DISCHARGE HEAD FOR THE NASAL APPLICATION OF LIQUID FROM A PRESSURE RESERVOIR
20200171252 · 2020-06-04
Inventors
Cpc classification
B65D83/228
PERFORMING OPERATIONS; TRANSPORTING
A61M11/007
HUMAN NECESSITIES
A61M15/009
HUMAN NECESSITIES
B05B1/3452
PERFORMING OPERATIONS; TRANSPORTING
B65D83/206
PERFORMING OPERATIONS; TRANSPORTING
B05B1/3436
PERFORMING OPERATIONS; TRANSPORTING
B65D83/226
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B1/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A discharge head for the nasal application of pharmaceutical liquid from a pressure reservoir which has an outlet valve with a valve connector, to which force can be applied counter to a spring force in order to open the outlet valve. The discharge head has a nasal applicator which extends outward from an actuating surface and at the end of which a discharge opening is provided. The discharge opening is connected in a fluid-communicating manner to a hollow tube through an applicator channel of the nasal applicator, for connection to the pressure reservoir. The nasal applicator has an inner component connected integrally to the actuating surface and an outer component separate from the inner component and attached to the inner component in a surrounding manner. The discharge opening is provided in the outer component, and the outer component and the inner component together bound the applicator channel.
Claims
1. A discharge head for the nasal application of pharmaceutical liquid from a pressure reservoir which has an outlet valve with a valve connector, to which force can be applied counter to a spring force in order to open the outlet valve, comprising the following features: a. the discharge head has a base and a coupling device which is provided on the latter and by means of which the discharge head is fastenable to the pressure reservoir, b. the discharge head has a shiftable actuating surface which is shiftable in relation to the base and on which a plunger configured as a hollow tube is provided, said plunger being shiftable together with the actuating surface for the purpose of applying force to the valve connector of the pressure reservoir, c. the discharge head has a nasal applicator which extends outward from the actuating surface and at the end of which a discharge opening is provided, said discharge opening being connected in a fluid-communicating manner to the hollow tube through an applicator channel of the nasal applicator, d. the nasal applicator has an inner component which is connected integrally to the actuating surface, and e. the nasal applicator has an outer component which is designed as a component separate from the inner component and is attached to the inner component in a manner surrounding the latter, and f. the discharge opening is provided as an opening in the outer component, and g. the outer component and the inner component together bound the applicator channel.
2. The discharge head as claimed in claim 1, comprising the following additional features: a. the inner component and the outer component together form a vortex chamber mounted upstream of the discharge opening.
3. The discharge head as claimed in claim 1, comprising the following additional features: a. the outer component is attached to the inner component in such a manner that, in the attached state, the outer component is movable relative to the inner component, and b. the inner component and the outer component are designed in such a manner that the applicator channel and/or the vortex chamber are/is variable geometrically by a relative shifting of the inner component and the outer component.
4. The discharge head as claimed in claim 3, comprising the following additional features: a. the inner component and the outer component are designed in such a manner that the applicator channel is variable with respect to its clear cross section by a relative shifting of the inner component and the outer component, and in particular comprising the additional feature: b. the inner component and the outer component are designed in such a manner that the applicator channel is closable by a relative shifting of the inner component and the outer component.
5. The discharge head as claimed in claim 3, comprising the following additional features: a. the inner component and the outer component are designed in such a manner that the characteristics of the liquid flowing out through the discharge opening can be influenced by the relative movability of the inner component and the outer component at an identical inflow pressure of liquid into the nasal applicator, in particular comprising at least one of the following additional features: b. in two different positions of the outer component relative to the inner component, at the same inflow pressure different liquid flows are dispensed through the discharge opening, and/or c. in two different positions of the outer component relative to the inner component, at the same inflow pressure liquid having a differing extent of droplet formation or different droplet size is dispensed, and/or d. in two different positions of the outer component relative to the inner component, a swirl is induced to a differing extent in the liquid to be dispensed.
6. The discharge head as claimed in claim 3, comprising one of the following additional features: a. the outer component is movable in a purely linear manner in relation to the inner component, or b. the outer component is movable in a purely rotational manner in relation to the inner component, or c. the outer component is movable in a combined linear and rotational manner in relation to the inner component.
7. The discharge head as claimed in claim 1, comprising the following additional features: a. a depression is provided in a transition region between the inner component and the actuating surface, and b. a proximal edge of the outer component dips into said depression in at least one end position of the outer component in relation to the inner component.
