The present invention relates to a heat control device of a heat generating glass, in which an alternating current power (hereinafter, called sine wave signal) is supplied to the heat generating glass so as to control heating temperature thereof by controlling the power supply considering to the load of the heat generating glass, and a zero point of the sine wave signal is detected using a phase detection part comprised of a photocoupler and the like, and a heat control part is provided so as to control a point of time when the sine wave signal is supplied or stopped using the zero point detected from the phase detection part, and the heat control part generates a control signal so that the sine wave signal is input at a point of time when the current of the sine wave signal is zero and also the supply of the sine wave signal is stopped at the point of time when the current of the sine wave signal is zero, and then transfers the control signal to a driver circuit, and the driver circuit is constructed so that the sine wave signal is output to the heat generating glass during a time period designated by the control signal, and the number of sine wave signals are differently supplied so as to control the plurality of heat generating glasses having different load from each other.
In a conventional heat generating glass, heat generation was generally controlled by AC phase control using a heat control device for controlling a heating temperature, thereby preventing dew condensation on a surface of the heat generating glass. However, as shown in
An object of the present invention is to provide a heat control device of a heat generating glass, which supplies commercial alternating current power (sine wave signal) as power source used in controlling a heating temperature of a heat generating glass so that the power supply is started at a point of time when current of the sine signal is zero and also stopped at the point of time when the current of the sine signal is zero, thereby preventing generation of a peak current when the signal is supplied or stopped, and thus it is possible to reduce the noise generation and increase the life span of the electronic devices, thereby enhancing reliability and durability of the heat control device.
Another object of the present invention is to provide a heat control device of a heat generating glass, in which the supply of the sine wave signal for uniformly or differently controlling electric energy and then supplying it to a plurality of heat generating glasses is started or stopped at the point of time when the current of the sine signal is zero, and the heating temperature of the heat generating glass can be controlled by changing the number of the sine wave signals to be supplied.
Yet another object of the present invention is to provide a heat control device of a heat generating glass, which measures temperature of the heat generating glass and current supplied to each heat generating glass so as to prevent occurrence of overheat or overcurrent, thereby enhancing stability and reliability thereof.
Yet another object of the present invention is to provide a heat control device of a heat generating glass, in which a plurality of control signals and driver circuits are interlocked using a phase detection part and a heat control part so that the sine wave signal is not supplied simultaneously to two or more heat generating glasses, thereby preventing over-load in a power source part.
Yet another object of the present invention is to provide a heat control device of a heat generating glass, which measures indoor temperature and humidity, finds a temperature that the dew condensation does not occur and automatically maintains the temperature, thereby preventing dew condensation on a surface of the heat generating glass.
To achieve the object of the present invention, the present invention provides a heat control device which controls heating temperature of a heat generating glass, comprising a phase detection part which detects a zero point of a sine wave signal; a heat control part which generates a control signal for controlling supply of the sine wave signal using the zero point of the sine wave signal detected by the phase detection part, so that the sine wave is input to the heat generating glass at a point of time when current of the sine wave signal is zero and also the supplying of the sine wave signal is also stopped at the point of time when the current of the sine wave signal is zero; and a driver circuit which supplies the sine wave signal to the heat generating glass at a point of time designated by the control signal using the control signal transferred from the heat control part and the sine wave signal input from a power source part.
Preferably, the heat control part supplies the plurality of control signals to the plurality of driver circuits so as to control the heating temperature of the plurality of heat generating glasses.
Preferably, the heat control part controls the sine wave signal so that the sine wave signal is input at a point of time when the current of the sine wave signal is zero, and also the supply of the sine wave signal is stopped at the point of time when the current of the sine wave signal is zero, and when the sine wave signal is supplied to the plurality of the heat generating glasses, the control signals different from each other are supplied to the plurality of driver circuits so that the sine wave signal is not supplied simultaneously to two or more heat generating glasses, thereby preventing an increase of load in the power source part.
