A dissolving and stirring apparatus for zinc ricinoleate
Patent Information
- Application Number
- CN202522177381.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-15
- Publication Date
- 2026-09-11
- Estimated Expiration
- 2035-10-15
AI Technical Summary
(1)为了防止搅拌叶片碰撞罐体内壁,搅拌叶片外侧和罐体内壁间隔一定距离,这样,使用完毕后粘附在罐体内壁的残余物无法得到及时处理、排出到罐体外,时间较长后,会造成罐体内容积变小,影响工作效率,且厚度过大时还存在碰撞搅拌叶片、导致搅拌叶片损坏的几率
[0013]与现有技术相对本实用新型有益效果是:本新型工作时,在加热机构、循环泵、超声波发生器、超声波换能器、搅拌叶片机构、电机减速机构等作用下,能在加热、振动状态下对原料进行搅拌溶解,提高了原料溶解及混匀的效果;在生产完毕后,工作人员通过简单的操作电源开关,能使得多套搅拌叶片机构的橡胶刮片外侧接触罐体的内侧,后续搅拌叶片机构转动后,就能有效对罐体内壁进行清理、将粘附在固体内壁的原料刮下,减少了由于残留原料粘附在罐体内,对搅拌溶解带来的不利影响。综上,本新型具有好的应用前景。
Smart Images

Figure CN224736077U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of stirring device technology, and in particular to a stirring device for dissolving zinc ricinoleate. Background Technology
[0002] Zinc ricinoleate is an organic compound formed by the combination of ricinoleic acid and zinc ions, with the chemical formula C. 36 H 66 O6Zn has good solubility and thermal stability, and is widely used in personal care, industrial deodorization and lubricant fields. Specifically, its main functions are as follows: (1) Skin care: As a skin barrier repair component, it has antibacterial, anti-inflammatory and antioxidant effects, which can reduce bacterial infection, promote wound healing and moisturize. (2) Industrial deodorization: It neutralizes acidic substances (such as short-chain fatty acids) in sweat through chemical reaction, inhibits the odor produced by bacterial metabolism, and is often used in deodorants and textile treatment agents. (3) Lubrication and stabilization: In the fields of machining and plastic processing, it can reduce friction as a lubricant and extend the shelf life of products as an antioxidant. The main purpose of stirring during the production of zinc ricinoleate is to promote the uniformity of the raw material dissolution reaction and improve product quality. The specific reasons are as follows: (1) Promote the dissolution reaction. When ricinoleic acid reacts with zinc salt, stirring can increase the contact area, accelerate the chemical reaction rate, and ensure that the raw materials are fully dissolved and mixed and undergo effective neutralization reaction. (2) Uniform concentration control: stirring helps to disperse the heat of the system, reduce side reactions caused by excessively high or low local temperatures, and maintain the uniformity of solvent concentration to ensure that the reaction proceeds according to the expected path.
[0003] Currently, the stirring and dissolving device used in the production of zinc ricinoleate generally consists of a motor, a tank, and stirring blades. In operation, ricinoleic acid and zinc salt are added to the tank in proportion, and then the stirring blades are rotated by the motor to achieve the purpose of stirring the raw materials in the tank. Although the existing stirring and dissolving device meets the production needs to a certain extent, it still has the following technical problems due to structural limitations. (1) In order to prevent the stirring blades from colliding with the inner wall of the tank, the outer side of the stirring blades and the inner wall of the tank are separated by a certain distance. In this way, the residues adhering to the inner wall of the tank after use cannot be processed and discharged to the outside of the tank in time. After a long time, the internal volume of the tank will become smaller, affecting the working efficiency. Moreover, if the thickness is too large, there is also a chance of colliding with the stirring blades and causing damage to the stirring blades. (2) The tank can only stir the raw materials in the normal temperature mode. When the outside temperature is too low, the mixing speed of the raw materials is relatively slow and the mixing efficiency per unit time is relatively low. In summary, it is very necessary to provide a stirring device that can effectively clean the raw materials adhering to the inner wall of the tank and improve the mixing speed and efficiency of the raw materials. Utility Model Content
[0004] In order to overcome the shortcomings of existing stirring and dissolving devices for zinc ricinoleate production, which are limited by their structure and have the drawbacks described in the background art, this utility model provides a stirring and dissolving device for zinc ricinoleate that can stir and dissolve raw materials under heating and vibration under the joint action of related mechanisms, thereby improving the dissolution and mixing effect of raw materials. It can also clean the inner wall of the tank after the work is completed, reducing the adverse effects of residual raw materials adhering to the tank and causing stirring and dissolution.
