Novel kneading machine for producing fine chemical resin adhesive

By introducing a pressure regulating mechanism and a hydraulic delay system, the problems of high energy consumption and rapid equipment wear in resin adhesive production have been solved, achieving precise pressure control and stable product quality, and improving production efficiency.

CN120902137AInactive Publication Date: 2025-11-07NOVETAL MATERIALS (SHENZHEN) CO LTD
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Patent Information

Application Number
CN202511168882.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-20
Publication Date
2025-11-07
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing kneading equipment for resin adhesive production suffers from high energy consumption, rapid equipment wear, and unstable product quality during the kneading process, especially the adverse effects caused by continuous high-pressure operation in the later stages of kneading.

Method used

Employing a pressure regulating mechanism and a hydraulic delay system, the pressure is automatically adjusted at different stages through an energy storage spring and piston assembly, combined with hydraulic oil flow rate control, to achieve smooth pressure transition and precise matching.

Benefits of technology

It improved energy efficiency, extended equipment lifespan, ensured product quality stability and production efficiency, and expanded the application scope of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a novel kneading machine for fine chemical engineering resin adhesive production, and relates to the technical field of resin bonding, the novel kneading machine comprises a piston sleeve mounted on a synchronous frame, a piston rod is slidably connected in the piston sleeve in a sealed mode, an energy storage spring is mounted at the lower end of the piston rod, and a pressing block is connected to the lower end of the energy storage spring; the pressing block is slidably connected into the box body, the upper end of the piston sleeve is communicated with a pressure maintaining pipe, a one-way ring is installed in the pressure maintaining pipe, a one-way ball is installed at the lower end of the one-way ring in an attached mode, and a telescopic pipe coaxial with the pressure maintaining pipe is installed in the one-way ball. The most remarkable innovation of the kneading machine lies in that the pressure adjusting mechanism is introduced, the pressure can be automatically adjusted in different stages of the resin kneading process, in the initial stage of kneading, the system applies large pressure to raw materials through the energy storage spring and the piston assembly, sufficient contact and initial reaction among molecules are promoted, and the design conforms to the resin kneading rule.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of resin bonding, more particularly, it relates to a new type of kneader for producing fine chemical resin adhesive. BACKGROUND

[0002] In the field of modern fine chemicals, resin adhesives are widely used in various industrial manufacturing processes as important basic materials. However, the existing resin adhesive production kneading equipment has obvious deficiencies in technical implementation. Specifically, the traditional kneader must apply a certain degree of pressure to achieve the desired uniformity of mixing and bonding performance when kneading the resin raw materials. Although this pressure-driven kneading process can increase the contact frequency between molecules and promote the completion of cross-linking reactions, it also significantly increases energy consumption. More importantly, research has found that the promoting effect of pressure on resin kneading is mainly in the early stage of the process. At this stage, the raw materials have not been fully mixed, the molecular chain is highly active, and the external pressure response is sensitive, which can effectively form a preliminary network structure.

[0003] However, when the kneading process enters the middle and later stages, the resin system has formed a relatively stable network structure. At this time, continuing to apply high pressure not only has limited effect on product quality improvement, but also causes a series of technical problems. First, continuous high-pressure operation significantly increases energy consumption of the equipment, reducing production economy. Second, unnecessary pressure will cause the motor to bear excessive torque load, accelerating the wear of the drive system and shortening the service life of the equipment. More seriously, excessive extrusion may damage the formed molecular network structure, thereby reducing the performance indicators of the final product. This non-stage, one-size-fits-all pressure control strategy not only wastes energy, increases equipment maintenance costs, but also cannot ensure the quality stability of the product, seriously restricting the efficiency improvement and further optimization of product quality in fine chemical production. SUMMARY

[0004] (I) Technical problems solved In view of the problems in the prior art, the present application provides a new type of kneader for producing fine chemical resin adhesive to solve the technical problems mentioned in the background.

