CN115085344A - Intrinsic safety explosion-proof circuit of lithium battery box - Google Patents

Intrinsic safety explosion-proof circuit of lithium battery box Download PDF

Info

Publication number
CN115085344A
CN115085344A CN202211003106.8A CN202211003106A CN115085344A CN 115085344 A CN115085344 A CN 115085344A CN 202211003106 A CN202211003106 A CN 202211003106A CN 115085344 A CN115085344 A CN 115085344A
Authority
CN
China
Prior art keywords
resistor
integrated chip
pin
battery
circuit
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
CN202211003106.8A
Other languages
Chinese (zh)
Other versions
CN115085344B (en
Inventor
李栋庆
王进
梁耀林
张亚峰
刘慧锋
张超
贺俊义
杨艳
张经
郑扬帆
崔世杰
杜文卓
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Shanxi Keda Automation Control Co ltd
Original Assignee
Shanxi Keda Automation Control Co ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Shanxi Keda Automation Control Co ltd filed Critical Shanxi Keda Automation Control Co ltd
Priority to CN202211003106.8A priority Critical patent/CN115085344B/en
Publication of CN115085344A publication Critical patent/CN115085344A/en
Application granted granted Critical
Publication of CN115085344B publication Critical patent/CN115085344B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/0029Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries with safety or protection devices or circuits
    • H02J7/00304Overcurrent protection
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02HEMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
    • H02H7/00Emergency protective circuit arrangements specially adapted for specific types of electric machines or apparatus or for sectionalised protection of cable or line systems, and effecting automatic switching in the event of an undesired change from normal working conditions
    • H02H7/18Emergency protective circuit arrangements specially adapted for specific types of electric machines or apparatus or for sectionalised protection of cable or line systems, and effecting automatic switching in the event of an undesired change from normal working conditions for batteries; for accumulators
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/0013Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries acting upon several batteries simultaneously or sequentially
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/0029Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries with safety or protection devices or circuits
    • H02J7/00308Overvoltage protection
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/0029Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries with safety or protection devices or circuits
    • H02J7/00309Overheat or overtemperature protection
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/0029Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries with safety or protection devices or circuits
    • H02J7/0031Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries with safety or protection devices or circuits using battery or load disconnect circuits
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02MAPPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
    • H02M3/00Conversion of dc power input into dc power output
    • H02M3/22Conversion of dc power input into dc power output with intermediate conversion into ac
    • H02M3/24Conversion of dc power input into dc power output with intermediate conversion into ac by static converters
    • H02M3/28Conversion of dc power input into dc power output with intermediate conversion into ac by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate ac
    • H02M3/325Conversion of dc power input into dc power output with intermediate conversion into ac by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate ac using devices of a triode or a transistor type requiring continuous application of a control signal
    • H02M3/335Conversion of dc power input into dc power output with intermediate conversion into ac by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate ac using devices of a triode or a transistor type requiring continuous application of a control signal using semiconductor devices only
    • H02M3/33507Conversion of dc power input into dc power output with intermediate conversion into ac by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate ac using devices of a triode or a transistor type requiring continuous application of a control signal using semiconductor devices only with automatic control of the output voltage or current, e.g. flyback converters
    • H02M3/33523Conversion of dc power input into dc power output with intermediate conversion into ac by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate ac using devices of a triode or a transistor type requiring continuous application of a control signal using semiconductor devices only with automatic control of the output voltage or current, e.g. flyback converters with galvanic isolation between input and output of both the power stage and the feedback loop
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J2207/00Indexing scheme relating to details of circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J2207/20Charging or discharging characterised by the power electronics converter
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/10Energy storage using batteries

Landscapes

  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Charge And Discharge Circuits For Batteries Or The Like (AREA)
  • Emergency Protection Circuit Devices (AREA)

Abstract

The invention discloses an intrinsic safety explosion-proof circuit of a lithium battery box, which belongs to the technical field of lithium batteries and comprises the following components: the primary battery protection circuit is connected with the battery pack and is used for performing overcurrent protection, voltage overvoltage and undervoltage protection and temperature protection on the charging and discharging of the battery in the battery pack; the battery power-off circuit is connected with the primary battery protection circuit and is used for realizing the power-off of a battery switch; the isolation circuit is connected with the battery power-off circuit and is used for isolating the battery into a power supply with preset voltage; and the secondary battery protection circuit is connected with the isolation circuit and used for protecting the voltage output by the isolation circuit and realizing the safe output of the voltage. The invention separates the charging path from the discharging path, and carries out independent design and safety protection respectively, thereby ensuring that the charging path meets the requirement of intrinsic safety and enhancing the safety and the reliability of the whole circuit. When the battery leaves the power supply body, the circuit can be quickly and actively cut off, and the intrinsic safety terminal is prevented from discharging in the moving process of the battery.

