This application claims priority to Taiwan Application Serial Number 105127350, filed Aug. 24, 2016, which is herein incorporated by reference.
The present disclosure relates to a lighting system and the lighting source module thereof, and particularly to a light source module including an alternating-current input terminal and a direct-current input terminal and capable of receiving an alternating-current power source or a direct-current power source directly.
A general light source module needs an external power supply module, which supplies power to the light source module and drives the light source module to generate light for lighting. Nonetheless, in applications, the installation space of the light source module and the external power supply module should be considered, leading to more complicated installation. In addition, while using the external power supply module to supply power, the power isolation requirement in the safety regulation should be taken into account. Thereby, overall, the application cost of the general light source module is relatively high.
In addition, when the general light source module is applied to a specific lighting system with complicated circuitry, for example, an emergent lighting system, the external power supply module of the lighting system will supply power to a power input terminal for driving the light source module to generate light as the alternating-current (AC) power supply is normal, such as the non-power-failure condition. As the AC power supply is interrupted, for example, the power failure condition, the external power supply module of the lighting system is unable to supply power to the light source module. The lighting system will provide a backup power source to the power input terminal of the light source module for driving the light source module. The lighting system uses a switching circuit to supply the power of the external power supply module or the backup power source to the power input terminal of the light source module. Consequently, the complexity and cost of the design of the lighting system is raised.
Accordingly, the present disclosure provides a lighting system and the light source module thereof for simplifying the architecture of a lighting system and the installation as well as lowering the cost.
An aspect of the present disclosure is to provide a lighting system and the light source module thereof. The light source module includes an AC input terminal and a direct-current (DC) input terminal for receiving AC power or DC power directly. Thereby, the architecture, installation, and wiring of the lighting system can be simplified.
Another aspect of the present disclosure is to provide a lighting system and the light source module thereof. The light source module requires no external power supply module. Thereby, no power isolation design is required.
The present disclosure provides a lighting system, which includes a power supply module and a light source module. The power supply module provides a DC power source. The light source module is coupled to an AC power source via an AC input terminal and to the power supply module via a DC input terminal. When the AC power source exists, the power supply module does not supply the DC power source to the DC input terminal of the light source module. When the AC power source does not exist, the power supply module supplies the DC power source to the DC input terminal.
The light source module according to the present disclosure includes an internal AC power supply module, a polarity adaption circuit, and a light module. The internal power supply module is coupled to the AC power source via the AC input terminal and coverts the AC power source to a first DC driving power source. The polarity adaption circuit is coupled to the DC power source via the DC input terminal and outputs a second DC driving power source. The light module is coupled to the internal AC power supply module and the polarity adaption circuit and driven by the first or second DC driving power source for generating light. In addition, the internal AC power supply module can include a non-isolative transformer used for generating the first DC driving power source.
In order to make the structure and characteristics as well as the effectiveness of the present disclosure to be further understood and recognized, the description of the present disclosure is provided as follows along with embodiments and accompanying figures.
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When the grid 60 supplies the grid power source L and the grid reference voltage level N, namely, when the AC power source ACIN exists, the light source module 10 of the lighting system according to the present embodiment will be driven to generate light. Thereby, the power supply module 50 will not supply the DC power source DCIN to the DC input terminal DCIN of the light source module 10. When the grid 60 does not supply the grid power source L and the grid reference voltage level N such as in power failure, namely, when the AC power source ACIN does not exist, the power supply module 50 will supply the DC power source DCIN to the DC input terminal DCIN for driving the light source module 10 to generate light uninterruptedly.
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The internal AC power supply module 16 is coupled to the AC power source ACIN via the AC input terminal ACIN and converts the AC power source ACIN to generate a first DC driving power source DC1 to the positive input terminal (+) and the negative input terminal (−) of the light module 14. The polar adaption circuit 12 is coupled to the DC power source DCIN output by the power supply module 50 via the DC input terminal DCIN. In other words, the light source module 10 receives the DC power source DCIN directly, and the adaption circuit 12 of the light source module 10 outputs a second DC driving power source DC2 to the positive input terminal (+) and the negative input terminal (−) of the light module 14 according to the DC power source DCIN. Thereby, the light module 14 is coupled to the internal AC power supply module 16 and the polarity adaption circuit 12, and driven by the first or second DC driving power source DC1, DC2 to generate light.