[0005] (II) Technical solutions In order to achieve the above object, the present application provides the following technical scheme: a novel kneader for producing fine chemical resin adhesive, comprising a box body and a synchronous frame installed on the box body, a feed pipe is installed on the side wall of the box body; further comprising a pressure regulating mechanism, the pressure regulating mechanism comprises a piston sleeve installed on the synchronous frame, a piston rod is sealingly and slidably connected in the piston sleeve, an energy storage spring is installed at the lower end of the piston rod, a pressure block is connected at the lower end of the energy storage spring, the pressure block is slidably connected in the box body, a pressure maintaining pipe is communicated and installed at the upper end of the piston sleeve, a one-way ring is installed in the pressure maintaining pipe, a one-way ball is fitted and installed at the lower end of the one-way ring, a telescopic pipe is installed in the one-way ball and coaxially arranged with the pressure maintaining pipe, a plurality of side holes are equally spaced and formed in the side wall of the telescopic pipe, a control rod is threadedly installed in the telescopic pipe; further comprising a kneading mechanism, the kneading mechanism comprises two transmission shafts rotatably connected in the box body, stirring blades are respectively installed on the two transmission shafts, driving wheels and driven wheels are respectively installed on the two transmission shafts, the diameter of the driven wheel is greater than the size of the driving wheel, and the driving wheel is engaged on the driven wheel.

[0006] Preferably, the pressure regulating mechanism further comprises a sealing disc installed in the pressure maintaining pipe, the telescopic pipe is sealingly and slidably connected in the sealing disc, a plurality of right-angle pipes are communicated and installed between the sealing disc and the one-way ring, a plurality of oil tanks are respectively installed on the plurality of right-angle pipes, and the structure design forms a complete hydraulic flow guiding system, in which the sealing disc serves as a key interface to separate the pressure cavity from the storage cavity, and simultaneously allows the telescopic pipe to slide therein without leakage.

[0007] Preferably, a limiting frame is installed at the lower end of the pressure maintaining pipe, the telescopic pipe is slidably connected on the limiting frame, a spring is sleeved and installed on the telescopic pipe, one end of the spring abuts against the one-way ball, and the other end of the spring abuts against the limiting frame, the limiting frame provides guidance and positioning for the telescopic pipe, preventing the telescopic pipe from deflecting or shaking during movement.

[0008] Preferably, a receiving sleeve is installed at the upper end of the control rod, a top spring is installed at the lower end of the receiving sleeve, a thrust bearing is connected to the other end of the top spring, the thrust bearing abuts against the telescopic pipe, and the control rod is slidably connected in the thrust bearing, the control rod can rotate freely while keeping axial fixed, so as to adjust the opening number of the side holes on the telescopic pipe, the whole system provides a stable and precise control interface, which is convenient for the operator to make subtle adjustment according to the process requirement.

[0009] Preferably, the upper end of the pressure maintaining pipe is provided with a top groove, a sliding disc is slidably connected in the top groove, an insertion rod is installed at the lower end of the sliding disc, a return spring is installed on the sliding disc, the lower end of the return spring abuts against the top groove, a sealing head is threadedly connected to the upper end of the pressure maintaining pipe, and the return spring ensures that the sliding disc automatically returns to the initial position after adjustment, thereby not interfering with the installation of the sealing head, and the threaded connection of the sealing head provides reliable sealing effect.

[0010] Preferably, two limiting rods are installed on the pressing block, the two limiting rods are slidably connected to the synchronous frame, a push spring is sleeved and installed on the limiting rod, one end of the push spring abuts against the synchronous frame, and the other end of the push spring abuts against the pressing block, and the push spring provides a key self-resetting function for the system, so that the pressing block can be automatically restored to the initial position after the external force is removed, and such elastic connection not only simplifies the control requirement of the equipment, but also enhances the safety and reliability of the system.

[0011] Preferably, two hydraulic cylinders are installed on the box body, the extending ends of the hydraulic cylinders are connected to the synchronous frame, guide rods are installed on the two sides of the box body, guide sleeves are installed on the side walls of the box body, and the guide rods are slidably connected in the guide sleeves.

