Integrated switching device, and battery monitoring and protecting system including integrated switching device
11682796 · 2023-06-20
Assignee
Inventors
Cpc classification
Y02T90/16
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
H02J7/0063
ELECTRICITY
H01M2010/4271
ELECTRICITY
B60L3/04
PERFORMING OPERATIONS; TRANSPORTING
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
G01R15/14
PHYSICS
H01M10/425
ELECTRICITY
H02J7/00
ELECTRICITY
B60L3/0046
PERFORMING OPERATIONS; TRANSPORTING
International classification
G01R15/14
PHYSICS
H01M10/42
ELECTRICITY
H02J7/00
ELECTRICITY
Abstract
An integrated switching device in which a contactor unit which is capable of controlling a continuity state of an electric circuit, a blocking unit which is capable of cutting a contactor and blocking a current when abnormality is generated in the contactor or a current having a size exceeding a permitted current range of the contactor is generated, and a current measuring unit which is capable of measuring a current by using shunt resistor are integrated into one device, thereby performing various functions only with one device.
Claims
1. An integrated switching device, comprising: a contactor located in an electric circuit and configured to control a continuity state of the electric circuit based on a control signal, wherein the contactor includes a positive electrode contactor and a negative electrode contactor connected with the electric circuit and an electrical connector configured to electrically connect and disconnect the positive electrode contactor and the negative electrode contactor based on the control signal; a shunt resistor positioned on the contactor to measure a current flowing in the contactor; one or more power disconnect devices (PDD) positioned in a cavity of the electrical connector and configured to block the current flowing in the electrical connector by cutting the shunt resistor; and a current sensor including one or more comparators configured to compare a magnitude of current flowing in the shunt resistor with a predetermined current magnitude, wherein the contactor, the PDD, and the current sensor are included in one housing.
2. The integrated switching device of claim 1, wherein the PDD is positioned adjacent to any one or more of the positive electrode contactor, the negative electrode contactor, or the electrical connector, and wherein the PDD is configured to explode and cut the shunt resistor positioned on any one or more of the positive electrode contactor, the negative electrode contactor, or the electrical connector to block the current flowing in the contactor when the contactor does not control the continuity state of the electric circuit even though the control signal is received.
3. The integrated switching device of claim 1, wherein the PDD is configured to explode and cut the shunt resistor positioned on any one or more of the positive electrode contactor, the negative electrode contactor, or the electrical connector to block the current flowing in the contactor when a magnitude of the current flowing in the contactor measured by the current sensor exceeds a predetermined current magnitude regardless of whether the control signal is received by the contactor.
4. The integrated switching device of claim 1, wherein the shunt resistor is included in any one or more of the positive electrode contactor, the negative electrode contactor, or the electrical connector.
5. The integrated switching device of claim 4, wherein the current sensor includes a comparator, wherein the comparator is configured to compare the current flowing in the shunt resistor with the predetermined current magnitude, and wherein operation of the PDD is controlled based on a comparison result output through the comparator.
6. The integrated switching device of claim 1, wherein the current sensor is configured to transmit the measured current using Controller Area Network (CAN) communication.
7. The integrated switching device of claim 1, wherein the current sensor includes a hall effect sensor.
8. An integrated switching device, comprising: a contactor located in an electric circuit and configured to control a continuity state of the electric circuit based on a control signal, wherein the contactor includes a positive electrode contactor and a negative electrode contactor connected with the electric circuit and an electrical connector configured to electrically connect and disconnect the positive electrode contactor and the negative electrode contactor based on the control signal; a shunt resistor positioned on the contactor to measure a current flowing in the contactor; one or more power disconnect devices (PDD) configured to block the current flowing in the contactor by cutting the shunt resistor, wherein the PDD includes a heat radiating body, and wherein the PDD is configured to cut the shunt resistor positioned on any one or more of the positive electrode contactor, the negative electrode contactor, or the electrical connector to block the current flowing in the contactor when an electricity conducting metal included in any one or more of the positive electrode contactor, the negative electrode contactor, or the electrical connector is melted by heat from the heat radiating body applied to the contactor; and a current sensor including one or more comparators configured to compare a magnitude of current flowing in the shunt resistor with a predetermined current magnitude, wherein the contactor, the PDD, and the current sensor are included in one housing.
