Sensor detection system
11253238 · 2022-02-22
Assignee
Inventors
- Thomas Kahler (Seitingen-Oberflacht, DE)
- Roland-Alois Högerle (Tuttlingen, DE)
- Martin Machill (Rietheim-Weilheim, DE)
Cpc classification
A61B2090/0818
HUMAN NECESSITIES
A61B17/24
HUMAN NECESSITIES
A61B2017/00039
HUMAN NECESSITIES
A61B2017/00398
HUMAN NECESSITIES
International classification
Abstract
A detector system for a medical motor system includes a multi-channel redundantly-configured detection device, which is accommodated in a hand-held control device that is adapted to control the medical motor system and which is positioned to detect the actuation of an actuation device of the hand-held control device. The multi-channel redundantly-configured detection device allows the plausibility of its output signals to be checked.
Claims
1. A detector system for a medical motor system, comprising a multi-channel redundant detection device which is accommodated in a hand-held control device that is adapted to control the medical motor system and which is positioned to detect actuation of an actuating device of the hand-held control device, wherein the actuation device is configured as a lever or slider; the multi-channel redundant detection device comprises at least two detection receiving devices and exactly one detection transmitting device; the exactly one detection transmitting device associated with all of said at least two detection receiving devices and arranged to charge said at least two detection receiving devices with a detection transmitting quantity which is equal; the multi-channel redundant detection device is designed to allow the plausibility of its output signals to be checked; and the at least two detection receiving devices and/or the exactly one detection transmitting device are each individually encapsulated in a vapor-proof and/or watertight manner to protect the at least two detection receiving devices and/or the exactly one detection transmitting device from water or vapor present in the hand-held control device.
2. The detector system according to claim 1, wherein the at least two detection receiving devices are positioned so as to be offset in a direction of a lever path or slider path of the exactly one detection transmitting device.
3. The detector system according to claim 2, wherein the at least two detection receiving devices comprise Hall sensors or light sensors and the exactly one detection transmitting device comprises a magnet or a light source.
4. The detector system according to claim 1, wherein the at least two detection receiving devices are identical detection receiving devices.
5. The detector system according to claim 1, wherein the at least two detection receiving devices are different detection receiving devices.
6. The detector system according to claim 1, wherein the at least two detection receiving devices, each with mutually independent detection ranges, are accommodated in a common housing assembly.
7. The detector system according to claim 1, wherein the at least two detection receiving devices are stationarily positioned and the exactly one detection transmitting device is movably positioned and movable toward the at least two detection receiving devices by actuating the actuating device on a predetermined trajectory.
8. The detector system according to claim 1, wherein the at least two detection receiving devices are programmed to output a same output signal or are programmed to output different output signals.
9. A hand-held control device for a medical motor system, comprising a detector system according to claim 1.
10. A detector system for a medical motor system, comprising a multi-channel redundant detection device which is accommodated in a hand-held control device that is adapted to control the medical motor system and which is positioned to detect actuation of an actuating device of the hand-held control device, wherein: the actuation device is configured as a lever or slider; the multi-channel redundant detection device comprises a first detection receiving device, a second detection receiving device, a first detection transmitting device associated with the first detection receiving device, and a second detection transmitting device associated with the second detection receiving device, the second detection transmitting device being distinct from the first detection transmitting device; and the multi-channel redundant detection device is designed to allow the plausibility of its output signals to be checked, in which the first detection transmitting device is provided for the first detection receiving device and is arranged to charge the first detection receiving device with a first detection transmitting quantity, and the second detection transmitting device is provided for the second detection receiving device and is arranged to charge the second detection receiving device with a second detection transmitting quantity, wherein the first and second detection receiving devices, each with mutually independent detection ranges, are accommodated in a common housing assembly, and wherein the first and second detection receiving devices and/or the first and second detection transmitting devices are individually encapsulated in a vapor-proof and/or watertight manner to protect the first and second detection receiving devices and/or the first and second detection transmitting devices from water or vapor present in the common housing assembly.
Description
BRIEF DESCRIPTION OF THE DRAWING FIGURE(S)
(1) The invention is described in more detail below with further advantages and effects on the basis of preferred exemplary embodiments with reference to the drawing in which:
(2)
(3)
(4)
(5)
(6) Identical or functionally equivalent characteristics have the same reference signs in the individual figures and expediently are not described in a redundant way.
DETAILED DESCRIPTION
(7)
(8) With the exception of the differences according to one of the following exemplary embodiments, such a hand-held control device 10 is known on principle and essentially comprises an application-side motor cable connector 20 for supplying and controlling the electronic motor system (which is integrated, for example, in the handpiece) via e.g. a (not shown) external control unit, a manually operable lever 22 which is spring-loaded by means of a mechanical return spring 24 which serves to return the non-actuated lever 22 to the output position, and is articulated on a lever axle 26 on a housing body 30 of the hand-held control device 10 so as to be able to pivot. On the output side, there is a cable arrangement with a bend protection sheath 32, on which a medical tool driven by the motor of the motor system, such as a cutter for treatment in the surgical site, is engaged. Such systems can be used in areas such as bone surgery and arthroscopy, neurosurgery, veterinary medicine and the like, without being limited thereto.
