Power System
20210066930 ยท 2021-03-04
Inventors
Cpc classification
H02J7/0048
ELECTRICITY
H02J7/0014
ELECTRICITY
H02J7/0063
ELECTRICITY
H02J7/0013
ELECTRICITY
International classification
Abstract
The invention provides a power system comprising a first batteries and a second batteries which are arranged in parallel, a first switch connected in series between the first batteries and an electrical load for connecting or disconnecting the first batteries and the electrical load, and/or a second switch connected in series between the second batteries and the electrical load for connecting or disconnecting the second batteries and the electrical load. The power system further comprises a control for detecting a voltage difference between the first batteries and the second batteries, and closing the first switch/second switch when the voltage difference is less than a preset value in order that the first batteries and the second batteries supply power/charge in parallel.
Claims
1. A power system, comprising: a first batteries and a second batteries, wherein the first batteries and the second batteries are arranged in parallel; a first switch connected in series between the first batteries and a load, for the connection or the disconnection between the first batteries and the load; and/or a second switch connected in series between the second batteries and the load, for the connection of disconnection between the second batteries and the load; and a control device for detecting a voltage difference between the first batteries and the second batteries, and controlling the first switch/second switch to close when the voltage difference is less than a preset value, so that the first batteries and the second batteries are powered/charged in parallel.
2. The power system according to claim 1, wherein the second switch is in a normally closed state, the first switch is opened in an initial state, when the voltage difference between the first batteries and the second batteries is less than a preset value, the control device controls the first switch to close.
3. The power system according to claim 1, wherein in an initial state, the first switch is closed and the second switch is opened, and the first batteries provides the power along; when the voltage difference between the first batteries and the second batteries is less than a preset value, the control device controls the first switch or the second switch to close to make the first batteries and the second batteries be powered or charged in parallel.
4. The power system according to claim 3, wherein the control device is further configured to obtain a voltage of the first batteries, and control the first switch to be opened and the second switch to be closed when the voltage is less than a specific value, the second batteries supplies power; when the voltage difference between the first batteries and the second batteries is less than a preset value, the control device controls the first switch to close again and the first batteries and the second batteries are powered in parallel.
5. The power system according to claim 3, wherein the control device is further configured to obtain a voltage of the first batteries, and control an external power source to charge the first batteries when the voltage is less than a specific value; when the voltage difference between the first batteries and the second batteries is less than a preset value, the control device controls the second switch to close, so that the first batteries and the second batteries are charged in parallel.
6. The power system according to claim 1, wherein the control device comprises a first detection unit electrically connected to the first batteries, a second detection unit electrically connected to the second batteries, and a control unit electrically connected to the first batteries and the second batteries, respectively, the first detection unit is configured to detect the voltage of the first batteries and transmit it to the control unit, the second detection unit is configured to detect the voltage of the second battery and transmit it to the control unit for controlling the opening or closing of the first switch/second switch.
7. The power system according to claim 1, wherein the preset value is 5V.
8. The power system according to claim 1, wherein the load is a power tool, the first batteries and the second batteries are used to supply power to the power tool in parallel, and the power system is received in the battery-receiving housing of the power tool.
9. The power system according to claim 1, wherein the load is a charger, the first batteries and the second batteries are charged in parallel by the charger, and the power system is received in the battery-receiving portion of the charger.
10. A power system, which comprises a first batteries and a second batteries arranged in parallel, a first diode connected in series between the first batteries and a load, and a second diode connected in series between the second batteries and the load, the first diode is connected to the same pole of the first batteries, and the second diode is connected to the same pole of the second batteries.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENT
[0030] In order to make the objectives, technical solutions, and advantages of the present invention clearer, the following describes the present invention in detail with reference to the accompanying drawings and specific embodiment.
[0031] The invention discloses a power system, which is mainly used to supply power to a load or be charged by a load. Specifically, when the load is a power tool, the power system of the present invention is used to power a power tool, and when the load is a charger, the power system of the present invention can be charged by the charger.
[0032] As shown in
[0033] The first switch S1 is connected in series between the first batteries 10 and the load 20, which is used to turn on or off the connection between the first batteries 10 and the load 20. The second switch S2 is connected in series between the second batteries 11 and the load 20, which is used to turn on or off the connection between the second batteries 11 and the load 20. In this embodiment, the second switch S2 is in a normally closed state to maintain a continuous electrical connection between the second batteries 11 and the load 20, and it can also be understood that the second switch S2 does not exist. The purpose of describing it is only for clarity and convenience of description.
[0034] The control device is configured to detect the voltage difference U between the first batteries 10 and the second batteries 11. When the voltage difference U is less than a preset value, the first switch S1 would be closed for making the first batteries 10 and the second batteries 11 to supply power/charge in parallel. The preset value here is preferably 5V.
[0035] Specifically, the control device includes a first detection unit electrically connected to the first batteries 10, a second detection unit electrically connected to the second batteries 11, and a control unit electrical connected to the first detection unit and the second detection unit, respectively. The first detection unit is configured to detect the voltage of the first batteries 10 and transmit the detected voltage value to the control unit, and the second detection unit is configured to detect the voltage of the second batteries 11 and transmit the detected voltage value to the control unit. The control unit is used to control the opening or closing of the first switch S1.