8. The discharge head as claimed in claim 7, comprising the following additional feature: a. the inner component and the outer component are movable toward each other between two end positions, wherein the proximal edge of the outer component is arranged at least in sections and preferably in an encircling manner in the two end positions within the depression.
9. The discharge head as claimed in claim 1, comprising the following additional features: a. the inner component has a first sleeve portion, and b. the outer component has a second sleeve portion, and c. an outer side of the first sleeve portion has fixing means and/or guide means, by means of which the outer component is fastened to and/or guided on the inner component, and d. an inner side of the first sleeve portion has a sealing surface against which the second sleeve portion lies in a sealing manner such that a common interior of the two sleeve portions forms a portion of the applicator channel by means of which the discharge opening is connected to the plunger designed as a hollow tube.
10. The discharge head as claimed in claim 1, comprising at least one of the following features: a. the actuating surface and the base and the coupling device, provided on the latter, of the discharge head are designed as an integral component, and/or b. the actuating surface and the plunger designed as a hollow tube are designed as an integral component.
11. The discharge head as claimed in claim 1, comprising the following feature: a. the outer component and the actuating surface have different colorings and/or different materials.
12. The discharge head as claimed in claim 1, comprising the following feature: a. the actuating surface is attached pivotably to the base, preferably by a plastics bridge which integrally connects the base and the actuating surface and acts as a pivoting joint, preferably comprising the additional feature: b. in the delivery state a securing bridge is provided on a side opposite the plastics bridge, said securing bridge integrally connecting the actuating surface and the base and intentionally breaking upon first actuation.
13. The discharge head as claimed in claim 1, comprising at least one of the following features: a. an axis defined by the discharge direction of the discharge opening and/or by the center axis of rotation of the outer component in relation to the inner component encloses an angle of between 5 and 85, preferably an angle of between 10 and 50, with a placing-on direction of the discharge head onto a pressure reservoir, and/or b. the nasal applicator is designed as an elongate applicator with a length of at least 20 mm protruding freely from the actuating surface, and/or c. the nasal applicator is designed as an elongate applicator with a shaping tapering in the direction of the discharge opening, and/or d. the discharge opening has a minimum cross-sectional area of less than 4 mm.sup.2, in particular of less than 2 mm.sup.2, and/or e. the vortex chamber is assigned at least one directing surface for generating a swirl, said directing surface being inclined in relation to a tangential direction to the discharge direction, wherein said directing surface is provided on an inner side of the outer component, and/or f. the coupling device comprises latching edges which are integrally formed on the base and are latched on a coupling edge of the pressure reservoir, and/or g. the inner component comprises a sleeve portion for the purpose of the sealing in relation to the outer component and/or for the purpose of the coupling of the outer component to the inner component, and a central pin, the distal end of which interacts with the discharge opening in order to influence the discharge, wherein a channel formed by the hollow tube leads into an intermediate space between the central pin and the sleeve portion, and/or h. the outer component is kept by means of stop surfaces from being separable from the inner component, wherein said stop surfaces are arranged and designed in such a manner that, by means of an increased application of force, they permit the separation of the outer component from the inner component without destruction such that the outer component can be exchanged for another outer component.
14. the discharge head for the application of pharmaceutical liquids, in particular for the nasal application of pharmaceutical liquid from a pressure reservoir which has an outlet valve with a valve connector, to which force can be applied counter to a spring force in order to open the outlet valve, comprising the following features: a. the discharge head has an applicator, at the end of which a discharge opening is provided which is connected to an inlet of the applicator through an applicator channel of the applicator, b. the applicator has an inner component, and c. the applicator has an outer component which is designed as a component separate from the inner component and is attached in a rotationally movable manner to the inner component so as to surround the latter, d. the discharge opening is provided as an opening in the outer component and is surrounded on the inner side by an end-side inner surface, and e. opposite the end-side inner surface an end surface of the inner component is provided, said end surface lying flat against the end-side inner surface, and f. at least two inflow channels are designed as inflow grooves on the end-side inner surface of the outer component and/or of the end surface of the inner component, said inflow grooves being connected to an inflow region upstream of the inflow grooves or being separated therefrom depending on a rotational position of the outer component with respect to the inner component.
