SWITCHING APPARATUS FOR A CONTROL SYSTEM FOR A VEHICLE, AND CONTROL SYSTEM FOR A VEHICLE
20170321801 · 2017-11-09
Assignee
Inventors
Cpc classification
F16H63/3458
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2059/0295
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H59/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H61/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H59/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01D5/353
PHYSICS
F16H63/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present disclosure relates to a shift device for a control system for a vehicle. The shift device may include at least one optical fiber for conducting a light signal, where the light signal has an input characteristic when entering the shift device, and where the light signal has an output characteristic when exiting the shift device. The shift device may further include a control element, where the control element can be moved between a home position, a first actuation position, and a second actuation position by an actuation force. The control element may have an adjustment device for adjusting the characteristic of the light signal, where the adjustment device is configured to set the output characteristic of the light signal to a first value when the control element is in the home position.
Claims
1. A shift device for a control system for a vehicle, the shift device comprising: at least one optical fiber for conducting a light signal, wherein the light signal has an input characteristic when entering the shift device, and wherein the light signal has an output characteristic when exiting the shift device; and a control element, wherein the control element can be moved between a home position, a first actuation position, and a second actuation position by an actuation force, wherein the control element has an adjustment device for adjusting the characteristic of the light signal, wherein the adjustment device is configured to set the output characteristic of the light signal to a first value when the control element is in the home position, wherein the adjustment device is configured to set the output characteristic of the light signal to a second value when in the first actuation position, wherein the adjustment device is configured to set the output characteristic of the light signal to a third value when in the second actuation position, and wherein the first value, the second value, and the third value differ from one another.
2. The shift device according to claim 1, that wherein the adjustment device has at least one pressure section, and wherein the at least one pressure section is configured to alter a curvature radius of the at least one optical fiber based on the position of the control element.
3. The shift device according to claim 1, wherein the adjustment device has at least one damper section, wherein the at least one damper section is configured to at least partially allow the light signal to pass through the at least one optical fiber when the control element is in a position.
4. The shift device according to claim 3, wherein the at least one damper section has an interruption section, an optical element, a reflector and an absorber.
5. The shift device according to claim 1, wherein the adjustment device has a second optical fiber in addition to the at least one optical fiber, wherein the second optical fiber is configured to allow the light signal to at least partially pass through the at least one optical fiber when the control element is in a position.
6. The shift device according to claim 1, wherein the input characteristic and the output characteristic of the light signal each include at least one of a light intensity or a luminous flux.
7. The shift device according to claim 1, wherein the first value of the output characteristic represents a maximum value, and wherein the third value of the output characteristic represents a minimum value.
8. The shift device according to claim 1, further comprising at least one spring device for applying a spring force counter to the actuation force to the control element, wherein the spring device is configured to regulate a movement of the control element between the home position, the first actuation position, and the second actuation position.
9. The shift device according to claim 8, wherein when the control element is in the home position and when the at least one spring device is not providing a spring force, a transfer of force between the control element and the spring device is at a minimum in the first actuation position, and the transfer of force between the control element and the spring device is at a maximum in the second actuation position.
10. The shift device according to claim 1, wherein the control element has at least one of a button, a switch, a rocker button, a rocker switch, and a slider.
11. The shift device according to claim 1, wherein the shift device has a continuous optical fiber and at least one spring device for applying a spring force to the control element, the spring force being counter to the actuation force, wherein the spring device is configured to regulate a movement of the control element between the home position, the first actuation position, and the second actuation position, wherein the adjustment device has at least one pressure section configured to alter a curvature radius of the at least one optical fiber depending on a position of the control element, and wherein the optical fiber is disposed between the at least one pressure section and the spring device.
12. A control system for a vehicle, wherein the control system comprising: a shift device according to claim 1; and a control device, wherein the shift device is connected to the control device by the at least one optical fiber such that it is capable of data transfer with the shift device, wherein the control device has a coupling device for coupling with the light signal, wherein the control device has a detection device for determining the output characteristic of the light signal emitted from the at least one optical fiber, and wherein the control device is configured to generate a control signal depending on a value of the output characteristic of the light signal.
13. The control system according to claim 12, wherein the control device is configured to transmit the control signal to a motor control device.
14. The control system according to claim 13, wherein the control device is configured to generate a first control signal in response to the second value of the output characteristic, wherein the first control signal represents a pre-selection signal for pre-selecting a transmission step, wherein the control device is configured to generate a second control signal in response to the third value of the output characteristic, and wherein the second control signal represents a shifting signal for setting a transmission step.
15. The control system according to claim 13, wherein the control device is configured to generate a first control signal in response to the second value of the output characteristic, wherein the first control signal represents a motor start-up signal, wherein the control device is configured to generate a second control signal in response to the third value of the output characteristic, and wherein the second control signal represents an unlocking signal for releasing a transmission lock.
