In a variety of industrial fields, for example those involved in the manufacturing of devices for the administration of medicinal compounds, it is desirable to find means for nebulising a fluid or liquid in a controlled manner.
One known solution to this problem involves the agitation of a membrane by means of a piezoelectric oscillator, wherein the fluid to be nebulised is placed at one side of said membrane such that the fluid is nebulised in a controlled manner to provide fine liquid droplet sprays, mists or aerosols on the other side of the membrane.
Such a device, as for example known from EP 0 615 470 A, commonly comprises an annular substrate, on one side of which is disposed an annular piezoelectric device, and on the other side of which is placed a circular dispersion element, all three elements being disposed coaxially. The circular dispersion element may comprise a plurality of fine diameter holes, substantially parallel to the axis of the device, through which fluid passes to form droplets. A device of this kind is shown in
A problem arises with the described device where it is necessary to fixedly attach it to a housing. The ways of doing this known in the prior art either result in an undesirable influence on the oscillation characteristics of the device or are difficult to handle, especially in the case of a medical treatment device employing such a device.
One known method of securing the nebuliser known in the prior art, as indicated in
An alternative method known in the prior art, as indicated in
As mentioned above, these and other prior art methods of fixedly securing the nebuliser device are disclosed in EP 0 615 470 A.
A further problem arising in these known techniques is that there are provided numerous devices which are prone to retention of stray matter in an undesirable manner, particularly in medical applications where hygiene is of particular importance.
According to the present invention from a first aspect there is provided a fluid dispersion device comprising a fixed frame 25, a substrate 3 having a central aperture 11, a dispersion element 10 positioned over said central aperture 11 of said substrate 3, and an annular actuator 4 arranged coaxially with said central aperture 11 of said substrate 3, wherein the outer edge of said substrate 3 is coupled to said fixed frame 25 by a plurality of resilient members 81, 82, 83.
According to a development of this first aspect of the invention, said plurality of resilient members 81, 82, 83 are serpentine in form.
According to a further development of this first aspect of the invention, said plurality of resilient members 81, 82, 83 are aligned radially about the axis of said central aperture 11 of said substrate 3.
According to a further development of this first aspect of the invention, said plurality of resilient members 81, 82, 83 are aligned at an angle to a line radiating from the centre of said central aperture 11 of said substrate 3.
According to a further development of this first aspect of the invention, said substrate 3, said fixed frame 25 and said resilient members 81, 82, 83 are formed as a single solid.
According to a further development of this first aspect of the invention, said annular actuator 4 is a piezoelectric device.
According to a further development of this first aspect of the invention, at least one of said resilient members 81, 82, 83 is disposed so as to carry an electronic signal to said annular actuator 4.
The present invention will now be described in more detail by reference to the following figures.
In the following, a fluid dispersion device according to the invention will be described in detail with reference to
According to a first embodiment of the present invention, as shown in
The dispersion element 1 is preferably dome shaped, as shown in
The outer annular section 25 of the nebulising device according to the invention may be fixed or clamped to a housing (not shown) as known in the prior art, so as to be held substantially immobile with respect to the housing. By means of the connecting spoke elements 81, 82, 83 the inner annular section 26 is supported and thereby securely attached to the outer annular section 25.
In operation, an electrical signal is applied to the piezoelectric element 4 in an appropriate manner, for example through the inner section 26 of the substrate 3 and a further electrode disposed on the opposite side of the piezoelectric element 4. The electrical signal may be carried by at least one of the resilient members 81, 82, 83 to the inner section 26 and by the outer section 25 to the at least one resilient spoke element 81, 82, 83, respectively. By applying an appropriate electrical signal to the piezoelectric element 4, contractions and expansions of the piezoelectric element 4 are induced in a direction parallel to the plane of the substrate 3 causing an oscillation of the structure comprising the nebulising element 1, the inner annular section 26, and the piezoelectric element 4 as whole in a direction substantially perpendicular to said plane. By controlling the signal, not only the behavior of the piezoelectric element 4 but also the oscillation of the overall device is controlled, and thereby the generation of the fine droplet spray as well.
Since the inner annular section 26 is supported only via the connecting spoke elements 81, 82, 83, the deterioration in the performance of the nebulising device caused by its mounting structure, is substantially less than that experienced in the prior art, due to the resilience of the connecting spoke elements 81, 82, 83. The resilience characteristics of the connecting spoke elements 81, 82, 83 can easily be adapted by defining the shape, i.e. in the first embodiment the length, width and thickness of each resilient member 81, 82, 83. The resilience can further be influenced according to design requirements by selecting an appropriate material, for example, stainless steel etc.
The connecting spoke elements 81, 82, 83 according to the invention reduce the deteriorating influence of the support structure on the nebulising device due to the adaption of the resilience characteristics whereby the forces applied to those ends of the connecting spoke element which are attached to the inner annular section 26 are reflected from the other ends of the connecting spoke elements, i.e. which are attached to the outer annular section 26. The forces applied to the connecting spoke elements 81, 82, 83 due to the oscillation of the inner annular section 26 causes the adapted connecting spoke elements to oscillate in or near resonance such that a wave induced by the forces applied exhibits an oscillation node at the other end, i.e. the end attached to the outer annular section 25.
