LIQUID DISPENSER

20190307228 ยท 2019-10-10

    Inventors

    Cpc classification

    International classification

    Abstract

    A liquid dispenser for discharging liquids, in particular in rod shape. The liquid dispenser has a liquid store for receiving liquid prior to discharge, and a discharge opening for discharging the liquid. The liquid dispenser has a pumping device having an actuating surface for manual actuation, by which liquid is conveyed from the liquid store to the discharge opening. The liquid store is provided within an exchangeable container unit, couplable to a main unit including the pumping device (62) and the discharge opening, and is uncouplable therefrom. For the exchangeable coupling of the container unit to the main unit is provided a coupling device, by which the container unit, by pressing against the main unit, is alternately couplable thereto and releasable therefrom. The coupling device possesses two coupling members, wherein one coupling member is provided on the container unit and one coupling member on the main unit.

    Claims

    1. A liquid dispenser for discharging pharmaceutical or cosmetic liquids, having the following features: a. the liquid dispenser has a liquid store for receiving the liquid prior to discharge, and b. the liquid dispenser has a discharge opening for discharging the liquid, and c. the liquid dispenser has a pumping device having an actuating surface for the manual actuation of the pumping device, by means of which liquid can be conveyed from the liquid store to the discharge opening, d. the liquid store is provided within an exchangeable container unit, which is couplable to a main unit comprising the pumping device and the discharge opening, and is uncouplable therefrom, e. for the exchangeable coupling of the container unit to the main unit is provided a coupling device, by means of which the container unit, by pressing against the main unit, is alternately couplable thereto and releasable therefrom, and f. the coupling device possesses two coupling members, wherein one coupling member is provided on the container unit, and one coupling member on the main unit.

    2. The liquid dispenser as claimed in claim 1, having the following feature: a. the main unit possesses a receiving shaft for receiving the container unit, wherein the container unit, in the state connected to the main unit, is set back from a rim which circumferentially surrounds an opening of the receiving shaft, or protrudes by 5 mm or less, preferably by 2 mm or less, in particular preferably by 1 mm or less.

    3. The liquid dispenser as claimed in claim 1, having the following features: a. the two coupling members are matched to one another in such a way that, in a state inserted one into the other, they are rotatable relative to one another about a rotational axis, and b. on one coupling member is provided at least one retaining cam, and on the other coupling member is provided a corresponding retaining structure having stop faces interrupted in the peripheral direction by gaps, so that the coupling members, in one relative rotation setting, can be released from one another in the direction of the rotational axis when the retaining cam is aligned with a gap, and in another relative rotation setting, in which the retaining cam is aligned with a stop face, are in the direction of the rotational axis positively secured against release.

    4. The liquid dispenser as claimed in claim 3, having the following features: a. on at least one of the coupling members is provided a gearing-like ramp structure, and on the other coupling device a hereto corresponding mating surface, by which the two coupling devices are rotated relative to one another about the rotational axis into a defined desired relative rotation setting when they are pushed axially toward one another, and b. the number of single ramps of the ramp structure which act in one of the rotational directions tallies with the sum of the stop faces and the gaps provided between them.

    5. The liquid dispenser as claimed in claim 4, having the following features: a. on the retaining structure, inclined sliding surfaces extended in the peripheral direction are respectively provided between the gaps and the stop faces, and b. in the desired relative rotation settings, the retaining cam is oriented in such a way relative to the retaining structure that it is aligned with one of the sliding surfaces.

    6. The liquid dispenser as claimed in claim 1, having the following feature: a. a spring device is provided, which in the coupled state of the coupling device, arranged between the coupling members, applies to these a mutually opposing force in a separation direction, preferably having at least one of the following features: b. the spring device comprises a helical spring, and/or c. the spring device is fixed on one of the coupling members and extends in the direction of the other coupling member, and/or d. on the other coupling member is provided a guide structure for the spring, which guides the spring during the convergence of the coupling members, and/or e. the spring device is configured in one piece with one of the coupling devices.

    7. The liquid dispenser as claimed in claim 1, having the following features: a. the container unit possesses an outlet opening, which in the delivery state is closed off by a membrane, and b. on the coupling member of the main unit is provided an opening sleeve, which, upon the coupling of the container unit, punctures the membrane and thereby opens the container unit.

    8. The liquid dispenser as claimed in claim 7, having the following feature: a. the retaining cam is provided on the outer side of the opening sleeve.

    9. The liquid dispenser as claimed in claim 7, having the following feature: a. the membrane is configured in one piece with the coupling member of the container unit.