[0012] Preferably, the kneading mechanism further comprises a screw rod which is limitingly and rotatably connected in the box body, a discharge pipe is installed on the side wall of the box body, and the upper ends of the screw rod and the discharge pipe are coaxially arranged, and such discharge system design generates a pushing force through the rotation of the screw rod to push the kneaded high-viscosity resin to the discharge pipe, and the coaxial arrangement of the screw rod and the discharge pipe ensures the consistency of the material flow direction and avoids the risk of blockage caused by flow deflection.

[0013] Preferably, a base is installed at the lower end of the box body, a discharge motor is installed on the base, a transmission belt is meshingly installed on the extending end of the discharge motor, and the transmission belt is meshingly installed on the screw rod.

[0014] Preferably, a speed reducer is installed on the base, the extending end of the speed reducer is connected to a transmission shaft which is coaxial with a driving wheel, a driving motor is installed on the base, and a belt is meshingly installed on the extending end of the driving motor and the speed reducer.

[0015] (Three) beneficial effects Compared with the prior art, the present application provides a novel kneader for producing fine chemical resin adhesive, which has the following beneficial effects: The most remarkable innovation of the kneader is the introduction of a pressure regulating mechanism, which can automatically adjust the pressure at different stages of the resin kneading process. In the initial stage of kneading, the system applies a larger pressure to the raw materials through the energy storage spring and piston assembly, promoting sufficient contact between molecules and initial reaction. This design conforms to the resin kneading rules, which require a larger pressure in the initial stage to promote molecular activation and network formation, and a lower pressure in the later stage to avoid excessive shear. The elastic properties of the energy storage spring and the slow flow of hydraulic oil work together to achieve a smooth transition in pressure, avoiding the adverse effects of sudden pressure changes on product quality in traditional equipment.

[0016] The device uses a hydraulic delay system, which controls the flow rate of hydraulic oil through the cooperation of the side holes on the telescopic pipe and the control rod. This design allows operators to adjust the duration of pressure application according to different resin types and reaction characteristics, achieving precise matching of process parameters. The number of open side holes on the telescopic pipe directly determines the flow rate of hydraulic oil, thereby affecting the duration of pressure. This fine control capability enables the kneader to adapt to resin systems of various viscosities, molecular weights, and reaction rates, greatly expanding the application range of the device.

[0017] The device can automatically restore the initial state after each kneading cycle. The cooperation of the push spring and piston assembly generates negative pressure, which reabsorbs hydraulic oil into the piston sleeve through the gap between the one-way ball and one-way ring, achieving automatic resetting of the system. This automatic cycle function eliminates the need for manual resetting, improving production efficiency and operational safety. BRIEF DESCRIPTION OF DRAWINGS

[0018] Figure 1 Figure 1 is a schematic diagram of the overall structure of a new type of fine chemical resin adhesive production kneader according to the present application. Figure 2 Figure 2 is a schematic diagram of the cross-sectional structure of the box according to the present application. Figure 3 Figure 3 is a schematic diagram of the cross-sectional structure of the box and discharge pipe according to the present application. Figure 4 Figure 4 is a schematic diagram of the structure of the pressure block and synchronization frame according to the present application. Figure 5 Figure 5 is a schematic diagram of the cross-sectional structure of the synchronization frame and piston sleeve according to the present application. Figure 6 Figure 6 is a schematic diagram of the structure of the pressure maintaining pipe according to the present application. Figure 7 Figure 7 is a schematic diagram of the cross-sectional structure of the pressure maintaining pipe according to the present application. Figure 8 Figure 8 is a schematic diagram of the cross-sectional structure of the pressure maintaining pipe and one-way ring according to the present application. Figure 9 Figure 9 is a schematic diagram of the cross-sectional structure of the telescopic pipe according to the present application. Figure 10 Fig. 2 is a sectional view of the control rod.