15. The discharge head as claimed in claim 14, comprising at least one of the following features: a. two inflow grooves of two types are provided, namely at least one substantially radially oriented radial groove and at least one tangential groove which is angled in relation thereto with respect to the discharge opening, preferably comprising the following additional features: b. a plurality of radial grooves and/or a plurality of tangential grooves are/is provided.
16. The discharge head as claimed in claim 14, comprising at least one of the following features: a. at least one inflow groove is provided in the end-side inner surface of the outer component and at least one inflow groove is provided in the end surface of the inner component, preferably comprising the following additional features: b. the at least one radial groove is provided on the end-side inner surface of the outer component or the end surface of the inner component, and the at least one tangential groove is provided on the opposite surface.
17. The discharge head as claimed in claim 13, comprising at least one of the following features: a. adjacent to the end-side inner surface of the outer component, the latter has a cylindrical inner surface, and b. adjacent to the end surface of the inner component, the latter has a cylindrical outer surface, and c. the cylindrical inner surface and the cylindrical outer surface lie in a sealing manner against each other, and d. at least one of the two surfaces comprising the cylindrical inner surface and the cylindrical outer surface is provided with a supply groove through which at least one inflow groove can be supplied with liquid from the inflow region.
18. The discharge head as claimed in claim 17, comprising at least one of the following features: a. at least one supply groove for supplying the at least one inflow groove with liquid from the inflow region is provided both in the cylindrical inner surface and in the cylindrical outer surface.
19. The discharge head as claimed in claim 17, comprising at least one of the following features: a. at least one supply groove which extends as far as the end surface of the inner component is provided in the cylindrical outer surface of the inner component, and/or b. at least one supply groove which does not extend as far as the end-side inner surface of the outer component is provided in the cylindrical inner surface of the outer component.
20. The discharge head as claimed in claim 1, comprising the following additional feature: a. the inner component and the outer component are provided with a spring device by means of which they are pressed against each other, in particular comprising the following additional feature: b. the outer component and the inner component have inclined clamping surfaces which are pressed against each other by elastic deformation of the inner component or of the outer component in a radial direction and the outer component and the inner component are thereby pressed indirectly against each other.
21. The discharge head as claimed in claim 20, comprising the following additional feature: a. the inner component and/or the outer component have/has a shaping of the clamping surfaces differing from the circular shape, and therefore, during a rotation of the outer component in relation to the inner component, at least one of the components shows a varying deformation which is minimal in particular in two end positions.
22. A dispenser for discharging pharmaceutical liquids, comprising the following features: a. the dispenser has a pressure reservoir in which pharmaceutical liquid is stored under pressure and which, for its part, has an outlet valve, b. the outlet valve has a valve connector, to which force can be applied counter to a spring force in order to open the valve, c. the dispenser has a discharge head for the coupling to the pressure reservoir, and d. the discharge head is designed as claimed in claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0064] Further advantages and aspects of the invention emerge from the claims and from the description below of preferred exemplary embodiments of the invention that are explained below with reference to the figures.
[0065]
[0066]
[0067]
[0068]
[0069]
DETAILED DESCRIPTION OF THE EXEMPLARY EMBODIMENTS
[0070]
[0071] The dispenser 100 according to the invention has a slender, elongate nasal applicator 12 on the discharge head 10, the main direction of extent of which nasal applicator is inclined in relation to the main direction of extent 3 of the pressure reservoir 110. The nasal applicator 12 is provided for pushing into a nostril of a user.
[0072] The discharge head 10 is snapped onto the pressure reservoir 110 in the region of a crimp connection between the body 118 and the cover 120, wherein, for this purpose, a coupling device 22 which has yet to be explained below is provided on a base 20 of the discharge head.
[0073] The base 20 of the discharge head 10 is connected integrally to most of the functional elements of the discharge head 10.
[0074] Thus, an actuating handle 30 with an actuating surface 32 is integrally formed on the base 20 via a plastics bridge 28. A plunger 40 designed as a hollow tube 42 is integrally formed on said actuating handle 30 and is pushed into the outlet valve 112 of the pressure reservoir 110 for the purpose of actuation and for the purpose of the inflow of liquid.
[0075] Furthermore, an inner component 50 of the nasal applicator 12 of the discharge head 10 is also formed integrally with the actuating handle 30. Said inner component 50 comprises an outer sleeve portion 56 and an inner pin 52.