    10. The liquid dispenser as claimed in claim 3, having the following feature: a. the coupling members possess a common clamping device, by which the coupling member, in a relative setting in which they are spaced further apart compared to the positively secured relative setting, are fixable relative to one another.

    11. The liquid dispenser as claimed in claim 7, having the following feature: a. the coupling member of the main unit possesses an element, which has both the opening sleeve and a fixing region for the spring device.

    12. The liquid dispenser as claimed in claim 1, having at least one of the following features: a. a housing of the liquid dispenser has a rod shape, wherein the length is at least 100 mm and the maximum diameter is at most 18 mm, and/or b. the actuating surface of the liquid dispenser is configured for actuation orthogonally to a direction of principal extent of the liquid dispenser, and/or d. at least in the region of the actuating surface, the liquid dispenser has a diameter of at most 22 mm.

    13. The liquid dispenser as claimed in claim 1, having the following feature: a. the liquid store is filled with one of the following liquids: pharmaceutical or cosmetic liquid for topical application, cosmetic and/or pharmaceutical skin care product, make-up liquid, lip gloss, nail varnish, mascara or eyeshadow liquid, make-up remover or nail varnish remover.

    14. The liquid dispenser as claimed in claim 1, having the following features: a. the discharge opening is provided on an applicator surface which is angled in relation to the direction of principal extent of the liquid dispenser, and/or b. the discharge opening is provided on an applicator which possesses a sponge or a textile application surface, and/or c. the discharge opening is provided with a rotatable application roller or application ball for rolling down in particular on the skin of the user, and/or d. the applicator is provided with a brush, wherein the discharge opening preferably is preferably arranged such that the liquid exiting the discharge opening exits in the region of bristles of the brush.

    15. A liquid dispenser set having the following features: a. the liquid dispenser set comprises a liquid dispenser as claimed in claim 1, comprising a main unit and a container unit, and b. the liquid dispenser set comprises at least one further container unit, which is configured for coupling to the main unit.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0040] Further advantages and aspects of the invention emerge from the claims and from the following description of a preferred illustrative embodiment of the invention, which is described below with reference to the figures.

    [0041] FIGS. 1 and 2 show the dispenser according to the invention in a sectioned and a non-sectioned representation.

    [0042] FIG. 3 shows the dispenser of FIG. 1 prior to the insertion of the container unit into the receiving shaft of the main unit.

    [0043] FIGS. 4A to 4C and 5A to 5C show the two coupling members of the coupling device for fastening the container unit to the main unit.

    [0044] FIGS. 6A to 6C, 7A to 7C and 8A to 8C show the coupling process for coupling the container unit to the main unit.

    DETAILED DESCRIPTION OF THE ILLUSTRATIVE EMBODIMENTS

    [0045] FIGS. 1 and 2 show a liquid dispenser 10 according to the invention in an overall representation.

    [0046] The liquid dispenser 10 has basically a rod shape and is from the outside, with the exception of the applicator 70 and the actuating handle 64, outwardly basically rotationally symmetric in form. With reference to FIG. 2, in which the liquid dispenser 10 is shown in sectioned represented and with mounted cap 12, the individual components are described. The liquid dispenser 10 possesses a main unit 60 having a grip 61, on which the actuating handle 64 is provided. This actuating handle 64 is disposed in an aperture 63 in the grip 61 and bounds a pumping chamber 65. By elastic pressing-in of the actuating handle 64, the volume of the pumping chamber 65 can be reduced, so that liquid present therein is forced through a pressure relief valve 65A in the direction of a discharge opening 72 on the applicator 70. If the actuating handle 64 is released again, then a pressure relief valve 65B, which is provided between the pumping chamber 65 and a liquid store 24, opens, so that, under the impact of the expansion of the pumping chamber 65, this is filled up with liquid from the liquid store 24.

    [0047] The liquid store 24 is part of a container unit 20, which on the end facing away from the discharge opening 72 is inserted in a receiving shaft 66 of the main unit 60. The container unit 20 possesses a coupling member 32, which is described in greater detail further below and which, in the state of FIG. 2, is connected to a coupling member 34 belonging to the main unit.

    [0048] FIG. 3 shows the main unit 60 and the container unit 20 in separated representation. It can be seen that the container unit 20 consists of two elements, namely an end-closed sleeve element 21, which defines the volume of the liquid store 24, and a thereon mounted element 23, which provides the coupling member 32.

    [0049] In the state of FIG. 3, in which the container unit 20 has not yet been inserted, an outlet opening 22 of the container unit 20 is still closed off, wherein for this is provided a membrane 26, which forms an integral part with the coupling member 32 on the container unit. Because of the use of just two elements, the container unit 20 can thus be produced very economically.