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For example, when the third terminal 123 of the polarity adaption circuit 12 is coupled to a positive polarity of the DC power source DCIN and the fourth terminal 124 is coupled to a negative polarity of the DC power source DCIN, the positive polarity of the DC power source DCIN is coupled to the positive input terminal (+) of the light module 14 via the third terminal 123, the polarity adaption circuit 12, and the first terminal 121, and the negative polarity of the DC power source DCIN is coupled to the negative input terminal (−) of the light module 14 via the fourth terminal 124, the polarity adaption circuit 12, and the second terminal 122. When the fourth terminal 124 of the polarity adaption circuit 12 is coupled to the positive polarity of the DC power source DCIN and the third terminal 123 is coupled to the negative polarity of the DC power source DCIN, the positive polarity of the DC power source DCIN is coupled to the positive input terminal (+) of the light module 14 via the fourth terminal 124, the polarity adaption circuit 12, and the first terminal 12, and the negative polarity of the DC power source DCIN is coupled to the negative input terminal (−) of the light module 14 via the third terminal 123, the polarity adaption circuit 12, and the second terminal 122.
According to the above description, while connecting the power supply module 50 and the light source module 10, it is not required to consider whether the electrical polarity of the two DC output terminals of the power supply module 50 matches the polarity of the two input terminals of the light module 14. This is because no matter how the third and fourth terminals 123, 124 of the polarity adaption circuit 12 are coupled to the positive and negative polarities of the DC power source DCIN, respectively, the polarity adaption circuit 12 can generate the second DC driving power source DC2 matching the polarity of the two input terminals of the light module 14 according to the DC power source DCIN. That is to say, the polarity adaption circuit 12 enables the DC power source DCIN coupled to the DC input terminal DCIN to match the polarity of the two input terminals of the light module 14 and thus generating the second DC driving power source DC2. According to an embodiment of the present disclosure, the second DC driving power source DC2 is identical to the DC power source DCIN.
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Furthermore, according to an embodiment of the present disclosure, the voltage regulating circuit 30 is a buck converter. Nonetheless, the voltage regulating circuit 30 is not limited to a buck converter; alternatively, it can be boost converter. The voltage regulating circuit 30 according to the present embodiment includes a filter 31, a first diode 32, a non-isolative transformer 33, a first energy storage device 34, the control circuit 35, and a switch 36. Because the voltage regulating circuit 30 of the light source module 10 adopts the non-isolative transformer 33, the internal AC power supply module 16 can be disposed inside the light source module 10. It is not required to design for power isolation. The filter 31 is coupled to the rectifying circuit 20 and filters the rectified DC power source DC. The first diode 32 is coupled to the filter 31 and the non-isolative transformer 33. The non-isolative transformer 33 includes a primary winding 330 and a secondary winding 332. A first end of the primary winding 330 is coupled to the first energy storage device 34 and the light module 14. A second end of the primary winding 330 is coupled to the first diode 32 and the filter 31. Besides, the secondary winding 332 is the device in the power source circuit 40 responsible for generating the supply power source VCC. The first energy storage device 34 is coupled to the light module 14, the filter 31, and the first diode 32 and generates the first DC driving power source DC1. The control circuit 35 is coupled to the power source circuit 40 and the switch 36. The switch 36 is coupled between the first diode 32 and the ground GND. The light module 14 is coupled to the filter 31 and the first diode 32. The switch 36 is also coupled between the ground GND and the second end of the primary winding 330.
Accordingly, the control circuit 35 can control the closing (turn on) or opening (turn off) of the switch 36. When the control circuit 35 controls the switch 36 to close, the rectified DC power source DC filtered by the filter 31 passes through the light module 14 and charges the primary winding 330, enabling the primary winding 330 to store storage electrical energy. At this time, the secondary winding 332 will induce the charging state of the primary winding 330 and generate the supply power source VCC. On the other hand, when the control circuit 35 controls the switch 36 to open, the primary winding 330 will release the storage electrical energy to the first energy storage device 34 via the first diode 32. Hence, the first energy storage device 34 supplies the first DC driving power source DC1 to the light module 14 according the storage electrical energy of the primary winding 330.
