The present invention relates to a digital pulse generator assembly providing digital output signal.
U.S. Pat. No. 5,380,965 (belonging to the same applicant) discloses an electromechanical pulse generator having a purely mechanical mode of operation for microelectronic equipment, e.g. volume control in hearing aids, consisting of a housing formed by a fixed base portion in which a shaft is fixedly mounted. A timing wheel is rotatably mounted around the shaft, the timing wheel having the form of a downward facing open cylinder and being fixedly connected to a casing which forms an external handle. The inner cylinder surface of the timing wheel is provided with grooves engaging with a protrusion of a circular carrier rotatably mounted around the shaft.
A U-shaped contact spring has members which are individually imparted an oscillating movement between contact pairs A-B-C and A-D-E, respectively, by the turn of the timing wheel in one or the other direction via the carrier which can only move over a pre-determined circular section, so as to generate digital pulse trains. A locking device prevents the carrier from moving beyond the pre-determined circular section and causes the protrusion to continuously engage with the grooves by the turn of the timing wheel.
It is an object of the present invention to provide a digital pulse generator to be integrated in electronic equipment, such as hearing instruments, mobile phones and/or audio equipment.
It is a further object of the present invention to provide a digital pulse generator that is able to provide an output signal on two or more terminals.
It is a further object of the present invention to provide a digital pulse generator having a minimum of electrical components, so as to provide a cheaper and easier assembling process.
It is a further object of the present invention to provide a digital pulse generator that is more shock resistant.
According to a first aspect, the present invention relates to a digital impulse generator assembly comprising;
The digital signal may be read by e.g. a microprocessor, which typically will be an integrated part of any electronic equipment, such as hearing instruments, mobile phones, audio equipment, etc.
The assembly is able to provide a signal on two different terminals depending on the way of rotation of the wheel. Preferably, the cams move the contact part of the first terminal into contact with the contact part of the second terminal upon rotating the wheel clockwise, and moves the contact part of the first terminal into contact with the contact part of the third terminal upon rotating the wheel counter clock-wise.
The contact part of the terminals may be provided as a bent portion of the terminal, said contact part being able to return to its neutral position after each cam has slipped it (goes out of engagement with the contact part) upon rotation of said wheel. The bending strength is preferably so large that the contact part does not go into contact with the other contact parts by accident, but only by moving it with the cams. This high bending strength provide a much more shock resistant pulse generator that is less sensitive to external influence.
In a preferred embodiment, the wheel comprises a cylindrical hollowed wheel having spaced positioned cams provided circumferentially on its internal surface. Preferably, the base comprises a part having recesses for receiving and holding the contact part, the terminals protruding the base part through holes provided in its bottom end. The wheel may be positioned on the base part by sliding it down over the part comprising the recesses. The contact part of the first terminal may terminate in an inclined portion that is adapted to engage the cams of the wheel. Preferably, the contact parts of the terminals are elevated positioned in said base part, the contact part of the first terminal being positioned between the two other contact parts. Thus, the contact part of the first terminal is lifted up, due to the engagement between a cam and said inclined portion, into its contact position with the contact part above it, when the wheel is rotated e.g. clock-wise. Oppositely, the contact surface of the first terminal is pushed down, due to the engagement between a cam and said inclined portion, into its contact position with the contact part below it. Thus, it is possible to provide an output signal on two different terminals depending on the direction of rotation of the wheel.
A user operable carrier wheel may be meshed with said wheel, so that an operator can rotate the wheel when rotating the carrier wheel, the carrier wheel having a user operable part protruding said cover.
The cover and base part together defines the housing that provides a shielding cavity for the wheel, carrier wheel and contact parts of the terminals. The connection between the cover and base part may be sealed with e.g. silicone or other sealing products so as to provide a water- and moisturetight housing. Also, the connection between the user operable part protruding the cover and the cover may be sealed.
The wheel may comprise recesses in its upper and/or lower edge for receiving projections of the carrier wheel, so as to mesh the carrier wheel with the wheel. By having recesses in both ends, the way of turning it during the assembling of the assembly does not matter. Thus, it makes to way of production easier and more effective.
