Battery and external component
11296517 · 2022-04-05
Inventors
Cpc classification
H02J7/0014
ELECTRICITY
H01M10/42
ELECTRICITY
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M2010/4271
ELECTRICITY
H01M10/425
ELECTRICITY
H02J7/0045
ELECTRICITY
H02J7/00
ELECTRICITY
H02J7/0024
ELECTRICITY
H01M10/4207
ELECTRICITY
H01M50/244
ELECTRICITY
International classification
H02J7/00
ELECTRICITY
H01M50/244
ELECTRICITY
H01M10/42
ELECTRICITY
Abstract
The present invention discloses a battery and an external component, which belong to the field of power supply technologies for a movie and television shooting apparatus. The battery of the present invention is used in cooperation with an external component, including at least two battery packs, a microcontroller, and a series-parallel switching circuit, and further including a connector in cooperation with the external component, the microcontroller controlling the series-parallel switching circuit according to a cooperation state of the connector and the external component, so that the battery packs are connected in series or in parallel. The present invention can be compatible with a high/low voltage camera and a high/low voltage charger automatically.
Claims
1. A battery, the battery being used in cooperation with an external component, the battery comprising a microcontroller, a series-parallel switching circuit, and at least a first battery pack and a second battery pack, further comprising a connector in cooperation with the external component, the microcontroller controlling the series-parallel switching circuit according to a connection status of the connector and the external component, so that the battery packs are connected in series or in parallel, further comprising; a battery charging and discharging management chip, configured to balance a voltage of a battery cell of the battery packs during charging or discharging of batteries in series or in parallel; an on/off protection circuit, configured to perform on/off protection in case of an abnormal situation during charging and discharging; wherein the series-parallel switching circuit comprises a first switch, a second switch, and a third switch, two ends of the first switch being connected to positive electrodes of the first battery pack and the second battery pack respectively, two ends of the third switch being connected to negative electrodes of the first battery pack and the second battery pack respectively, and one end of the second switch being connected to a negative electrode of the first battery pack; and wherein the other end of the second switch being connected to a positive electrode of the second battery pack, wherein when the second switch is closed but the first switch and the third switch are disconnected, the first battery pack and the second battery pack are connected in series; and when the second switch is disconnected but the first switch and the third switch are closed, the first battery pack and the second battery pack are connected in parallel; and wherein the on/off protection circuit comprises an MOS1, an MOS2, an MOS3, and an MOS4, a source of the MOS1 being connected to a positive electrode of a first battery pack, a drain being connected to the MOS2, and a gate beinq connected to the battery charging and discharging management chip; a source of the MOS2 being connected to a positive output electrode of the battery, and a gate beinq connected to the battery charging and discharging management chip; a source of the MOS3 being connected to a positive electrode of the second battery pack, a drain being connected to the MOS4, and a gate being connected to the battery charging and discharging management chip; a source of the MOS4 being connected to a first switch and a second switch, and a gate being connected to the batter charging and discharging management chip.
2. The battery according to claim 1, wherein the connector is connected to an external component in a contact manner or in a contactless manner.
3. The battery according to claim 1, wherein the connector is a reed switch, and the external component is disposed with a magnet, the magnet being connected to the reed switch in a contactless manner.
4. The battery according to claim 1, wherein the connector is an electrode, and the external component is disposed with an external electrode, the external electrode being connected to the connector in a contact manner.
5. An external component for use in cooperation with the battery in claim 1, the external component being a battery bucket plate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(12) Reference numerals in the figure: 3—buckle plate, 301—magnet, 302—groove inside the buckle plate, 31—camera buckle plate, 32—charger buckle plate, 4—battery, 401—reed switch, 402—wire, 7—camera, 8—charger, 901—first electrode, 902—second electrode.
DETAILED DESCRIPTION
(13) The present invention is further described in detail below in combination with the embodiments and with reference to accompanying drawings.
Embodiment 1
(14) One embodiment of the present invention is a battery that can automatically switch between a high-voltage charging and discharging state and a low-voltage charging and discharging state.
(15) The present invention combines two technical means of automatic identification and automatic control, so that the battery automatically can switch between a high-voltage charging and discharging state and a low-voltage charging and discharging state.
(16) A voltage level of a camera or a charger can be automatically recognized in a way of contactless proximity sensing. That is, a pair of contactless connectors are installed on the battery and on buckle plates of a high-voltage camera and a high-voltage charger. When the battery is hung on such buckle plate, the camera or the charger is automatically recognized as a high-voltage apparatus, and a high-voltage circuit is turned on to implement high-voltage charging and discharging. The contactless connector is not installed on a buckle plate of a low-voltage camera or a low-voltage charger. When the battery is hung on the buckle plate, it is determined that the camera or the charger on which the buckle plate is located is a low-voltage apparatus, and a low-voltage circuit in the battery is turned on to implement low-voltage charging and discharging. Definitely, automatic identification can also be implemented by means of short-range wireless communication.
(17) Automatic control is implemented using the following methods.
(18) There are two sets of low-voltage battery packs inside the battery, the two sets of low-voltage battery packs being connected by a series-parallel switching circuit.
(19) The series-parallel switching circuit is controlled by a microprocessor.
(20) Through a combination of automatic identification and automatic control, the microprocessor controls the series-parallel switching circuit according to the foregoing result of automatic identification, finally implementing modes of high-voltage charging and discharging and low-voltage charging and discharging of the battery.
(21) A system of the present invention mainly includes two parts, one being a battery 4 and the other being a buckle plate 3, as shown in
(22) As shown in
(23) An on/off protection circuit composed of an MOS1, an MOS2, an MOS3, and an MOS4 plays a part in on/off protection in case of an abnormal situation during the charging and discharging, to prolong battery life and ensure battery performance. Referring to
(24) In summary, when a battery is connected to a non-magnetic buckle plate, the battery is in a low-voltage mode. After the battery is connected to a magnet bucket plate, the battery is in a high-voltage mode.
Embodiment 2
(25) One embodiment of the present invention is a battery that can automatically switch between a high-voltage charging and discharging state and a low-voltage charging and discharging state. A difference from Embodiment 1 is implementation of automatic identification.
(26) In this embodiment, a contact connector is used to recognize a voltage level of a camera or a charger automatically. That is, a pair of contact connectors are installed on the battery and buckle plates of a high-voltage camera and a high-voltage charger. When the battery is hung on such buckle plate, the camera or the charger is automatically recognized as a high-voltage apparatus, and a high-voltage circuit is turned on to implement high-voltage charging and discharging. The device is not installed on a buckle plate of the low-voltage camera or charger. When the battery is hung on the buckle plate, it is determined that the camera or charger is a low-voltage apparatus, and a low-voltage circuit is turned on to implement low-voltage charging and discharging.
(27) As shown in
(28) Although the present invention has been disclosed above in preferred embodiments, the embodiments are not intended to limit the present invention. Any equivalent changes or modifications made without departing from a spirit and scope of the present invention are also within protection scope of the present invention. Therefore, the protection scope of the present invention shall be subject to contents defined in claims of the present application.