[0005] The technical solution adopted by this utility model to solve its technical problem is: A dissolving and stirring device for zinc ricinoleate includes a tank, a heating mechanism, a circulating pump, a solenoid valve, an ultrasonic generator, ultrasonic transducers, a power plug, a power socket, a base plate, a bearing seat, a motor reduction mechanism, a stirring shaft, a stirring blade mechanism, and a feed hopper. A bottom shell is fixedly installed on the lower outer end of the tank. Multiple ultrasonic transducers are fixedly installed on the lower end of the tank. Multiple support legs are fixedly installed on the lower end of the bottom shell, and each support leg is fixedly installed on one end of the base plate. The side wall of the tank has a circulation chamber. Connecting pipes are fixedly installed at the lower and upper ends of the tank. Multiple solenoid valves are present. One end of the first solenoid valve is fixedly installed to the lower side of the connecting pipe at the lower end of the tank. The other end of the first solenoid valve is fixedly connected to the inlet pipe of the finished product tank via a pipeline. One end of the second and third solenoid valves are fixedly connected to the upper parts of the first and second connecting pipes on the tank, respectively. The other end of the second solenoid valve is fixedly connected to the outlet pipe of the castor oil acid tank, and the other end of the third solenoid valve is fixedly connected to the lower outlet pipe of the feed hopper. The two circulation chambers... Connecting pipes A are installed on the upper side and the lower side of the other side, respectively. The outer ends of the three connecting pipes A are fixedly connected to one end of the fourth, fifth, and sixth solenoid valves, respectively. The other end of the fourth solenoid valve is fixedly connected to a tap water pipe, and the other end of the fifth solenoid valve is fixedly connected to the inlet of the circulating pump. The outlet of the circulating pump is fixedly connected to the inlet pipe of the heating mechanism, and the outlet pipe of the heating mechanism is fixedly connected to the other end of the sixth solenoid valve. The circulating pump is fixedly installed on the other end of the base plate. The stirring shaft has a hollow structure and two sets of bearing seats. The first set... The bearing housing is fixedly installed on the upper part of the tank body, and the second bearing housing is fixedly installed on the lower part of the tank body. The lower and upper ends of the stirring shaft are respectively fixedly installed in the inner rings of the bearings in the two bearing housings. The lower end of the housing of the motor reduction mechanism is fixedly installed on the upper part of the tank body. The rotating shaft of the motor reduction mechanism and the top end of the stirring shaft are fixedly installed together. There are multiple sets of stirring blade mechanisms, and the multiple sets of stirring blade mechanisms are respectively fixedly installed on the outside of the stirring shaft. There is an opening on one side of the top end of the stirring shaft, and the power socket is fixedly installed in the opening. The ultrasonic generator is installed in the component box.
[0006] Furthermore, sealing rings are fixedly installed in the upper and lower parts of the inner ring of the first and second bearing housings, respectively.
[0007] Furthermore, water is added to the circulation chamber, and a pressure relief valve is fixedly installed on the upper side of one side of the circulation chamber.
[0008] Furthermore, the solenoid valve is a normally closed valve core solenoid valve.
[0009] Furthermore, the heating mechanism includes a housing and an electric heating tube. An outlet pipe and an inlet pipe are fixedly installed at the middle of the upper end and the lower end of the housing, respectively. Isolation plates are sealed on both sides of the interior of the housing. The cavity between the isolation plates and the housing serves as a mounting shell. The two electric heating tubes are fixedly installed in the two mounting shells, respectively.