16. The control system according to claim 12, wherein the control device is configured to transmit the control signal to a transmission control device.
17. The shift device according to claim 1, wherein the adjustment device has at least one damper section, wherein the at least one damper section is configured to at least partially dampen the light signal when the control element is in a position.
18. The shift device according to claim 1, wherein the adjustment device has a second optical fiber in addition to the at least one optical fiber, wherein the second optical fiber is configured to at least partially redirect the light signal to the control element when the control element is in a position.
Description
[0033] The present embodiments shall be explained in greater detail based on the attached drawings. Therein:
[0034]
[0035]
[0036] In the following description of preferred exemplary embodiments of the present disclosure, the same reference symbols are used for the elements depicted in the various Figures and having similar functions, wherein there shall be no repetition of the description of these elements.
[0037]
[0038] The control system 100 has a shift device 110 according to the exemplary embodiment of the present disclosure depicted in
[0039] The shift device 110 has an optical fiber 120 according to the exemplary embodiment of the present disclosure depicted in
[0040] Furthermore, the shift device 110 of the control system 100 has a control element 130. The control element 130 can be, e.g., a button, a switch, a rocker button, a rocker switch or a slider. The control element 130 is designed to exert an external actuation force 131 on the shift device 110. In other words, the control element 130 is designed to exert an actuation force 131 by a user on the shift device 120, or the adjustment device 132, and optionally to transfer it to the optical fiber 120. The control element 130 is disposed such that it can be moved to different positions by means of an actuation force 131 applied to the shift device 110 or the control element 130, such that it can be moved, in particular between a home position, a first actuation position and a second actuation position, depending on the actuation force 131.
[0041] The home position of the control element 130 corresponds thereby to an absence of the actuation force 131, or a standby setting of the control element 130. The first actuation position of the control element 130 represents, e.g., a first step of a movement or actuation movement of the control element 130 when actuation force 131 is applied. The second actuation position of the control element 130 represents, in particular, a second step of the actuation movement of the control element 130, or, e.g., a stop position of the control element 130 in the shift device 110 when actuation force 131 is applied. According to another exemplary embodiment, the control element 130 can be moved between more than three positions.
[0042] The control element 130 has an adjustment device 132 according to the exemplary embodiment of the present disclosure depicted in
[0043] The adjustment device 132 is designed thereby to set the output characteristic of the light signal to a first value when the control element 130 is in the home position. Furthermore, the adjustment device 132 is designed to set the output characteristic of the light signal to a second value when the control element 130 is in the first actuation position. The adjustment device 132 is also designed to set the output characteristic of the light signal to a third value when the control element 130 is in the second actuation position. The first value, second value and third value differ thereby.
[0044] According to one exemplary embodiment, the input characteristic and the output characteristic of the light signal represent a light intensity of the light signal. In particular, the input characteristic and the output characteristic of the light signal represent a luminous flux, an illumination, a luminous flux, a light quantity, an exposure, or a light output of the light signal. Alternatively, the input characteristic and the output characteristic of the light signal represent a polarization property or a color of the light signal. According to one exemplary embodiment, the first value of the output characteristic is a maximum value or level of a light intensity of the optical signal, and the third value of the output characteristic is a minimum value or level of a light intensity of the optical signal.
[0045] The control system also has a control device 140. The control device 140 is connected to the shift device 110 such that it can transfer data thereby by means of the optical fiber 120. The optical fiber 120 is designed in the form of a loop thereby, in order to create a connection between the control device 140 and the shift device 110 that is capable of data transfer.
[0046] The control device 140 has a coupling device 142 and a detection device 144. The coupling device 142 is designed thereby to couple the light signal having the input characteristic in the optical fiber 120. The coupling device 142 has a light source, which is designed, for example, as a light emitting diode. The detection device 144 is designed to detect the light signal or the output characteristic of the light signal from the optical fiber 120. The detection device 144 is designed thereby as a phototransistor, for example.
[0047] The control device 140 is designed to generate a control signal 150 as a function of a value of the output characteristic of the light signal determined by means of the detection device 144. The control device 140 is designed thereby, in particular, to generate a different control signal 150 depending on an existing value of the output characteristic. The control device 140 is also designed to transmit or provide the control signal 150 to an interface for a device.
[0048] By way of example, the control device 140 can be designed to generate a first control signal 150 or to interrupt a generation of a control signal 150 when an output characteristic having the first value is detected, wherein the control element 130 is disposed in the home position. When an output characteristic having the second value or the third value has been detected, wherein the control element 130 is disposed in the first actuation position or the second actuation position, the control device 140 can be designed to generate a second control signal 150 or a third control signal 150.