[0036] When the load 20 is a power tool, the power system of the present invention can be used to supply power to the power tool. The power system is received in a battery-receiving portion of the power tool, and the first batteries 10 and the second batteries 11 are detachable received in the battery-receiving portion of the power tool. Specifically, the first batteries 10 and the second batteries 11 may be inserted into the battery-receiving portion as two separate batteries, or may be integrated into a battery pack and inserted into the battery-receiving portion. The installation positions of the first detection unit and the second detection unit are not limited, and they can be set inside the battery pack together or outside the battery pack.
[0037] As shown in
[0038] When the load 20 is a charger, the first batteries 10 and the second batteries 11 can be charged by the charger. The power system is received in a battery-receiving portion of the charger, and the first batteries 10 and the second batteries 11 are detachably received in the battery-receiving portion of the charger. Specifically, the first batteries 10 and the second batteries 11 may be inserted into the battery-receiving portion as two separate batteries, or may be integrated into a battery pack and inserted into the battery-receiving portion. The installation positions of the first detection unit and the second detection unit are not limited, and they can be set inside the battery pack together or outside the battery pack.
[0039] The working principle of the power system as follow: in the initial state, the first switch S1 is opened and the second switch S2 is closed, and the charger charges the second batteries 11; then, the first detection unit detects the voltage of the first batteries 10 and transmits the detected voltage value to the control unit, while the second detection unit detects the voltage of the second batteries 11 and transmits the detected voltage value to the control unit; then, the control unit calculates the voltage difference U of one battery pack 10 and the second batteries 11, and the obtained voltage difference U is compared with a preset value; if the voltage difference U is less than a preset value (5V), the control unit controls the first switch S1 to close for parallel charging of the first batteries 10 and the second batteries 11 by the charger; if the voltage difference U is more than a preset value (5V), the control unit controls the first switch S1 to continue to open to prevent the first The battery pack 10 and the second batteries 11 are mutually charged until the voltage difference U is less than a preset value, and then the control unit controls the first switch S1 to close for parallel charging of the first batteries 10 and the second batteries 11.
[0040] In this embodiment, the first detection unit is a detection chip provided at the front end of the first switch S1, the second detection unit is a detection chip provided at the front end of the second switch S2, and the control unit is a main controller provided in the battery-receiving portion.
[0041] As shown in
[0042] Specifically, when the load 20 is a power tool, the power system of the present invention can be used to the power tool. At this time, the power system is received in the battery-receiving portion of the power tool, and the first batteries 10 and the second batteries 11 is detachably received in the battery-receiving portion of the power tool. Specifically, the first batteries 10 and the second batteries 11 are integrally packaged so that the battery pack is inserted into the battery-receiving portion.
[0043] As shown in
[0044] When the load 20 is a charger, the first batteries 10 and the second batteries 11 may be charged by the charger. At this time, the power system is received in the battery-receiving portion of the charger, and the first batteries 10 and the second batteries 11 are detachably received in the battery-receiving portion of the charger. Specifically, the first batteries 10 and the second batteries 11 are integrally packaged so that the battery pack is inserted into the battery-receiving portion.
[0045] As shown in
[0046] As shown in
[0047] In this embodiment, the first detection unit and the second detection unit are both a circuit board (PCB) and are provided together in the battery pack. The control unit is a single-chip microcomputer set on a power tool or a charger, and the specific settings of the single-chip microcomputer is not limited. In the initial state, the first batteries 12 directly supplies power to the circuit board and the single-chip microcomputer individually, so that the single-chip microcomputer is turned on or awaken.
[0048] Of course, the single-chip microcomputer can also be used to obtain the temperatures of the first batteries 12 and the second batteries 13 to decide the damage of the first batteries 12 and the second batteries 13 according to the temperature and the voltage, which will not be described in detail here.
[0049] As shown in
[0050] The power system further includes a first switch S7 provided in parallel with the first diode 14 and a second switch S8 provided in parallel with the second diode 15. When the load 20 is a power tool, the power system can be used to power the power tool. At this time, the first switch S7 and the second switch S8 are turned off. When the load 20 is a charger, the first batteries 10 and the second batteries 11 can be charged using the charger. At this time, the first switch S7 and the second switch S8 are closed.
[0051] In this embodiment, the arrangement of the first diode 14 and the second diode 15 can prevent the first batteries 10 and the first batteries 10 from mutual charging when the first batteries 10 or the second batteries 11 has a large voltage, which obtains a simple structure.
[0052] In summary, the power system of the present invention uses the control device to detect the voltage difference U between the first batteries 10, 10, 12, 10 and the second batteries 11, 11, 13, 11, so when the voltage difference U is less than a preset value (5V), the first switches S1, S3, S5, S7 and the second switches S2, S4, S6, S8 are controlled to close. the first batteries 10, 10, 12, 10 and the second batteries 11, 11, 13, 11 are connected in parallel for power supply/charging to achieve balanced power supply/charging, and the phenomenon of reverse current and mutual charging will not occur.
[0053] The above embodiments are only used to illustrate the technical solution of the present invention and are not limited herein. Although the present invention is described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solution of the present invention may be modified or equivalently replaced without departing from the spirit and scope of the technical solution of the present invention.