ELECTROCHROMIC MIRROR CONTROL DEVICE
20220026774 · 2022-01-27
Inventors
Cpc classification
B60R1/088
PERFORMING OPERATIONS; TRANSPORTING
B60R1/006
PERFORMING OPERATIONS; TRANSPORTING
B60R1/1207
PERFORMING OPERATIONS; TRANSPORTING
B60R2001/1223
PERFORMING OPERATIONS; TRANSPORTING
G02F1/13312
PHYSICS
International classification
G02F1/163
PHYSICS
B60R1/00
PERFORMING OPERATIONS; TRANSPORTING
B60R1/08
PERFORMING OPERATIONS; TRANSPORTING
B60R1/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A control device of an ECM employs a current control method in place of a voltage control method in order to remove heat generation, and can stably provide a desired current and voltage to an ECM regardless of an input voltage. The control device of an ECM may include: an illuminance sensor unit configured to sense the brightness of light; an MCU configured to output a control signal corresponding to the brightness level of the sensed light; an ECM control unit configured to generate and output a constant current having a current value adjusted to correspond to the brightness level of the sensed light, in response to the control signal; and an ECM including a material to cause a chemical change in which the color thereof changes while the material is oxidized by the constant current, and having reflectivity adjusted to correspond to the adjusted current value of the constant current.
Claims
1. A control device for controlling an ECM (Electro-Chromic Mirror), comprising: an illuminance sensor unit configured to sense the brightness of light; an MCU (Micro Controller Unit) configured to output a control signal corresponding to a level of the brightness of the sensed light; an ECM control unit configured to generate and output a constant current having a current value that is adjusted to correspond to the brightness level of the sensed light, in response to the control signal; and an ECM comprising a material to cause a chemical change in which the color thereof changes by oxidizing the material with the constant current outputted from the ECM control unit, and having reflectivity that is adjusted to correspond to the adjusted current value of the constant current.
2. The control device of claim 1, wherein the control signal comprises an on/off signal for turning on/off the ECM control unit, and a control output signal for controlling the current value of the constant current outputted from the ECM control unit, according to the brightness level of the light.
3. The control device of claim 2, wherein the ECM control unit comprises: a constant current circuit configured to block the constant current from being provided to the ECM or provide the constant current to the ECM according to the on/off signal; and a current adjusting unit configured to adjust the current value of the constant current provided to the ECM from the constant current circuit, based on the control output signal.
4. The control device of claim 3, wherein when receiving only the on signal, the constant current circuit outputs the constant current having the maximum current value to minimize the reflectivity of the ECM.
5. The control device of claim 3, wherein the constant current circuit outputs the constant current having a current value that is adjusted by the current adjusting unit so as to correspond to the brightness level of the light, when receiving the on signal.
6. The control device of claim 3, wherein when receiving the off signal, the constant current circuit maximizes the reflectivity of the ECM.
7. The control device of claim 1, wherein the illuminance sensor unit comprises: a front illuminance sensor configured to sense the day and night; and a rear illuminance sensor configured to sense light from the headlight of a rear vehicle.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0016]
[0017]
[0018]
[0019]
MODE FOR INVENTION
[0020] The above-described purposes, features and advantages will be clarified through the detailed descriptions to be described below in detail with reference to the accompanying drawings. Thus, the technical idea of the present disclosure can be easily carried out by those skilled in the art to which the present disclosure pertains. Furthermore, in describing the present disclosure, detailed descriptions for publicly known technologies related to the present disclosure will be ruled out in order not to unnecessarily obscure subject matters of the present disclosure.
[0021] Throughout the specification, when one element is referred to as being “connected to” or “coupled to” another element, it may indicate that the one element is “directly connected or coupled to” the another element or the one element is “electrically connected or coupled to” with still another element interposed therebetween. Furthermore, when an element “includes” or “has” a component, it may indicate that the element does not exclude another component unless referred to the contrary, but can further include another component. In addition, through the specification, the present disclosure is not limited by the expressions in a singular form for some components, and the expressions may include the expressions in a plural form unless referred to the contrary.
[0022] Electrochromism refers to the phenomenon where the color of a material is changed by an oxidation-reduction reaction when electricity is allowed to flow through the material. An ECM (Electro-Chromic Mirror) refers to a device that causes a chemical change when an electrical signal is applied from the outside, based on the principle of the electrochromism. Specifically, the color of the ECM changes while reactants are moved by an oxidation-reduction reaction. For example, the ECM may automatically sense strong light from another vehicle which is cast on a vehicle mirror in the daytime or nighttime, and simultaneously change the color thereof to adjust the reflectivity thereof, thereby stably protecting a driver's view.
[0023]
[0024] As illustrated in
[0025] The illuminance sensor unit 100 may sense light and generate an electrical signal. At this time, the generated electrical signal may be an analog voltage of 0V to 3.3V. The illuminance sensor unit 100 may include a front illuminance sensor 110 configured to sense the day and night, and a rear illuminance sensor 120 configured to sense light from the headlight of a rear vehicle.
