The present invention relates to a multi-receiving wireless charging system and the method thereof, and especially relates to a multi-receiving wireless charging system and the method thereof which can increase the charging efficiency.
Most office workers use electronic products to discuss business matters or record things. If there is a power shortage, the consequences are mostly serious. If wanting to use them while charging, it is very easy to limit the usage space because of the charging cables. Therefore, it has already invented many wireless charging methods nowadays.
Most of the wireless charging methods use one transmitting end corresponding to one receiving end to receive power, but this kind of method uses a receiving end to charge; which may easily cause overheating at a high power, thereby affecting the efficiency during the charging.
The main objects of the present invention is: a plurality of receiving components are used to receive the power signal given by the wireless power supply element, so as to reduce the chance of a single receiving end being prone to overheating when the power is high and to strengthen the power and efficiency of the charging at the receiving end.
To achieve the above objects, the main structure of the present invention comprises: a load element; a plurality of receiving components which connected with the load component at both ends; and a wireless power supply component which can supply power signal to each receiving component; wherein each receiving component comprises a receiving element, a receiving compensation element, a receiving resistance element, and a rectifying element; wherein the receiving element is located at one side adjacent to the wireless power supply component and the both ends of the receiving element are electrically connected with the receiving compensation element which is located at one side of the receiving element and the receiving resistance element respectively; wherein the rectifier element which is located at one side of the receiving compensation element and the receiving resistance element facing away from the receiving element and is electrically connected with the receiving compensation element, the receiving resistance element, and the load element; wherein the wireless power supply component comprises a transmitting element, a power supply element, a power supply resonant element, and a power supply resistance element; wherein the transmitting element is located at one side adjacent to the receiving components, and the both ends of the transmitting element are respectively connected with the power supply resonant element located at one side of the transmitting element and the power supply resistance element; wherein the power supply element is located at one side of the power supply resonant element and the power supply resistance element facing away from the transmitting element and which both ends are electrically connected with the power supply resonant element and the power supply resistance element respectively.
With the above structure, the power supply element in the wireless power supply component will give the power signal, and the power signal is resonantly tuned through the cooperation of the power supply resonant element and the power supply resistance element, and then the power signal is transmitted to each receiving component via the transmitting element. The receiving element in each receiving component receives the power signal, and then the rectifier element will convert the power signal into DC, and then supply to the load element.
Because the mutual inductance effect occurs between the receiving components and affects the power signal provided by the receiving component to the load component, the power signals need to be compensated by the receiving compensation element cooperated with the receiving resistance element. In this way, the result of the mutual inductance effect can be avoided.
Because the power signal is received via multiple receiving components, the power signal can be amplified to increase efficiency; and because the power received by each receiving component is smaller, it is not easy to produce the overheating phenomenon.
The following descriptions are exemplary embodiments only, and are not intended to limit the scope, applicability or configuration of the invention in any way. Rather, the following detailed description provides a convenient illustration for implementing exemplary embodiments of the invention. Various changes to the described embodiments may be made in the function and arrangement of the elements described without departing from the scope of the invention as set forth in the appended claims.
The foregoing and other aspects, features, and utilities of the present invention will be best understood from the following detailed description of the preferred embodiments when read in conjunction with the accompanying drawings.
Please refer to
Each receiving component 2 comprises a receiving element 21, a receiving compensation element 22, a receiving resistance element 23, and a rectifying element 24; wherein the receiving element 21 which is a receiving antenna is located at one side adjacent to the wireless power supply component 3; wherein the receiving compensation element 22 which is a capacitor is located at one side of the receiving element 21 and is electrically connected with the receiving element 21; wherein the receiving resistance element 23 is also located at one side of the receiving element 21 and is electrically connected with the receiving element 21; wherein the rectifier element 24 which is located at one side of the receiving compensation element 22 and the receiving resistance element 23 is simultaneously electrically connected with the receiving compensation element 22, the receiving resistance element 23, and the load element 1.
The wireless power supply component 3 comprises a transmitting element 31, a power supply element 32, a power supply resonant element 33, and a power supply resistance element 34; wherein the transmitting element 31 which is a transmitting antenna is located at one side adjacent to the receiving component 2; wherein the power supply element 32 is located at one side of the transmitting element 31 and electrically connected with the transmitting element 31; wherein the power supply resonance element 33 which is a capacitor is located at one side of the transmitting element 31 and is electrically connected with the transmitting element 31; wherein the power supply resistance element 34 which is electrically connected with the transmitting element 31 is also located at one side of the transmitting element 31; wherein the power supply element 32 which two ends are respectively electrically connected with the power supply resonance element 33 and power supply resistance element 34 is located at one side of the power supply resonance element 33 and the power supply resistance element 34.
The method of the present invention is:
Since the present invention uses multiple receiving components 2 to receive the power signals, and then transmits the power signals to a load element 1, the power signal given by the wireless power supply component 3 is a fixed value, so the signal received by each receiving component 2 is also a fixed value. But the power supply signal to the load element 1 can be continuously increased through the addition of the receiving components 2, thereby increasing the charging efficiency of the load element 1.
Since all the power signals received by each receiving component 2 is a constant values, it is not necessary to increase the power signal to be given because of the efficiency increase. Therefore, the risk of overheating of the receiving components 2 can also be reduced.
Therefore, the key to improving the conventional technology of the multi-receiving wireless charging system and the method thereof according to the present invention is: Utilizing a plurality of receiving components to increase the charging efficiency of the load element and the received power signal is still the same, so there will be no danger of overheating.