Description

Intrinsic safety explosion-proof circuit of lithium battery box
Technical Field
The invention relates to the technical field of lithium batteries, in particular to an intrinsic safety explosion-proof circuit of a lithium battery box.
Background
At present, battery powered is the main power supply mode of this ampere of wireless device in pit, nevertheless because colliery special requirement, the lithium cell is strictly forbidden to charge in the pit, consequently, the charging of battery can only go on ground, and conventional lithium cell is as an organic whole with equipment, and the ground is transported with battery and equipment together to the charging needs, and this has thus increased the difficulty that the battery charges, also need increase extra equipment simultaneously and assist the going on.
In order to solve the problem, a battery box technology is adopted in the coal mine field, the battery box is of a replaceable structure and can be separated from equipment, the difficulty of transporting batteries to the ground can be relieved, and meanwhile, the equipment can work for a long time underground.
However, due to the existence of gas and coal dust in the underground coal mine, faults such as short circuit, grounding and the like cannot occur in a control circuit of the battery box, or electric sparks or electric arcs can be generated, so that gas or coal dust explosion is caused in the underground coal mine. Therefore, it becomes important to research an intrinsic safety explosion-proof circuit of the lithium battery box.
An effective solution to the problems in the related art has not been proposed yet.
Disclosure of Invention
Aiming at the problems in the related art, the invention provides an intrinsic safety explosion-proof circuit of a lithium battery box, which can separate charging and discharging paths to realize intrinsic safety explosion-proof of the lithium battery box.
The technical scheme of the invention is realized as follows:
the utility model provides a lithium cell box this ampere of explosion-proof circuit, lithium cell box have a plurality of groups of battery, and every group battery comprises a plurality of economize on electricity batteries, lithium cell box present case explosion-proof circuit includes:
the primary battery protection circuit is connected with the battery pack and is used for performing overcurrent protection, voltage overvoltage and undervoltage protection and temperature protection on the charging and discharging of the battery in the battery pack;
the battery power-off circuit is connected with the primary battery protection circuit and is used for realizing the power-off of a battery switch;
the isolation circuit is connected with the battery power-off circuit and is used for isolating the battery into a power supply with a preset voltage;
and the secondary battery protection circuit is connected with the isolation circuit and used for protecting the voltage output by the isolation circuit and realizing the safe output of the voltage.
Wherein, lithium battery box has 1 group battery, and this group battery comprises 3 batteries, just the battery capacity of lithium battery box is less than or equal to 100 Wh.
The isolation circuit is a 4-way isolation circuit, and the 4-way isolation circuit divides the battery into 4 isolated 12V power supplies.
The primary battery protection circuit comprises an integrated chip U1 of the primary battery protection circuit, resistors R1-R14, a rectifier diode D1, capacitors C1-C7 and MOS transistors Q1-Q2; in the primary battery protection circuit, pins VC1-VC3 of an integrated chip U1 are respectively connected with a battery BT1, a battery BT2 and a battery BT3 through a resistor R2, a resistor R3 and a resistor R5, and a resistor R1 and a rectifying diode D1 which are connected in series are connected between a VCC pin of the integrated chip U1 and the anode of the battery pack; a capacitor C1, a capacitor C2, a capacitor C3 and a capacitor C4 are respectively connected between the resistor R1, the resistor R2, the resistor R3 and the resistor R5 and the cathode of the battery pack; the TEST pin of the integrated chip U1 is grounded; a resistor R8 and a resistor R13 which are connected in series are connected between the VTC pin of the integrated chip U1 and the negative electrode of the battery pack; the VTD pin and the TS pin of the integrated chip U1 are both connected with a resistor R13, and a resistor R7 is connected between the VTD pin of the integrated chip U1 and the resistor R13; a resistor R6 and an MOS transistor Q1 which are connected in series are connected between the NCDRV pin of the integrated chip U1 and the cathode of the battery pack, and a resistor R10 is connected between the grid electrode and the source electrode of the MOS transistor Q1; a resistor R11 is connected between the VM pin of the integrated chip U1 and the negative electrode of the battery pack; a resistor R4 and an MOS transistor Q2 which are connected in series are connected between an NDDRV pin of the integrated chip U1 and the negative electrode of the battery pack, and a resistor R12 is connected between the grid electrode and the source electrode of the MOS transistor Q2; a resistor R9, a resistor R14 and a capacitor C5 are connected between a CS pin of the integrated chip U1 and the negative electrode of the battery pack, and the resistor R9 is connected with the capacitor C5 in parallel; a capacitor C6 and a capacitor C7 are connected between the two CUVT pins of the integrated chip U1 and the negative electrode of the battery pack respectively; the VSS pin of the integrated chip U1 is connected with the negative electrode of the battery pack.
The battery power-off circuit comprises MOS transistors Q1-Q4, rectifier diodes D1-D4, resistors R1-R7 and switches K1-K2; in the battery power-off circuit, two groups of MOS (metal oxide semiconductor) tube groups are connected between the anode of the battery pack and the cathode of the battery pack, wherein one group of MOS tube group consists of an MOS tube Q1 and an MOS tube Q3 which are connected in series, and the other group of MOS tube group consists of an MOS tube Q2 and an MOS tube Q4 which are connected in series; a resistor R4 and a resistor R5 are respectively connected between the MOS transistor Q1 and the MOS transistor Q3 and between the MOS transistor Q2 and the MOS transistor Q4; a resistor R2 and a first voltage stabilizing diode which are connected in series are connected between the source electrodes of the MOS transistor Q1 and the MOS transistor Q3; a resistor R3 and a second voltage stabilizing diode which are connected in series are connected between the source electrodes of the MOS transistor Q2 and the MOS transistor Q3; rectifier diodes D1-D4 are connected between the sources of the MOS transistor Q1 and the MOS transistor Q2 and the anode of the battery pack, wherein the rectifier diode D1 is connected with the rectifier diode D2 in parallel, and the rectifier diode D3 is connected with the rectifier diode D4 in parallel; a resistor R7 and a third voltage stabilizing diode are connected between the grid electrodes of the MOS tube Q3 and the MOS tube Q4 and the negative electrode of the battery pack, a switch K1 is connected to the third voltage stabilizing diode, a resistor R1 and a resistor R6 which are connected in series are connected between the positive electrode of the battery pack and the negative electrode of the battery pack, and a switch K2 is connected between the resistor R1 and the resistor R6.
The isolation circuit is 4 paths of isolation circuits, and each path of isolation circuit is a flyback switching power supply circuit composed of a transformer, a power supply chip and optocoupler feedback.
