LIGHTING DEVICE FOR AN AT LEAST PARTIALLY MUSCLE-POWERED VEHICLE BY MEANS OF LIGHT-GUIDING ELEMENTS
20170021884 · 2017-01-26
Inventors
Cpc classification
B62J6/03
PERFORMING OPERATIONS; TRANSPORTING
B62J11/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present invention comprises an illumination device (1210) of a vehicle which is operated at least partially by human power, having at least one light guide element (1220) and one mounting device which is adapted to accommodate an external light source in such a manner that the light which is emitted by the light source can be fed at least partially into the light guide element (1220) and can exit from the light guide element (1220) in such a manner that the emerging light can serve as illumination for the vehicle which is operated at least partially by human power. The present invention further comprises a method for controlling the illumination device of vehicles which are operated at least partially by human power, and trailers thereof, and also an application for controlling the illumination device of vehicles which are operated at least partially by human power, and trailers thereof.
Claims
1. An illumination device for a vehicle which is operated at least partially by human power, and/or a trailer thereof, comprising: at least one light guide element; and a mounting device, which is adapted for accommodating an external light source in such a manner that the light emitted by the light source is at least partially fed into the light guide element, and can exit the light guide element in such a manner that the emerging light can be used as illumination for a vehicle which is operated at least partially by human power, and/or a trailer thereof.
2-10. (canceled)
Description
[0060] These and other objects, features and advantages of the present invention will become apparent from a reading of the following detailed description of preferred embodiments and the accompanying drawings. It can be seen that even though embodiments are separately described, single features thereof may be combined to additional embodiments.
[0061]
[0062]
[0063]
[0064]
[0065]
[0066]
[0067]
[0068]
[0069]
[0070]
[0071]
[0072]
[0073]
[0074]
[0075]
[0076]
[0077]
[0078]
[0079]
[0080]
[0081] The mounting device preferably comprises an opening which corresponds to the light source integrated into the smartphone. This allows the light emerging from the light source integrated into the smartphone to be at least partially fed and/or coupled into the opening of the mounting device.
[0082] A lens and/or an optical element is preferably attached at the opening of the mounting device (not shown in
[0083]
[0084] Preferably, the illumination device comprises a sleeve (not shown in
[0085] In the exemplary illumination device of
[0086] If the illumination device has more than two light guide elements, the emerging light can be fed into the more than two light guide elements, as described further below with reference to
[0087] Preferably, the mounting device is waterproof, such that the external light source is protected from the weather.
[0088] Below, the term light guide element can be substituted by the term bundle of any number of light guide elements.
[0089]
[0090]
[0091] The alternative illumination device in this example includes two light guide elements which are attached in such a manner that the light emitted by the flashlight can be at least partially fed and/or coupled into the light guide element. The illuminating device further includes two beamforming elements, each attached to one of the light guide elements.
[0092] Preferably, the illumination device comprises a sleeve (not shown in
[0093] In the exemplary illumination device of
[0094] Alternatively, the light guide elements can also be secured to the mounting device (not shown in
[0095] The illumination device can also comprise more than two light guide elements. In this case, the emitted light is fed into more than two light guide elements, as described further below with reference to
[0096] In a further example, the illumination device comprises a sleeve (not shown in
[0097] The light guide elements can each be routed to a front end and a rear end of the bicycle. Thus, using a first beamforming element, such as a lens or a white LED reflector, the light emerging from the light guide element at the front end of the bicycle is focused in such a manner that it can be used as a front light for the bicycle. Using a second beamforming element, such as a red lens or a red LED reflector, for example, light emerging from the light guide element at the rear end can be focused in such a manner that it can be used as the rear light for the bicycle.
[0098]
[0099]
[0100]
[0101] The exemplary illumination device of
[0102] However, the present example is not limited to the accommodation of two light guide elements. Rather, any number of light guide elements can be accommodated by the sleeve.
[0103]
[0104]
[0105] Alternatively, the second magnet can include solely a recess, the diameter of which corresponds to the diameter of the light guide elements accommodated by the first magnet. In this case, the second magnet is attached to the mounting device in such a manner that the light emitted by the external light source can at least partially pass through the recess of the second magnet. The second magnet can be connected to the first magnet in such a manner that the light emitted by the external light source can at least partially pass through the recess of the second magnet and be fed and/or coupled into the two light guide elements. Thus, the light emerging from the light guide elements can serve as illumination for the bicycle.