[0010] Furthermore, there are multiple sets of stirring blade mechanisms. Each set of stirring blade mechanisms includes a fixed tube, an electric push rod, and stirring blades. The cylinder of the electric push rod is fixedly installed inside the fixed tube. The inner side of the stirring blade is fixedly installed outside the piston column of the electric push rod. A scraper is fixedly installed at the outer end of the stirring blade. The fixed tubes of the multiple sets of stirring blade mechanisms are arranged in a ring and fixedly installed at intervals between the upper and lower parts at the outer end of the stirring shaft.
[0011] Furthermore, in the multiple sets of stirring blade mechanisms, between the stirring blades of two adjacent sets of stirring blade mechanisms, the lower side height of the upper set of stirring blades is lower than the upper side height of the lower set of stirring blades.
[0012] Furthermore, there is an inspection and maintenance port at the front of the tank, and an observation plate is fixedly installed on the front side of the inspection and maintenance port.
[0013] Compared with existing technologies, the advantages of this utility model are as follows: During operation, the heating mechanism, circulating pump, ultrasonic generator, ultrasonic transducer, stirring blade mechanism, and motor reduction mechanism enable the raw materials to be stirred and dissolved under heating and vibration, improving the dissolution and mixing effects. After production, operators can easily operate the power switch to bring the outer sides of the rubber scrapers of multiple stirring blade mechanisms into contact with the inner side of the tank. Subsequent rotation of the stirring blade mechanism effectively cleans the inner wall of the tank, scraping off any raw materials adhering to the solid inner wall, reducing the adverse effects of residual raw materials adhering to the tank on stirring and dissolution. In summary, this utility model has good application prospects. Attached Figure Description
[0014] The present invention will be further described below with reference to the accompanying drawings.
[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0016] Figure 2 This is a partial structural schematic diagram of the present invention.
[0017] Figure 3 This is the circuit diagram of this utility model. Detailed Implementation
[0018] Figure 1 , 2As shown in Figure 3, a dissolving and stirring device for zinc ricinoleate includes a tank 1, a power module E1, a heating mechanism, a circulating pump M, a solenoid valve, an ultrasonic generator E2, ultrasonic transducers BN, a power plug C, a power socket T, a base plate 2, a bearing seat, a motor reduction mechanism M1, a stirring shaft 3, a stirring blade mechanism 4, and a feeding hopper 5. A bottom shell 101 is fixedly installed on the lower outer end of the tank. There are 16 ultrasonic transducers BN, which are fixedly installed at equal intervals on the lower outer end of the tank 1. The bottom shell 101 and the lower end of the ultrasonic transducers BN are spaced apart. Three support legs 102 are fixedly installed in a ring at the lower end of the bottom shell 101. Installed on the middle and right end of the base plate 2; the side wall of the tank body 1 is a hollow structure serving as a circulation chamber 103. Connecting pipes 104 communicating with the tank body are fixedly installed on the lower middle, upper left and right sides of the tank body 1, respectively. There are six solenoid valves. One end of the first solenoid valve DC1 is fixedly installed together with the lower side of the connecting pipe 104 at the lower end of the tank body 1. The other end of the first solenoid valve DC1 is fixedly connected to the inlet pipe of the finished product tank (not shown in the figure) via a pipeline. One end of the second solenoid valve DC2 and one end of the third solenoid valve DC3 are fixedly connected to the upper part of the first connecting pipe 104 and the upper part of the second connecting pipe 104 on the tank body 1, respectively. The other end of the second solenoid valve DC2 is connected to the castor oil acid tank (if the height is higher than the tank body height). (Not shown in the figure) The lower outlet pipe is fixedly connected, and the other end of the third solenoid valve DC3 is fixedly connected to the lower outlet pipe of the feed hopper 5; A connecting pipe 104 communicating with the inside of the circulation chamber is installed on the upper left and lower right sides of the circulation chamber 103, respectively. The outer ends of the three connecting pipes 104 are fixedly connected to one end of the fourth solenoid valve DC4, the fifth solenoid valve DC5, and the sixth solenoid valve DC6, respectively. The other end of the fourth solenoid valve DC4 is fixedly connected to the tap water pipe (not shown in the figure) via a pipe. The other end of the fifth solenoid valve DC5 is fixedly connected to the inlet end of the circulation pump M via a pipe. The outlet end of the circulation pump M is fixedly connected to the inlet pipe 61 of the heating mechanism via a pipe. The outlet pipe 62 of the heating mechanism is fixedly connected to the other end of the sixth solenoid valve DC6 via a pipe. The circulating pump M is fixedly installed on the other end of the base plate. The stirring shaft 3 is a hollow structure with closed upper and lower ends. There are two sets of bearing seats. There is a mounting hole in the upper middle part of the tank body 1. The first