The secondary battery protection circuit comprises an integrated chip U1, an integrated chip U2, an integrated chip U3, an integrated chip U4, a triode Q1-Q2, MOS transistors M1-M2, rectifier diodes D1-D6, capacitors C0-C7, tunnel diodes U5-U6 and resistors R1-R28; in the secondary battery protection circuit, an OUT1 pin and an OUT2 pin of an integrated chip U1 are both connected with a 5V power supply through a resistor R17; a VCC pin of the integrated chip U1 is connected with a 5V power supply; a 1-pin of the integrated chip U1 is connected with a resistor R15, and a resistor R15 is grounded; a 1+ pin of the integrated chip U1 is connected with a resistor R27, and a resistor R27 is grounded; a resistor R7, a resistor R8 and a capacitor C3 which are connected in parallel are connected between the 2-pin of the integrated chip U1 and the ground; a resistor R1 is connected between the resistor R7, the resistor R8, the capacitor C3 and the power port in parallel; a 2+ pin of the integrated chip U1 is connected with a resistor R19 and a tunnel diode U5 which are connected between a 5V power supply and the ground in series; a 3-pin and a 4+ pin of the integrated chip U1 are connected, and a resistor R23 and a resistor R25 which are connected in series are connected between the 3-pin and the 4+ pin of the integrated chip U1 and the resistor R27; the 3+ pin of the integrated chip U1 is connected with the resistor R17, and the 4-pin of the integrated chip U1 is connected with the integrated chip U3; the GND pin of the integrated chip U1 is grounded; an OUT4 pin of the integrated chip U1 is connected with the integrated chip U3, and an OUT3 pin of the integrated chip U1 is connected with a resistor R13; the resistor R13 is connected with a triode Q1, a capacitor C1, a resistor R2 and an MOS tube M1 which are connected in parallel are connected between the triode Q1 and a power supply port, and a resistor R5 and a rectifier diode D3 which are connected in parallel are connected between the resistor R2 and the MOS tube M1; a capacitor C0, a rectifier diode D1 and a rectifier diode D2 which are connected in parallel are connected between the power supply port and the ground, and a resistor R15 is connected with the capacitor C0, the rectifier diode D1 and the rectifier diode D2 which are connected in parallel; the OUT1 pin and the OUT2 pin of the integrated chip U2 are both connected with a 5V power supply through a resistor R18; a VCC pin of the integrated chip U2 is connected with a 5V power supply; a 1-pin of the integrated chip U1 is connected with a resistor R16, and a resistor R16 is grounded; a 1+ pin of the integrated chip U2 is connected with a resistor R28, and a resistor R28 is grounded; a resistor R9, a resistor R10 and a capacitor C4 which are connected in parallel are connected between a 2-pin of the integrated chip U2 and the ground; a resistor R3 is connected between the resistor R9, the resistor R10 and the capacitor C4 which are connected in parallel and the power port; the 2+ pin of the integrated chip U2 is connected with a resistor R20 and a tunnel diode U6 which are connected between a 5V power supply and the ground in series; a 3-pin and a 4+ pin of the integrated chip U2 are connected, and a resistor R24 and a resistor R26 which are connected in series are connected between the 3-pin and the 4+ pin of the integrated chip U2 and the resistor R28; the 3+ pin of the integrated chip U2 is connected with the resistor R18, and the 4-pin of the integrated chip U2 is connected with the integrated chip U4; the GND pin of the integrated chip U2 is grounded; an OUT4 pin of the integrated chip U2 is connected with the integrated chip U4, and an OUT3 pin of the integrated chip U2 is connected with a resistor R14; the resistor R14 is connected with a triode Q1, a capacitor C2, a resistor R4 and an MOS tube M2 which are connected in parallel are connected between the triode Q1 and a power supply port, and a resistor R6 and a rectifier diode D4 which are connected in parallel are connected between the resistor R4 and the MOS tube M2; a capacitor C5, a rectifier diode D5 and a rectifier diode D6 which are connected in parallel are connected between the power supply port and the ground, and a resistor R16 is connected with the capacitor C5, the rectifier diode D5 and the rectifier diode D6 which are connected in parallel.
In the secondary battery protection circuit, a resistor R21 and a capacitor C6 which are connected in series are connected between an ICEXT pin of the integrated chip U3 and a 5V power supply, and an IREXT pin of the integrated chip U3 is connected between the resistor R21 and the capacitor C6; a resistor R22 and a capacitor C7 which are connected in series are connected between an ICEXT pin of the integrated chip U4 and a 5V power supply, and an IREXT pin of the integrated chip U4 is connected between the resistor R22 and the capacitor C7.
Has the advantages that:
the invention separates the charging and discharging paths, and carries out independent design and safety protection respectively, thereby ensuring that the charging and discharging paths meet the requirement of intrinsic safety and enhancing the safety and reliability of the whole circuit. When the battery leaves the power supply body, the circuit can be quickly and actively cut off, and the intrinsic safety terminal is prevented from discharging in the moving process of the battery. The circuit is simple to realize, high in reliability and wide in application range, and can meet the intrinsic safety requirements of the electronic equipment battery in an explosive environment.
Drawings
In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings needed in the embodiments will be briefly described below, and it is obvious that the drawings in the following description are only some embodiments of the present invention, and it is obvious for those skilled in the art to obtain other drawings without creative efforts.
Fig. 1 is a circuit diagram of an intrinsically safe explosion-proof circuit of a lithium battery case according to an embodiment of the invention;
fig. 2 is a circuit diagram of a primary battery protection circuit according to an embodiment of the present invention;
FIG. 3 is a circuit diagram of a battery power down circuit according to an embodiment of the present invention;
FIG. 4 is a circuit diagram of an isolation circuit according to an embodiment of the present invention;
fig. 5 is a circuit diagram of a secondary battery protection circuit according to an embodiment of the present invention.
Detailed Description
The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the drawings in the embodiments of the present invention, and it is obvious that the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. All other embodiments that can be derived by one of ordinary skill in the art from the embodiments given herein are intended to be within the scope of the present invention.
According to the embodiment of the invention, the intrinsic safety explosion-proof circuit of the lithium battery box is provided.
According to the embodiment of the invention, the intrinsic safety explosion-proof circuit of the lithium battery box comprises: the primary battery protection circuit is connected with the battery pack and is used for performing overcurrent protection, voltage overvoltage and undervoltage protection and temperature protection on the charging and discharging of the battery in the battery pack; the battery power-off circuit is connected with the primary battery protection circuit and used for realizing the power-off of a battery switch; the isolation circuit is connected with the battery power-off circuit and is used for isolating the battery into a power supply with a preset voltage; and the secondary battery protection circuit is connected with the isolation circuit and used for protecting the voltage output by the isolation circuit and realizing the safe output of the voltage.
In practical application, as shown in fig. 1, the battery pack is first connected to a primary battery protection circuit to perform overcurrent protection on battery charging and discharging, the single battery is subjected to overvoltage and undervoltage protection, temperature protection and battery damage prevention, the primary battery protection circuit is connected to a battery power-off circuit to realize a battery switch power-off function, the battery power-off circuit is connected to a 4-circuit isolation circuit to realize that the battery is divided into 4 isolated 12V power supplies, and the 4 isolated 12V power supplies form 4 isolated intrinsically safe output circuits through a secondary protection circuit respectively, so that the battery box realizes the 4 intrinsically safe output circuits.
