The present invention relates to a device and a method for automatically setting the luminance of a light beam, emitted from a lighting device of a vehicle, as a function of the range of vision.
The traffic density in the worldwide road networks increases significantly every year. Freeways and expressways are particularly affected. In particular during bad weather, the full attentiveness of the driver is required to orient himself in traffic. The recognition of other road users in case of fog or high air humidity represents a big problem in particular. In this case, the other road users are often only recognizable with the aid of the existing headlights. Particularly the spray mist arising in wet weather causes the vehicle contours of the preceding vehicles and the following vehicles to blur, and the visibility may drop significantly in spite of activated headlights. Current developments allow the headlights to be turned on automatically as a function of the applicable light and weather conditions.
A device for automatically setting the luminance of a light beam emitted from at least one rear illumination device of a vehicle as a function of the brightness and the range of vision in the surroundings of the vehicle is known from DE 102 05 184 A1, which has a sensor device for ascertaining the brightness and the range of vision in the vehicle's surroundings.
The device according to the exemplary embodiments and/or exemplary methods of the present invention for automatically setting the luminance of a light beam emitted from a lighting device of a vehicle as a function of the range of vision and the corresponding method have the advantage that the safety may be improved further by an additional evaluation of the range of vision, since the visibility of one's own vehicle or other vehicles is increased depending on the situation.
The idea on which the exemplary embodiments and/or exemplary methods of the present invention are based is to regulate the vehicle illumination as a function of the prevailing light and weather conditions, the ascertained visibility or the ascertained range of vision being evaluated by at least one further parameter. In particular, the further parameter may be a vehicle parameter, such as the design of the vehicle body, current velocity, tire type, profile depth of the tires, age of the tires, inter alia. The further parameter may also be a driver parameter, such as age of the driver, eyesight of the driver, individual specification of the driver, etc.
Advantageous refinements of and improvements on the object of the exemplary embodiments and/or exemplary methods of the present invention are found in the description herein.
Exemplary embodiments of the present invention are shown in the drawings and are explained in greater detail in the following description.
Identical reference numerals identify identical or functionally identical components in the figures.
In
Reference numerals 25 refer to a device for automatically setting the luminance and the light emitted from headlight 10 and taillight 14. Device 25 receives data about the current range of vision from a temperature detection device 30, a humidity detection device 31, a weather information receiving device 32, which is connected to an antenna 33, and a video device 20, which has an image sensor 22 and an image processing device 24, as described, for example, in DE 102 05 184 A1.
A range of vision ascertainment device 35 provided in setting device 25 ascertains the current range of vision from the signals of these devices 30, 31, 32, 20.
In this process, the current range of vision is first determined based on the outside temperature as ascertained by device 30, and the outside humidity as ascertained by device 31. The initially generated range of vision or weather indication may be verified and, if necessary, corrected by an additional video image analysis with the aid of device 20 as well as weather information received by device 32. Scenarios such as fog, rain, snow, and other weather conditions may thus be detected solidly and reliably.
Furthermore, in
Since such parameters vary from vehicle to vehicle or change in the course of time in a specific vehicle, an input device 39 is provided, using which the vehicle parameters or driver parameters may be input automatically and/or manually in accordance with a particular situation.
In the present exemplary embodiment, it is assumed that the relevant vehicle parameter is the profile depth of the tires. It is immediately obvious that new tires having a great profile depth place fewer demands on one's own visibility or range of vision than old, strongly worn tires having lesser profile depth. Accordingly, a stronger luminance is required at the same range of vision for old, worn tires than for new tires, which have a high profile depth.
In a variant of the exemplary embodiment, it is additionally or alternatively assumed that the relevant vehicle parameter is the current velocity of the vehicle. The greater the current velocity of the vehicle, the greater the swirling of the water on the road and thus the dense spray mist caused thereby. Accordingly, at equal range of vision, a stronger luminance is required at higher velocities than at lower velocities. Alternatively or additionally, it is assumed that the relevant vehicle parameter is the design of the rear area of the vehicle. The swirling of the water on the road occurs to varying extents depending on the design of the rear area of the vehicle.
After completed assignment of a required luminance as a function of the ascertained current range of vision and the evaluation by evaluation device 38, setting device 25 sets the luminance of headlight 10 and taillight 14, this setting being able to be performed independently for headlight 10 and taillight 14 in accordance with a table of previously stored data; for example.
In
In step S2, the ascertained current range of vision is evaluated based on the vehicle parameters or driver parameters, which is the profile depth in the present case.
Specifically, there is a small profile depth in the present case, for which reason evaluation variable C (SI) is assigned to ascertained current range of vision SI. If a moderate profile depth existed, value B (SI) would be assigned, and if a high profile depth existed, value A (SI) would be assigned.
A luminance L(C) used as the control variable for setting device 25, which sets this luminance L(C) in step S4 at headlight 10 and/or taillight 14, is then assigned in step S3 based on a previously stored table of evaluation variable C(SI).
It is fundamentally true for the previously stored control values for setting device 25 that the worse the vision conditions or the worse the state of the vehicle or the worse the state of the driver, the higher the light intensity is to be set to make one's own visibility optimal for oneself and other road users. In contrast thereto, in the event of good vision conditions or good state of the vehicle or good state of the driver, the light intensity is to be reduced to a minimum amount.
Although the present invention was described above based on the exemplary embodiments, it is not restricted thereto, but is rather modifiable in manifold ways.
In particular, the specified sensor types are only exemplary, and any desired sensors may be used for ascertaining the range of vision.
In general, it is to be noted that the light setting as a function of weather according to the exemplary embodiments and/or exemplary methods of the present invention may be performed both on the basis of light sources already provided in the vehicle, such as headlights and taillights, but may also be implemented using special auxiliary light sources. Thus, a targeted weather-related evaluated activation and setting of additional fog headlights or other weather headlights would also be conceivable.
The mentioned examples for the first and second parameters are also only exemplary.
Number | Date | Country | Kind |
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10 2008 001 551.2 | May 2008 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2008/065790 | 11/19/2008 | WO | 00 | 1/24/2011 |