set of bearing seats 71 is fixedly installed on the upper end of the mounting hole, and the second set of bearing seats 72 is fixedly installed in the lower middle part of the tank body 1. The lower and upper ends of the stirring shaft 3 are respectively fixedly installed in the inner rings of the bearings of the two bearing seats 71 and 72. Three support rods 9 are fixedly installed on the lower end of the housing of the motor reduction mechanism M. The lower ends of the three support rods 9 are fixedly installed in the upper middle part of the tank body 1. The lower part of the rotating shaft of the motor reduction mechanism M and the top end of the stirring shaft 3 are fixedly installed together. There are 14 sets of stirring blade mechanisms 4. The 14 sets of stirring blade mechanisms are respectively fixedly installed on the outside of the stirring shaft located on the tank body 1.The stirring shaft 3 has an opening on its top right side. The power socket T is sealed and fixedly installed inside the opening on the outer rear side, with its socket located on the right outer side. There are seven power switches. The power module E1, power switches, and ultrasonic generator E2 are installed on the circuit board inside the component box 8. The component box 8 is fixedly installed on the upper part of one of the support legs of the tank. The operating handles of the seven power switches are located outside the opening at the front end of the component box.
[0019] Figure 1 , 2As shown in Figure 3, a sealing ring (for sealing liquid) is fixedly installed in the upper and lower parts of the inner ring of the first bearing housing 71 and the second bearing housing 72. Water is added to the circulation chamber 103, and a pressure relief valve 105 is fixedly installed at the upper left end of the circulation chamber 103 (its air inlet pipe is interconnected with the circulation chamber; it can release internal pressure when the pressure in the circulation chamber is too high). Solenoid valves DC1, DC2, DC3, DC4, DC5, and DC6 are normally closed valve core solenoid valves. The heating mechanism includes a housing 63 and an electric heating tube RT. A liquid outlet pipe 62 and a liquid inlet pipe 61 are fixedly installed in the middle of the upper end and the middle of the lower end of the housing, respectively. An isolation plate 64 is sealed and installed on both sides of the interior of the housing 63. The cavity between the isolation plate 64 and the housing 63 serves as a mounting shell. The two electric heating tubes RT are respectively insulated and fixedly installed in the two mounting shells (the wires connected to the two electric heating tubes RT are led out through the openings at the upper end of the two mounting shells, and the openings are sealed with sealant). In the stirring blade mechanism 4, each set of stirring blade mechanism includes a fixed tube 41, a waterproof electric push rod M2, and stirring blades 42. The cylinder of the electric push rod M2 is sealed and installed inside the fixed tube 41. The inner side of the stirring blades 42 is fixedly installed on the outer side of the piston column of the electric push rod M2. A rubber scraper 421 is fixedly installed on the outer end of the stirring blades 42. The outer side of the stirring shaft 3 has 14 openings. The fixed tubes of the 14 sets of stirring blade mechanisms are arranged in a ring on the inner side and fixedly installed at equal intervals on the outer ends of the 14 openings of the stirring shaft 3. The wires connected to the electric push rods M2 of the 14 sets of stirring blade mechanisms are introduced into the stirring shaft 3 through the 14 openings of the stirring shaft (the openings are sealed with heat-resistant sealant), and then led out from the upper end of the stirring shaft 3 and connected in parallel to the two terminals of the power socket T via wires. In the 14 sets of stirring blade mechanisms, the lower side height of the stirring blades of the upper set of stirring blades 42 is lower than the upper side height of the stirring blades of the lower set of stirring blades 42. There is an inspection and maintenance port at the front of the tank. A heat-resistant transparent observation plate 106 (for observing the working conditions inside the tank) is installed on the front side of the inspection and maintenance port with bolts and nuts.The power input terminals of power module E1 and ultrasonic generator E2 are connected to the two poles of AC 220V power supply via wires. The power input terminals of circulating pump M and electric heating tube RT, and motor reduction mechanism M1 are connected to the two poles of AC 220V power supply via power switches S and S8 in series. The power output terminal of power module E1 and the power input terminals 1 and 2 of the second power switch S1 are connected via wires. The power output terminals 3 and 4 and 6 and 5 of power switch S1 are connected to the two terminals of power plug C via wires. The positive power output terminal of power module E1 is connected to the power input terminals of power switches S2, S3, S4, S5, S6, and S7 via wires. The power output terminals of power switches S2, S3, S4, S5, S6, and S7, and the negative power output terminal 4 of power module E1 are connected to the power input terminals of the six solenoid valves DC1, DC2, DC3, DC4, DC5, and DC6 via wires. The power output terminal of the ultrasonic generator E2 and the power input terminals of the 16 ultrasonic transducers BN are connected by wires.