Fig. 2 is a circuit diagram of a primary battery protection circuit, as can be seen from fig. 2, three single batteries of a battery pack are connected with VC3, VC2, and VC1 of an integrated chip U1 through a resistor R2, a resistor R3, and a resistor R5, to detect the voltages of the single batteries, the pins can detect the overvoltage and undervoltage states of the single batteries, the pin VC3 can detect the total voltage of the battery pack at the same time, the resistor R7, the resistor R8, the resistor R13, and the pins 9, 10, and 11 of the integrated chip U1 form a temperature acquisition circuit, the pin 6 of the integrated chip U1 and a capacitor C6 delay battery undervoltage protection, and the pin 7 of the integrated chip U1 and the capacitor C7 delay battery overvoltage protection.
When the voltage of the single battery is over-voltage and under-voltage, the charging and discharging current of the battery exceeds 10A and the temperature of the battery exceeds the limit, the pins 4 and 1 of the integrated chip U1 are turned off to form MOS transistors Q1 and Q2 in a back-to-back state, the single battery is prevented from being over-charged or over-discharged to cause damage to a battery pack, the pin 6 of the integrated chip U1 and a capacitor C6 delay the under-voltage protection of the battery, the pin 7 of the integrated chip U1 and a capacitor C7 delay the over-voltage protection of the battery, the current sampling resistor R14 collects the charging and discharging current, and the pin 5 and the pin 8 of the integrated chip U1 and the resistor R9 form a current collecting circuit.
Fig. 3 is a circuit diagram of a battery power-off circuit, and it can be known from fig. 3 that the positive electrode of the battery is connected to CELL1+ of the battery power-off protection board, the MOS transistor Q1 is connected in parallel with the MOS transistor Q2 to reduce the heat generation of the MOS transistor, and the rectifier diode D1 and the rectifier diode D2 prevent the charge from flowing backwards to the MOS transistors Q1 and Q2; MOS tube Q3, Q4 control MOS tube Q1, Q2 to switch on, when switch K1, K2 short circuit, and CELL1+ is connected with CELL-after with the battery, MOS tube Q1 and MOS tube Q2 switch on, when switch K1, K2 disconnect, MOS tube Q1 and MOS tube Q2 cut off. The traditional power-off protection is to realize circuit disconnection through a relay and a hard switch, and when the switch in the mining equipment is electrified, sparks are easily generated, so that the intrinsic safety design requirement is not easily exceeded.
FIG. 4 is a DC-to-DC isolating circuit, which includes a trimming filter circuit formed by D and EC, a power chip start-up power supply circuit formed by diodes D, R, C, an input under-voltage protection circuit formed by R, U, R, EC, and a transformer feedback coil, a primary clamping circuit formed by R, C, D, a secondary clamping circuit formed by R, C, a secondary rectification filter circuit formed by D, EC, a voltage comparison circuit formed by R, C, D, ZD, and U, an output control circuit formed by R, C, Q, and C, a current limiting circuit formed by R, C, and a voltage feedback circuit formed by U and C.
The working principle of the isolation circuit is as follows: the input voltage enters a VIN end and passes through an F1 protection tube, an electric power chip U1 is activated through a power supply circuit to start, the power chip starts to monitor whether an undervoltage protection circuit reaches a set starting voltage or not, the chip starts to work, an output control circuit is pushed to control a transformer to start to work, the output end of the transformer adjusts the value of the output voltage through a filter circuit, a clamping circuit and a voltage comparison circuit, the output control circuit is turned off by a voltage feedback circuit through a sensor U1 and a sensor U1 when the voltage exceeds the output voltage, R16 is a current-limiting resistor, and when the current flowing through the circuit is larger than the set value, the output control circuit is turned off by U1.
Fig. 5 is a circuit diagram of a secondary battery protection circuit; it can be known from fig. 5 that R19 and U5 form a primary protection circuit reference voltage, R20 and U6 form a secondary protection circuit reference voltage, R1, R7, R8, C3 form a primary protection circuit input voltage acquisition circuit, R3, R9, R10, C4 form a secondary protection circuit input voltage acquisition circuit, C1, R2, R5, D3, M3, Q3, R3 form a primary protection circuit turn-off circuit, C3, R3, D3, M3, Q3, R3 form a secondary protection circuit turn-off circuit, R3, C3, U3 form a primary protection circuit delay circuit, R3, C3, U3 form a secondary protection circuit delay circuit, R3 form a primary protection circuit, R3 form a primary protection circuit comparison circuit, R3 form a primary protection circuit current comparison circuit, R3 form a primary protection circuit comparison circuit R3, R3 form a primary protection circuit sampling circuit, R3 is a primary protection circuit sampling circuit, R3, R sampling circuit comparison circuit is a primary protection circuit sampling circuit, R3 is a primary protection circuit, R3 is a primary protection circuit sampling circuit is a secondary protection circuit, R sampling circuit, R3 is a secondary protection circuit sampling circuit is used for comparing circuit, R3, R sampling circuit, R3 is used for comparing circuit, R sampling circuit for comparing circuit, R3 is used for comparing circuit, R3 is used for comparing circuit, R3 is used for comparing R sampling circuit, R3 is used for comparing resistance for comparing R sampling circuit, R3 is used for comparing R3, R3 is used for comparing R sampling circuit, R3 is used for comparing R sampling circuit, R sampling circuit for comparing R3 is used for comparing R sampling circuit, R sampling circuit for comparing R3 is used for comparing R sampling circuit, R sampling circuit comparison circuit, R sampling circuit for comparing R3 is used for comparing R sampling circuit, R sampling circuit for comparing R sampling circuit, R3 is used for comparing R sampling circuit, R sampling circuit for comparing R3 is used, when the voltage of the sampling circuit is higher than the reference voltage, the turn-off circuit is turned off, and simultaneously the delay circuit is triggered to perform delay turn-off (when the voltage of the sampling circuit is lower than the reference voltage during turn-off, delay turn-off is still performed). C0, D1 and D2 form a filter circuit and a free-wheeling circuit of the primary protection circuit, and C5, D5 and D6 form a filter circuit and a free-wheeling circuit of the secondary protection circuit. Firstly, the battery pack is protected to normally work through the primary battery protection circuit shown in fig. 1, the battery pack can be ensured to be charged and discharged under normal parameters, the battery power-off protection circuit is that when a battery is taken out of a power supply body, an output interface is immediately turned off, 4 paths of output intrinsic safety are isolated through a transformer by the 4 paths of isolation circuits, the 4 paths of output circuits are separated through the transformer, and the current and the voltage of the 4 paths of output circuits are limited by the 2-stage protection circuit.
In summary, according to the above technical solution of the present invention, the charging and discharging paths are separated, and independent design and safety protection are performed respectively, so as to ensure that the charging and discharging paths meet the requirement of intrinsic safety, and enhance the safety and reliability of the whole circuit. When the battery leaves the power supply body, the circuit can be quickly and actively cut off, and the intrinsic safety terminal is prevented from discharging in the moving process of the battery. The circuit is simple to realize, high in reliability and wide in application range, and can meet the intrinsic safety requirements of the electronic equipment battery in an explosive environment.
The above description is only for the purpose of illustrating the preferred embodiments of the present invention and is not to be construed as limiting the invention, and any modifications, equivalents, improvements and the like that fall within the spirit and principle of the present invention are intended to be included therein.