As mentioned above, the membrane or mesh 1, i.e. the dispersion element, may be a formed with a central dome as shown in
The inner and the outer section 25, 26 of the substrate 3 and the resilient members 81, 82, 83 may be, for example, of stainless steel and may be formed as a solid or as individual components, also of different materials.
The membrane may, for example, be welded to the substrate, by means of a laser.
A second embodiment of the present invention is shown in
A third embodiment of the present invention is shown in
As a further example,
In
According to the invention and as shown in
In other words, the serpentine elements are preferably disposed along a circular line 9 situated between the outer edge of the central portion 26 of the substrate 3 and the inner edge of the outer ring 25 and substantially concentric therewith. The two ends of each resilient element deviate from this line so as to join the outer edge of the inner portion 26 of the substrate 3 and the inner edge of the outer portion 25, respectively. By this means, the degree to which oscillations of the central portion 26 of the substrate 3 to which the piezoelectric element 4 is attached are negatively influenced by the mounting is reduced, with a minimum increase in the distance between the outer edge of the central portion 26 of the substrate 3, and the inner edge of the outer ring 25.
A fourth embodiment of the present invention is shown in
In other words, the non-meandering elements are preferably disposed along a circular line 9 situated between the outer edge of the central portion 26 of the substrate 3 and the inner edge of the outer ring 25 and in a preferred embodiment substantially concentric therewith. The two ends of each resilient element deviate from this line so as to join the outer edge of the inner portion 26 of the substrate 3 and the inner edge of the outer portion 25, respectively. Thereby, the degree to which oscillations of the central portion 26 of the substrate 3 to which the piezoelectric element 4 is attached are negatively influenced by the mounting is reduced, with a minimum increase in the distance between the outer edge of the central portion 26 of the substrate 3, and the inner edge of the outer ring 25.
In order to facilitate manufacturing of the device according to the invention and also to further reduce the deteriorating effect caused by the mounting structure, the outer section 25 and the inner section 26 may be manufactured separately and the connecting spoke elements 81, of which only one is shown in
The attaching of the resilient elements 81 may be achieved by welding or otherwise at point 25B any time during the manufacturing process. Thereby, the manufacturing of the outer section 25 and its further supporting structure may be performed separately from the manufacturing of the inner section 26 and the resilient spoke elements 81.
Further, the inner section 26 may be provided with attachment sections 26A similar to the outer section 25. The resilient spoke elements 81 may be welded at welding point 26B or otherwise attached to the inner section 26. Thus, the resilient elements 81 may be manufactured separately from the inner and outer section of the substrate 3 so that the resilient elements 81 may be of a material different from the substrate 3.
Of course, the resilient members 81 may be formed in one piece with the outer section 25 of the substrate 3 and may be attached at attachment point 26B of an attachment section 26A of the inner section 26 of the substrate 3 in an appropriate step of the manufacturing process as described above.
As shown in
Number | Date | Country | Kind |
---|---|---|---|
02016972 | Aug 2002 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP03/08482 | 7/31/2003 | WO | 00 | 8/25/2005 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2004/014569 | 2/19/2004 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3400892 | Ensminger | Sep 1968 | A |
3747914 | Thrasher | Jul 1973 | A |
3790079 | Berglund et al. | Feb 1974 | A |
3812854 | Michaels et al. | May 1974 | A |
4081233 | Kitajima et al. | Mar 1978 | A |
4165961 | Yamamoto et al. | Aug 1979 | A |
4429247 | Feldman | Jan 1984 | A |
4465234 | Maehara et al. | Aug 1984 | A |
4482124 | Dochterman | Nov 1984 | A |
4530464 | Yamamoto et al. | Jul 1985 | A |
4533082 | Maehara et al. | Aug 1985 | A |
4632311 | Nakane et al. | Dec 1986 | A |
4790482 | Won | Dec 1988 | A |
5152456 | Ross et al. | Oct 1992 | A |
5261601 | Ross et al. | Nov 1993 | A |
5310157 | Platus | May 1994 | A |
5518179 | Humberstone et al. | May 1996 | A |
5586550 | Ivri et al. | Dec 1996 | A |
5657926 | Toda | Aug 1997 | A |
5938117 | Ivri | Aug 1999 | A |
6378780 | Martens et al. | Apr 2002 | B1 |
6467476 | Ivri et al. | Oct 2002 | B1 |
6544201 | Klimowicz et al. | Apr 2003 | B1 |
6629646 | Ivri | Oct 2003 | B1 |
6732944 | Litherland et al. | May 2004 | B2 |
6814071 | Klimowicz et al. | Nov 2004 | B2 |
6978941 | Litherland et al. | Dec 2005 | B2 |
7104463 | Litherland et al. | Sep 2006 | B2 |
20020162551 | Litherland | Nov 2002 | A1 |
20060011737 | Amenos et al. | Jan 2006 | A1 |
Number | Date | Country |
---|---|---|
0615470 | Dec 1992 | EP |
1214986 | Jun 2002 | EP |
2348058 | Apr 1976 | FR |
2263076 | Jul 1993 | GB |
59-032971 | Feb 1984 | JP |
60-175566 | Sep 1985 | JP |
WO 9211050 | Jul 1992 | WO |
WO 02087774 | Nov 2002 | WO |
Number | Date | Country | |
---|---|---|---|
20060097068 A1 | May 2006 | US |