Preferably, the heat control part comprises a temperature detection part for detecting temperature of each heat generating glass, and a current detection part for measuring current supplied to each heat generating glass, and also the heat control part stops the power supply when overheat or overcurrent is generated.
Preferably, the phase detection part is comprised of a photocoupler.
Preferably, the heat control part supplies the sine wave signal so as to measure indoor temperature and humidity using a temperature and humidity sensor, find a temperature of the heat generating glass that dew condensation does not occur, based on the measured temperature and humidity, and automatically maintain the temperature that the dew condensation does not occur, thereby preventing occurrence of the dew condensation.
Preferably, the heat control part comprises an input and operation part which inputs a setting temperature of the heat generating glass and operates the heat control device, and further comprises a display part which displays the setting temperature and present temperature.
Preferably, the heat control device further comprises a communication part for receiving/transferring a signal from/to an external device.
In a heat control device of a heat generating glass of the present invention, a sine wave signal is supplied to the heat generating glass so as to control heating temperature thereof by controlling the power supply considering to the load of the heat generating glass, and a zero point of the sine wave signal is detected using a phase detection part comprised of a photocoupler and the like, and a heat control part is provided so as to control a point of time when the sine wave signal is supplied or stopped using the zero point detected from the phase detection part, and the heat control part generates a control signal so that the sine wave signal is input at a point of time when the current of the sine wave signal is zero and also the supply of the sine wave signal is stopped at the point of time when the current of the sine wave signal is zero, and then transfers the control signal to a driver circuit, and the driver circuit is constructed so that the sine wave signal is output to the heat generating glass during a time period designated by the control signal, and the number of sine wave signals are differently supplied so as to control the plurality of heat generating glasses having different load from each other.
Further, in the heat control device of the heat generating glass of the present invention, the zero point of the commercial alternating current or artificially generated sine wave signal is detected by using a phase detection part 13 manufactured by a photocoupler and the like, and on the basis of the zero point of the sine wave signal, the supply of the sine wave point is started and stopped at the point of time when the current of the sine wave signal is zero, and the plurality of heat generating glasses can be respectively controlled at the same time, and temperature of the heat generating glass and current supplied to the heat generating glass are measured so as to prevent occurrence of overheat or overcurrent, thereby enhancing stability and reliability of the heat control device.
The advantages, features and aspects of the invention will become apparent from the following description of the embodiments with reference to the accompanying drawings, which is set forth hereinafter.
The embodiment of the present invention will be described with reference to the drawings.
In a conventional heat generating glass, the heat generation was generally controlled by AC phase control, thereby controlling a heating temperature of the heat generating glass. However, as shown in
In the present invention, to solve the problems in the conventional heat generating glass, a zero point of commercial alternating current power or artificially generated sine wave signal is detected by using a phase detection part 13 manufactured by a photocoupler and the like as shown in
In the first embodiment, the sine wave signal supplied to the heat generating glass is input at the point of time when the current of the sine wave signal is zero, and the supply of the sine wave signal is stopped at the point of time when the current of the sine wave signal is zero, and thus it is possible to reduce the noise generation and increase the life span of the electronic devices, thereby enhancing reliability and durability of the heat control device. Herein, since the control signal is generated so that the sine wave signal is not supplied simultaneously to two or more heat generating glasses, and then the control signal is supplied through the driver circuit to the heat generating glass at the point of time when the control signal performs the controlling operation, it is possible to stably operate the heat generating glass without an increase of the load in a power source part, and also it is not necessary to increase a capacity of the power source part according to the increase of the load when the sine wave signal is simultaneously supplied to the plurality of heat generating glasses.
Referring to
Referring to
Since the control signal of the sine wave signal, which is supplied to control a temperature of each heat generating glass 24 to 26 using the zero point detected by the phase detection part 13, is formed by a control program, it can be constructed in various ways. That is, in the present invention, on the basis of the zero point of the sine wave signal detected by the phase detection part 13, the sine wave signal is generated at the zero point and then supplied to the heat generating glass, and the supplying of the sine wave signal is also stopped at the zero point of the sine wave signal.