Claims (8)

1. The utility model provides a lithium battery box this ampere of explosion-proof circuit, its characterized in that, lithium battery box have a plurality of groups of batteries, and every group battery comprises a plurality of batteries, lithium battery box present case explosion-proof circuit includes:
the primary battery protection circuit is connected with the battery pack and is used for performing overcurrent protection, voltage overvoltage and undervoltage protection and temperature protection on the charging and discharging of the battery in the battery pack;
the battery power-off circuit is connected with the primary battery protection circuit and used for realizing the power-off of a battery switch;
the isolation circuit is connected with the battery power-off circuit and is used for isolating the battery into a power supply with a preset voltage;
and the secondary battery protection circuit is connected with the isolation circuit and used for protecting the voltage output by the isolation circuit and realizing the safe output of the voltage.
2. The intrinsically safe explosion-proof circuit of claim 1, wherein the lithium battery cell has 1 battery pack consisting of 3 batteries, and the battery capacity of the lithium battery cell is less than or equal to 100 Wh.
3. The lithium battery box intrinsic safety explosion-proof circuit of claim 2, wherein the isolation circuit is a 4-way isolation circuit, and the 4-way isolation circuit divides the battery into 4 isolated 12V power supplies.
4. The lithium battery box intrinsic safety explosion-proof circuit of claim 3, wherein the primary battery protection circuit comprises a primary battery protection circuit integrated chip U1, resistors R1-R14, a rectifier diode D1, capacitors C1-C7 and MOS transistors Q1-Q2;
in the primary battery protection circuit, pins VC1-VC3 of an integrated chip U1 are respectively connected with a battery BT1, a battery BT2 and a battery BT3 through a resistor R2, a resistor R3 and a resistor R5, and a resistor R1 and a rectifying diode D1 which are connected in series are connected between a VCC pin of the integrated chip U1 and the anode of the battery pack; a capacitor C1, a capacitor C2, a capacitor C3 and a capacitor C4 are respectively connected between the resistor R1, the resistor R2, the resistor R3 and the resistor R5 and the cathode of the battery pack; the TEST pin of the integrated chip U1 is grounded; a resistor R8 and a resistor R13 which are connected in series are connected between a VTC pin of the integrated chip U1 and the negative electrode of the battery pack; the VTD pin and the TS pin of the integrated chip U1 are both connected with a resistor R13, and a resistor R7 is connected between the VTD pin of the integrated chip U1 and the resistor R13; a resistor R6 and an MOS transistor Q1 which are connected in series are connected between the NCDRV pin of the integrated chip U1 and the cathode of the battery pack, and a resistor R10 is connected between the grid electrode and the source electrode of the MOS transistor Q1; a resistor R11 is connected between the VM pin of the integrated chip U1 and the negative electrode of the battery pack; a resistor R4 and a MOS transistor Q2 which are connected in series are connected between the NDDRV pin of the integrated chip U1 and the negative electrode of the battery pack, and a resistor R12 is connected between the grid electrode and the source electrode of the MOS transistor Q2; a resistor R9, a resistor R14 and a capacitor C5 are connected between a CS pin of the integrated chip U1 and the negative electrode of the battery pack, and the resistor R9 is connected with the capacitor C5 in parallel; a capacitor C6 and a capacitor C7 are connected between the two CUVT pins of the integrated chip U1 and the negative electrode of the battery pack respectively; and the VSS pin of the integrated chip U1 is connected with the negative electrode of the battery pack.
5. The lithium battery box intrinsic safety explosion-proof circuit of claim 3, wherein the battery power-off circuit comprises MOS transistors Q1-Q4, rectifier diodes D1-D4, resistors R1-R7 and switches K1-K2;
in the battery power-off circuit, two groups of MOS (metal oxide semiconductor) tube groups are connected between the anode of the battery pack and the cathode of the battery pack, wherein one group of MOS tube group consists of an MOS tube Q1 and an MOS tube Q3 which are connected in series, and the other group of MOS tube group consists of an MOS tube Q2 and an MOS tube Q4 which are connected in series; a resistor R4 and a resistor R5 are respectively connected between the MOS transistor Q1 and the MOS transistor Q3 and between the MOS transistor Q2 and the MOS transistor Q4; a resistor R2 and a first voltage stabilizing diode which are connected in series are connected between the sources of the MOS transistor Q1 and the MOS transistor Q3; a resistor R3 and a second voltage stabilizing diode which are connected in series are connected between the source electrodes of the MOS transistor Q2 and the MOS transistor Q3; rectifier diodes D1-D4 are connected between the sources of the MOS transistor Q1 and the MOS transistor Q2 and the anode of the battery pack, wherein the rectifier diode D1 is connected with the rectifier diode D2 in parallel, and the rectifier diode D3 is connected with the rectifier diode D4 in parallel; a resistor R7 and a third voltage stabilizing diode are connected between the grid electrodes of the MOS tube Q3 and the MOS tube Q4 and the negative electrode of the battery pack, a switch K1 is connected to the third voltage stabilizing diode, a resistor R1 and a resistor R6 which are connected in series are connected between the positive electrode of the battery pack and the negative electrode of the battery pack, and a switch K2 is connected between the resistor R1 and the resistor R6.
