is prior art with respect to the present invention. To the extent that any meaning or definition of a term in this document conflicts with any meaning or definition of the same term in a document incorporated by reference, the meaning or definition assigned to that term in this document shall govern.
(40) While particular embodiments of the present invention have been illustrated and described, it would be obvious to those skilled in the art that various other changes and modifications can be made without departing from the spirit and scope of the invention. It is therefore intended to cover in the appended claims all such changes and modifications that are within the scope of this invention.