DIGITAL MICRO-MIRROR DEVICE (DMD) SYSTEM
20230265985 · 2023-08-24
Assignee
Inventors
Cpc classification
H05B45/56
ELECTRICITY
B60Q2300/333
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/085
PERFORMING OPERATIONS; TRANSPORTING
F21S45/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/141
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2107/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21S41/675
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/141
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A digital micro-mirror device (DMD) system capable of increasing a lifespan of a digital micro-mirror. The DMD system includes an array unit that includes a plurality of digital micro-mirrors, and a DMD controller that controls the digital micro-mirror according to an image signal input from the outside, and changes a duty ratio of the digital micro-mirror according to a condition of components included in a vehicle or an environment around the vehicle.
Claims
1. A digital micro-mirror device (DMD) system, comprising: an array unit that includes a plurality of digital micro-mirrors reflecting light; and a DMD controller that controls the digital micro-mirrors according to a predetermined image signal, and changes a duty ratio of the digital micro-mirrors according to a condition or an operation mode of components included in a vehicle or an environment around the vehicle.
2. The DMD system of claim 1, wherein the DMD controller reduces the duty ratio of the digital micro-mirrors when illuminance provided from an illuminance sensor sensing illuminance around the vehicle is lower than a predetermined reference.
3. The DMD system of claim 1, further comprising: a temperature sensor that senses a temperature of the digital micro-mirrors, wherein the DMD controller reduces the duty ratio of the digital micro-mirrors when the temperature sensed by the temperature sensor is higher than a predetermined reference.
4. The DMD system of claim 1, wherein the DMD controller differently controls the duty ratio of the digital micro-mirrors according to a driving mode of an adaptive front lighting system (AFLS) of the vehicle.
5. The DMD system of claim 4, wherein the DMD controller controls the duty ratio of the digital micro-mirrors with a first duty ratio when the driving mode of the AFLS of the vehicle is a highway driving mode, when the driving mode of the AFLS of the vehicle is a national road driving mode, the duty ratio of the digital micro-mirrors is controlled with a second duty ratio, and when the driving mode of the AFLS of the vehicle is a city driving mode, the duty ratio of the digital micro-mirrors is controlled with a third duty ratio, and the first duty ratio and the third duty ratio are greater than the second duty ratio.
6. The DMD system of claim 1, further comprising: a light-emitting diode (LED) that irradiates light to the array unit; and an LED controller that drives the LED, wherein, when the DMD controller reduces the duty ratio of the digital micro-mirrors, the LED controller increases a current applied to the LED to increase an output of the LED.
7. The DMD system of claim 6, further comprising: a filter unit that receives a control signal, which is a pulse width modulation (PWM) signal, from the LED controller and converts the received control signal into an analog signal; and a converter that receives the analog signal converted by the filter unit and controls a magnitude of current flowing through the LED according to a voltage level of the received analog signal.
8. The DMD system of claim 1, further comprising: a light-emitting diode (LED) that irradiates light to the array unit; an LED controller that drives the LED; and a temperature sensor that senses the temperature of the LED, wherein, when the temperature of the LED sensed by the temperature sensor increases, the LED controller reduces a current input to the LED to reduce an output of the LED, and the DMD controller increases the duty ratio of the digital micro-mirrors.
9. The DMD system of claim 8, further comprising: a filter unit that receives a control signal, which is a pulse width modulation (PWM) signal, from the LED controller and converts the received control signal into an analog signal; and a converter that receives the analog signal converted by the filter unit and controls a magnitude of current flowing through the LED according to a voltage level of the received analog signal.
10. The DMD system of claim 1, wherein the DMD controller receives a duty ratio command of the digital micro-mirrors received from a terminal, and changes the duty ratio of the digital micro-mirrors according to the received duty ratio command of the digital micro-mirrors.