6. The intrinsically safe explosion-proof circuit of claim 3, wherein the isolation circuit is 4 isolation circuits, and each isolation circuit is a flyback switching power supply circuit consisting of a transformer, a power chip and optocoupler feedback.
7. The lithium battery box intrinsic safety explosion-proof circuit of claim 3, wherein the secondary battery protection circuit comprises a secondary battery protection circuit integrated chip U1, an integrated chip U2, an integrated chip U3, an integrated chip U4, a triode Q1-Q2, a MOS transistor M1-M2, a rectifier diode D1-D6, a capacitor C0-C7, a tunnel diode U5-U6 and a resistor R1-R28;
in the secondary battery protection circuit, an OUT1 pin and an OUT2 pin of an integrated chip U1 are both connected with a 5V power supply through a resistor R17; the VCC pin of the integrated chip U1 is connected with a 5V power supply; a 1-pin of the integrated chip U1 is connected with a resistor R15, and a resistor R15 is grounded; a 1+ pin of the integrated chip U1 is connected with a resistor R27, and the resistor R27 is grounded; a resistor R7, a resistor R8 and a capacitor C3 which are connected in parallel are connected between the 2-pin of the integrated chip U1 and the ground; a resistor R1 is connected between the resistor R7, the resistor R8 and the capacitor C3 which are connected in parallel and the power port; the 2+ pin of the integrated chip U1 is connected with a resistor R19 and a tunnel diode U5 which are connected between a 5V power supply and the ground in series; a 3-pin and a 4+ pin of the integrated chip U1 are connected, and a resistor R23 and a resistor R25 which are connected in series are connected between the 3-pin and the 4+ pin of the integrated chip U1 and the resistor R27; the 3+ pin of the integrated chip U1 is connected with the resistor R17, and the 4-pin of the integrated chip U1 is connected with the integrated chip U3; the GND pin of the integrated chip U1 is grounded; an OUT4 pin of the integrated chip U1 is connected with the integrated chip U3, and an OUT3 pin of the integrated chip U1 is connected with a resistor R13; the resistor R13 is connected with a triode Q1, a capacitor C1, a resistor R2 and an MOS tube M1 which are connected in parallel are connected between the triode Q1 and a power supply port, and a resistor R5 and a rectifier diode D3 which are connected in parallel are connected between the resistor R2 and the MOS tube M1; a capacitor C0, a rectifier diode D1 and a rectifier diode D2 which are connected in parallel are connected between the power supply port and the ground, and a resistor R15 is connected with the capacitor C0, the rectifier diode D1 and the rectifier diode D2 which are connected in parallel;
the OUT1 pin and the OUT2 pin of the integrated chip U2 are both connected with a 5V power supply through a resistor R18; the VCC pin of the integrated chip U2 is connected with a 5V power supply; a 1-pin of the integrated chip U1 is connected with a resistor R16, and a resistor R16 is grounded; a 1+ pin of the integrated chip U2 is connected with a resistor R28, and a resistor R28 is grounded; a resistor R9, a resistor R10 and a capacitor C4 which are connected in parallel are connected between the 2-pin of the integrated chip U2 and the ground; a resistor R3 is connected between the resistor R9, the resistor R10, the capacitor C4 and the power port in parallel; the 2+ pin of the integrated chip U2 is connected with a resistor R20 and a tunnel diode U6 which are connected between a 5V power supply and the ground in series; a 3-pin and a 4+ pin of the integrated chip U2 are connected, and a resistor R24 and a resistor R26 which are connected in series are connected between the 3-pin and the 4+ pin of the integrated chip U2 and the resistor R28; the 3+ pin of the integrated chip U2 is connected with the resistor R18, and the 4-pin of the integrated chip U2 is connected with the integrated chip U4; the GND pin of the integrated chip U2 is grounded; an OUT4 pin of the integrated chip U2 is connected with the integrated chip U4, and an OUT3 pin of the integrated chip U2 is connected with a resistor R14; the resistor R14 is connected with a triode Q1, a capacitor C2, a resistor R4 and an MOS tube M2 which are connected in parallel are connected between the triode Q1 and a power supply port, and a resistor R6 and a rectifier diode D4 which are connected in parallel are connected between the resistor R4 and the MOS tube M2; a capacitor C5, a rectifier diode D5 and a rectifier diode D6 which are connected in parallel are connected between the power supply port and the ground, and a resistor R16 is connected with the capacitor C5, the rectifier diode D5 and the rectifier diode D6 which are connected in parallel.
8. The lithium battery box intrinsic safety explosion-proof circuit of claim 7, wherein in the secondary battery protection circuit, a resistor R21 and a capacitor C6 which are connected in series are connected between an ICEXT pin of the integrated chip U3 and a 5V power supply, and an IREXT pin of the integrated chip U3 is connected between the resistor R21 and the capacitor C6; a resistor R22 and a capacitor C7 which are connected in series are connected between an ICEXT pin of the integrated chip U4 and a 5V power supply, and an IREXT pin of the integrated chip U4 is connected between the resistor R22 and the capacitor C7.
CN202211003106.8A 2022-08-22 2022-08-22 Intrinsic safety explosion-proof circuit of lithium battery box Active CN115085344B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202211003106.8A CN115085344B (en) 2022-08-22 2022-08-22 Intrinsic safety explosion-proof circuit of lithium battery box

