This application claims priority to China Patent Application No. 202210920669.7, filed on Aug. 2, 2022, and China Patent Application No. 202310484478.5, filed on Apr. 28, 2023, the entire contents of which are incorporated herein by reference for all purposes.
The present disclosure relates to a power supply system, and more particularly to a power supply system capable of improving the work efficiency.
Conventionally, the voltage outputted by the power supply is constant and equals the highest required voltage in the system. Then, the DC-DC voltage converter in the system converts the voltage from the power supply and provides the converted voltage to the part with lower required voltage of the system. Under this architecture, when the part with high required voltage of the system stops operating (e.g., enters the sleep mode), the power supply still supplies the power with high required voltage. Therefore, the voltage difference between two ends of the DC-DC voltage converter in the system is still maintained at a high value, resulting in bad conversion efficiency.
Therefore, there is a need of providing a power supply system in order to overcome the drawbacks of the conventional technologies.
The present disclosure provides a power supply system including a power supply that adjusts a supply voltage thereof according to the required voltage of the operational load unit. Accordingly, when the main load unit with high required voltage stops operating, the voltage conversion is prevented from being performed under large voltage difference. Therefore, the work efficiency of the whole system is improved through enhancing the conversion efficiency, and meanwhile the effect of saving energy is achieved. In addition, when the main load unit stops operating, the adjusted supply voltage may be provided to the sub-load unit through the bypass unit, thereby improving the efficiency of supplying power.
In accordance with an aspect of the present disclosure, a power supply system is provided. The power supply system includes a power supply, a main load unit, a DC-DC voltage conversion unit, a bypass unit, and at least one sub-load unit. The power supply is configured to provide an adjustable supply voltage. The main load unit is electrically connected to the power supply for receiving the supply voltage. The DC-DC voltage conversion unit is electrically connected to the power supply. The bypass unit is electrically connected to the power supply. The at least one sub-load unit is electrically connected to the DC-DC voltage conversion unit and the bypass unit. When the main load unit stops operating, the power supply adjusts the supply voltage and provides the adjusted supply voltage to the sub-load unit through the bypass unit.
In accordance with another aspect of the present disclosure, a power supply system is provided. The power supply system includes a power supply and a power receiving system. The power supply is configured to provide an adjustable supply voltage. The power receiving system is electrically connected to the power supply through a port for receiving the supply voltage and includes a main load unit, a DC-DC voltage conversion unit, a bypass unit, and at least one sub-load unit. The main load unit is electrically connected to the power supply for receiving the supply voltage. The DC-DC voltage conversion unit is electrically connected to the power supply. The bypass unit is electrically connected to the power supply. The at least one sub-load unit is electrically connected to the DC-DC voltage conversion unit and the bypass unit. When the main load unit stops operating, the power supply adjusts the supply voltage and provides the adjusted supply voltage to the sub-load unit through the bypass unit.
The present disclosure will now be described more specifically with reference to the following embodiments. It is to be noted that the following descriptions of preferred embodiments of this disclosure are presented herein for purpose of illustration and description only. It is not intended to be exhaustive or to be limited to the precise form disclosed.
When the main load unit 12 operates normally at an operating voltage, the supply voltage provided by the power supply 11 is equal to the required voltage of the main load unit 12. The main load unit 12 receives the supply voltage from the power supply 11 directly, and the supply voltage is converted by the DC-DC voltage conversion unit 13 and then provided to the sub-load unit 15.
When the main load unit 12 stops operating (e.g., enters the sleep mode), the power supply 11 adjusts the supply voltage to be equal to the required voltage of the sub-load unit 15, and the power supply 11 provides the adjusted supply voltage to the sub-load unit 15 through the bypass unit 14.
