Configuration system for electrolyte production
By linking PLC controllers and high-precision metering pumps, efficient mixing and precise configuration in the electrolyte production process are achieved, solving the problems of insufficient mixing uniformity and low configuration accuracy, and improving detection results and automation level.
Patent Information
- Application Number
- CN202520285709.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-21
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2035-02-21
AI Technical Summary
Existing electrolyte production and preparation equipment suffers from problems such as insufficient mixing uniformity, low preparation accuracy, and poor detection results.
The system integrates a temperature control system and online monitoring equipment using a PLC controller, combined with a high-precision metering pump, rotary motor, auxiliary gears, and stirring blocks to achieve multi-group linkage stirring, and performs real-time monitoring and adjustment through monitoring probes and temperature sensors.
It improves the mixing uniformity and preparation accuracy of the electrolyte, enhances the detection effect, and ensures the safety and automation level of the production process.
Smart Images

Figure CN223587023U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of electrolyte production, and specifically relates to a configuration system during electrolyte production. BACKGROUND
[0002] Electrolyte is composed of solvent, electrolyte and additive; the configuration of electrolyte production is the process of mixing raw materials of electrolyte according to proportion; such as the patent with the application number 202221456160.3 discloses a configuration device for electrolyte production, which can realize automatic stirring of the electrolyte configuration process through the stirring mechanism, and has high mixing efficiency.
[0003] The existing configuration device for electrolyte production CN202321132534.0 can realize electrolyte configuration mixing, electrolyte raw material adding and electrolyte collection after configuration simultaneously through the cooperation of adjusting mechanism, configuration cylinder mechanism and stirring mechanism, effectively reduces the time required for electrolyte raw material adding, electrolyte configuration mixing and electrolyte collection after configuration in the traditional configuration process, and greatly improves the electrolyte production efficiency, which is convenient for the promotion and use of products, but has the defects of insufficient mixing uniformity, low configuration precision, poor detection effect and poor effect, so that a configuration system during electrolyte production is needed to solve the above problems. UTILITY MODEL CONTENTS
[0004] The utility model aims at providing a configuration system during electrolyte production to solve the problems of insufficient mixing uniformity, low configuration precision, poor detection effect and poor effect of the configuration device for electrolyte production mentioned in the background technology.
[0005] In order to achieve the above object, the utility model provides the following technical scheme: An electrolyte production configuration system, including the reaction kettle, the reaction kettle upper end cover installs the apron, and the reaction kettle front side center position electric connection has the PLC controller, the reaction kettle outer wall is installed with the storage tank, and the storage tank inner wall inserts and installs the material guide pipe, the material guide pipe middle part is connected with the high accuracy metering pump and is installed, and the material guide pipe one end is linked with the reaction kettle, the storage tank upper end one side is installed with the connecting hinge, and the connecting hinge other side overturn installation has the material supplement apron, the reaction kettle front side lower extreme inserts and communicates and installs the discharge pipe, and the discharge pipe middle part is connected with the auxiliary metering pump and is installed, the apron upper end center position installs the support frame, and the support frame upper end is installed with the rotating electrical machine, the rotating electrical machine output installs the main connecting rod, and the main connecting rod outer wall upper end penetrates and is covered with the drive gear, the drive gear outer wall engages and installs the auxiliary gear, and the auxiliary gear lower extreme is installed with the auxiliary connecting rod, the auxiliary connecting rod and the main connecting rod outer wall lower extreme are installed with the stirring block, and the auxiliary connecting rod and the main connecting rod with the reaction kettle inner wall inserts and install, the reaction kettle inner wall inlay installs the heating mechanism, the PLC controller rear side electric connection has the monitoring probe, temperature sensor, and the monitoring probe, temperature sensor with the reaction kettle penetrates and inserts and install, the high accuracy metering pump, rotating electrical machine, auxiliary metering pump and heating mechanism with PLC controller electric connection.