[0019] Fig. 11 is a box; Fig. 12 is a synchronous frame; Fig. 13 is a feeding pipe; Fig. 21 is a piston sleeve; Fig. 22 is a piston rod; Fig. 23 is an energy storage spring; Fig. 24 is a pressing block; Fig. 25 is a pressure maintaining pipe; Fig. 26 is a one-way ring; Fig. 27 is a one-way ball; Fig. 28 is an extension pipe; Fig. 29 is a side hole; Fig. 31 is a transmission shaft; Fig. 32 is a stirring blade; Fig. 33 is a driving wheel; Fig. 34 is a driven wheel; Fig. 35 is a screw rod; Fig. 36 is a discharging pipe; Fig. 37 is a base; Fig. 38 is a discharging motor; Fig. 39 is a transmission belt; Fig. 210 is a control rod; Fig. 211 is a sealing disc; Fig. 212 is a right-angle pipe; Fig. 213 is an oil tank; Fig. 214 is a limiting frame; Fig. 215 is a spring; Fig. 216 is a receiving sleeve; Fig. 217 is a top spring; Fig. 218 is a thrust bearing; Fig. 219 is a top groove; Fig. 220 is a sliding disc; Fig. 221 is an insertion rod; Fig. 222 is a return spring; Fig. 223 is a sealing head; Fig. 224 is a limiting rod; Fig. 225 is a push spring; Fig. 226 is a hydraulic cylinder; Fig. 227 is a guide rod; Fig. 228 is a guide sleeve; Fig. 310 is a speed reducer; Fig. 311 is a driving motor; Fig. 312 is a belt. DETAILED DESCRIPTION

[0020] It should be noted that the embodiments and features of the embodiments in the present application can be combined with each other without conflict. The present application will be described in detail below with reference to the accompanying drawings and in conjunction with the embodiments.

[0021] It should be noted that, unless otherwise specified, all technical and scientific terms used in the present application have the same meaning as commonly understood by those skilled in the art to which the present application belongs.

[0022] In the present application, unless otherwise specified, the orientation such as "up, down" is generally directed to the direction shown in the drawings, or is directed to the vertical, perpendicular or gravity direction; similarly, for the convenience of understanding and description, "left, right" is generally directed to the left and right shown in the drawings; "inner, outer" refers to the inner and outer relative to the contour of each component itself, but the above orientation words are not used to limit the present application.

[0023] Please refer to Figures 1 to 10The utility model relates to a new type of kneader for producing fine chemical resin adhesive, which comprises a box body 11 and a synchronous frame 12 installed on the box body 11, a feeding pipe 13 is installed on the side wall of the box body 11; it further comprises a pressure regulating mechanism, the pressure regulating mechanism comprises a piston sleeve 21 installed on the synchronous frame 12, a piston rod 22 is sealingly and slidably connected in the piston sleeve 21, an energy storage spring 23 is installed at the lower end of the piston rod 22, a pressing block 24 is connected at the lower end of the energy storage spring 23, the pressing block 24 is slidably connected in the box body 11, a pressure maintaining pipe 25 is communicated and installed at the upper end of the piston sleeve 21, a one-way ring 26 is installed in the pressure maintaining pipe 25, a one-way ball 27 is attached and installed at the lower end of the one-way ring 26, a telescopic pipe 28 is installed in the one-way ball 27 and coaxially arranged with the pressure maintaining pipe 25, a plurality of side holes 29 are equidistantly arranged on the side wall of the telescopic pipe 28, a control rod 210 is threadedly installed in the telescopic pipe 28, the pressure regulating mechanism further comprises a sealing disc 211 installed in the pressure maintaining pipe 25, the telescopic pipe 28 is sealingly and slidably connected in the sealing disc 211, a plurality of right-angle pipes 212 are communicated and installed between the sealing disc 211 and the one-way ring 26, a plurality of oil tanks 213 are respectively installed on the plurality of right-angle pipes 212, a limiting frame 214 is installed at the lower end of the pressure maintaining pipe 25, the telescopic pipe 28 is slidably connected on the limiting frame 214, a spring 215 is sleeved and installed on the telescopic pipe 28, one end of the spring 215 abuts against the one-way ball 27, the other end of the spring 215 abuts against the limiting frame 214, a receiving sleeve 216 is installed at the upper end of the control rod 210, a top spring 217 is installed at the lower end of the receiving sleeve 216, the other end of the top spring 217 is connected with a thrust bearing 218, the thrust bearing 218 abuts against the telescopic pipe 28, the control rod 210 is slidably connected in the thrust bearing 218, a top groove 219 is arranged at the upper end of the pressure maintaining pipe 25, a sliding disc 220 is slidably connected in the top groove 219, an insertion rod 221 is installed at the lower end of the sliding disc 220, a return spring 222 is installed on the sliding disc 220, the lower end of the return spring 222 abuts in the top groove 219, a sealing head 223 is threadedly and sealingly connected with the upper end of the pressure maintaining pipe 25, two limiting rods 224 are installed on the pressing block 24, the two limiting rods 224 are slidably connected on the synchronous frame 12, a push spring 225 is sleeved and installed on the limiting rod 224, one end of the push spring 225 abuts against the synchronous frame 12, the other end of the push spring 225 abuts against the pressing block 24, two hydraulic cylinders 226 are installed on the box body 11, the extending ends of the hydraulic cylinders 226 are connected with the synchronous frame 12, guide rods 227 are installed on both sides of the box body 11, guide sleeves 228 are installed on the side wall of the box body 11, the guide rods 227 are slidably connected in the guide sleeves 228.