11. The DMD system of claim 10, wherein the DMD controller outputs the changed duty ratio of the digital micro-mirrors to the terminal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION OF MAIN ELEMENTS
[0030] 11: First digital micro-mirror [0031] 12: Second digital micro-mirror [0032] 20: Vehicle system [0033] 21: Illuminance sensor [0034] 30: DMD system [0035] 40: AFLS [0036] 100: Array unit [0037] 200: DMD controller [0038] 300: LED [0039] 400: LED controller [0040] 500: Temperature sensor [0041] 600: Converter [0042] 700: Filter unit [0043] 800: Power board
DETAILED DESCRIPTION OF EMBODIMENTS
[0044] Hereinafter, a preferred embodiment of a digital micro-mirror device (DMD) system according to the present invention will be described in detail with reference to the accompanying drawings.
[0045]
[0046] As illustrated in
[0047] The array unit 100 includes a plurality of digital micro-mirrors. The digital micro-mirrors are arranged two-dimensionally, and each digital micro-mirror operates as an individual pixel. A state in which the plurality of digital micro-mirrors included in the array unit 100 are tilted to one side is referred to as ON. A state in which the plurality of digital micro-mirrors included in the array unit 100 are tilted to the other side is referred to as OFF. A ratio of ON and OFF of the digital micro-mirror is called a duty ratio. For example, a duty ratio of 70:30 means that a time when the digital micro-mirror is ON is 70% of a unit time and a time when the digital micro-mirror is OFF is 30%. Increasing the duty ratio means increasing the ON time ratio, and decreasing the duty ratio means reducing the ON time ratio. The duty ratio of the digital micro-mirror may determine luminance of an image output from the DMD system. More specifically, when the duty ratio of the digital micro-mirror increases, the luminance of the image also increases, and when the duty ratio of the digital micro-mirror is reduced, the luminance of the image is also reduced.
[0048] The DMD controller 200 is implemented as a predetermined electronic device and controls the digital micro-mirror included in the array unit 100 according to an image signal input from the outside. Here, the outside may be a vehicle system 20. In the present invention, the DMD controller 200 changes the duty ratio of the digital micro-mirror according to the condition of components included in the vehicle in which the DMD system 30 according to the present invention is installed or the environment around the vehicle, thereby increasing the lifespan of the digital micro-mirror or to properly operating the digital micro-mirror according to the situations.
[0049] The LED 300 irradiates light to the array unit 100, and the LED controller 400 controls the LED 300. That is, the digital micro-mirror reflects the light irradiated from the LED 300 and outputs a predetermined image. The roles of the LED 300 and the LED controller 400 will be described in more detail in another embodiment of the present invention.
[0050] As illustrated in
[0051]
[0052] As illustrated in
[0053]
[0054] As illustrated in
[0055] As described above, the DMD system according to the first embodiment of the present invention controls the duty ratio of the digital micro-mirror according to the illuminance around the vehicle sensed by the illuminance sensor 21, thereby preventing the lifespan of the digital micro-mirror from being reduced.
[0056] In this embodiment illustrated in
Second Embodiment
[0057]
[0058] As illustrated in
[0059] As illustrated in
Third Embodiment
[0060]
[0061] As illustrated in
[0062] The AFLS 40 is an intelligent device that differently controls headlights according to situations around the vehicle. The ALFS 40 may recognize current situations around a vehicle through various sensors or a position detection of the vehicle, and may operate headlights in various operation modes. In this embodiment, the AFLS 40 may operate headlights by distinguishing a highway driving mode, a national road driving mode, and a city driving mode. In relation to a method of distinguishing and operating, by an AFLS 40, a highway driving mode, a national road driving mode, a city driving mode, etc., the AFLS 40 monitors a vehicle speed, and determines that a vehicle is driving on a highway when the vehicle speed is high (for example, over 80 km/h) to operate headlights in the highway driving mode, and determines that a vehicle is driving on a national road or a city when the vehicle speed is a low speed (for example, 60 km or less) to operate headlights in the national road driving mode or the city driving mode. In addition to this, the AFLS 40 may determine an operation mode by receiving navigation information, that is, information on whether a current location of a vehicle is a highway, a national road, or a city, and determine the operation mode using an illuminance sensor. As the method of determining, by an AFLS 40, an operation mode, only any one of the above-described methods may be used, or at least two or more methods may be used in combination.