[0006] Preferably, the PLC controller is integrated with a temperature control system and an online monitoring device, and the PLC controller is electrically connected with the reaction kettle through the monitoring probe and the temperature sensor.
[0007] Preferably, the storage tanks are distributed in annular positions on the outer wall of the reaction kettle, and the storage tanks are connected in suction communication with the reaction kettle through the high-precision metering pump and the material guide pipe.
[0008] Preferably, the auxiliary connecting rod, the main connecting rod, and the stirring block are connected in linkage rotation with the reaction kettle through the auxiliary gear and the drive gear, and the auxiliary connecting rod, the main connecting rod, and the stirring block are distributed in five groups in parallel on the inner wall of the reaction kettle.
[0009] Preferably, the auxiliary connecting rod, the main connecting rod, the stirring block, and the apron are inserted and spliced with the reaction kettle.
[0010] Preferably, the discharge pipe is distributed in penetration on the inner wall of the lower end, and the discharge pipe is connected in suction communication with the reaction kettle through the auxiliary metering pump.
[0011] Compared with the prior art, the electrolyte production configuration system has the beneficial effects that: the electrolyte production configuration system can drive the auxiliary connecting rod, the main connecting rod and the stirring block to carry out multi-group linkage stirring through the auxiliary gear and the driving gear, the stirring block has a paddle structure, the stirring effect is better, the high-precision metering pump can be controlled by the PLC controller to carry out accurate batching, the feeding can be facilitated through the feeding cover plate, and efficient monitoring can be carried out through the monitoring probe and the temperature sensor, and the use is safer. BRIEF DESCRIPTION OF DRAWINGS
[0012] Figure 1 It is a front view of the electrolyte production configuration system of the utility model;
[0013] Figure 2 It is an internal structure schematic view of the electrolyte production configuration system of the utility model;
[0014] Figure 3 It is a top view internal structure schematic view of the electrolyte production configuration system of the utility model;
[0015] Figure 4 It is the electrolyte production configuration system of the utility model Figure 2 The enlarged view of A;
[0016] Figure 5 It is the electrolyte production configuration system of the utility model Figure 2 The enlarged view of B;
[0017] Figure 6 It is the electrolyte production configuration system of the utility model Figure 3 The enlarged view of C.
[0018] In the drawing: 1, reaction kettle, 2, PLC controller, 3, cover plate, 4, storage tank, 5, high-precision metering pump, 6, auxiliary connecting rod, 7, auxiliary gear, 8, rotary motor, 9, support frame, 10, main connecting rod, 11, stirring block, 12, auxiliary metering pump, 13, discharge conduit, 14, material guide pipe, 15, heating mechanism, 16, connecting hinge, 17, feeding cover plate, 18, driving gear, 19, monitoring probe, 20, temperature sensor. DETAILED DESCRIPTION
[0019] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.
[0020] Please refer toFigures 1-6 The utility model provides a technical scheme: a kind of electrolyte production configuration system, including reaction kettle 1, PLC controller 2, cover plate 3, storage tank 4, high-precision metering pump 5, auxiliary connecting rod 6, auxiliary gear 7, rotary motor 8, support frame 9, main connecting rod 10, stirring block 11, auxiliary metering pump 12, discharge conduit 13, material guide pipe 14, heating mechanism 15, connecting hinge 16, replenishment cover plate 17, driving gear 18, monitoring probe 19 and temperature sensor 20, cover plate 3 is installed on the upper end cover of reaction kettle 1, and the front side center position of reaction kettle 1 is electrically connected with PLC controller 2, PLC controller 2 is integrated with temperature control system and online monitoring equipment, and PLC controller 2 is electrically detected by monitoring probe 19, temperature sensor 20 and reaction kettle 1, so that PLC controller 2 can be monitored and controlled, safer to use, more automated.