The power source circuit 40 includes a second diode 41 and a second energy storage device 42. The second diode 41 is coupled to the secondary winding 332 of the non-isolative transformer 33; the second energy storage device 42 is coupled to the second diode 41 and the control circuit 35. Thereby, the secondary winding 332 induces the charging state of the primary winding 3330 and generates electrical energy, which charges the second energy storage device 42 via the second diode 41 and thus generating the supply power source VCC. Accordingly, the second energy storage device 42 of the power source circuit 40 will generate the supply power source VCC according to the rectified DC power source DC and supply the supply power source VCC to the control circuit 35. The supply power source VCC can be used as the power source for the control circuit 35.
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Moreover, the power supply module 50 includes the switch detection module 51, a power detection and control module 52, a charging module 53, a battery module 54, and a discharging module 55. The wall-mount switch 70 is coupled to the grid power source L and generates the grid input power source SL to the switch detection module 51. The grid input power source SL is equivalent to the grid power source L. Thereby, the wall-mount switch 70 controls the path along which the grid power source L is transmitted to the switch detection module 51. The switch detection module 51 receives the grid input power source SL and generates the AC input power source L1 to the AC input terminal ACIN of the light source module 10. In other words, the switch detection module 51 is coupled between the AC input terminal ACIN of the light source module 10 and the wall-mount switch 70 for detecting the conduction of the wall-mount switch 70, and then transmitting the AC input power source L1 to the AC input terminal ACIN. Equivalently, the grid power source L is transmitted to the AC input terminal ACIN.
In addition, the grid power source L, the grid input power source SL, and the AC input power source L1 are all AC power sources. According to an embodiment of the present disclosure, the wall-mount switch 70 and the switch detection module 51 does not regulate the grid power source L. Thereby, after passing the wall-mount switch 70 and the switch detection module 51, the grid power source L is input directly to the AC input terminal ACIN of the light source module 10. That is to say, the wall-mount switch 70 and the switch detection module 51 transmit the AC power source ACIN to the AC input terminal ACIN, and the light source module 10 can receive the AC power source ACIN directly.
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Based on the above description, when the power detection and control module 52 detects the existence of the AC power source ACIN, the power detection and control module 52 will generate the control signal SC and thus controlling the discharging module 55 not to supply the DC powers source DCIN to the DC input terminal DCIN of the light source module 10. At this moment, the light source module 10 receives the AC power source ACIN directly and generates the first DC driving power source DC1 to the light module 14. Besides, the polarity adaption circuit 12 will block the first DC driving power source DC1 from transmitting to the DC input terminal DCIN for preventing damaging the power supply module 50. Furthermore, the present disclosure does not limit the design of the polarity adaption circuit 12 to bridge rectifying circuit only.
On the other hand, when the power detection and control module 52 detects that the AC power source ACIN does not exist, the power detection and control module 52 will generate the control signal SC and thus controlling the discharging module 55 to supply the DC powers source DCIN to the DC input terminal DCIN, so that the light source module 10 can generate the second DC driving power source DC2 and drive the light module 14 to generate light.
To sum up, the present disclosure provides a lighting system, which includes a power supply module and a light source module. The power supply module provides a DC power source. The light source module is coupled to an AC power source via an AC input terminal and to the power supply module via a DC input terminal. When the Ac power source exists, the power supply module does not supply the DC power source to the DC input terminal of the light source module. When the AC power source does not exist, the power supply module supplies the DC power source to the DC input terminal. The light source module can receive the AC or DC power source directly. Thereby, the architecture, installation, and wiring of a lighting system can be simplified.
In addition, the light source module according to the present disclosure includes an internal AC power supply module, a polarity adaption circuit, and a light module. The internal power supply module is coupled to the AC power source via the AC input terminal and coverts the AC power source to a first DC driving power source. The polarity adaption circuit is coupled to the DC power source via the DC input terminal and outputs a second DC driving power source. The light module is driven by the first or second DC driving power source for generating light.
Accordingly, the present disclosure conforms to the legal requirements owing to its novelty, nonobviousness, and utility. However, the foregoing description is only embodiments of the present disclosure, not used to limit the scope and range of the present disclosure. Those equivalent changes or modifications made according to the shape, structure, feature, or spirit described in the claims of the present disclosure are included in the appended claims of the present disclosure.
Number | Date | Country | Kind |
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105127350 | Aug 2016 | TW | national |