[0106] For example, the second magnet can be attached to the mounting device in such a manner that the light emitted by an external light source and passing through an opening of the mounting device is at least partially fed and/or coupled into the two further light guide elements. By way of example, the second magnet can be attached to the first magnet in such a manner that the light fed and/or coupled into the two further light guide elements can emerge from the same in such a manner that it is at least partially fed and/or coupled into the two light guide elements which are accommodated by the first magnet. In particular, the light can be coupled-in in such a manner that it can emerge from the two light guide elements such that the emerging light can be used as illumination for the bicycle.
[0107] This example shows a simple fastening option for the light guide elements on the mounting device. This fastening option has the advantage that the mounting device can be removed from the bicycle after the ride and/or attached anywhere on the bicycle before the ride begins. In addition, this example has the advantage that the exit direction of the light exiting from the light guide elements can be modified by turning and/or rotating the first magnet. A further advantage of this example is that the light guide elements, with the associated beamforming elements, can be attached to a variety of mounting devices, each adapted to accommodate different external light sources.
[0108]
[0109] Alternatively, the nine light guide elements can be accommodated by a magnet (not shown in
[0110] According to the present example, the two bundles of light guide elements can be formed from any number of light guide elements. In addition, any given number of bundles of light guide elements can be formed, as will be illustrated with reference to
[0111]
[0112] Alternatively, the nine light guide elements can be accommodated by a magnet (not shown in
[0113]
[0114] One end of the curved, rigid light guide element can be attached in such a manner below and/or at an opening of the mounting device (not shown in
[0115] On a second end of the curved, rigid light guide element, a beamforming elementfor example a lens or a white LED reflectorcan be attached in such a manner that the beamforming element can modify and/or focus the shape and/or direction of the light emerging from the light guide element, such that it can serve as a front light for the bicycle.
[0116] The second light guide element can be routed to a rear end of the bicycle. For example, it can be routed by being affixed using cable fastener elements. The term cable fastener element includes cable ties, cable clamps, pressure clamps, and any type of cable guide elements. A second beamforming elementfor example, a red lens or a red LED reflectorcan be attached to the second light guide element in such a manner that it can modify or focus light emerging from the second light guide element such that it can serve as a rear light for the bicycle.
[0117] Alternatively, a red fluorescent acrylic glass or polymethylmethacrylate/PMMA rod, and/or a red fluorescent Plexistab, can be attached to the second light guide element in such a manner that the light emerging from the second light guide element is fed at least partially into the fluorescent Plexistab. A beamforming elementfor example a lens or an LED reflectorcan be attached to the same, such that the red light emerging from the fluorescent Plexistab can be modified or focused in such a manner that it can be used as the rear light for the bicycle.
[0118] The second light guide element can alternatively be routed to one end of the bicycle by being wrapped around the bicycle frame. This has the advantage that the second light guide element only needs to be fixed at a single location of the bicycle with a fastening element. This fastening variant has the advantage that it is particularly inexpensive.
[0119] The present example is not limited to the use of two light guide elements. Rather, any number of light guide elements can be formed and/or collected into a bundle of light guide elements. The bundle of light guide elements in this example can replace the second optical fiber, and can be routed to the location on the bicycle and/or a trailer thereof where the light emerging from the bundle of light guide elements is needed and/or desired as illumination for the bicycle.
[0120] A substantial advantage of this example is that the curved light guide element can be attached to the mounting device by a plug connection, for example. Alternatively, the curved light guide can be attached to the mounting device using magnets, as described with reference to
[0121] These examples have the advantage that the light guide elements can be removed after a bicycle ride, together with the beamforming elements, from the mounting device, and taken with the rider.
[0122] A further advantage of these examples is that no sleeve and no gooseneck are needed to attach the light guide elements to the mounting device. As a result, the cost of the illumination device is minimized in this example.
[0123]
[0124] Preferably, the second beamforming element can be fastened to the bicycle by means of an angular fastening element. The fastening to the bicycle can be performed by means of an anti-theft screw or a coding bolt, by means of which the illumination device can be attached in a theft-proof manner. The term coding bolt includes a bolt which can only be installed and/or uninstalled using a specific wrench and/or screwdriver with a shape which is matched to the bolt used.
[0125] Preferably, all exemplary illumination devices can be installed using coding bolts.
[0126] For example, the two light guide elements can be attached to the mounting device by means of two magnets as described above with reference to
[0127] The rigid light guide element can be attached to the mounting device in such a manner that its position can be changed by turning or rotating. This has the advantage that the exit direction of the light emerging from the rigid guide element and modified and/or focused via the beamforming element light can be modified by turning and/or rotation of the rigid light guide element.