[0020] Figure 1 , 2As shown in Figure 3, after turning on the main power switch, pins 3 and 4 of the power module E1 output a stable 12V DC power supply to the power input terminals of power switches S1, S2, S3, S4, S5, S6, S7 and power plug C. Before operation, the operator turns on the power switch of solenoid valve DC4, which energizes the valve core and opens it, allowing tap water to enter the circulation chamber 103. Once enough water is available, the power switch of solenoid valve DC4 is turned off, de-energizing the valve core and closing it. During operation, the operator turns on the power switch of the first solenoid valve DC2, which energizes and opens the valve core, allowing ricinoleic acid to enter tank 1. Once the amount of ricinoleic acid is sufficient, the operator turns off the power switch of solenoid valve DC2, de-energizing and closing the valve core. Then, the operator turns on the power switch of solenoid valve DC3, which energizes and opens the valve core. The operator can then add zinc salt into tank 1 through feed hopper 5. Once the amount of zinc salt is sufficient, the operator turns off the power switch of solenoid valve DC3, de-energizing and closing the valve core. After the power switch S is turned on, the circulation pump M and the two electric heating tubes RT are energized and start working (and the power switches of the fifth solenoid valve DC5 and the sixth solenoid valve DC6 are turned on, and the valve cores of the fifth solenoid valve DC5 and the sixth solenoid valve DC6 are opened). After the electric heating tubes RT are energized and start working, they can heat the water entering the shell 63. After the circulation pump M is energized and starts working, it draws water from the right end of the heating chamber. Then, after the water is heated by the electric heating tubes in the shell, it is pumped out by the circulation pump M to the left end of the circulation chamber. The heated circulating water flows in the circulation chamber. In this way, the raw materials in the subsequent tank 1 can be stirred and dissolved at a relatively high temperature. After the power switch of the ultrasonic generator E2 is turned on, the 16 ultrasonic transducers BN will be powered on and start working. This allows the raw materials in the tank 1 to be stirred and dissolved based on vibration. Specifically, after the AC 220V power supply enters the power input terminal of the ultrasonic generator E2, its pins 3 and 4 will output signals to the signal input terminals of the 16 ultrasonic transducers BN. The 16 ultrasonic transducers BN convert the electrical signals into mechanical vibrations, thereby generating ultrasonic vibration signals that act on the solid-liquid mixture in the tank 1 (vibration can also be performed by a vibration motor). When the 16 ultrasonic transducers BN are subjected to electrical signals and the positive and negative charge centers are relatively displaced, the piezoelectric materials inside the 16 ultrasonic transducers BN will be compressed or stretched, thereby driving the 16 ultrasonic transducers BN to vibrate at an ultrasonic frequency (usually exceeding 20kHz) to vibrate the tank 1, etc. Due to the vibration, the solid-liquid mixture in the tank 1, etc., has an improved stirring and mixing effect.
