This application claims priority of German application No. 10 2007 044 550.6 DE filed Jul. 5, 2004, which is incorporated by reference herein in its entirety.
The present invention relates to a method for producing a sound channel for a hearing apparatus. The present invention also relates to a corresponding sound channel for a hearing apparatus. The term “hearing apparatus” is understood here to mean in particular a hearing device but also any other device for outputting sound which can be worn on or in the ear, like for instance a headset, earphones and such like.
Hearing devices are wearable hearing apparatuses which are used to assist the hard-of-hearing. In order to accommodate numerous individual requirements, various types of hearing devices are available such as behind-the-ear (BTE) hearing devices, hearing device with an external receiver (RIC: receiver in the canal) and in-the-ear (ITE) hearing devices, for example also concha hearing devices or completely-in-the-canal (ITE, CIC) hearing devices. The hearing devices listed as examples are worn on the outer ear or in the auditory canal. Bone conduction hearing aids, implantable or vibrotactile hearing aids are also available on the market. The damaged hearing is thus stimulated either mechanically or electrically.
The key components of hearing devices are principally an input converter, an amplifier and an output converter. The input converter is normally a receiving transducer e.g. a microphone and/or an electromagnetic receiver, e.g. an induction coil. The output converter is most frequently realized as an electroacoustic converter e.g. a miniature loudspeaker, or as an electromechanical converter e.g. a bone conduction hearing aid. The amplifier is usually integrated into a signal processing unit. This basic configuration is illustrated in
One main objective in terms of hearing device development is to accommodate as many components as possible in as small a housing as possible. To this end, a high degree of creative freedom in the case of individual components is very beneficial. This applies equally to active and passive components. It is also particularly advantageous if the connecting element between the wearing hook and receiver, i.e. the sound channel between both components, can be molded according to requirements.
In respect of the connecting element, there is also the need for the connection between the sound tube connecting piece (wearing hook) and the receiver and/or hearing device to be produced in a mechanically stable and acoustically tight fashion. The connection is to be realizable as a screw or plug-in connection or a combination of the two. If necessary, the connecting element is also to be able to adopt the bearing functions for one component of the hearing device.
It is also desirable for the connecting element to be producible in a cost-effective fashion despite the high demands placed on its accuracy and stability and to take up as little space as possible. For optimal space utilization in the housing, it is particularly desirable for a high degree of creative freedom to be provided for the component. In some circumstances it is namely necessary for undercuts to be provided on the connecting element and/or sound channel.
Connecting pieces made of metal are currently used in hearing devices primarily as connecting elements between the receiver and the wearing hook. These are complicated turning and milling parts, which in most cases subsequently still have to be bent. They are generally designed for screw or plug-in connections and/or combinations of the two.
Plug-in connectors made of plastic are also known. Solutions, in which a metal connecting piece and a plastic wearing frame for the hearing device components are integrated in an injection-molded part, are known from practice.
The object of the present invention consists in providing a sound channel for a hearing apparatus, which has a relatively complex form and can consequently be easily produced and is mechanically stable.
This object is achieved in accordance with the invention by means of a method for producing a sound channel for a hearing apparatus, which has three sections in the longitudinal direction, the middle section of which has a different curvature or a larger internal circumference than the two outer sections, by providing an injection-molded form for the sound channel, fixing a negative of the sound channel within the injection-molded form, with the negative consisting of a first material, effusing the injection-molded form with a second material, which has a higher melting point than the first material and melting or burning the negative out of the cast sound channel.
Provision is also made in accordance with the invention for a sound channel for a hearing apparatus, which has three sections in the longitudinal direction, the middle section of which has a different curvature or a larger internal circumference than the two outer sections and which is injection-molded in accordance with the above method.
During the production using injection molding technology, the sound channel is advantageously no longer restricted in respect of its shape such that it only has two differently curved sections, with which it is possible to ensure that the casting mold parts can be drawn from the newly injected sound channel in both longitudinal directions which are opposite to one another. Since the negative located inside the newly injected sound channel is not extracted but is instead melted or burnt out, almost any forms of the negative are possible. Injection molding simultaneously provides for precise and mechanically stable injection molded elements.
According to a special embodiment, the second material, in other words the extruded material, can be a metal. Metals are characterized by their high robustness particularly also in the case of bending stress. In particular, it is expedient to use titanium as metal, which is in particular very light compared with steel and on the other hand is resistant to lower concentrations of sulfuric acid and hydrochloric as well as most organic acids.
According to a further preferred embodiment, the second material, from which the sound channel is extruded, is a ceramic and in particular a ceramic which contains zirconium oxide. The ceramics are not only characterized by their high mechanical stability, but are instead also characterized by the low thermal expansion coefficients. After the extrusion process, the sound channels can be sintered. The ceramic injection molded part is as a result further compacted and hardened.
It is particularly advantageous if the negative is a plastic injection-molded part. Plastic negatives of this type can, due to their low melting point, be easily melted or burnt out of the metal or ceramic sound channels.
One or several nozzles, cavities and such like can be molded into or onto the sound channel. Nozzles or cavities of this type can be advantageous for acoustic reasons and do not present any problems when demolding the injection-molded parts, here the melting or burning process of the negative.
The sound channel can also have at least one branching. This can also provide acoustic advantages and also present no problems in respect of demolding.
The present invention is described in more detail with reference to the appended drawings, in which;
The exemplary embodiments illustrated in more detail below represent preferred embodiments of the present invention.
The sound channels shown in
In accordance with the invention, a negative of the sound channel which keeps the interior 15 free and is made from a low melting material is thus fixed in the injection molding tool as a place holder. The negative is embodied as a plastic injection-molded part for instance. The interior of the injection molded tool is purged with a metal or a ceramic using the place holder. A connecting element, for instance sound channel made of titanium or another metal, is thus produced for instance in a metal-injection-molding process MIM. On the other hand, zirconium dioxide (ZrO2) or another ceramic can produce a sound channel as a ceramic injection-molded part for instance. Following the extrusion process, the negative is burnt or melted out. In the case of the ceramic injection molding process, this burning out can take place together with the burning out of the binding agent. The production process of the ceramic injection molded part is thus concluded such that the finished green compact is sintered.
A further exemplary embodiment of an injection-molded sound channel is shown in
The inventive production method thus allows a very high level of creative freedom of the sound channel. Undercuts can also be introduced, like is the case for instance with cavities, branchings or other complex guides of the sound channel. The sound channel can thus be provided with additional acoustic functions, like can be realized for instance by nozzles and cavities.
The conversion of the afore-illustrated method is also conceivable for other hearing device components like the wearing frame for fixing hearing device components or housings for silicon microphones.
Number | Date | Country | Kind |
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10 2007 044 550.6 | Sep 2007 | DE | national |