The heat control part 18 of the heat generating glass is provided with a temperature detection part 23 for detecting a temperature of each heat generating glass, and a current detection part 22 for measuring the current supplied to each heat generating glass. Therefore, it is possible to stop the power supplying when overheat or overcurrent occurs, thereby enhancing stability and reliability of the heat generating glass.
When the heat control part 18 of the heat generating glass shown in
In
The heat control device of the second embodiment is constructed so that the sine wave signal is input at the point of time when the current of the sine wave signal is zero and also stopped at the point of time when the current of the sine wave signal is zero, and thus it is possible to reduce the noise generation and increase the life span of the electronic devices, thereby enhancing reliability and durability of the heat control device. Furthermore, the sine wave signal may be simultaneously supplied to two or more heat generating glasses or supplied with a time difference, considering a capacity of the power source part and an electric power amount supplied to an output stage. Therefore, the load of the power source may be increased to a certain extent, but the sine wave signal can be stably supplied to the heat generating glass within an allowed range of the power source part by measuring the electric power amount supplied to the output stage. Further, in the second embodiment, since the power source part should be designed to have a somewhat large capacity, a size and a manufacturing cost of the heat control device may be increased.
The heat control part 18 of
Further, in order to maintain the set temperature or prevent dew condensation on a surface of the heat generating glass, the heat control part 18 of
Furthermore, the heat control part 18 of
As described above, the heat control device of the heat generating glass supplies the sine wave signal as the power to the heat generating glass, wherein the sine wave signal is input at a point of time when the current of the sine wave signal is zero, and also the supply of the sine wave signal is stopped at the point of time when the current of the sine wave signal is zero, so that a peak current is not generated at the sine wave signal. Thus, it is possible to reduce the noise generation and increase the life span of the electronic devices, thereby enhancing reliability and durability of the heat control device. In addition, the heat control part, the power source part and the driver circuits 19 to are interlocked with each other so that the sine wave signal is not supplied simultaneously to two or more heat generating glasses, thereby preventing the over-load of the power source part and thus increasing reliability and durability of the heat control device.
According to the present invention, the commercial alternating current power (sine wave signal) as power source used in controlling a heating temperature of a heat generating glass is supplied so that the power supply is started at a point of time when current of the sine signal is zero and also stopped at the point of time when the current of the sine signal is zero, thereby preventing generation of a peak current when the signal is supplied or stopped, and thus it is possible to reduce the noise generation and increase the life span of the electronic devices, thereby enhancing reliability and durability of the heat control device.
Further, the supply of the sine wave signal for uniformly or differently controlling electric energy and then supplying it to a plurality of heat generating glasses is started or stopped at the point of time when the current of the sine signal is zero, and the heating temperature of the heat generating glass can be controlled by changing the number of the sine wave signals to be supplied.
Further, the temperature of the heat generating glass and current supplied to each heat generating glass are measured to prevent occurrence of overheat or overcurrent, thereby enhancing stability and reliability thereof.
Further, the plurality of control signals and driver circuits are interlocked using the phase detection part and the heat control part so that the sine wave signal is not supplied simultaneously to two or more heat generating glasses, thereby preventing over-load in a power source part and thus damage of the power source part.
Further, the indoor temperature and humidity are measured to find the temperature that the dew condensation does not occur, and the temperature is automatically maintained, thereby preventing dew condensation on a surface of the heat generating glass.
While the present invention has been described with respect to the specific embodiments, it will be apparent to those skilled in the art that various changes and modifications may be made without departing from the spirit and scope of the invention as defined in the following claims.
Number | Date | Country | Kind |
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10-2009-0090511 | Sep 2009 | KR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/KR10/06350 | 9/16/2010 | WO | 00 | 3/7/2012 |