[0049] According to one exemplary embodiment, the control device 140 is designed to transmit the control signal 150 to an interface for a motor control device and to an interface for a transmission control device. The control device 140 is designed thereby to generate a first control signal 150 in response to the second value of the output characteristic of the light signal, which represents a motor start-up signal, and to generate a second control signal 150 in response to the third value of the output characteristic of the light signal, which represents an unlocking signal for releasing a transmission lock and/or releasing a gearshift lever. By way of example, a vehicle start-up or motor start-up can thus be implemented by a two-step P-shift on a gearshift lever of a vehicle. In order to generate the first control signal 150, the control device 140 can be designed thereby to check whether the first actuation position of the control element 130 of the shift device 110 has been applied for a defined period of time, e.g. at least half a second, in order to cause a motor start-up. In particular, a vehicle start-up can thus be functionally linked to disengagement button, or unlock-button on a gearshift lever of a vehicle. If the shift device 110 is actuated into the first actuation position for a specific time period, e.g. one second, then it is possible to cause the motor of the vehicle to be started up. When the shift device 110 is placed in the second actuation position, a transmission lock can be released, and a shifting to another gear or another gear step can be enabled.
[0050] According to one exemplary embodiment, the control device 120 is designed to transmit the control signal 150 to an interface for a transmission control device. The control device 140 is designed thereby to generate a first control signal 150 in response to the second value of the output characteristic of the light signal, which represents a pre-selection signal for pre-selecting a gear step, or a gear, and to generate a second control signal 150 in response to the third value of the output characteristic of the light signal, which represents a shifting signal for setting a gear step or for engaging a gear. A use of a multi-step button as the shift device 110 in the vehicle can be, for example, a two-step rocker button for shifting in the so-called manual channel. Thus, a pre-controlling of transmissions, or a gear selection by a two-step shifter in the manual channel can be implemented. Regarding an up-shifting (M+) and a down-shifting (M−) in the manual channel, it can be signaled by the first actuation position of the shift device 110 that an up-shifting or down-shifting is intended as the next manual gear selection. The actual shifting procedure can be carried out on the basis of the second actuation position.
[0051]
[0052] A subsection of the optical fiber 120, a subsection of the control element 130 depending on the position of the control element 130, the adjustment device 132, and the spring device 260 are disposed in the housing 212.
[0053] According to the exemplary embodiment of the present disclosure depicted in
[0054] The control element 130 is designed as a button. In the home position depicted in
[0055] The adjustment device 132 has a pressure section 232 or a pressure element according to the exemplary embodiment of the present disclosure depicted in
[0056] The adjustment device 132 having the pressure section 232 is designed in particular thereby to be disposed at a spacing to the optical fiber 120 when the control element 130 is in the home position, and to bend the optical fiber 120 when the control element 130 is not in the home position. Positions of the control element 130 not in the home position are depicted by way of example in
[0057] The spring device 260 is designed to apply a spring force to the control element 130 directed against the actuation force 131. According to the exemplary embodiment of the present disclosure depicted in
[0058] In the home position shown in
[0059]
[0060]
[0061] In reference to
[0062]
[0063]
[0064]
[0065] The interrupted optical fiber 120 has an intermediate space filled with air between two subsections of the optical fiber 120. The two subsections of the optical fiber 120 extend along a common longitudinal axis of the optical fiber 120 inside the housing 212 of the shift device 110. The light signal 22, or the light path, runs from an input-side subsection of the optical fiber 120 through the intermediate space, into an output-side subsection of the optical fiber 120 when the control element 130 is in the home position.
[0066] The adjustment device 132 is made of an opaque material. The adjustment device 132 having the interruption section 432 is designed to at least partially allow the light signal 222 to pass through the optical fiber 120, or to at least partially interrupt the light signal, depending on a position of the control element 130. In the home position shown in
[0067]
[0068] The adjustment device 132 has the interruption section 432 and the optical element 532 thereby. In the home position shown in
[0069] In reference to
[0070]
[0071] The interrupted optical fiber 120 has an intermediate space filled with air between two subsections of the optical fiber 120. The two subsections of the optical fiber 120 extend along a common longitudinal axis of the optical fiber 120 inside the housing 212 of the shift device 110. The light signal 222, or the light path, respectively, runs from an input-side subsection of the optical fiber 120 through the intermediate space, into an output-side subsection of the optical fiber 120 when the control element 130 is in the home position.
[0072] The further optical fiber 632 extends from the control element 130 toward the optical fiber 120. The further optical fiber 632 has a first section, a bent section, and a second section. The first section extends along the actuation axis A of the shift device 110. The second section extends along a common longitudinal axis of the optical fiber 120 toward the input-side subsection of the optical fiber 120. The bent section of the further optical fiber 120 is disposed between the first section and the second section.
