This invention concerns a radio-controlled switch as described in the preamble of claim 1.
The state of the art describes different radio-controlled switches, for example, in the form of monostable, bistable, or metastable radio-controlled switches, in particular energy-independent radio-controlled switches, which use a generator, for example an induction generator, to generate energy upon actuation in order to transmit a signal as a result of actuation of the radio-controlled switch. For suitable encoding, the electrical energy generated is directed to a transmitter assembly of the radio-controlled switch, which is located together with an antenna on a circuit board. The antenna is generally a printed antenna, a patch antenna, or an antenna connected flush with the circuit board. Such modules can be manufactured in a cost-effective and highly integrated manner, whereby advantageously a contact with the antenna can be simultaneously implemented with short leads. To form a radio-controlled switch which is based on an existing switch design, but that works with a different transmission frequency, it is sufficient merely to replace the module.
Based on this, the invention has the task of suggesting an alternative radio-controlled switch that is also small.
This task is solved by the invention in the features of claim 1.
The invention proposes a radio-controlled switch, particularly a snap-action switch, with an antenna, a transmitter assembly, and a generator, whereby the antenna is electrically connected to the transmitter assembly to emit a signal that can be generated by the transmitter assembly, whereby the transmitter assembly is placed on a board-shaped circuit carrier, whereby the antenna is held on a carrier substrate within the radio-controlled switch that is separate from the circuit carrier.
In one embodiment of the invented radio-controlled switch, the antenna is held in the same position on the carrier substrate, whereby the antenna and the carrier substrate have no independent connection with one another.
In another embodiment of the invented radio-controlled switch, the carrier substrate extends over a wide area, and is particularly implemented in the form of a board.
In still another embodiment of the invented radio-controlled switch, the carrier substrate forms a carrier for the antenna, in particular, a carrier adapted to the contour of the antenna.
The invention proposes a radio-controlled switch, whereby the antenna is arranged in the same position between the carrier substrate and a support element, particularly permanently, whereby the support element acts as a pressing element.
Furthermore, the invention proposes a radio-controlled switch, whereby the support element is supported against a housing element of the radio-controlled switch, particularly an upper part of the housing, and/or the carrier substrate is supported on another housing element of the radio-controlled switch, particularly a lower part of the housing.
According to one aspect of the invented radio-controlled switch, an opening is formed in the carrier subtract for contacting of the antenna on a side of the carrier substrate directed away from the antenna, whereby a contact element of the antenna extends through the opening.
According to another aspect of the invented radio-controlled switch, the antenna has a contact element for a sliding contact connection or a plug connection, whereby the contact element is particularly formed for connection with corresponding contact surfaces of the circuit carrier.
In one embodiment of the invented radio-controlled switch, the circuit carrier extends in a vertical plane and the carrier substrate in a horizontal plane, in particular, above the circuit carrier.
In another embodiment of the invented radio-controlled switch, the antenna is contacted on an upper end of the circuit carrier extending in a vertical plane, in particular by means of a form-fitting and/or force-fitting fastening procedure.
In still another embodiment of the invented radio-controlled switch, the carrier substrate extends in a horizontal plane above an upper end of the generator, overlapping it in the vertical direction, in particular in parallel with a horizontally oriented neighboring external side of the generator and/or a housing inner side of the radio-controlled switch.
The invention proposes a radio-controlled switch, whereby the circuit carrier together with the carrier substrate forms an L-shaped cross section.
According to one aspect of the invented radio-controlled switch, the circuit carrier extends from a lower end of the radio-controlled switch, in particular, of the generator, next to an outer side of the generator and/or a housing inner side of the radio-controlled switch, overlapping it in the lengthwise direction, in parallel with it in a vertical level upwards, in particular, up to the circuit carrier.
According to an embodiment of the invented radio-controlled switch, the generator has an actuation element that is adjacent to an induction coil and extends together with it in the lengthwise direction, whereby the actuation element overlaps the induction coil in the vertical direction, whereby the circuit carrier overlaps the actuation element in the vertical direction.