[0021] Figure 1 , 2As shown in Figure 3, after the operator turns on the power switch of the motor reduction mechanism M1, the motor reduction mechanism M1 is energized and its rotating shaft drives the stirring shaft 3 to rotate. This causes the 14 stirring blades to stir and dissolve the raw materials in the tank. After the subsequent work is completed, the power to the motor reduction mechanism M1 is turned off, and the motor reduction mechanism M1 stops working and no longer drives the 14 stirring blades. After the raw materials are stirred and dissolved, the operator turns off all other power switches. Then, the operator turns on the power switch of the solenoid valve DC1. The solenoid valve DC1 is energized and its valve core opens, allowing the dissolved and stirred raw materials to flow from tank 1 into the finished product tank. When the operator needs to clean the raw materials adhering to the inner wall of tank 1, in the off state, the operator inserts the power plug C into the power socket T, and then moves the handle of the power switch S1 to the left. Pins 1 and 2 and pins 3 and 4 of the power switch S1 are connected respectively. In this way, the positive and negative power input terminals of the 14 electric push rods M2 will be energized. The pistons of the 14 electric push rods M2 push the stirring blades to move outward. When the outer side of the scraper 421 contacts the inner wall of tank 1 (observe the condition of the scraper 421 inside the tank through the observation plate 106), turn off the power switch S1, and then unplug the power plug C from the power socket T. Next, the staff turns on the power switch of the motor reduction mechanism M1. The motor reduction mechanism M1 is powered on and its shaft drives the 14 stirring blades to rotate. The scrapers of the 14 stirring blades will scrape the raw material adhering to the inner wall of the tank 1 down to the lower end of the tank 1. After turning on the power switch of the solenoid valve DC1, the raw material can be output to the finished product tank located at the lower position. (Although the small amount of raw material adhering to the upper end of the tank cannot be cleaned by the scraper 421, the amount is very small and will not affect the normal operation of the equipment; the staff can also open the observation plate 106 to clean the upper end of the tank after a long period of time.) After cleaning, the staff turns off the power switch of the motor reduction mechanism M1. Then, with the machine stopped, the staff inserts the power plug C into the power socket T and moves the handle of the power switch S1 to the right. Pins 1 and 2 and pins 5 and 6 of the power switch S1 are connected respectively. In this way, the negative and positive power input terminals of the 14 electric push rods M2 will be energized. The pistons of the 14 electric push rods M2 drive the stirring blades to move inward. When the outer side of the scraper 421 no longer contacts the inner wall of the tank 1 (observe the scraper 421 inside the tank through the observation plate 106), turn off the power switch S1. Then, unplug the power plug C from the power socket T to complete the entire production process. Figure 3In this system, power module E1 is an AC 220V to DC 12V power module; solenoid valves DC1, DC2, DC3, DC4, DC5, and DC6 are normally closed solenoid valves with a power of 2W; ultrasonic generator E2 is an industrial ultrasonic generator of model HL-2600; ultrasonic transducer BN is an ultrasonic transducer of model 17K-200KHz; electric heating tube RT is a straight stainless steel armored electric heating tube with a power of 1.2KW; electric push rod M2 is a reciprocating electric telescopic rod with a power of 20W; circulating pump M has a power of 800W; and motor reduction mechanism M1 is a coaxial motor gear reducer with a power of 3.5KW.
[0022] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. It will be apparent to those skilled in the art that this utility model is limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or basic characteristics of this utility model. Therefore, the embodiments should be considered exemplary and non-limiting in all respects. The scope of this utility model is defined by the appended claims rather than the foregoing description, and thus all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this utility model.