[0128] The second light guide element can be routed on the bicycle or a trailer thereof to a location (not shown in
[0129] Alternatively, a red fluorescent acrylic glass or polymethylmethacrylate/PMMA rod, or a red fluorescent Plexistab, can be attached to the second light guide element in such a manner that the light emerging from the second light guide element is at least partially fed into the fluorescent Plexistab. A beamforming element, for example a lens or an LED reflector, can then be attached to the Plexistab in such a manner that the red light emerging from the fluorescent Plexistab can be modified and/or focused in such a manner that it can be used for the bicycle rear light.
[0130]
[0131] Preferably, a lens and/or a suitable optical element is attached at the opening of the mounting device (not shown in
[0132] Preferably, the illumination device comprises a sleeve which is to be attached below the opening of the mounting device and is adapted to at least partially accommodate any number of light guide elements, as described with reference to
[0133] Alternatively, a curved, rigid light guide element as described with reference to
[0134]
[0135] The first beamforming element is, by way of example, a lens or a white LED reflector which can modify or focus the shape and/or direction of the light exiting from the first light guide element in such a manner that it is suitable as a front light for the bicycle. Optionally, the first light guide element is routed in a gooseneck. As such, the exit direction of the light exiting from the first light guide element can be modified by moving the gooseneck.
[0136] Alternatively, the first and second light guide elements can be attached by means of magnets, as described with reference to
[0137] The second beamforming element is, for example, a red lens or a red LED reflector which is attached to one end of the second light guide element. The second light guide element is routed to a rear end of the bicycle. The red LED reflector focuses the shape and/or direction of the light exiting the second light guide element in such a manner that it is suitable as a rear light for the bicycle. Optionally, a part of the second light guide element can be accommodated, on the end at which the beamforming element is attached, by a second gooseneck (not shown in
[0138] Alternatively, a red fluorescent acrylic glass or polymethylmethacrylate/PMMA rod, or a red fluorescent Plexistab, can be attached to the second light guide element in such a manner that the light emerging from the second light guide element is at least partially fed into the fluorescent Plexistab. To this can be attached a beamforming element, such as a lens or an LED reflector, such that the red light emerging from the fluorescent Plexistab can be modified and/or focused such that it can be used for the bicycle rear light.
[0139]
[0140] A first light guide element is routed in a gooseneck. A beamforming element is attached to the first light guide element. The first beamforming element is, by way of example, a white LED reflector which can modify or focus the shape and/or direction of the light exiting from the first light guide element in such a manner that it is suitable as a front light for the bicycle. In addition, the exit direction of the front light on the bicycle can be modified by moving the gooseneck.
[0141] Alternatively, the first and the second light guide elements can be attached to the mounting device by means of magnets, as described above with reference to
[0142] Two beamforming elements are attached on a second light guide element. The second light guide element is optionally two separate light guide elements, on each of which a beamforming element is attached.
[0143] The two beamforming elements are, by way of example, two red lenses and/or two red LED reflectors. The second light guide element is routed to a rear end of the bicycle trailer such that the shape and/or direction of the light emerging from the second light guide element is modified and/or focused by the two beamforming elements in such a manner that the light can be used as a rear light for the bicycle with a trailer.
[0144] The second light guide element is optionally accommodated, on the end of the second light guide element on which the two beamforming elements are attached, by a second and/or third gooseneck (not shown in
[0145] Alternatively, two red, fluorescent acrylic glass or polymethylmethacrylate/PMMA rods, or two red fluorescent Plexistabs, can be attached to the second light guide element in such a manner that the light emerging from the second light guide element is at least partially fed and/or coupled into the fluorescent Plexistabs. On each of these, a beamforming element, such as a lens or an LED reflector, can be attached such that the red light emerging from the fluorescent Plexistabs can be modified or focused in such a manner that it can be used for the bicycle rear light and/or brake light.
[0146] Optionally, the second light guide element is extended by means of an appropriate plug connector, such as a coupling for optical fibers, for example. This example has the advantage that the second light guide element enables a rear illumination for the bicycle trailer when in its extended formthat is, when it is extended via the couplingwhereas in its short form (that is, when the extension via the coupling is removed) it can be used as a rear illumination for the bicycle, as described with reference to
[0147]
[0148] This example has the advantage that the second light guide element enables a rear illumination for the bicycle trailer when in its extended formthat is, when it is extended by means of magnetswhereas in its short form (that is, when the extension via the coupling is removed) it can be used as a rear illumination for the bicycle, as described with reference to
[0149]
[0150] In this example, the second light guide element is routed in the specific areas in which the two beamforming elements are attached, in a second and/or a third gooseneck, such that the exit direction of the light emitted from the two beamforming elements can be modified by moving the second and/or third goosenecks.