[0076] The sole component of the discharge head 10 that is separated from said composite component is the outer component 60 of the nasal applicator 12, on the end side of which outer component an end wall is pierced by a discharge opening 98. The outer component 60 is pushed onto the inner component 50 and is fastened in a form-fitting manner to the inner component 50, as will also be explained further on.
[0077] The actuating handle 30 of the dispenser 100 is pivotable in the direction of the arrow 6 because of the deformability of the plastics bridge 28, and therefore the nasal applicator 12 and the plunger 40 are pivoted at the same time. By means of the pivoting of the plunger 40, the outlet valve 112 is opened and liquid flows upward through the inner channel 90 of the plunger 40, then passes into an intermediate space 58 between the central pin 52 and the sleeve portion 56 of the inner component 50 of the nasal applicator 12 and is conveyed from there through an applicator channel 92, which is jointly defined by the inner component 50 and the outer component 60, as far as the discharge opening 98 from where the liquid can be discharged. For the sealing of the components 50, 60 in relation to each other, the outer component has a sleeve 66, the outer side of which lies in a liquid-tight manner against the inside sealing surface of the sleeve 56.
[0078] A vortex chamber 96, the outer-component-side wall of which is illustrated in more detail in
[0079] In the design of
[0080] This will be explained with respect to
[0081] In this design, the outer component 60 is formed in a combined rotational and linear manner in relation to the inner component 50 and the actuating handle 30. With regard to
[0082] By means of stops, not illustrated, the inner component 50 and the outer component 60 are designed to be rotated in relation to each other between two end positions spaced apart by 180 from each other, wherein this brings about an axial shifting of the outer component by a few millimeters.
[0083] The first of the two end positions, which is illustrated in
[0084] In the second end position of
[0085] By spacing the end positions apart by 180, the effect is achieved that, despite a non-rotationally symmetrical shaping of the outer component 60, that can be seen from
[0086] As is apparent in particular with reference to
[0087] In the configuration according to
[0088] Nevertheless, relative shiftability of the outer component 60 in relation to the inner component 50, namely purely linear movability, is in turn provided. The user can press the outer component 60 in the direction of the actuating handle 30 and can obtain the state of
[0089] If, by contrast, the outer component 60 is shifted upward, i.e. away from the actuating handle 30, the state of
[0090] In the configuration of
[0091]
[0092] In accordance with the preceding exemplary embodiments, said discharge head 10 has two components, namelyas can readily be seen in
[0093] It is also provided in this exemplary embodiment that, according to
[0094] In order, despite the absence of axial shifting, as in the configurations of
[0095]
[0096] It can be seen with regard to
[0097] Corresponding to this design with the grooves 97A, 97D in the end region 53 of the inner component 50, three grooves 97C which are offset by 120 in relation to one another are provided in an inside casing surface 63A on the outer component and do not extend as far as the end-side inner surface 63B, but rather find their respective end shortly before the latter. Three tangentially oriented inflow grooves 97B are provided in the end-side inner surface 63B itself, said inflow grooves leading tangentially into a vortex chamber 96 and are likewise spaced apart from one another by 120.
[0098] This groove configuration is provided in order to open and to close various liquid paths depending on the rotational position of the outer component 60 in relation to the inner component 50.
[0099] This will be explained in more detail with reference also to
[0100]
[0101] In this position, the supply grooves 97C are arranged in such a manner that liquid can flow at their end into the radial inflow grooves 97D and can thus pass as far as the discharge opening 98 without forming a swirl. At the same time, in this rotational position, the tangential grooves 97B are not supplied with liquid since they are arranged in a rotationally offset manner with respect to their supply grooves 97A.
[0102] If the outer component 60 is now rotated by 180, the situation of
[0103] The described groove design therefore makes it possible to provide highly functionally reliable liquid paths which are sealed in relation to one another both for the formation of a spray jet and for the formation of a jet, wherein the paths can be opened and closed solely by means of a rotational movement of the outer component in relation to the inner component.
[0104] So that no liquid can enter the wrong inflow groove in the region between the end surface 53B and the end-side inner surface 63B, it is important that said surfaces lie as tightly against each other as possible. In particular the fact that sealing contact is also provided between the cylindrical surfaces 53A and 53B means that said sealing contact is made difficult in the end region. In order nevertheless to make it reliably possible, the already mentioned clamping surfaces 65, 55 which can be seen in