[0023] Furthermore, it should be understood that although this specification describes the embodiments, the embodiments do not necessarily contain only one independent technical solution. This way of describing the specification is only for clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in the embodiments can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A dissolving and stirring device for zinc ricinoleate, comprising a tank, a heating mechanism, a circulating pump, a solenoid valve, an ultrasonic generator, an ultrasonic transducer, a power plug, a power socket, a base plate, a bearing seat, a motor reduction mechanism, a stirring shaft, a stirring blade mechanism, and a feed hopper, characterized in that, A bottom shell is fixedly installed on the lower outer end of the tank. Multiple ultrasonic transducers are fixedly installed on the lower outer end of the tank. Multiple support feet are fixedly installed on the lower end of the bottom shell, and each support foot is fixedly installed on one end of the base plate. The side wall of the tank has a circulation chamber. Connecting pipes are fixedly installed on the lower and upper ends of the tank. Multiple solenoid valves are present. One end of the first solenoid valve is fixedly installed to the lower side of the connecting pipe at the lower end of the tank. The other end of the first solenoid valve is fixedly connected to the inlet pipe of the finished product tank via a pipeline. One end of the second and third solenoid valves are fixedly connected to the upper parts of the first and second connecting pipes on the tank, respectively. The other end of the second solenoid valve is fixedly connected to the outlet pipe of the castor oil acid tank. The other end of the third solenoid valve is fixedly connected to the lower outlet pipe of the feed hopper. Connecting pipes A are installed on the upper ends of both sides and the lower end of the other side of the circulation chamber. The outer ends of the three connecting pipes A are respectively connected to the fourth and fifth solenoid valves. One end of the solenoid valve and the sixth solenoid valve are fixedly connected; the other end of the fourth solenoid valve is fixedly connected to the tap water pipe; the other end of the fifth solenoid valve is fixedly connected to the inlet of the circulating pump; the outlet of the circulating pump is fixedly connected to the inlet pipe of the heating mechanism; the outlet pipe of the heating mechanism is fixedly connected to the other end of the sixth solenoid valve; the circulating pump is fixedly installed on the other end of the base plate; the stirring shaft has a hollow structure and two sets of bearing seats. The first set of bearing seats is fixedly installed on the upper part of the tank body, and the second set of bearing seats is fixedly installed on the lower part of the tank body. The lower and upper ends of the stirring shaft are respectively fixedly installed in the inner rings of the bearings in the two bearing seats. The lower end of the housing of the motor reduction mechanism is fixedly installed on the upper part of the tank body. The rotating shaft of the motor reduction mechanism and the top end of the stirring shaft are fixedly installed together; there are multiple sets of stirring blade mechanisms, and multiple sets of stirring blade mechanisms are fixedly installed on the outside of the stirring shaft; there is an opening on one side of the top end of the stirring shaft, and the power socket is fixedly installed in the opening. The ultrasonic generator is installed in the component box.
2. The dissolving and stirring equipment for zinc ricinoleate according to claim 1, characterized in that, The first and second bearing housings have sealing rings fixedly installed on the upper and lower parts of the inner ring of the bearing, respectively.
3. The dissolving and stirring equipment for zinc ricinoleate according to claim 1, characterized in that, Water is added to the circulation chamber, and a pressure relief valve is fixedly installed on the upper side of one side of the circulation chamber.
4. The dissolving and stirring equipment for zinc ricinoleate according to claim 1, characterized in that, The solenoid valve is a normally closed solenoid valve with a spool.
5. The dissolving and stirring equipment for zinc ricinoleate according to claim 1, characterized in that, The heating mechanism includes a housing and an electric heating tube. An outlet pipe and an inlet pipe are fixedly installed at the upper middle and lower ends of the housing, respectively. Isolation plates are sealed on both sides of the inside of the housing. The cavity between the isolation plates and the housing serves as a mounting shell. Two electric heating tubes are fixedly installed in the two mounting shells, respectively.
6. The dissolving and stirring equipment for zinc ricinoleate according to claim 1, characterized in that, There are multiple sets of stirring blade mechanisms. Each set of stirring blade mechanisms includes a fixed tube, an electric push rod, and stirring blades. The cylinder of the electric push rod is fixedly installed inside the fixed tube. The inner side of the stirring blade is fixedly installed outside the piston column of the electric push rod. A scraper is fixedly installed at the outer end of the stirring blade. The fixed tubes of the multiple sets of stirring blade mechanisms are arranged in a ring and fixedly installed at intervals on the outer end of the stirring shaft.
7. The dissolving and stirring equipment for zinc ricinoleate according to claim 6, characterized in that, In a multi-set stirring blade mechanism, between two adjacent stirring blade mechanisms, the lower side height of the upper stirring blade is lower than the upper side height of the lower stirring blade.
8. The dissolving and stirring equipment for zinc ricinoleate according to claim 1, characterized in that, There is an inspection and maintenance port at the front of the tank, and an observation plate is fixedly installed on the front side of the inspection and maintenance port.