[0151] If the second light guide element is two separate light guide elements, then each one of the separate light guide elements is routed in a separate gooseneck.
[0152] Alternatively, in each of the areas in which the two beamforming elements are to be attached, a curved, rigid light guide element made of acrylic glass or polymethylmethacrylate/PMMA can be attached. A second and/or a third beamforming element, for example a red lens or a red LED reflector, can be attached to the rigid light guide elements in such a manner that they can modify and/or focus light emerging from the second light guide element such that it can be used as a rear light and/or brake light for the bicycle.
[0153] Alternatively, a red fluorescent acrylic glass or polymethylmethacrylate/PMMA rod, or a red fluorescent Plexistab, can be attached to each of the rigid light guide elements in such a manner that the light emerging from the second light guide element is at least partially fed into the fluorescent Plexistabs. A beamforming element, such as a lens or an LED reflector, can be attached to the same, such that the red light emerging from the fluorescent Plexistab, can be modified and/or focused in such a manner that it can be used as the rear light for the bicycle.
[0154] The illumination device described has the advantage that it is completely independent of a shape and/or length of a bicycle or a trailer thereof. The required light guide elements can be flexibly routed to those locations on the bicycle or a trailer thereof where an illumination for the bicycle and/or a trailer thereof is needed and/or desired. In addition, the illumination device only requires one central light source for illumination.
[0155] Any given number of light guide elements can be used, such that the light fed and/or produced and/or coupled in from the external light source can exit through individual light guide elements or though bundles of light guide elements at the respective beamforming elements.
[0156] Beyond a conventional illumination (headlight and taillight), any given beamforming element can be attached to any given point of the bicycle, or a trailer thereof. As such, the beamforming element can be any photostimulable figure which is capable of receiving the light emitted by a light guide element or a bundle of light guide elements, shaping and/or focusing the same, and at least partially emitting the same in a corresponding shaped and/or focused form.
[0157] A further advantage of the illumination device described above is that the light guide elements routed on the bicycle or a trailer thereof are made of materials such as quartz glass, plastic or silicon dioxide. As such, the light guide elements themselves are luminous when the central light source emits light into the same. For this reason, the light guide elements provide a further safety aspect for bicycles in road traffic.
[0158] Control of the Illumination Device Described Above
[0159] The illumination device described above can also be controlled by means of an application/app which implements a method for controlling the illumination device, via a mobile terminal and/or smartphone which is accommodated by the mounting device.
[0160] A user and/or cyclist can, before or after a smartphone or mobile terminal has been accommodated in the mounting device, activate the application by, for example, tapping a corresponding icon on a touchscreen of the smartphone.
[0161] After successful activation, acceleration data are collected by the mobile terminal by means of an acceleration sensor integrated into the smartphone. The application then controls the illuminating means according to the detected acceleration data.
[0162] In a preferred embodiment, a light source integrated into the mobile terminal is activated if the detected acceleration data exceeds or drops below a specific, representative value for the acceleration. A value which is representative for the acceleration includes the international unit and/or SI unit for acceleration: {right arrow over ()}=m/s.sup.2. However, it can include any other representative value for acceleration, for example according to the CGS (Centimetre Gram Second), according to the Planck unit system, or according to the Anglo-American system of measurement.
[0163] For example, it can be specified that when a deceleration exceeds a certain value, the light source of the smartphone can be activated. As such, in the exemplary illumination device such as described with reference to
[0164] Additionally, or alternatively, a strobe light function of the light source can be activated when a deceleration is exceeded. This has the advantage that, in the event that the light source of the smartphone was already activated, the following vehicles in the traffic are alerted by the activation of the strobe function.
[0165] In a preferred embodiment, a flashing frequency of the light source can be increased when a detected deceleration increases. This increases the attention of following road users such that the security is increased on the road. Since the light guide elements themselves emit light or are illuminated, the attention of all road users is increased when the flashing frequency is increased.
[0166] A combination of these functionalities is possible. Thus, in the event that the light source of the smartphone was not yet activated, when a deceleration is exceeded, only the light source is activated, wherein in the event that the light source of the smartphone was already activated, a strobe light source is activated.
[0167] However, the activation of the light source is not only restricted to a deceleration. Any given special event that can be detected by the acceleration sensor can be defined as a trigger to activate the light source of the smartphone. A special event in this context means a special, predetermined and/or prespecifiable event.