[0024] Before the engagement, the corresponding raw materials are first introduced into the box 11 through the feed pipe 13, at this time the hydraulic cylinder 226 drives the synchronous frame 12 to move to the highest position, so that the side wall of the pressing block 24 releases the seal of the feed pipe 13, so that the feed pipe 13 introduces the raw materials into the box 11, then the driving motor 311 is started to drive the rotation of the transmission shaft 31, and through the driving wheel 33 and the driven wheel 34, the two transmission shafts 31 are driven at different speeds, so that the two sides of the stirring blade 32 have a speed difference, so that better kneading effect is generated, then the hydraulic cylinder 226 moves downward and the pressing block 24 is pressed on the raw materials to apply a corresponding thrust to the raw materials, and then the initial high-efficiency engagement is ensured by applying pressure. Since the pressure on the pressing block 24 is transmitted through the piston rod 22 and the energy storage spring 23, the energy storage spring 23 is compressed to store energy, so that the piston rod 22 applies pressure to the hydraulic oil in the piston sleeve 21, and then the hydraulic oil flows into the pressure maintaining pipe 25 after being pressed to apply pressure to the one-way ball 27. Due to the one-way arrangement between the one-way ball 27 and the one-way ring 26, the one-way ball 27 cannot release the seal between the one-way ring 26, so it can only flow into the expansion pipe 28. Since the expansion pipe 28 is provided with a plurality of side holes 29, and the control rod 210 can control the opening number of the side holes 29, the hydraulic oil flows into the space between the sealing disc 211 and the one-way ring 26 through the tiny side holes 29. Since the side holes 29 are very small, the flow speed is very slow, thereby greatly prolonging the overall flow time, so that the continuous pressure applied by the energy storage spring 23 can generate a larger pressure in the initial stage of kneading and stirring to ensure the engagement effect. Then the hydraulic oil flows into the oil tank 213 through the right-angle pipe 212. When all the hydraulic oil is flowed out, the pressure is no longer applied, so that only a larger pressure is applied in the initial stage when a larger pressure is needed, and the high-efficiency kneading is completed. Then the pressure of the driving motor 311 is reduced, thereby completing the use process.