According to another embodiment of the invented radio-controlled switch, the generator is an induction snap generator.
According to one aspect of the invented radio-controlled switch, a control element extends through the circuit carrier to engage with the actuation element.
According to another aspect of the invented radio-controlled switch, the circuit carrier works together with a housing element of the radio-controlled switch to seal the housing.
Additional characteristics and advantages of the invention can be found in the following description of embodiments of the invention, based on the figures in the drawings that show the significant details of the invention, and from the claims. The individual characteristics can each be implemented individually or in arbitrary combinations in variants of the invention.
Preferred embodiments of the invention are described in more detail below based on the attached drawings. The figures show:
The invented radio-controlled switch 1 is for example a snap-action switch, in which a magnetic element is mechanically accelerated by a spring load during a movement of the magnetic element to reverse the polarity of the core of an induction coil of the generator. In general, a radio-controlled switch 1 according to the invention can be implemented as a monostable (one resting position), bistable (two resting positions), or metastable (stable against small changes, unstable against larger changes) radio-controlled switch 1.
The transmitter assembly 3 is provided to generate a signal, i.e. a switching signal, using the generated energy that is transmitted to a connected antenna 5 for emission as a radio signal. The transmitter assembly 3 has a board-shaped circuit carrier 4, for example in the form of a circuit board, which supports the electronics of the transmitter assembly 3 (
An independently implemented antenna assembly 7 formed in such a way consisting of an antenna 5 and carrier substrate 6 permits the simple adaptation of existing radio-controlled switch designs to changing requirements of use.
The carrier substrate 6 has a support surface 8 for antenna 56, on which this is held in radio-controlled switch 1, for example supported there (
The carrier substrate 6 is according to the invention preferably an inelastic and/or rigid and/or stuff substrate, for example in the form of a board or thin plate (
The antenna 5 is held in the radio-controlled switch 1 on a carrier substrate 6, for example in such a way that the carrier substrate 6 and antenna 5 do not have or form any independent connection. Antenna 5 and carrier substrate 6 in this case are each independently formed and are for example forced against one another by the connection of the housing top and bottom parts into a housing 9. The carrier substrate 6 represents for example only a support for the antenna in the radio-controlled switch 1.
An antenna assembly 7 formed in this manner from carrier substrate 6 and antenna 5 makes it possible simply to replace antenna 5, carrier substrate 6, or the entire antenna assembly 7, for example to connect differently dimensioned antennas 5 to the transmitter assembly 3 and use different frequencies. Furthermore, the fact that a carrier substrate 6 that is separate from transmitter assembly 3 with respect to circuit carrier 4 in accordance with the invention as well as an antenna 5 not connected to the carrier substrate 6 are provided means that carrier substrate can be implemented in a cost-effective manner, for example as a plastic element instead of as a circuit board. However, it is also feasible for antenna 5 and the carrier substrate 6 to have an independent connection to one another, for example that they are permanently connected.
The antenna 5 is for example a U-shaped antenna and/or a loop antenna, or an antenna 5 of a different shape, for example a planar antenna, which, for example, is tuned to the transmission frequency provided by transmitter assembly 3. For example, it is possible for the antenna 5 to be implemented as a U-shaped punched and bent component, in particular as a component that can be adapted to the transmission frequency by being cut to a variable length (
To keep antenna 5 accurately in the provided position relative to the carrier substrate 6, according to the invention the carrier substrate 6 can have for example a holder 12 for the antenna 5 (
It is also feasible, for example, that one or more positioning elements extend away from the substrate towards antenna 5, which engage in the contour of the antenna 5 in order to keep it in position, i.e. prevent it from slipping to the side.