    [0050] The essential components of the main unit 60 have already previously been described. Reference is therefore made only to the coupling member 34 belonging to the main unit, which possesses an opening sleeve 56 provided with a cutting tip, which in the designated manner, upon the insertion of the container unit 20, pierces the membrane 26.

    [0051] The two coupling members 32, 34 are described once again below with reference to FIGS. 4A to 4C and 5A to 5C.

    [0052] FIG. 4A to 4C show the coupling member 34 belonging to the main unit. This has a comparatively simple structure. An outer sleeve 51 possesses on the end face a gearing-like ramp structure 53 having a total of 12 teeth 52, which are arranged in the manner of a spur gearing and respectively possess two individual ramps 54. In the center of the coupling member 34 is provided said opening sleeve 56, which, in the designated manner, is provided to open said membrane and is configured as a hollow tube, in order to be able to convey liquid from the liquid store 24. In the radial direction, two retaining cams 50 point, on opposite sides, away from the opening sleeve 56. The coupling member 34 additionally possess a fixing region 58 for the fitting of a metallic helical spring 55.

    [0053] The coupling member 32, represented in FIG. 5A to 5C, on sides of the container unit 20 likewise possesses along its outer periphery a gearing-like ramp structure 43. Surrounded by this ramp structure 43 is an inner sleeve 47, wherein between the ramp structure 43 and the inner sleeve 47 is provided a guide structure 46 for receiving said helical spring 55.

    [0054] On the inner side of the inner sleeve 47, pointing in the direction of the coupling member 34 belonging to the main unit, is provided a lead-in structure 48, and on the opposite side a retaining structure 40. The retaining structure 40 comprises respectively six gaps 41 and six stop faces 42, wherein sliding surfaces 45 are respectively provided between the gaps 41 and the stop faces 42.

    [0055] The joining of the coupling devices 30 consisting of the two coupling members 32, 34 is illustrated with reference to FIG. 6A to 8C.

    [0056] FIG. 6A to 6C show a first phase, in the course of which the container unit 20 is inserted into the receiving shaft 66 in the direction of the arrow 6. As the container unit 20 approaches the coupling member 34 of the main unit 60, the opening sleeve 56 is slid into the outlet opening 22 of the container unit 20 and pierces the membrane 26. At the same time, the helical spring 55 enters the guide structure 46 provided for this purpose, until, in the state of FIG. 6A to 6C, it reaches the bottom thereof, so that a continued movement of the container unit 20 is made in the direction of the coupling member 34 against the force of this helical spring. Shortly after the membrane has been pierced by the opening sleeve 56, the retaining cams 50 enter the sleeve 47 and are brought by the lead-in structure 48 into one of six possible defined rotation settings, wherein, for this purpose, the container unit 20 and the main unit 60 as a whole change to a small extent their relative rotation setting. Upon the continued insertion of the container unit 20, the ramp structures 43, 53, from the setting of FIG. 7A to 7C, enter into engagement with one another. As a result, a further rotation of the main unit 60 and the container unit 20 relative to one another ensues, until the state of FIG. 8A to 8C, in which a desired rotational relative setting between the main unit 60 and the container unit 20 is obtained, is reached. In this desired relative setting, the retaining cams 50 are oriented in alignment with sliding surfaces 45 of the coupling member 32, which sliding surfaces 45 are of the kind which are oriented sloping in the direction of the stop faces 42. The result is that, when the spring device 55 relaxes with the cessation of the force application to the container unit 20, the retaining cams first come into contact with said sliding surfaces, slide down on these and are then pressed against the stop faces 42. A positive locking of the coupling members 32, 34 one to another is now obtained.

    [0057] The separation which occurs after emptying of the container unit 20 is realized analogously.

    [0058] Starting from the described state, in which retaining cams 50 bear against the stop faces 42, force is applied to the container unit 20 in the same direction 6 as with the coupling, thus in the direction of the main unit 60. The retaining cams 50 are hereby forced out of the depressions in the stop faces 42 and the ramp structures 43, 53 re-engage. They again give rise to a rotation, so that the retaining cams are again arranged in alignment with the sliding surfaces 45, though now with sliding surfaces 45 which are oriented sloping in the direction of gaps 41. The cessation of the force application at the rear end of the container unit 20 now results in the retaining cams being placed onto those described sliding surfaces 45, sliding down on these, and thus intruding into the channels which form the gaps 41. Since these are continuous in shape, as is shown, for instance, in FIG. 5B, the container unit can now be withdrawn from the receiving shaft 66 of the main unit 60.