(9)
(10) In contrast to the hand-held control device according to
(11) In accordance with the present exemplary embodiments, the hand-held control device 10 according to
(12) In detail, the multi-channel redundant detection device comprises at least two sensors 40 in accordance with the present exemplary embodiments, which each form detection receiving devices and may be designed as Hall sensors and/or optical sensors in the form of, for example, light sensors, and at least one variable sender or (variable) transmitter 42 acting on the sensors 40, which forms a detection transmitting device and may accordingly be designed as a magnet with respective magnetic north and south poles or as a light source emitting light in the visible or invisible range, for example infrared range.
(13) The at least two sensors 40 and the at least one transmitter 42 form a multi-channel (redundant) (signal) detector system which serves to protect the hand-held control device 10 against the tool running without the user's request. In other words, the overall assembly is designed to prevent an application part or tool from starting or running by means of the multi-channel redundant detector system when a fault is detected and/or without the lever 22 or the slide 23 being actuated by a user. Therefore, even in a case in which one of the sensors 40 suddenly becomes defective, a status inquiry or signal plausibility inquiry based on the at least two output signals of the at least two sensors 40 allows to detect an error state and, by triggering a switch-off of the hand-held control device 10, prevent the user having an application part/tool in the surgical site from being surprised by a sudden start of the tool. By using at least two sensors 40, which are controlled independently of each other but in parallel (at the same time), it is ensured that if one sensor 40 fails, the defect is detected and the hand-held control device 10 can be deactivated by the control unit.
(14) With a correspondingly adapted status or signal plausibility inquiry, the at least two sensors 40 may be arranged for outputting basically the same output signal, for example if the at least two sensors 40 are identical or of the same type or construction, or alternatively for the output of different output signals, for example if the at least two sensors 40 are of different type or construction. If, for example, the individual sensors 40 each deliver output signals that deviate in their combination from predetermined plausible states or plausibility conditions, it can be concluded that an error state is present.
(15) In one exemplary embodiment, exactly one transmitter 42 may be provided which is assigned to all of the at least two sensors 40 and is arranged to charge them with a detection transmission variable which is basically the same. In this case, both sensors 40 receive or detect the basically identical signal or a corresponding variable of one and the same transmitter 42, for example a magnet or a light source.
(16) Alternatively, each of the at least two sensors 40 may have a transmitter 42 individually assigned to each sensor 40, which is arranged to supply its respective signal or variable to the corresponding sensor 42 assigned to it.
(17) In an exemplary embodiment, at least two Hall sensors are arranged as the at least two sensors 40 and at least one magnet is arranged as the at least one transmitter 42. In another exemplary embodiment, at least two light sensors are arranged as the at least two sensors 40 and at least one light source is arranged as the at least one transmitter 42.
(18) In the case where the at least two sensors 40 are of different design or are arranged to detect different (physical) quantities, two sensors 40 and two transmitters 42 may be arranged in another exemplary embodiment, with one of the two sensors 40 being a Hall sensor and the other of the two sensors 40 being a light sensor, and one of the two transmitters 40 being a magnet associated with the Hall sensor, and the other of the two transmitters 42 being a light source associated with the light sensor.
(19) In a further exemplary embodiment, the at least two sensors 40 each having independent detection ranges may be accommodated in a common housing assembly. In addition, individually provided sensors 40 and/or sensors 40 installed in a common housing assembly may each be encapsulated in a vapor- and/or watertight manner, for example glued or potted.
(20) In the hand-held control device 10 shown in
(21) In the hand-held control device 10 shown in
(22)
(23)
(24) It is noted that in
(25)
(26) In detail,
(27)
(28) It is noted that in
(29) Further exemplary embodiments include combinations of different sensor types. In other words, different sensor types may also be combined in the possible individual arrangement systems as described above comprising two Hall sensors as receiver or sensor 40 and two magnets as transmitter 42. For example, in the cases of
(30) Alternatively, at least in the cases of
(31) Furthermore, in the arrangements described above, it is possible to provide the at least two sensors 40 completely in analogue version, completely in digital version or in a combination of analogue version and digital version.
(32) Thus, a redundant detector system has been described above for an electric hand-held control device, which is preferably in the form of a housing assembly with at least two sensor elements and at least one magnet, which are thus designed with at least two channels in order to stop the function of the hand-held control device in the event of faulty signals detected by at least double (redundant) interrogation, i.e. a malfunction such as a start without request, and thereby ensure that an unintentional activation or an unintentional continued run of application parts (e.g. in the surgical site) is prevented. The detector system may thus be designed for a medical and/or surgical motor system and include a multi-channel redundant detection device which is accommodated in a hand-held control device adapted to control the medical motor system and which is positioned to detect the actuation of an actuating device of the hand-held control device, wherein the multi-channel redundant detection device is designed to allow the plausibility of its output signals being checked.
(33) It is understood that the described exemplary embodiments and the drawings not to scale are only exemplary in character and that modifications may easily result for the person skilled in the art without the scope according to the description and the scope of protection defined by the attached claims being left behind. Likewise, external shapes, dimensions and the like are not subject to any special restrictions as long as the effect and functionality according to the invention are provided and achieved by them.