The present invention relates to a fluid dispenser device, and more particularly to a nasal-spray device for a pharmaceutical.
Fluid dispenser devices are well known in the state of the art. They generally include a reservoir containing the fluid, on which reservoir there is assembled a dispenser member, e.g. a pump or a valve, that is generally actuated by means of a dispenser head for selectively dispensing the fluid contained inside said reservoir. The dispenser head includes a dispenser orifice through which the fluid is sprayed, e.g. into the user's nose for a nasal-spray device. Numerous devices of this type are actuated manually by the user by moving the reservoir and the dispenser head axially against each other, thereby actuating the dispenser member. However, this type of device presents drawbacks, in particular when the device is of the nasal-spray type, since the axial force exerted by the user in order to actuate the device leads to a risk of the dispenser head moving inside the user's nostril, with risks of injury and/or of the fluid not being dispensed completely or properly on actuation. In order to remedy this problem, lateral actuator devices have been proposed, generally including a lever that is pivotally-mounted on a body and having an inner portion that is adapted to co-operate with one of the dispenser head and the reservoir so as to move said element against the other, and thus actuate the dispenser member. However, such devices are generally quite complex and include a large number of component parts, thereby making manufacture and assembly relatively costly.
Another drawback of fluid dispenser devices relates to the use of a protective cap that the user removes before the device is used. If, after using the device, the user forgets to put the cap back into place, the dispenser orifice risks becoming soiled and/or blocked, consequently preventing the device from being reused as a result of the quality of the fluid being spoilt for the next use. In order to remedy this problem, it has been proposed to make “non-losable” caps that, in any position of the device, remain fastened to the body of the device, and that are thus movable relative to said body between a closed position, in which they close the dispenser orifice, and a working position, in which they uncover it. However, such devices are often quite complex to make, in particular when they are associated with lateral actuator systems, thereby making their manufacture and their assembly relatively costly.
An object of the present invention is to provide a fluid dispenser device that does not have the above-mentioned drawbacks.
More particularly, an object of the present invention is to provide a fluid dispenser device that is simple and inexpensive to manufacture and to assemble.
Another object of the present invention is to provide a fluid dispenser device, in particular a nasal-spray device, that guarantees safe and reliable actuation of the device on each actuation, without risk of injury to the user, and that also guarantees closure of the dispenser orifice before and after each use.
These characteristics and advantages and others of the present invention appear more clearly from the following detailed description, given by way of non-limiting example, and with reference to the accompanying drawings, in which:
With reference to
In the invention, a cap 50 is pivotally mounted on the body 10 to turn between a closed position in which it covers the dispenser orifice 45, advantageously in leaktight manner, and an actuation position. Advantageously, the cap 50 is fastened in irremovable manner to the body 10, and turns about an axis of rotation A, as shown in the figures. Advantageously, the cap includes one or more bearing zones 51, 52 against which the user presses so as to actuate the device. In the embodiment in
In the invention, the cap 50 includes actuator means 55 that are adapted, when the cap 50 has been turned to its actuation position, to actuate said dispenser member 30 directly. The actuator means are adapted to co-operate with a portion 65 that is secured to the reservoir 20, to the dispenser member 30, and/or to any element that is secured thereto, e.g. the fastener ring 60 that serves to fasten the dispenser member 30 onto the reservoir 20. The term “actuate . . . directly” means that the actuator means 55 of the cap co-operate directly with the portion 65, without having to provide an intermediate part. This makes it possible to limit the number of component parts, and thus reduce the cost of manufacture and of assembly. In the embodiment shown in
As shown in the figures, the cap includes an intermediate position, shown in particular in
As shown in
Advantageously, as shown in the figures, the actuator means 55 act actively on the projection 65 when the cap 50 is in its intermediate position. Consequently, as the user continues to turn the cap 50 from its intermediate position towards its actuation position, the actuator means 55 move the projection 65, and thus actuate the dispenser member. Preferably, the actuator means 55 have a rounded shape, and the projection 65 also preferably has a rounded shape, thereby guaranteeing sliding that is regular, without them bumping against each other while the device is being actuated.
In the embodiment shown in
Naturally, such a sloping position could also be provided in the embodiment described above.
In addition, the cam surface cap 50 of this embodiment could be used with a device that does not slope relative to the body.
With reference more precisely to
Thus, in the two embodiments shown in
Advantageously, abutment means (not shown) are provided in the intermediate position so as to block any additional axial movement of the dispenser head 40 after the intermediate position has been reached, and thus cause the dispenser member 30 to be actuated, while the cap 50 is moving from the intermediate position towards the actuation position.
In a variant, it should be noted that the cap 50 could include secondary means that are adapted to move the unit formed by the reservoir 20, the dispenser member 30, and the dispenser head 40 from the retracted position towards the extended intermediate position. The secondary means could be completely independent from the cam surface, and, by way of example, could co-operate with another portion of the unit so as to achieve this first movement. Then, while the cap 50 is turning from the intermediate position towards the actuation position, a cam surface 57 of appropriate shape and profile would co-operate with the projection 65 so as to actuate the dispenser member 30.
Once again, naturally this third embodiment could also be provided with a device that does not slope relative to the body 10, and with one or the other of the actuator systems of the cap described in the above-described embodiments.
In general, the various characteristics shown in the three embodiments could be combined together in any desired and appropriate manner, and any useful modification could be applied by a person skilled in the art to the three above-described embodiments, that are given merely by way of non-limiting example, without going beyond the ambit of the present invention as defined by the accompanying claims.
Number | Date | Country | Kind |
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08 53077 | May 2008 | FR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/FR2009/050871 | 5/12/2009 | WO | 00 | 11/23/2010 |
Publishing Document | Publishing Date | Country | Kind |
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WO2009/147350 | 12/10/2009 | WO | A |
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20110088689 A1 | Apr 2011 | US |