Battery connection status detection circuit and method, battery, device, and system
View Patent ↗The battery includes a cell pack. The detection circuit includes a first switch unit, a second switch unit, a discharge unit, a sampling unit, an energy storage unit, and a controller. A first terminal of the first switch unit is connected to a first terminal of the cell pack. A second terminal of the first switch unit is connected to a second terminal of the cell pack after being connected in series to the energy storage unit. The second switch unit is connected in parallel to the energy storage unit after being connected in series to the discharge unit. The discharge unit discharges the energy storage unit. The sampling unit is connected in parallel to the energy storage unit. The sampling unit sends an obtained sampling signal to the controller.
1 . A battery connection status detection circuit configured to be disposed in a battery, the battery comprising a cell pack, the battery connection status detection circuit comprising:
a first switch unit;
a second switch unit;
a discharge unit;
a sampling unit;
an energy storage unit; and
a controller;
a first terminal of the first switch unit is connected to a first terminal of the cell pack, and a second terminal of the first switch unit is connected to a second terminal of the cell pack after being connected in series to the energy storage unit;
the second switch unit is connected in parallel to the energy storage unit after being connected in series to the discharge unit, the discharge unit being configured to discharge the energy storage unit;
the sampling unit is connected in parallel to the energy storage unit, and the sampling unit is configured to send a sampling signal to the controller; and
the controller is configured to control the first switch unit and the second switch unit and is further configured to determine whether the battery is connected based on the obtained sampling signal.
2 . The battery connection status detection circuit according to claim 1 , wherein the controller controls both the first switch unit and the second switch unit to be closed, controls the first switch unit to be opened for a preset time period, and determines whether the battery is connected based on sampling signals obtained before and after the preset time period.
3 . The battery connection status detection circuit according to claim 2 , wherein the sampling signal is a voltage across both terminals of the energy storage unit, and the controller determines whether the battery is connected based on a difference between voltages obtained before and after the preset time period.
4 . The battery connection status detection circuit according to claim 2 , wherein the controller detects an electrical parameter value of the energy storage unit using the sampling signals obtained before and after the preset time period and compares the detected electrical parameter value with a preset electrical parameter value to determine whether the battery is connected.
5 . The battery connection status detection circuit according to claim 4 , wherein the energy storage unit comprises an energy storage capacitor, and the electrical parameter is a capacitance.
6 . The battery connection status detection circuit according to claim 1 , wherein the discharge unit comprises a heating film circuit, and the heating film circuit is configured to heat the battery.
7 . The battery connection status detection circuit according to claim 1 , wherein the discharge unit comprises a resistor.
8 . The battery connection status detection circuit according to claim 1 , wherein the first switch unit comprises a switching transistor and a relay connected in parallel.
9 . The battery connection status detection circuit according to claim 1 , wherein the sampling unit comprises a sampling resistor, and the sampling signal comprises a voltage across both terminals of the sampling resistor or comprises a current flowing through the sampling resistor.
10 . A battery, comprising:
a cell pack; and
a battery connection status detection circuit, the battery connection status detection circuit comprising:
a first switch unit;
a second switch unit;
a discharge unit;
a sampling unit;
an energy storage unit; and
a controller;
a first terminal of the first switch unit is connected to a first terminal of the cell pack, and a second terminal of the first switch unit is connected to a second terminal of the cell pack after being connected in series to the energy storage unit;
the second switch unit is connected in parallel to the energy storage unit after being connected in series to the discharge unit, the discharge unit is configured to discharge the energy storage unit;
the sampling unit is connected in parallel to the energy storage unit, and the sampling unit is configured to send a sampling signal to the controller;
the controller is configured to control the first switch unit and the second switch unit and is further configured to determine whether the battery is connected based on the obtained sampling signal; and
a first terminal of the cell pack is connected to the first terminal of the first switch unit, and a second terminal of the cell pack is connected to the second terminal of the first switch unit by the energy storage unit.
11 . An energy system, comprising:
a direct current bus;
at least one power supply unit (PSU); and
at least one battery, comprising:
a cell pack; and
a battery connection status detection circuit, the battery connection status detection circuit comprising:
a first switch unit;
a second switch unit;
a discharge unit;
a sampling unit;
an energy storage unit; and
a controller;
a first terminal of the first switch unit is connected to a first terminal of the cell pack, and a second terminal of the first switch unit is connected to a second terminal of the cell pack after being connected in series to the energy storage unit;
the second switch unit is connected in parallel to the energy storage unit after being connected in series to the discharge unit, the discharge unit is configured to discharge the energy storage unit;
the sampling unit is connected in parallel to the energy storage unit, and the sampling unit is configured to send a sampling signal to the controller;
the controller is configured to control the first switch unit and the second switch unit and is further configured to determine whether the battery is connected based on the obtained sampling signal;
the at least one battery and the at least one PSU are connected in parallel to the direct current bus of the energy system, and each power supply unit is further connected in parallel to one energy storage unit; and
the power supply unit is configured to convert an alternating current provided by an external power supply into a direct current and transmit the direct current to the direct current bus.
12 . The energy system according to claim 11 , wherein the controller is further configured to determine a sum of quantities of batteries and PSUs that are connected in parallel to the direct current bus, based on a difference of voltages at both terminals of the energy storage unit obtained before and after a preset time period.
13 . The energy system according to claim 11 , wherein the controller is further configured to determine, based on sampling signals obtained before and after a preset time period, an equivalent value of an electrical parameter obtained after energy storage units are connected in parallel, and determine a sum of quantities of batteries and PSUs that are connected in parallel to the direct current bus, based on the equivalent value.