CUSHION, METHOD OF AND APPARATUS FOR MOLDING A CUSHION FOR A RESPIRATORY MASK
20190152109 ยท 2019-05-23
Inventors
- Johann Sebastian Burz (Germaringen, DE)
- Achim Biener (Aufkirchen, DE)
- Johannes Nickol (Neukenroth, DE)
- Bernd Christoph Lang (Graefelfing, DE)
Cpc classification
A61M16/0616
HUMAN NECESSITIES
B29C45/4407
PERFORMING OPERATIONS; TRANSPORTING
B29K2083/005
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present invention is related to a cushion (1) for a respiratory mask, to a method of manufacturing such a cushion (1) as well as to a respiratory mask including a cushion (1) and an apparatus for manufacturing a cushion (1) for a respiratory mask. It is particularly referred to a method of manufacturing a cushion (1) for a respiratory mask, comprising the steps of providing a mold comprising at least two mold halves (11, 13) and at least one core (12) therein, closing the mold, injecting a first material into the mold to form the cushion (1), wherein the core (12) is enclosed by the cushion (1) thereby forming at least one cavity (4), opening the mold, removing the core (12) from the cushion (1) to provide the at least one cavity within the cushion (1), and sealing the cavity (4).
Claims
1. Method of manufacturing a cushion (1) for a respiratory mask, comprising the steps of providing a mold comprising at least two mold halves (11, 12, 13) and at least one core (15) therein, closing the mold, injecting a first material into the mold to form the cushion (1), wherein the core (15) is enclosed by the cushion (1) thereby forming at least one cavity (4), opening the mold, removing the core (15) from the cushion (1) to provide the at least one cavity (4) within the cushion (1), and sealing the cavity (4), wherein the core (15) is C-shaped.
2. Method according to claim 1, wherein the step of removing the core (15) from the cushion (1) comprises displacing the care (15) together with the cushion (1) relative to the mold halves (11, 12, 13).
3. Method according to claim 1, wherein the step of removing the core (15) from the cushion (1) leaves a single orifice (3) in the cushion.
4. Method according to claim 1, wherein the cavity (4) is sealed by injecting the first material into the orifice (3), by gluing an insert into or a patch over the orifice (3) and/or by overmolding the cushion (1) including the orifice (3).
5. Method according to claim 1, further comprising the step of filling the cavity (4) with a second material prior to scaling the cavity.
6. Method according to claim 5, wherein the second material is one or a combination of foam, gel, liquid, gas, beads, wherein the second material preferably comprises silicone.
7. Method according to claim 1, wherein the rigidity of the cushion (1) can be adjusted by varying the thickness and/or structure of the cushion wall(s) (5) along their cross section and/or circumference.
8. Method according to claim 1, wherein the rigidity of the cushion (1) can be adjusted by providing ribs and/or grooves on/within the inner surface of the cushion (1), i.e., the surfaces of the cushion forming the inner cavity walls (5).
9. Method according to claim 1, wherein varying the thickness and/or providing ribs and/or grooves is achieved by varying the thickness of the core (15) and/or by providing structures such as grooves and/or ribs on the surface of the core (15).
10. Method according to claim 1, wherein there are provided two or more horizontal or longitudinal cavities (4) which axe separated by one ore more horizontal walls or membranes, and/or there are provided two ore more vertical or transverse cavities or pockets which are separated by walls or membranes extending substantially vertically.
11. Cushion for a respiratory mask manufactured according to the method of claim 1, the cushion comprising a sealed hollow basically ring like structure adapted to fit to over a patient's nose and made of a first material, wherein the hollow structure comprises at least one and preferably only one C-shaped cavity (4) extending only along a part of the circumference of the cushion (1).
12. Cushion according to claim 11, wherein the cushion (1) comprises a varying rigidity due to varying the thickness of the cushion wall(s) (5) and/or by providing ribs, grooves and/or further structures on/within the inner surface of the cushion (1), i.e., the surfaces of the cushion forming the inner cavity walls (5).
13. Cushion according to claim 11, wherein the cushion (1) comprises two or more horizontal or longitudinal cavities (4) which are separated by one ore more horizontal walls or membranes, and/or there are provided two ore more vertical or transverse cavities or pockets which are separated by walls or membranes extending substantially vertically.
14. Cushion according to claim 11, wherein ratio between width of the cavity and width of the orifice is in the range of about 1/1.5 and 1/2.5, preferably about 1/2, and/or wherein the ratio between the length of the orifice and the height of the cavity lies in the range of about 1/5 to 1/7, preferably about 1/6, particularly for a nasal cushion.
15. Apparatus for manufacturing a cushion (1) for a respiratory mask according to claim 11, comprising at least two mold parts and a C-Shaped core (15) being connected to a handling member being moveable with respect to at least one of the mold parts.
Description
[0068] Preferred embodiments of the present invention are described below with respect to the following figures.