Consequently, the power supply 11 adjusts the supply voltage according to the required voltage of the operational load unit (i.e., the load unit which is operating). Accordingly, when the main load unit 12 with high required voltage stops operating, the voltage conversion is prevented from being performed under large voltage difference. Therefore, the work efficiency of the whole system is improved through enhancing the conversion efficiency, and meanwhile the effect of saving energy is achieved. In addition, when the main load unit 12 stops operating, the adjusted supply voltage may be provided to the sub-load unit 15 through the bypass unit 14, thereby improving the efficiency of supplying power.
In an embodiment, the power supply system 1 further includes a controller 16 which is in communication with the power supply 11, the main load unit 12 and the sub-load unit 15. The controller 16 may include a microprocessor of the sub-load unit 15 and/or a central processor of the power supply system 1, but not limited thereto. The controller 16 is configured for enabling the power supply 11 to adjust the supply voltage according to the required voltage of the operational load unit. The adjustment for the supply voltage may be realized by the controller 16 and the power supply 11 through the PD (Power Delivery) protocol or other protocol. For example, in the embodiment shown in
In the embodiment shown in
Please refer to
When the main load unit 12 and a part of the sub-load units 15 stop operating (e.g., enters the sleep mode), the controller 16 provides the power supply 11 with a signal reflecting the required voltages of the other operational sub-load units 15, and the power supply 11 adjusts the supply voltage to be equal to the highest required voltage among the operational sub-load units 15. For example, when n=1 and the main load unit 12 stops operating, the power supply 11 adjusts the supply voltage to be equal to the required voltage of the sub-load unit 15 of the first sub-load unit assembly 151. When n>1 and the main load unit 12 and the sub-load units 15 of the first to (n−1)th sub-load unit assemblies 151-15(n−1) stop operating, the power supply 11 adjusts the supply voltage to be equal to the required voltage of the sub-load unit 15 of the nth sub-load unit assembly 15n. When the main load unit 12 and the sub-load units 15 of the first to (N−1)th sub-load unit assemblies 151-15(N−1) stop operating, the power supply 11 adjusts the supply voltage to be equal to the required voltage of the sub-load unit 15 of the Nth sub-load unit assembly 15N. In an embodiment, the sub-load unit 15 which stops operating (e.g., enters the sleep mode) may receive a voltage less than or equal to its operating voltage.
In addition, it is noted that each sub-load unit assembly includes a plurality of sub-load units 15 as shown in
In each power module, when the voltage received by the power module is equal to the required voltage of the sub-load unit 15 connected to the power module, the voltage received by the power module is provided through the bypass unit of the power module to the sub-load unit 15 connected to the power module. On the contrary, when the voltage received by the power module is not equal to the required voltage of the sub-load unit connected to the power module, the voltage received by the power module is converted by the DC-DC voltage conversion unit of the power module and then provided to the sub-load unit 15 connected to the power module, where the voltage after conversion is equal to the required voltage of the sub-load unit 15 connected to the power module. In addition, under the circumstance that the output side of a power module is connected to both the sub-load unit and another power module, the power module provides the same voltage to the sub-load unit 15 and the said another power module connected therewith.
Taking the power module 101 as an example, under the circumstance that the sub-load unit 15 of the sub-load unit assembly 151 connected to the power module 101 operates normally at an operating voltage, when the main load unit 12 stops operating, the voltage received by the power module 101 is equal to the required voltage of the sub-load unit of the sub-load unit assembly 151 connected to the power module 101. Meanwhile, the voltage received by the power module 101 is provided through the bypass unit 14 of the power module 101 to the sub-load unit 15 of the sub-load unit assembly 151 and the power module 102. On the contrary, when the main load unit 12 operates normally at the operating voltage, the voltage received by the power module 101 is not equal to the required voltage of the sub-load unit 15 of the sub-load unit assembly 151, and the voltage received by the power module 101 is converted by the DC-DC voltage conversion unit 13 of the power module 101 and then provided to the sub-load unit 15 of the sub-load unit assembly 151 and the power module 102, where the voltage after conversion is equal to the required voltage of the sub-load unit 15 of the sub-load unit assembly 151.