9. A system for monitoring and protecting a battery, comprising: an integrated switching device including: a contactor located in an electric circuit and configured to control a continuity state of the electric circuit based on a control signal, wherein the contactor includes a positive electrode contactor and a negative electrode contactor connected with the electric circuit and an electrical connector configured to electrically connect and disconnect the positive electrode contactor and the negative electrode contactor based on the control signal; a shunt resistor positioned on the contactor or the electrical connector to measure a current flowing in the contactor; a blocking unit positioned in a cavity of the electrical connector and configured to block the current flowing in the electrical connector by cutting the shunt resistor; and a current sensor including one or more comparators configured to compare a magnitude of current flowing in the shunt resistor with a predetermined current magnitude, wherein the contactor, the blocking unit, and the current sensor are included in one housing.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
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MODE FOR CARRYING OUT THE INVENTION
(7) Hereinafter, an exemplary embodiment is presented for helping understanding of the present invention. However, the exemplary embodiment below is simply provided for easier understanding of the present invention, and the contents of the present invention are not limited by the exemplary embodiment.
(8)
(9) Referring to
(10) Accordingly, for a section in which the fuse is not operated or an operation time is delayed, a method of recognizing an abnormal current by a current sensor 13 and opening a relay 12 by a Battery Management System (BMS) to block a current is used. Herein, the relay 12 may include all of the mechanical and electrical relays.
(11) In addition, in order to protect a battery from an overvoltage, when a voltage sensor (not illustrated) located outside senses a voltage and then finds an abnormal symptom, a scheme of outputting a contactor control signal and opening the relay 12 is used, and in order to measure a current, the external current sensor 13 is used and a scheme of transmitting corresponding information to a Micro Controller Unit (MCU) through separate communication is used.
(12) As a result, there is a disadvantage in that various components, such as the current fuse 11, the relay 12, and the current sensor 13, are required for performing a protective operation against voltage and current abnormality situations. Hereinafter, an integrated switching device 100 according to an exemplary embodiment of the present invention which is capable of overcoming the disadvantage of the battery monitoring and protecting system 1 in the related art will be described with reference to
(13)
(14) Referring to
(15) Herein, the integrated switching device 100 illustrated in
(16) Further,
(17) The integrated switching device 100′ according to another exemplary embodiment of the present invention and the integrated switching device 100″ according to another exemplary embodiment of the present invention illustrated in
(18) First, the contactor unit 110 may be located in an electric circuit and connected with the electric circuit, and control a continuity state of the electric circuit based on a control signal. To this end, the contactor unit 110 may include the positive electrode contactor unit 111, the negative electrode contactor unit 112, and a connecting unit 113.
(19) Herein, the continuity state may mean an on-state in which the electric circuit is connected without a disconnection to form a closed circuit, so that a current flows in the electric circuit, and an off-state in which one side of the electric circuit is opened or short-circuited to form an open circuit, so that a current cannot flow in the electric circuit.
(20) Further, herein, the control signal means a signal for controlling the contactor unit 110 for changing a continuity state of the electric circuit. For example, the control signal may be a signal output from a control unit located outside for controlling a continuity state of the electric circuit from an on state to an off state or from an off state to an on state by connecting or disconnecting the contactor unit 110.
(21) The positive electrode contactor unit 111 may be connected to a positive electrode terminal side of a battery 10 provided in the electric circuit, and the negative electrode contactor unit 112 may be connected to a load side (DC link (+) terminal side).
(22) The connecting unit 113 may electrically connect and disconnect the positive electrode contactor unit 111 and the negative electrode contactor unit 112 based on the control signal.
(23) In the exemplary embodiment, the connecting unit 113 may be formed in the form of “T” for locating a blocking part 130, which is to be described below, at the side of the positive electrode contactor unit 111 and the negative electrode contactor unit 112 as illustrated in
(24) In the exemplary embodiment, the connecting unit 113 may include a signal line (not illustrated) receiving a signal output from the outside, and may receive a signal controlling a connection and a disconnection between the positive electrode contactor unit 111 and the negative electrode contactor unit 112 through the signal line.
(25) In the exemplary embodiment, the positive electrode contactor unit 111, the negative electrode contactor unit 112, and the connecting unit 113 may be formed with an electricity connection metal including an electroconductive metal, such as gold (Au), silver (Ag), copper (Cu), aluminum (Al), or platinum (Pt), and when a contact point (not illustrated) formed in the connecting unit 113 is attached to or detached from the positive electrode contactor unit 111 and the negative electrode contactor unit 112, a continuity state of the electric circuit may be changed. However, the present invention is not limited thereto.
(26) In the exemplary embodiment, any one or more of the positive electrode contactor unit 111, the negative electrode contactor unit 112, and the connecting unit 113 may include one or more shunt resistors 114. For example, as illustrated in
(27) The blocking unit 120 may block a current flowing in the contactor unit 110. To this end, the blocking unit 120 may include one or more power disconnect devices (PDD).