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202211003106.8A CN115085344B (en) 2022-08-22 2022-08-22 Intrinsic safety explosion-proof circuit of lithium battery box

Publications (2)

Publication Number Publication Date
CN115085344A true CN115085344A (en) 2022-09-20
CN115085344B CN115085344B (en) 2022-11-15

Family

ID=83244435

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202211003106.8A Active CN115085344B (en) 2022-08-22 2022-08-22 Intrinsic safety explosion-proof circuit of lithium battery box

Country Status (1)

Country Link
CN (1) CN115085344B (en)

Citations (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2005167058A (en) * 2003-12-04 2005-06-23 Oval Corp Explosion-proof insulated separation circuit
CN201001032Y (en) * 2006-10-14 2008-01-02 张幼彬 AC voltage-limiting and current-limiting safety explosion-proof DC voltage stabilizing power source device
CN101882893A (en) * 2010-06-24 2010-11-10 王勇 Solar powered anti-rust system with isolation circuit
CN102801310A (en) * 2012-08-22 2012-11-28 中国航天时代电子公司 Direct-current switch power supply circuit
CN203135413U (en) * 2013-01-10 2013-08-14 韩竞科 Lithium battery secondary protection fusing circuit
CN104319826A (en) * 2014-09-28 2015-01-28 株洲南车时代电气股份有限公司 Charger for storage batteries
CN204720969U (en) * 2015-06-30 2015-10-21 成都鼎桥通信技术有限公司 Lithium battery intrinsically safe circuit
CN105375581A (en) * 2015-12-09 2016-03-02 合肥国盛电池科技有限公司 Energy balance based series-wound lithium battery pack protection apparatus
CN107769350A (en) * 2017-12-04 2018-03-06 合肥国盛电池科技有限公司 Isolated compatible type preventing bursting charging motor device
CN108963982A (en) * 2018-07-04 2018-12-07 广州市康超信息科技有限公司 Appliances power source voltage protection circuit
CN209072112U (en) * 2018-11-29 2019-07-05 北斗天地股份有限公司山东分公司 A kind of battery and its protection circuit, intrinsic safety type smart phone
CN111181202A (en) * 2019-07-12 2020-05-19 深圳市海洋王照明工程有限公司 Battery protection circuit of explosion-proof lamp
CN113659821A (en) * 2021-08-05 2021-11-16 贵州航天凯山石油仪器有限公司 Intrinsically safe power switch control circuit used in flammable and explosive environment
CN215835143U (en) * 2021-03-25 2022-02-15 浙江宇垒机电科技有限公司 Fire-proof rolling shutter controller with two 18650 lithium batteries connected in series as standby power supply
CN114448034A (en) * 2022-01-05 2022-05-06 广州明美新能源股份有限公司 Intrinsic safety type explosion-proof battery