[0063] The DMD controller 200 receives information on the driving mode from the AFLS 40 and differently controls the duty ratio of the digital micro-mirror according to the received driving mode. More specifically, when the received driving mode is the highway driving mode, the DMD controller 200 determines that the current illuminance around a vehicle is high and controls the duty ratio of the digital micro-mirror to a first duty ratio. When the received driving mode is the national road driving mode, the DMD controller 200 determines that the current illuminance around a vehicle is low and controls the duty ratio of the digital micro-mirror to a second duty ratio. When the received driving mode is the city driving mode, the DMD controller 200 determines that the current illuminance around a vehicle is high and controls the duty ratio of the digital micro-mirror to a third duty ratio. Here, the first duty ratio and the third duty ratio may be higher than the second duty ratio.
[0064] In this embodiment, the DMD controller 200 receives information from a separate device included in the vehicle system 20, not a separate sensor, and controls the duty ratio of the digital micro-mirror based on the received information, so the DMD system itself is simplified.
Fourth Embodiment
[0065] A DMD system according to a fourth embodiment of the present invention includes a DMD controller 200, an array unit 100, an LED 300, and an LED controller 400. When the DMD controller 200 reduces a duty ratio of a digital micro-mirror, the LED controller 400 increases a current applied to the LED 300. This is because, when the duty ratio of the digital micro-mirror decreases, the luminance of the image output from the digital micro-mirror decreases, so the output of the LED 300 irradiating light with the digital micro-mirror increases to compensate for the luminance of the image output from the digital micro-mirror lastly, thereby controlling the luminance of the image to be within a certain range. That is, in this embodiment, this may be called the fixed quantity of light control of the DMD system.
[0066] However, as described above in this embodiment, when the output of the LED 300 increases, the temperature of the LED 300 increases, so there may be a problem in that the lifespan of the LED 300 decreases.
[0067]
[0068] As illustrated in
[0069] In this embodiment, the temperature sensor 500 senses the temperature of the LED 300, and the DMD controller 200 and the LED controller 400 differently control the digital micro-mirror and the LED 300, respectively, according to the temperature sensed by the temperature sensor 500.
[0070]
[0071] As illustrated in
Fifth Embodiment
[0072]
[0073] The DMD system according to the fifth embodiment of the present invention may further include a power board 800, including the components of the DMD system according to the fourth embodiment of the present invention described above. The power board 800 may include a filter unit 700 and a converter 600.
[0074] The power board 800 is disposed between the LED controller 400 and the LED 300.
[0075] The filter unit 700 may be implemented as an RC filter, and receives a control signal that is a PWM signal from the LED controller 400 and converts the received control signal into an analog signal.
[0076] The converter 600 receives the analog signal converted by the filter unit 700, and controls a magnitude of a current applied to the LED 300 according to a voltage level of the received analog signal. That is, in this embodiment, the LED 300 performs analog dimming control. In the DMD system 30 according to the present invention, the DMD controller 200, the LED controller 400, and the power board 800 are separated from each other, but are connected to each other with a cable. Therefore, these components are likely to malfunction due to the voltage drop and noise caused by the extended length of the cable, which is to be prevented.
Sixth Embodiment
[0077] In a DMD system according to a sixth embodiment of the present invention, a terminal may be used in addition to the DMD controller 200, the array unit 100, the LED 300, and the LED controller 400.
[0078] The terminal may be a display installed in a vehicle or an electronic device capable of communication used by a user, and the DMD controller 200 outputs a duty ratio setting menu to the terminal so that the user can change a duty ratio of a digital micro-mirror.
[0079]
[0080] As illustrated in
[0081] As described above, according to a digital micro-mirror device (DMD) system of the present invention, by decreasing a duty ratio of the digital micro-mirror by a DMD controller according to the condition of components included in a vehicle or the environment around the vehicle, it is possible to increase the lifespan of a digital micro-mirror.
[0082] In addition, according to the present invention, even if luminance is lowered due to the reduced duty ratio of a digital micro-mirror, a light-emitting diode (LED) controller increases an output of an LED to control the quantity of light of an image output through the DMD system to be within a certain range.
[0083] In addition, according to the present invention, it is possible for a user to directly control a duty ratio of a digital micro-mirror through a display unit.
[0084] The present invention is not limited to the above-described embodiments, but may be variously applied, and may be variously modified without departing from the gist of the present invention claimed in the claims.