Likewise, taking the nth power module 10n as an example, under the circumstance that the sub-load unit 15 of the nth sub-load unit assembly 15n connected to the nth power module 10n operates normally at an operating voltage, when n=1 and the main load unit 12 stops operating, or when n>1 and the main load unit 12 and the sub-load units 15 of the first to (n−1)th sub-load unit assemblies 151-15(n−1) stop operating, the voltage received by the nth power module 10n is equal to the required voltage of the sub-load unit 15 of the nth sub-load unit assembly 15n connected to the nth power module 10n. Meanwhile, the voltage received by the nth power module 10n is provided through the bypass units 14 of the first to nth power module 101-10n to the sub-load unit 15 of the nth sub-load unit assembly and the (n+1)th power module 10(n+1). On the contrary, when n=1 and the main load unit 12 operates normally at the operating voltage, or when n>1 and the main load unit 12 or any of the sub-load units 15 of the first to (n−1)th sub-load unit assemblies 151-15(n−1) operates normally at the operating voltage, the voltage received by the nth power module 10n is not equal to the required voltage of the sub-load unit 15 of the nth sub-load unit assembly 15n. Meanwhile, the voltage received by the nth power module is converted by the DC-DC voltage conversion unit 13 of the nth power module 10n and then provided to the sub-load unit 15 of the nth sub-load unit assembly 15n and the (n+1)th power module 10(n+1), where the voltage after conversion is equal to the required voltage of the sub-load unit 15 of the nth sub-load unit assembly 15n.
In an embodiment, when the main load unit 12 stops operating and the sub-load unit 15 of the sub-load unit assembly 151 connected to the power module 101 operates normally at an operating voltage, the controller 16 provides the power supply 11 with a signal reflecting the required voltage of the sub-load unit 15 of the sub-load unit assembly 151, and the power supply 11 adjusts the supply voltage to be equal to the required voltage of the sub-load unit 15 of the sub-load unit assembly 151. Further, the supply voltage provided by the power supply 11 is provided through the bypass unit 14 of the power module 101 to the sub-load unit assembly 151 and the power module 102. Under this circumstance, the voltages received by the power modules 101 and 102 are both equal to the required voltage of the sub-load unit 15 of the sub-load unit assembly 151. In the case that n>1, when the main load unit 12 and the sub-load units 15 of the sub-load unit assemblies 151-15(n−1) stop operating and the sub-load unit 15 of the sub-load unit assembly 15n connected to the power module 10n operates normally at an operating voltage, the controller 16 provides the power supply 11 with a signal reflecting the required voltage of the sub-load unit 15 of the sub-load unit assembly 15n, and the power supply 11 adjusts the supply voltage to be equal to the required voltage of the sub-load unit 15 of the sub-load unit assembly 15n. Further, the supply voltage provided by the power supply 11 is provided through the bypass units 14 of the power modules 101-10n to the sub-load unit assembly 15n and the power module 10(n+1). Under this circumstance, the voltages received by the power modules 101-10(n+1) are all equal to the required voltage of the sub-load unit 15 of the sub-load unit assembly 15n.
In each embodiment of the present disclosure as shown in
In summary, the present disclosure provides a power supply system including a power supply that adjusts a supply voltage thereof according to the required voltage of the operational load unit. Accordingly, when the main load unit with high required voltage stops operating, the voltage conversion is prevented from being performed under large voltage difference. Therefore, the work efficiency of the whole system is improved through enhancing the conversion efficiency, and meanwhile the effect of saving energy is achieved. In addition, when the main load unit stops operating, the adjusted supply voltage may be provided to the sub-load unit through the bypass unit, thereby improving the efficiency of supplying power.
While the disclosure has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the disclosure needs not be limited to the disclosed embodiment. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures.
Number | Date | Country | Kind |
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202210920669.7 | Aug 2022 | CN | national |
202310484478.5 | Apr 2023 | CN | national |