(28) The PDD is a component performing a protective function, and is a component applied to an airbag of a vehicle and the like. The PDD may cut the constituent element by exploding the constituent element by an input signal. That is, the blocking unit 120 may be located to be adjacent to any one or more of the positive electrode contactor unit 111, the negative electrode contactor unit 112, and the connecting unit 113, and when the PDD included in the blocking unit 120 is exploded, any one or more of the positive electrode contactor unit 111, the negative electrode contactor unit 112, and the connecting unit 113 located to be adjacent to the blocking unit 120 may be cut.
(29) In another exemplary embodiment, a blocking unit 120 may include a heat radiating body (not illustrated), and when an electricity conducting metal included in any one or more of a positive electrode contactor unit 111, a negative electrode contactor unit 112, and a connecting unit 113 is melted by applying heat generated in the heat radiating body to a contactor unit 110, the blocking unit 120 may cut any one or more of the positive electrode contactor unit 111, the negative electrode contactor unit 112, and the connecting unit 113.
(30) In another exemplary embodiment, a positive electrode contactor unit 111, a negative electrode contactor unit 112, and a connecting unit 113 may include a specific metal having a size of a second reference current as a melting point, and when a current exceeding the size of the second reference current is applied by using a material characteristic of the specific metal, the specific metal is melted, so that any one or more of the positive electrode contactor unit 111, the negative electrode contactor unit 112, and the connecting unit 113 may be cut.
(31) In the exemplary embodiment, when the continuity state of the electric circuit is not controlled even though the control signal is received, the blocking unit 120 may explode and cut any one or more of the positive electrode contactor unit 111, the negative electrode contactor unit 112, and the connecting unit 113 to block the current flowing in the contactor unit 110. For example, when the control signal including a command controlling the continuity state of the electric circuit from the on state to the off state is received from the outside, but the contactor unit 110 is not disconnected and the continuity state of the electric circuit is maintained in the on state, the blocking unit 120 may explode and cut any one or more of the adjacent positive electrode contactor unit 111, negative electrode contactor unit 112, and connecting unit 113 to block the current flowing in the contactor unit 110.
(32) In the exemplary embodiment, when the continuity state of the electric circuit is not controlled for a predetermined time after the control signal is received, the blocking unit 120 may explode and cut any one or more of the positive electrode contactor unit 111, the negative electrode contactor unit 112, and the connecting unit 113. However, the present invention is not limited thereto.
(33) In the exemplary embodiment, when a size of a current measured by the current measuring unit 130 which is to be described below exceeds a predetermined size of a current, the blocking unit 120 may explode and cut any one or more of the positive electrode contactor unit 111, the negative electrode contactor unit 112, and the connecting unit 113 regardless of the reception of the control signal to block the current flowing in the contactor unit 110.
(34) Herein, the predetermined size of the current may mean a maximum value of a permitted current size of the fuse 11. For example, when a maximum permitted current value of the fuse 11 is 10 A, the predetermined size of the current may be set to 10 A. However, the present invention is not limited thereto.
(35) The current measuring unit 130 may measure a current flowing in the contactor unit 110. For example, the current measuring unit 130 may measure a current flowing in the contactor unit 110 by using one or more shunt resistors 114 included in any one or more of the positive electrode contactor unit 111, the negative electrode contactor unit 112, and the connecting unit 113. However, the present invention is not limited thereto, and any method of measuring a current flowing in an electric circuit may be applied. For example, the current measuring unit 130 may measure a current flowing in an electric circuit by using a hall type current measurement scheme using a hall sensor.
(36) In the exemplary embodiment, the current measuring unit 130 may transmit the measured current to the outside by using Controller Area Network (CAN) communication.
(37) Herein, the CAN communication means a communication scheme of transmitting data through two-strand data wires which are twisted or shielded by coating. However, the present invention is not limited thereto, and any communication scheme of transmitting the current measured by the current measuring unit 130 to the outside may be applied.
(38) In the exemplary embodiment, the current measuring unit 130 may include one or more comparators as illustrated in
(39) The housing 140 may form a space having a predetermined size so as to include the contactor unit 110, the blocking unit 120, and the current measuring unit 130 therein.
(40) The housing 140 may locate the contactor unit 110, the blocking unit 120, and the current measuring unit 130 inside thereof and covers four directions to package the contactor unit 110, the blocking unit 120, and the current measuring unit 130 in one device.
(41) Herein, in
(42) In the exemplary embodiment, the integrated switching device 100 according to the exemplary embodiment of the present invention may include a pyro switch (not illustrated).
(43) The pyro switch may detect an abnormal situation, such as an overcurrent, of an electric circuit, and may apply a control signal commanding an off operation of the contactor unit 110 to the signal line included in the connecting unit 113 to make the contactor unit 110 be physically off.
(44) In the forgoing, the present invention has been described with reference to the exemplary embodiment of the present invention, but those skilled in the art may appreciate that the present invention may be variously corrected and changed within the range without departing from the spirit and the area of the present invention described in the appending claims.