[0168] In addition, the illumination device can be controlled by storing and or identifying certain Global Positioning System (GPS) positions in the mobile terminal as hazardous position data. For example, GPS positions of large intersections and confusing streets with heavy traffic can be stored as hazardous. This information can be stored by a user entering GPS positions of known dangerous roads and/or intersections into the mobile terminal. This can be done, for example, by means of already-established map applications such as Google Maps, for example, such that the user only has to show the dangerous road or intersection on the map to store the corresponding position in the mobile terminal as dangerous. Alternatively, GPS position data of dangerous roads and intersections can be downloaded to the mobile device. However, the storage of hazardous GPS positions is not limited to these two variants. Rather it can be performed via a plurality of alternative input options. In addition, or alternatively, each intersection can be stored as a hazardous GPS position in the smartphone.
[0169] Upon activation of the application, GPS position data can be detected by means of a GPS sensor integrated into the smartphone, and compared with the stored dangerous GPS positions. If a currently captured GPS position corresponds to a stored hazardous GPS position, the light source of the smartphone, and thus also the illumination device, are activated. Alternatively, a strobe frequency light sourceand thus the illumination device/the smartphonecan be activated in this case. In another example, the light source can be activated, if it was not activated before reaching the GPS position classified as hazardous. If the light source was already activated before reaching the GPS position, the strobe function of the light source can be activated. This reduces the likelihood that cyclists are overlooked in dangerous, confusing, and/or busy intersections. Thus, the safety of cyclists in road traffic is enhanced.
[0170] Alternatively, and/or in addition, a luminous intensity of the light source, and thus the illumination device, can be controlled in response to a specificthat is, predetermined or prespecifiablethreat level of a detected GPS position. In this case, a risk level for each GPS position can be defined in addition to the storage of a GPS position as a hazardous GPS position, as described above. For example, a risk level can be defined as high, medium and low. Accordingly, the luminous intensity can increase if the risk level increases.
[0171] Alternatively, and/or additionally, the control of the illumination device also includes the detection of brightness data by means of a light sensor or photocell integrated into the mobile terminal and/or smartphone. If a representative value for the brightness exceeds a specific threshold value, the light source of the smartphone, and thus the illumination device, is activated. A specific threshold value can be a predetermined or prespecifiable threshold.
[0172] By way of example, the light source of the smartphone, and thus the illumination device, can be activated if measured brightness data falls below a determined or determinable brightness value, and can be switched off again if the measured brightness data exceeds the determined or determinable brightness value. By switching on the light source, and therefore the illumination device, in the case of the exemplary illumination device as described in
[0173] This has the advantage that the light can turn on automatically when entering an underpass and turn off automatically when exiting the underpass.
[0174] In addition, or alternatively, a light intensity of the light source, and thus also the illumination device, can be controlled according to the detected brightness data, in accordance with specific brightness values. The term specific brightness value includes predetermined and/or prespecifiable brightness values. As such, a lower light intensity can be chosen at dawn and dusk, by way of example, than in total darkness. This has the advantage that the battery consumption of the smartphone due to the lower light intensity of the light source at dawn and dusk is less than if the same, full light intensity would be used always.
[0175] Additionally or alternatively, the light source of the smartphone can be activated in response to a specific, i.e., predetermined or prespecifiable, time. If, for example, a time detected by the smartphone corresponds to a time with low light, the light source of the smartphone, and thus the illumination device, can be activated. In this case, the smartphone can access, for example, a weather application to obtain information as to what time the sun will rise and/or set, to determine which times are associated with low light. Depending on the data collected by the weather application, the light source of the smartphone can be controlled accordingly.
[0176] Additionally or alternatively, a light intensity of the light source, and thus the illumination device, can be controlled according to the detected time. As such, a lower light intensity can be chosen at dawn and dusk, by way of example, than in total darkness. In this case, the smartphone can determine which times correspond to dawn and/or dusk and which times correspond to very low light, according to data captured by a weather application. This has the advantage that the battery consumption of the smartphone due to the lower light intensity of the light source at dawn and dusk is less than if the same, full light intensity would be used always.
[0177] A further advantage of using a smartphone as an external light source for the above-described illumination device for a bicycle is that functionalities already integrated into the smartphone can also be used by a cyclist.
[0178] As such, the cyclist can use, for example, a navigation app during every bike ride as well. In addition, the smartphone can be used to provide the cyclist with additional trip details, such as travel speed, a distance traveled, elevation changes, calorie consumption, a maximum speed, average speed, etc. These functionalities can be integrated into the application for controlling the illumination device. It can also be contemplated that these features are provided by other, existing applications such as, for example, Runtastic, Runtastic Road Bike etc., while the application used to control the illumination device does so in the background.