Patent Citations (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2005167058A (en) * 2003-12-04 2005-06-23 Oval Corp Explosion-proof insulated separation circuit
CN201001032Y (en) * 2006-10-14 2008-01-02 张幼彬 AC voltage-limiting and current-limiting safety explosion-proof DC voltage stabilizing power source device
CN101882893A (en) * 2010-06-24 2010-11-10 王勇 Solar powered anti-rust system with isolation circuit
CN102801310A (en) * 2012-08-22 2012-11-28 中国航天时代电子公司 Direct-current switch power supply circuit
CN203135413U (en) * 2013-01-10 2013-08-14 韩竞科 Lithium battery secondary protection fusing circuit
CN104319826A (en) * 2014-09-28 2015-01-28 株洲南车时代电气股份有限公司 Charger for storage batteries
CN204720969U (en) * 2015-06-30 2015-10-21 成都鼎桥通信技术有限公司 Lithium battery intrinsically safe circuit
CN105375581A (en) * 2015-12-09 2016-03-02 合肥国盛电池科技有限公司 Energy balance based series-wound lithium battery pack protection apparatus
CN107769350A (en) * 2017-12-04 2018-03-06 合肥国盛电池科技有限公司 Isolated compatible type preventing bursting charging motor device
CN108963982A (en) * 2018-07-04 2018-12-07 广州市康超信息科技有限公司 Appliances power source voltage protection circuit
CN209072112U (en) * 2018-11-29 2019-07-05 北斗天地股份有限公司山东分公司 A kind of battery and its protection circuit, intrinsic safety type smart phone
CN111181202A (en) * 2019-07-12 2020-05-19 深圳市海洋王照明工程有限公司 Battery protection circuit of explosion-proof lamp
CN215835143U (en) * 2021-03-25 2022-02-15 浙江宇垒机电科技有限公司 Fire-proof rolling shutter controller with two 18650 lithium batteries connected in series as standby power supply
CN113659821A (en) * 2021-08-05 2021-11-16 贵州航天凯山石油仪器有限公司 Intrinsically safe power switch control circuit used in flammable and explosive environment
CN114448034A (en) * 2022-01-05 2022-05-06 广州明美新能源股份有限公司 Intrinsic safety type explosion-proof battery

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
张兴: "矿用锂电池电源管理系统设计与安全评价", 《中国优秀硕士学位论文全文数据库(电子期刊)》 *

Also Published As

Publication number Publication date
CN115085344B (en) 2022-11-15

Similar Documents

Publication Publication Date Title
US9643506B2 (en) Portable backup charger
CN111211587A (en) Equalizing circuit, charging device and energy storage device
CN104849536B (en) It is a kind of be applied to can serial lithium battery group protection chip detection circuit
JPH04331425A (en) Overcharge preventing device and overdischarge preventing device
CN102957173A (en) Multi-cell serially-connected lithium battery pack equalization and protection system
CN111934401B (en) Battery protection circuit and lithium battery system
CN212461950U (en) Hand-held electric tool and battery pack and charging seat thereof
CN102570552A (en) Multifunctional control and protection circuit for storage battery power supply
CN101741121B (en) Electronic switch arranged on lithium battery pack protecting board
CN109217410B (en) Single-section series-connection type lithium battery protection circuit
CN219960153U (en) Battery cell protection circuit and battery cell management system
CN209072112U (en) A kind of battery and its protection circuit, intrinsic safety type smart phone
CN210380317U (en) Combined energy storage power station
CN115085344B (en) Intrinsic safety explosion-proof circuit of lithium battery box
CN110034595B (en) Backup power supply management device and vehicle-mounted equipment
CN209169945U (en) A kind of battery and its protection circuit, mine anti-explosion smart phone
CN211046468U (en) Lithium battery short-circuit protection circuit
CN209913490U (en) Battery protection chip and battery system
WO2022161275A1 (en) Battery charging protection circuit and robot
CN114448034A (en) Intrinsic safety type explosion-proof battery
CN206332439U (en) A kind of intrinsically safe battery protection circuit
CN113131076A (en) Battery system capable of being expanded in parallel
CN202353191U (en) Protection device with multiple metal oxide semiconductor (MOS) transistors
CN215009682U (en) Electric tool and lithium battery protection circuit thereof
CN110854953A (en) Battery charging and discharging protection circuit and battery device

Legal Events

Date Code Title Description
PB01 Publication
PB01 Publication
SE01 Entry into force of request for substantive examination
SE01 Entry into force of request for substantive examination
GR01 Patent grant
GR01 Patent grant