[0069]
[0070]
[0071]
[0072]
[0073]
[0074]
[0075]
[0076] Of course, the general shape of the cushion 1 may deviate from the triangular shape shown in
[0077] As can be seen in
[0078] The side of the cushion 3 to be connected to the patient interface such as a face mask or mask frame (not shown) is preferably adapted to be mechanically connected to such patient interface. Preferably, the cushion comprises connection means such as protrusions, depressions, hooks, grooves, undercuts, openings, pins and/or the like in order to allow such, preferably releasable, connection. The provision of integral fastening, handling and/or connection means allows the cushion to be secured to a breathing mask or a mask frame advantageously giving structural strength to the cushion by means of the mask frame. It furthermore allows easy replacement and exchangeability of an interface's cushion upon wear or contamination. Also, easy handling of the cushion, either during production or subsequently by the user, is achieved.
[0079]
[0080] According to
[0081] In the embodiment shown there is provided one cavity extending over a substantial portion of the cushion's circumference. According to other preferred embodiments, there are provided two or more (horizontal) cavities which are separated by one ore more horizontal walls or membranes. Horizontal is understood to be substantially parallel to the paper plane of
[0082] According to another preferred embodiment (not shown) there are provided two ore more (vertical) cavities or pockets which are separated by walls or membranes extending substantially vertically, i.e., perpendicular to the paper plane in
[0083] The cushion 1 comprises preferably silicone, TPE and/or oil. The cushion can in particular be manufactured by injection-molding silicone into a mold. It is further preferred that the cavity 4 is filled with a second material. Preferred examples for the second material are foams, gels, liquids and gases. Preferably, the second material is a silicone gel or other material discussed herein. It is particularly preferred that the second material has a lower Shore-hardness than the first material. Preferably, the Shore hardness of the second material lies in the range referred to above. Preferably, the shore hardness of the first material varies as discussed above. More preferred, the relation of the Shore hardness of the first and second material is such as discussed above. If the cushion comprises more than one cavity, these cavities are preferably filled with second material of different Shore hardness. Preferably, one cavity is filled with second material(s) of different Shore hardness. For example, the cavity may be filled with different layers of second material, wherein each layer exhibits a different Shore hardness. Preferably, such layers are horizontal layers (approximately parallel to the paper plane of
[0084] It should be apparent from
[0085] Thus, the properties of the cushion, in particular its flexibility, hardness and elasticity, can be easily adjusted by varying the thickness of the cavity walls 5a, 5b, by varying the number and extension of cavities (horizontal, vertical), and/or by varying the properties of the second material(s) inside the cavity/cavities. This allows a fine and exact adjustment of the cushion properties in line with the object underlying the present invention.
[0086] Moreover, the geometry of the cushion walls as well as of the cavity can be achieved by providing a different core while using one and the same mold halves. Thus, the outer geometry of the cushion remains identical wherein is inner geometry or structure is changed, thereby adjusting the cushions overall properties. This largely simplifies the process of manufacturing different cushions adapted for specific applications and thus reduces the production costs per unit. This also allows the provision of a unified fastening structure to connect cushions with different properties, such as sizes and hardness distribution, to patent interfaces.
[0087]
[0088] Cushion 1 furthermore comprises a second (or upper regarding the orientation shown in
[0089]
[0090]
[0091] Furthermore, a core 15 is provided within the mold formed by said mold parts 11, 12 and 13. The core is preferably C-shaped and mounted on or comprises a handling member 14 such as, e.g., a rod. Preferably, core 15 is substantially symmetrical with regard to axis A of the cushion to be molded, as shown, e.g., in
[0092] After closing the mold, a first material is injected into the mold through gate 16. The first material is cured or at least partially cured and thus a cushion 1 is formed. The core 15 is enclosed by the cushion 1 and thus forms a cavity 4 therein. Handling member 14 extends through orifice 3 to the outside of cushion 1. The mold is then opened by moving, e.g., mold parts 11 and 12 away from mold part 13. The moveable part 14 is then displaced with respect to mold part 13, preferably leaving the core 15 together with the cushion 1 in a position without any contact to other mold parts. Now, the cushion 1 may be removed from the core 15. This may be achieved, e.g. by air pressure. For instance, member 14 and core 15 may comprises an air conduit for providing pressure. The cavity of the cushion 1 formed by the core 15 is thus inflated and the cushion 1 can be easily detached from the core 15. Alternatively, cushion 1 can be mechanically pulled of the core 15 without the provision of air pressure.
[0093] Of course, the mold parts can be designed differently. According to a preferred embodiment only two mold parts 11, 13 are provided instead of the three mold parts 11, 12 and 13. According to another preferred embodiment, it is also preferred to provide one or more additional pin(s), which are moveable with respect to mold part 13 in a manner comparable to member 14. Thus, the cushion 1 is better supported when displacing the core 15 with cushion 1 from the mold part 13 and an unnecessary stretching or deforming of the cushion 1 is avoided. These pins preferably also serve to support the proper positioning of core 15. After molding, there will be a small hole, preferably with a diameter of a few millimeters, in the cushion where the pin has been. These hole(s) will be sealed in the sealing step for sealing orifice 3. Preferably, the hole(s) left by the pin(s) a advantageous, such as orifice 3, in that they allow air to escape from the cavity during filling thereof.