In the radio-controlled switch 1 according to the invention, the antenna 5 is held in position on carrier substrate 6, for example loosely inserted into holder 12, in particular between the carrier substrate 6 and a support element 14 or flat support located above antenna 5, in particular permanently, whereby the support element 14 acts e.g. as a pressing element (
The invention provides, for example, the use of a sealing element 16 (
According to the invention, the carrier substrate 6 is located on an upper end 17 of the radio-controlled switch 1 (
According to the invention, the carrier substrate 6 thereby extends in particular in a horizontal plane (
The circuit carrier 4 extends for example upwards from a lower end 18 of the radio-controlled switch 1, in particular of the generator 2, along an outer side 2a of the generator 2 and/or a housing inner side of the radio-controlled switch in a vertical plane in parallel and/or plane parallel to them, in particular up to the carrier substrate 6, whereby the circuit carrier 4 in particular overlaps the generator 2 in the lengthwise direction.
The carrier substrate 6 has, for the electrical contacting of antenna 5 to the transmitter assembly 3, at least one opening 19 and or penetration opening, whereby the contacting is provided for example on the side of the carrier substrate 6 away from the antenna 5 (
One or more contact elements 20 can for example be provided for a sliding contact connection or for example a plug connection with the circuit carrier 4 that project through the opening 19 in the carrier substrate 6 (
In an embodiment of the invented radio-controlled switch 1 in accordance with for example
In an arrangement shown in
The minimum installation space required for formation of the radio-controlled switch 1 is for example determined by the minimum dimensions of the carrier substrate 6 and transmitter assembly 3 and/or circuit carrier 4. Due to the shorter length dimensions in one dimension of space obtained in comparison with a circuit carrier with an integrated antenna, installation forms for a radio-controlled switch 1 according to the invention can be implemented which can be built small and compact and thus permit the miniaturization of the radio-controlled switch 1.
The invention provides for the use of a generator 2 in the radio-controlled switch 1 which can also be small and still provide high energy upon actuation of the radio-controlled switch 1. According to the invention, such a generator 2 can in particular be a miniaturized generator 2 in the form of an induction snap generator (
In a snap generator 2, a high acceleration of the magnetic element 24 between two resting points, in each of which the magnetic element 24 is supported on one flank of a core of the induction coil 25, for example on the face, is generated by a snap movement, thereby effecting a high temporal change in the magnetic flux, whereby the polarity of the core is reversed during a switch in the rest position.
To generate a snap movement, a spring element 26 connected to the magnetic element 24 corresponding to the magnetic element 24 is increasingly stressed during its movement between the resting positions, until the magnetic element 24 has reached a middle point between the resting positions. Upon reaching the middle point, energy stored by the stress on the spring element 26 can be used for the mechanical acceleration of the magnetic element 24 towards the resting position to be assumed by means of release of the spring element 26, resulting in an extremely accelerated approach of the magnetic element 24 towards the core. Between the resting positions, the magnetic element 24 is thus moved away from contact with the flanks and moved along a suitable path, e.g. a circular arc or A-shaped path which permits an increasing and decreasing spring stress.
Such a generator 2 has an actuation element 27. The actuation element 27 can be provided to store actuation energy during a movement of the magnetic element 24 from a starting resting position to another resting position. Using the stored energy, a return force can be exerted on magnetic element 24 in order to return it to the starting resting position after actuation. The actuation element 27 is for example formed integrally with the spring element 26, e.g. as a clip shape, and also implemented as a spring element.
In an advantageously compact arrangement, the actuation element 27 is located below the carrier substrate 6, for example above an induction coil 25 (
To be able to actuate the actuation element 27, then, an integrally formed engagement element 28 of the actuation element 27 points in the direction of the carrier substrate 6. The carrier substrate 6 hereby has, for example, an additional opening 30 and/or penetration opening, through which the control element 29 extends, in order to engage with the engagement element 28 and work together with it to effect actuation. The penetration opening 30 can hereby in particular form a guide for the control element 28.
The invention, for example, also provides that antenna assembly 7, which is formed of the carrier substrate 6 and antenna 5 that are separate from the circuit carrier 4, can be prefastened as shown in
Number | Date | Country | Kind |
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10 2010 003 152.6 | Mar 2010 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2011/052091 | 2/14/2011 | WO | 00 | 12/5/2012 |