[0025] When it is necessary to adjust the flow-out time according to different situations, only the position of the control rod 210 needs to be changed to change the opening number of the side holes 29. First, the sealing head 223 is removed, then the wrench is inserted into the sliding disc 220 and pressed downward, so that the insertion rod 221 is inserted into the receiving sleeve 216, and then the wrench is rotated to drive the receiving sleeve 216 and the control rod 210 to rotate synchronously. Since the control rod 210 is threadedly connected to the expansion pipe 28, the opening number of the side holes 29 can be changed by rotating to change the pressure maintaining time. After the adjustment is completed, the sealing head 223 is threadedly connected to the pressure maintaining pipe 25, thereby completing the sealing process. The sliding of the sliding disc 220 avoids direct contact with the outside to improve the sealing effect.

[0026] When the upward movement of one pressing is completed, the first pressing block 24 is no longer forced and then resets under the action of the push spring 225 and the piston rod 22 also slides downward, so that the negative pressure is generated in the piston sleeve 21, when the one-way ball 27 is subjected to the negative pressure, the seal between the one-way ball 27 and the one-way ring 26 is released, then the hydraulic oil is sucked into the piston sleeve 21, thereby completing a cycle process.

[0027] The kneading mechanism comprises two transmission shafts 31 rotatably connected in the box body 11, and stirring blades 32 are respectively installed on the two transmission shafts 31, and driving wheels 33 and driven wheels 34 are respectively installed on the two transmission shafts 31, the diameter of the driven wheel 34 is larger than the size of the driving wheel 33, and the driving wheel 33 is engaged on the driven wheel 34, the kneading mechanism further comprises a spiral rod 35 rotatably connected in the box body 11, a discharge pipe 36 is installed on the side wall of the box body 11, the upper ends of the spiral rod 35 and the discharge pipe 36 are coaxially arranged, a base 37 is installed at the lower end of the box body 11, a discharge motor 38 is installed on the base 37, a transmission belt 39 is engaged and installed on the extension end of the discharge motor 38, the transmission belt 39 is engaged on the spiral rod 35, a speed reducer 310 is installed on the base 37, the extension end of the speed reducer 310 is connected to the transmission shaft 31 coaxial with the driving wheel 33, and a driving motor 311 is installed on the base 37, and a belt 312 is engaged and installed on the extension end of the driving motor 311 and the speed reducer 310.

[0028] When the kneading of the raw materials is completed, the rotation of the spiral rod 35 is driven by the discharge motor 38, and then the raw materials are discharged along the discharge pipe 36, thereby completing the use process, and after the discharge is completed, the raw materials are introduced into the box body 11 through the feeding pipe 13 for the next kneading production, thereby completing the whole process.

[0029] In all the schemes mentioned above, the connection between the two components can be selected according to the actual situation, such as welding, bolt and nut cooperation connection, bolt or screw connection or other known connection mode, which will not be described one by one, and the welding is preferred for the fixed connection mentioned above, although the embodiments of the application have been shown and described, those skilled in the art can understand that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and spirits of the application, and the scope of the application is defined by the appended claims and their equivalents.

Claims

1. A novel kneading machine for producing fine chemical resin adhesives, comprising a housing (11) and a timing frame (12) mounted on the housing (11), wherein a feed pipe (13) is installed on the side wall of the housing (11); characterized in that: Further include pressure regulating mechanism, the pressure regulating mechanism includes the piston sleeve (21) installed on the synchronous frame (12), the piston sleeve (21) is sealed and slidably connected with the piston rod (22) in, the lower end of the piston rod (22) is installed with energy storage spring (23), the lower end of the energy storage spring (23) is connected with the pressure block (24), the pressure block (24) is slidably connected in the box (11), the upper end of the piston sleeve (21) is communicated and installed with the pressure retaining tube (25), the pressure retaining tube (25) is installed with one-way ring (26), the lower end of the one-way ring (26) is installed with one-way ball (27), the one-way ball (27) is installed with the telescopic pipe (28) coaxially arranged with the pressure retaining tube (25) in, a plurality of side holes (29) are equally spaced on the side wall of the telescopic pipe (28), the telescopic pipe (28) is threadedly installed with control rod (210); Further include kneading mechanism, the kneading mechanism includes two transmission shafts (31) rotatably connected in the box (11), and two transmission shafts (31) are respectively provided with stirring blades (32), two transmission shafts (31) are respectively provided with driving wheels (33) and driven wheels (34), the diameter of the driven wheel (34) is greater than the size of the driving wheel (33), and the driving wheel (33) is engaged on the driven wheel (34).