[0073] The adjustment device 132 having the further optical fiber 632 is designed to at least partially allow the light signal 22 to pass through the optical fiber 120, and additionally or alternatively, to at least partially redirect it to the control element 130, depending on a position of the control element 130. In the home position shown in
[0074]
[0075] According to another exemplary embodiment, the second section of the further optical fiber 632 can be disposed only partially in the intermediate space in another actuation position, such that a first portion of the light signal 222 is redirected from the further optical fiber 632, and a second portion of the light signal 222 can pass through the output-side subsection of the optical fiber 120.
[0076] In reference to
[0077]
[0078] The interrupted optical fiber 120 has an intermediate space filled with air between the two subsections of the optical fiber 120. The two subsections of the optical fiber 120 extend along longitudinal axes angled in relation to one another inside the housing 212 of the shift device 110. The adjustment device 132 having the reflector 732A and the absorbers 732B is disposed on a side of the control element 130 facing the optical fiber 120. The reflector 732A is disposed thereby between a first absorber 732B and a second absorber 732B. The reflector 732A is designed thereby as a mirror, or made of an optically reflecting material. The absorbers 732B are painted matt black, for example. The absorbers 732B are designed thereby to absorb at least a portion of the optical signal 222.
[0079] The adjustment device 132 having the reflector 732A and the absorbers 732B is designed to allow the light signal 222 to pass at least partially through the optical fiber 120, or to at least partially dampen it and additionally or alternatively to interrupt it, depending on a position of the control element 130. In the home position shown in
[0080]
[0081] With respect to
[0082] Exemplary embodiments of the present disclosure, variations and further aspects shall be summarized and explained in other words with reference to
[0083] According to one exemplary embodiment, the adjustment device 132 of the shift device 110 can have at least one polarization filter. A weakening of the luminous flux of the light signal 222 can be obtained thereby through polarizing filters. According to one exemplary embodiment, the shift device 110 can be designed as a switch.
[0084] According to exemplary embodiments of the present disclosure, a detection of button and switch signals in a gearshift lever of a vehicle can occur using optical fibers, wherein the adjustment device 132, 232, 432, 532, 632, 732A, 732B can function as a separating mechanism, in order to interrupt or dampen the luminous flux of the light signal 222, depending on a position of the control element 130. A shift device 110 is also provided thereby with a multi-step design of a switch and additionally or alternatively having a closed or single-piece optical fiber loop, or an open or two-piece optical fiber loop. The luminous flux of the light signal 222 can be weakened thereby via reflection on various absorbing media through actuation of the switch, the luminous flux of the light signal 222 can be weakened via polarizing filters by the actuation of the switch, and additionally or alternatively, an optical intermediate element can reduce transmission losses in the open optical fiber 120.
[0085] According to one exemplary embodiment, a switching of the luminous flux of the light signal 222, or the coupling device 142, or a light source can be obtained, wherein a darker state can be selected such that with numerous switching states, a state that will not malfunction, or a fail-safe state, can be signaled with the dark state. The luminous flux can be sent through the at least one optical fiber 120. The luminous flux for a disengagement button, or an unlocking button on a gearshift lever of a vehicle is thus switched on when a driver actuates the brake pedal. The switching of the luminous flux can also be carried out by a transmission of the vehicle. This can be used as a second safeguard against malfunctions of the gearshift lever when outputting the gear step.
[0086] The exemplary embodiments described herein and illustrated in the Figures are only selected by way of example. Different exemplary embodiments can be combined in their entirety or with respect to individual features. Furthermore, an exemplary embodiment can be supplemented by features of another exemplary embodiment.
[0087] Moreover, method steps according to the disclosure can be repeated or executed in a sequence differing from that described herein.
[0088] If an exemplary embodiment comprises an “and/or” conjunction between a first feature and a second feature, this can be read to mean that the exemplary embodiment according to one embodiment has both the first and the second feature, and according to another embodiment, has either just the first or just the second feature.
REFERENCE SYMBOLS
[0089] 100 control system [0090] 110 shift device [0091] 120 optical fiber [0092] 130 control element [0093] 131 actuation force [0094] 132 adjustment device [0095] 140 control device [0096] 142 coupling device, or light source [0097] 144 detection device or phototransistor [0098] 150 control signal [0099] 212 housing [0100] 222 light signal or light path [0101] 232 pressure section [0102] 260 spring device or plate spring, or elastic element [0103] A actuation axis or movement axis [0104] 432 interruption section [0105] 532 optical element [0106] 632 further optical fiber [0107] 722 light beam [0108] 732A reflector [0109] 732B absorber