The wheel may comprise two sets of cams, a first set positioned at a first level and a second set positioned at a second level on the internal surface of the cylindrical wheel. The distance between the cams of the first set being different from the distance between the cams of the second set. Thus, it is possible to provide different kind of output signals o on the terminals depending on which way the wheel is turned when assembling the assembly. In this case, it is of course of importance which way the wheel is turned during assembling.
In order to provide as precise and good contact between the contact parts, they may each comprise contact points (e.g. punched projections), so that the electrical contact between the respective contact parts is provided in one single point.
The assembly is preferably used in compact electronic instruments, where the space available is minimal. Preferably, the external diameter of the housing is equal to or less than 3 mm, such 2.55 mm.
The assembly may comprise further terminals, such as a fourth or fifth external terminal protruding said base part and having a contact part inside said housing. Thus, it is possible to take out further output signals for different controlling purposes.
The first terminal is preferably connected to an external power supply such as a battery. However, it can be connected to ground, while to other terminals are connected to a power supply.
According to a second aspect, the present invention relates to a digital impulse generator assembly comprising;
Preferably, the rotatable member comprises an encoder disc having a contact part that is in continuous electrical contact with the contact part of the first terminal, and a plurality of spaced positioned taps adapted to get in contact with the contact member.
Preferably, the contact member comprises a substantially U-shaped wedge mounted to the second carrier, the wedge comprising a contact point in each end. The contact member may be rotated from a first position, where it provides contact between the contact surfaces of the first and second terminal, to a second position, where it provides contact between the contact surfaces of the first and third terminal. Thus, it is possible to provide a signal on different terminals depending on which position the contact is placed in.
Preferably, the rotation of the contact member, so as to move it from said first position to said second position, is provided upon changing the direction of rotation of the second rotatable carrier. While rotating the second rotatable member in one direction, the first rotatable member will follow this rotation, as it is in engagement with the second rotatable member (e.g. by friction) until the contact member reaches its position, where it provides contact between the contact surfaces of e.g. the first and second terminal. The contact member will remains in this position as long as the second rotatable member is rotated in the same direction. When changing the direction of rotation of the second rotatable member, the first rotatable member will follow this rotation until the contact member reaches its position, where it provides contact between the contact surfaces of the first and third terminal.
Preferably, the base part comprises a stop member for stopping the rotation of the contact member, so as to only rotate it between said first and second position despite of a continuous rotation of said second rotatable member.
The terminals may comprise pins protruding the base part through holes and having a bent portion constituting its contact surface. The contact surface of one or more of the terminals may be provided by rivets riveted to the terminal(s), so as to provide a more precise point of contact.
The terminals may comprise conducting bars riveted to the base part, the riveted part of each terminal defining its contact surface.
The terminals may comprise flexible strips riveted to the base part, the rivet defining the contact surface of the terminal.
Preferably, the external diameter of the housing is equal to or less than 3 mm, such as 2.55 mm.
The assembly according to this second aspect may comprise further terminals, such as a fourth or fifth external terminal protruding said base part and having a contact part inside said housing.
The rotation of the rotatable members may be provided by a user operable member meshed with said second carrier so as to rotate the second carrier when rotating the carrier operable member, the operable member having a user operable part protruding said cover.
The assembly according to the first and second aspect may be used for or integrated in electronic equipment, such as hearing instruments (BTE, ITE or ITC), mobile phones, PDAs, game devices, and/or other audio equipment.
Preferred embodiments of the invention will be described in details below with reference to the accompanying figures, wherein
While the invention is susceptible to various modifications and alternative forms, specific embodiments have been shown by way of example in the drawings and will be described in detail herein. It should be understood, however, that the invention is not intended to be limited to the particular forms disclosed. Thus, the invention is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the invention as defined by the appended claims.
This application claims the benefit of provisional application No. 60/328,349, filed Oct. 10, 2001.
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Number | Date | Country | |
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20030095584 A1 | May 2003 | US |
Number | Date | Country | |
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60328349 | Oct 2001 | US |