[0021] Reaction kettle 1 outer wall is installed with storage tank 4, and the inner wall of storage tank 4 is inserted and installed with material guide pipe 14, and storage tank 4 is distributed in annular position on the outer wall of reaction kettle 1, and storage tank 4 is connected with reaction kettle 1 by high-precision metering pump 5 and material guide pipe 14 in suction communication, and replenishment cover plate 17 is connected with storage tank 4 by connecting hinge 16, so that storage tank 4 is conveniently and accurately fed in multiple groups, and the configuration effect is better.
[0022] High-precision metering pump 5 is installed in the middle of material guide pipe 14, and one end of material guide pipe 14 is communicated with reaction kettle 1, connecting hinge 16 is installed on the upper end of storage tank 4, and replenishment cover plate 17 is reversely installed on the other side of connecting hinge 16, discharge conduit 13 is inserted and communicated and installed on the lower end of the front side of reaction kettle 1, auxiliary metering pump 12 is installed in the middle of discharge conduit 13, discharge conduit 13 is distributed through the inner wall lower end, discharge conduit 13 is connected with reaction kettle 1 in suction communication by auxiliary metering pump 12, and the lower end of the inner wall of discharge conduit 13 is inclined, so that discharge conduit 13 is conveniently and efficiently and accurately discharged, and is convenient to use.
[0023] Support frame 9 is installed on the upper end of cover plate 3, rotary motor 8 is installed on the upper end of support frame 9, main connecting rod 10 is installed on the output end of rotary motor 8, driving gear 18 is throughly sleeved on the outer wall upper end of main connecting rod 10, auxiliary gear 7 is installed on the outer wall of driving gear 18, auxiliary connecting rod 6 is installed on the lower end of auxiliary gear 7, auxiliary connecting rod 6, main connecting rod 10 and stirring block 11 are connected with reaction kettle 1 in linkage rotation through auxiliary gear 7 and driving gear 18, and auxiliary connecting rod 6, main connecting rod 10 and stirring block 11 are distributed in five groups in parallel on the inner wall of reaction kettle 1, and stirring block 11 is paddle structure, so that auxiliary connecting rod 6, main connecting rod 10 and stirring block 11 are conveniently and evenly stirred in five groups linkage.
[0024] The auxiliary connecting rod 6, the main connecting rod 10, the stirring block 11 and the cover plate 3 are inserted and spliced with the reaction kettle 1, so that the auxiliary connecting rod 6, the main connecting rod 10, the stirring block 11 and the cover plate 3 are convenient to insert and disassemble, and convenient to clean and use, the stirring block 11 is installed at the lower end of the outer wall of the auxiliary connecting rod 6 and the main connecting rod 10, and the auxiliary connecting rod 6 and the main connecting rod 10 are inserted and installed with the inner wall of the reaction kettle 1, the heating mechanism 15 is inlaid and installed on the inner wall of the reaction kettle 1, the monitoring probe 19 and the temperature sensor 20 are electrically connected to the rear side of the PLC controller 2, and the monitoring probe 19 and the temperature sensor 20 are inserted and installed through the reaction kettle 1, the high-precision metering pump 5, the rotating motor 8, the auxiliary metering pump 12 and the heating mechanism 15 are electrically connected with the PLC controller 2, and the online monitoring equipment is of TWD-EL-ONLINE type.
[0025] Working principle: when the electrolyte production configuration system is used, first, the device is connected to the power supply, then different raw materials are injected into the storage tank 4, then the high-precision metering pump 5 is controlled by the PLC controller 2, so as to accurately feed through the material guide pipe 14, then the driving gear 18 and the main connecting rod 10 are driven by the rotating motor 8 to rotate, and the auxiliary connecting rod 6 is driven by the auxiliary gear 7 to rotate, five groups of stirring are carried out by the stirring block 11, when stirring, the temperature can be detected by the temperature sensor 20, and the temperature can be stably adjusted by the temperature control system, and the online monitoring equipment can be used for real-time monitoring, when the stirring is completed, the auxiliary metering pump 12 and the discharge pipe 13 can be used for metering and discharging, and when the internal cleaning is carried out, the cover plate 3, the auxiliary connecting rod 6, the main connecting rod 10 and the stirring block 11 can be opened for internal cleaning, which is the use process of the electrolyte production configuration system.