[0026] The MCU 200 may comprise a micro controller unit to perform a function of a signal processing control unit. The MCU may be implemented as a microprocessor, microcontroller, digital signal processor or programmable logic unit. The MCU 200 may perform an analog-digital conversion function of converting an analog signal inputted from the illuminance sensor unit 100 into a digital signal.
[0027] The MCU 200 may provide an on/off signal and a control output signal to the ECM control unit 300. The on/off signal may turn on/off the ECM control unit 300 according to the brightness level of light sensed by the illuminance sensor unit 100, and the control output signal may control the current value of the constant current, outputted from the ECM control unit 300, according to the brightness level of the light. The control output signal may include a PWM (Pulse Width Modulation) signal and a DAC (Digital-to-Analog Convert) signal.
[0028] The ECM control unit 300 may include a constant current circuit 310 and a current adjusting unit 320. The constant current circuit 310 may block a constant current to be provided to the ECM 400, or provide the constant current to the ECM 400 according to the on/off signal, and the current adjusting unit 320 may adjust the current value of the constant current provided to the ECM 400 by the constant current circuit 310, based on the control output signal.
[0029] The constant current circuit 310 may output to the ECM 400 the constant current, which has the maximum current value to minimize the reflectivity of the ECM 400.
[0030] That is, when only the on signal is outputted from the MCU 200 to drive the ECM control unit 300, the constant current having the maximum current value, set in the ECM control unit 300, may be supplied to the ECM 400 such that the materials contained in the ECM 400 all chemically react. Thus, the reflectivity of the ECM 400 may be minimized.
[0031] Furthermore, when the off signal is outputted from the MCU 200 to stop the operation of the ECM control unit 300, the materials contained in the ECM 400 do not chemically react at all. Thus, the reflectivity of the ECM 400 may be maximized.
[0032] When the control output signal is inputted to the current adjusting unit 320 with the on signal inputted to the constant current circuit 310, the constant current whose current value is adjusted by the current adjusting unit 320 so as to correspond to the brightness level of light may be outputted to the ECM 400. When the constant current whose current value is adjusted to correspond to the brightness level of the light is outputted to the ECM 400 through the ECM control unit 300, the oxidation degree of the materials contained in the ECM 400 may be varied according to the current value of the constant current. As a result, the reflectivity of the ECM 400 may be adjusted according to the brightness level of the sensed light.
[0033] The constant current circuit 310 may include a constant current circuit such as an LED driver. Besides, the constant current circuit 310 may include all applicable constant current circuits.
[0034] According to the current value of the constant current outputted from the ECM control unit 300, the ECM 400 may cause a chemical change in which the color of the materials contained therein changes by moving the materials due to an oxidation-reduction reaction. Thus, the reflectivity of the ECM 400 may be adjusted to stably protect a driver's view.
[0035] As such, the control device of the ECM in accordance with the embodiment of the present disclosure may include the constant current circuit to adjust a current value, and thus improve thermal efficiency, compared with the voltage control method which consumes a large amount of power due to a significant voltage drop. Therefore, a heat sink for dissipating heat may be omitted. Furthermore, since the control device can stably supply a desired current and voltage to the ECM regardless of an input voltage, the time required for stabilizing the current may be reduced unlike the voltage control method.
[0036]
[0037] Referring to
[0038] On the other hand, when the result value of the front illuminance sensor 110 is outputted as ‘night’, the rear illuminance sensor 120 senses light from the headlight of a rear vehicle at step S102. At this time, when the result value of the rear illuminance sensor 120 indicates that no light is sensed, the ECM does not need to be controlled. Thus, the control device ends the control operation. That is, the MCU 200 may output the off signal to stop the operation of the ECM control unit 300, such that the materials contained in the ECM 400 do not chemically react at all. Thus, the reflectivity of the ECM 400 may be maximized.
[0039] On the other hand, when the result value of the rear illuminance sensor 120 indicates that light was sensed, the MCU 200 provides the ECM control unit 300 with a control signal corresponding to the brightness level of the light, at step S103. That is, the MCU 200 may provide the ‘on’ signal to the constant current circuit 310, and simultaneously provide the current adjusting unit 320 with a control output signal for adjusting the current value. Therefore, the ECM control unit 300 may provide the ECM 400 with a constant current having a current value that is adjusted to correspond to the brightness level of the sensed light, and the reflectivity of the ECM 400 may be adjusted according to the brightness level of the sensed light, thereby protecting a driver's view.
[0040] So far, the various embodiments for the problems to be solved have been described. However, it is obvious to those skilled in the art to which the present disclosure pertains that various changes and modifications can be made without departing from the technical spirit of the present disclosure.
INDUSTRIAL APPLICABILITY
[0041] The present disclosure relates to a control device of an ECM used in a vehicle, and is applicable to industries related to the ECM.