2. A novel kneader for producing fine chemical resin adhesive according to claim 1, characterized in that: The pressure regulating mechanism further includes a sealing disc (211) installed in the pressure retaining tube (25), the telescopic pipe (28) is sealingly and slidably connected in the sealing disc (211), a plurality of right-angle pipes (212) are communicated and installed between the sealing disc (211) and the one-way ring (26), and a plurality of oil tanks (213) are respectively installed on the plurality of right-angle pipes (212).

3. A novel kneader for producing fine chemical resin adhesive according to claim 2, characterized in that: The lower end of the pressure retaining tube (25) is installed with a limiting frame (214), the telescopic pipe (28) is slidably connected on the limiting frame (214), a spring (215) is sleeved and installed on the telescopic pipe (28), one end of the spring (215) abuts against the one-way ball (27), and the other end of the spring (215) abuts against the limiting frame (214).

4. A novel kneader for producing fine chemical resin adhesive according to claim 3, characterized in that: The upper end of the control rod (210) is installed with a receiving sleeve (216), the lower end of the receiving sleeve (216) is installed with a top spring (217), the other end of the top spring (217) is connected with a thrust bearing (218), the thrust bearing (218) abuts against the telescopic pipe (28), and the control rod (210) is slidably connected in the thrust bearing (218).

5. A novel kneader for producing fine chemical resin adhesive according to claim 4, characterized in that: The upper end of the pressure retaining tube (25) is provided with a top slot (219), a sliding disc (220) is slidably connected in the top slot (219), an insertion rod (221) is installed at the lower end of the sliding disc (220), a return spring (222) is installed on the sliding disc (220), the lower end of the return spring (222) abuts in the top slot (219), and a sealing head (223) is threadedly and sealingly connected to the upper end of the pressure retaining tube (25).

6. A novel kneader for producing fine chemical resin adhesive according to claim 1, characterized in that: Two limiting rods (224) are installed on the pressing block (24), the two limiting rods (224) are slidingly connected to the synchronous frame (12), a push spring (225) is sleeved and installed on the limiting rod (224), one end of the push spring (225) abuts against the synchronous frame (12), and the other end of the push spring (225) abuts against the pressing block (24).

7. A novel kneader for producing fine chemical resin adhesive according to claim 6, characterized in that: Two hydraulic cylinders (226) are installed on the box body (11), the extending end of the hydraulic cylinder (226) is connected to the synchronous frame (12), guide rods (227) are installed on the two sides of the box body (11), guide sleeves (228) are installed on the side wall of the box body (11), and the guide rods (227) are slidingly connected into the guide sleeves (228).

8. A novel kneader for producing fine chemical resin adhesive according to claim 1, characterized in that: The kneading mechanism further comprises a spiral rod (35) which is rotationally connected to the box body (11) and is limited, a discharge pipe (36) is installed on the side wall of the box body (11), and the upper ends of the spiral rod (35) and the discharge pipe (36) are coaxially arranged.

9. A novel kneader for producing fine chemical resin adhesive according to claim 8, characterized in that: A base (37) is installed at the lower end of the box body (11), a discharge motor (38) is installed on the base (37), the extending end of the discharge motor (38) is meshed with a transmission belt (39), and the transmission belt (39) is meshed on the spiral rod (35).

10. A novel kneader for producing fine chemical resin adhesive according to claim 9, characterized in that: A speed reducer (310) is installed on the base (37), the extending end of the speed reducer (310) is connected to a transmission shaft (31) which is coaxial with a driving wheel (33), a driving motor (311) is installed on the base (37), and the extending end of the driving motor (311) is meshed with a belt (312) on the speed reducer (310).