[0026] Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement to part of the technical features, and any modification, equivalent replacement, improvement, etc. within the spirit and principle of the utility model should be included in the protection scope of the utility model.
Claims
1. An electrolyte production preparation system, comprising a reaction vessel (1), wherein a cover plate (3) is installed on the upper end of the reaction vessel (1), and a PLC controller (2) is electrically connected to the center position of the front side of the reaction vessel (1), characterized in that: The outer wall of the reactor (1) is fitted with a storage tank (4), and the inner wall of the storage tank (4) is fitted with a guide pipe (14). A high-precision metering pump (5) is connected in the middle of the guide pipe (14), and one end of the guide pipe (14) is connected to the reactor (1). A connecting hinge (16) is installed on one side of the upper end of the storage tank (4), and a feeding cover plate (17) is installed on the other side of the connecting hinge (16). A discharge pipe (13) is connected in the lower front end of the reactor (1), and an auxiliary metering pump (12) is connected in the middle of the discharge pipe (13). A support frame (9) is installed at the center of the upper end of the cover plate (3), and a rotary motor (8) is installed on the upper end of the support frame (9). A main connecting rod (10) is installed at the output end of the rotary motor (8), and the upper end of the outer wall of the main connecting rod (10) is connected to the main connecting rod (10). A drive gear (18) is fitted through the reactor. An auxiliary gear (7) is meshed on the outer wall of the drive gear (18). An auxiliary connecting rod (6) is installed at the lower end of the auxiliary gear (7). A stirring block (11) is installed at the lower end of the outer wall of the auxiliary connecting rod (6) and the main connecting rod (10). The auxiliary connecting rod (6) and the main connecting rod (10) are inserted into the inner wall of the reactor (1). A heating mechanism (15) is embedded in the inner wall of the reactor (1). A monitoring probe (19) and a temperature sensor (20) are electrically connected to the rear side of the PLC controller (2). The monitoring probe (19) and the temperature sensor (20) are inserted into the reactor (1). The high-precision metering pump (5), the rotary motor (8), the auxiliary metering pump (12), and the heating mechanism (15) are electrically connected to the PLC controller (2).
2. The electrolyte production preparation system according to claim 1, characterized in that: The PLC controller (2) integrates a temperature control system and an online monitoring device, and the PLC controller (2) is electrically connected to the reactor (1) through a monitoring probe (19) and a temperature sensor (20).
3. The electrolyte production preparation system according to claim 2, characterized in that: The storage tank (4) is arranged in a ring on the outer wall of the reactor (1), and the storage tank (4) is connected to the reactor (1) by a high-precision metering pump (5) and a feed pipe (14) in a suction connection. The feed cover plate (17) is connected to the storage tank (4) by a connecting hinge (16) in a flip-over connection.
4. The electrolyte production preparation system according to claim 3, characterized in that: The auxiliary connecting rod (6), the main connecting rod (10), and the stirring block (11) are connected to the reactor (1) in a linkage rotational manner through the auxiliary gear (7) and the drive gear (18). The auxiliary connecting rod (6), the main connecting rod (10), and the stirring block (11) are arranged in five parallel groups on the inner wall of the reactor (1). The stirring block (11) is a paddle structure.
5. The electrolyte preparation system according to claim 4, characterized in that: The auxiliary connecting rod (6), the main connecting rod (10), the stirring block (11) and the cover plate (3) are installed in a plug-in splicing manner with the reactor (1).
6. The electrolyte production preparation system according to claim 5, characterized in that: The discharge conduit (13) is attached to and runs through the lower end of the inner wall, and the discharge conduit (13) is connected to the reactor (1) by a suction connection through an auxiliary metering pump (12). The lower end of the inner wall of the discharge conduit (13) is inclined.
Citation Information
Patent Citations
Configuration device for electrolyte production
CN217746669U
Configuration device for electrolyte production
CN220003666U