[0094] Demolding of the cushion 1 from the core 15 is possible due to the large degree of elastic expansion that the first material, such as silicone or polysiloxane, provides. Elongation or elasticity of the first material preferably lies in the range of about 300% to 400% after molding when the material is still warm. However, other comparable materials having a sufficiently large degree of elastic expansion can be used instead.
[0095] Preferably, the preferably C-shaped core is of large dimensions while the hole is of small, preferably substantially rectangular, dimension. The ratio between the maximum width (referring to a top view and orientation according to e.g.
[0096] According to a preferred embodiment, as discussed above, if multiple horizontal and/or vertical cavities or pockets are to be provided in cushion 1, multiple cores or core parts are connected to handling member 14. In such embodiment, handling member 14 preferably extends into an atrium of cavity 4 which is adjacent orifice 3. From said atrium there extend cores or core parts to form the different cavities or different parts of the cavity. Also with this embodiment, there is preferably provided only one core per cavity.
[0097] Orifice 3 is preferably adapted to allow handling member 14 to extend therethrough and also to allow the core(s) to be withdrawn therethrough during demolding. Preferably, orifice 3 is about 20 to 30, preferably to 50 mm, preferably 30 to 50 mm, and more preferably about 35 to 40 mm wide and about 3 to 10 mm long. The shape and dimensions of orifice 3 correspond to the cross section of member 14 of core 15 extending therethrough during molding. Orifice 3 is preferably arranged on fastening side 23 of the cushion to be molded.
[0098] Removing the core 15 from the cushion 1 leaves a cavity 4 within the cushion and at least one orifice 3, where the core 15 was connected to the member 14. Said orifice 3 is closed in a later production step in order to seal the cavity 4. Preferably, the cavity 4 is filled with a second material, such as a silicone gel or foam, before the sealing step. As discussed above, different cavities are preferably filled with different second materials but may also be filled with the same material having the same properties. According to a preferred embodiment, the cavity is filled with different second materials, e.g. in horizontal layers. Such different second materials can be the same basic material but having different hardness and elasticity properties.
[0099] According to a further preferred embodiment, the cushion 1 is molded as discussed above. After molding the mold is opened, e.g., by removing mold half 13. Then, the core is removed from the cavity/cavities via orifice 3. In such case, orifice 3 may extend over the whole length of the cavity along the cushion's circumference. In a next step, at least one second material is filled into the cavity/cavities. Subsequently, preferably after the mold halves have been closed again, orifice 3 is closed by injecting a second shot of the first material. By such second injection the cavity is sealed. Preferably, some outer structures of the mask are provided, e.g., as fastening means such as rim 29 and/or groove 27. Said groove 27 may be adapted as a handling member, e.g., to be used in an automatic demolding step. For example, a robot may grip the cushion making use of said groove 27 in order to detach the cushion from the core.
[0100] As referred to above, core 15 can be provided with structures such as grooves, slits, rims, depressions, allowing to influence both the geometry of the cavity and the geometry of the cushion walls. Thereby, and particularly in combination with a specific choice of the properties of first and/or second material, the cushion properties can be advantageously influenced and adjusted. In particular, the invention allows such adjustment without changing the outer dimensions of the cushion and particularly its fastening portion. Thus, the patient interface to which the cushion has to be secured and its fastening structure can remain unchanged. The same applies to the mold parts 11, 12, 13 forming the outer dimension of the cushion. These do not have to be changed or replaced together with the core.
[0101] The method according to the present invention is advantageous over the prior art since it, i.e., allows for an easy and well-controlled production of cushions for respiratory masks. In particular, the method can be easily automated. One reason for this is the fact that a single core is used, which can be easily placed within the mold correctly and simply removed from the cushion after curing. Preferably, even the demolding of the core can be automated. During molding and demolding the core is maintained inside the mold and connected to one of the mold halves. Thus, the temperature of the core can be better maintained and controlled, which is important in terms of reproducibility.
[0102] A further advantage of the inventive method is the cost-efficient control the rigidity, resilience and flexibility of the cushion by, e.g, varying the thickness of the cushion walls and the dimension of the cavity. As can be taken from
[0103] Thus, the properties of the cushion, in particular its flexibility and elasticity, can be easily adjusted by providing different cores while using one and the same mold parts and leaving the remainder geometry of the cushion unchanged. This largely simplifies the process of manufacturing different cushions adapted for specific applications and thus reduces the production costs per unit. Manufacturing of the cushion can thus be automated. Alone the core of the mold allows beneficial manufacturing of an adjusted and improved cushion. The integral nature of the core, particularly in combination with the handling member, allows omitting manual intervention of handling, allows predefined and repeatable position of the core, and the core to substantially maintain a temperature equilibrium with the mold while the mold is opened. The present invention thus provides for an improved, efficient, effective and reliable method for molding cushions, a cushion and a device for molding cushions.