A zinc stearate mixing reaction device capable of intermittent loading

By designing a zinc stearate mixing reaction device capable of intermittent feeding, efficient mixing of ingredients is achieved by utilizing driving parts, transmission parts and reset parts, thus solving the problems of cumbersome operation and low efficiency in the prior art and improving the production efficiency and mixing effect of zinc stearate.

CN120586801BActive Publication Date: 2025-10-03NANTONG XINBANG CHEM
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202511093244.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-08-06
Publication Date
2025-10-03
Estimated Expiration
2045-08-06

AI Technical Summary

Technical Problem

In the existing zinc stearate mixing process, multiple ingredients need to be manually poured in one by one and stirred repeatedly, resulting in cumbersome operations and low production efficiency.

Method used

A zinc stearate mixing reaction device with intermittent feeding was designed, which includes a stirring barrel, a batching barrel and a stirring assembly. The driving part, transmission part and reset part work together to achieve efficient mixing of ingredients and automatic feeding, and the appropriate temperature is maintained by the temperature control component.

Benefits of technology

It achieves efficient mixing of zinc stearate ingredients, improves production efficiency, ensures the accuracy and stability of ingredients, and has a flexible stirring and reset mechanism and an intelligent discharge system.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120586801B_ABST
    Figure CN120586801B_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of zinc stearate, and in particular to a zinc stearate mixing reaction device capable of intermittent feeding. The device comprises a support frame and a stirring barrel arranged below the support frame, and is used to store mixed zinc stearate ingredients. The zinc stearate mixing reaction device capable of intermittent feeding has efficient mixing and intermittent feeding: the device achieves efficient mixing of the zinc stearate ingredients through a stirring assembly, ensuring that the ingredients can be evenly mixed in the stirring barrel; the provision of the ingredient barrel allows intermittent feeding, thereby improving production efficiency, while ensuring the accuracy and stability of the ingredients; and a flexible stirring and resetting mechanism: a driving member, a transmission member, and a resetting member in the stirring assembly cooperate to achieve flexible rotation and timely resetting of a stirring plate; the stirring plate stirs the ingredients while rotating, thereby improving mixing efficiency, and the resetting member ensures that the stirring plate can be quickly reset after stopping rotation, thereby preparing for the next stirring.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the technical field of zinc stearate, in particular to a zinc stearate mixing reaction device capable of intermittent loading. Background Art

[0002] Zinc stearate is a mixture of solid organic acid extracted from fat and zinc. The chemical raw materials required for the mixture mainly include stearic acid and zinc compounds. The specific steps include dissolving stearic acid in hot water, adding caustic soda solution to carry out saponification reaction to produce sodium stearate solution, then adding zinc sulfate or zinc oxide solution to the sodium stearate solution to carry out double decomposition reaction. The product zinc stearate is precipitated, and the finished product is obtained through filtering, washing, drying and other steps.

[0003] However, we have found in real life that in the existing zinc stearate preparation process, workers are required to pour multiple ingredients into a material bucket one by one, mix them and repeatedly stir them until the multiple ingredients are completely mixed before proceeding to the next step. This method is too cumbersome to operate, and this stirring and mixing method leads to low production efficiency. Therefore, we propose a zinc stearate mixing reaction device with intermittent loading. Summary of the Invention

[0004] A technical problem to be solved by the present application is: how to quickly complete the stirring and mixing of zinc stearate before precipitation, thereby improving the mixing efficiency of multiple ingredients and further improving the production efficiency of zinc stearate.

[0005] In order to solve the above technical problems, the present invention provides a zinc stearate mixing reaction device capable of intermittent feeding, comprising a support frame;

[0006] A stirring barrel is provided below the support frame and is used to store the mixed zinc stearate ingredients;

[0007] There are three batching barrels, and the three batching barrels are respectively arranged on one side of the mixing barrel;

[0008] There are multiple stirring plates, and the multiple stirring plates are all arranged in the stirring barrel;

[0009] The stirring assembly is arranged in the stirring barrel, and the stirring assembly is used to control the ingredients in the three ingredient barrels to enter the ingredient barrel, and to control the multiple stirring plates to stir the mixed ingredients in the ingredient barrels while rotating, so that the ingredients are evenly mixed and discharged from the stirring barrel.

[0010] In some embodiments, the stirring assembly includes a driving member arranged on the support frame, and the driving member is used to provide power for the rotation of the multiple stirring plates. A transmission member is provided in the stirring barrel, and the transmission member is used to transmit power for the rotation of the multiple stirring plates. A plurality of reset members are provided in the stirring barrel, and the corresponding stirring plates are respectively controlled to reset in time by the plurality of reset members. A discharge member is provided on the outside of the stirring barrel, and the discharge member is used to control the discharge of zinc stearate after uniform mixing in the stirring barrel, and the ingredients in the three ingredient barrels enter the stirring barrel.

[0011] In some embodiments, the driving member includes an electric push rod arranged on the support frame, a driving plate is provided at the output end of the electric push rod, a bearing is provided at the bottom of the driving plate, the bearing is rotatably arranged in the driving plate on the side close to its axis, and a driving rope is provided at the bottom of the bearing on the side away from the axis of the driving plate.

[0012] In some embodiments, the transmission member includes a round rod arranged in the mixing barrel, a transmission ring is rotatably arranged on the outside of the round rod, a transmission plate is arranged on the outside of the transmission ring, a transmission groove is opened in the transmission plate, and the drive rope passes through the transmission groove and is wrapped around the outside of the transmission ring, and the end of the drive rope away from the bearing is arranged on the outside of the transmission ring, a transmission torsion spring is arranged on the outside of the round rod, and the end of the transmission torsion spring away from the round rod is arranged on the inner wall of the transmission ring, a rotating ring is rotatably arranged in the mixing barrel for use with the transmission ring, and multiple stirring plates are located between the rotating ring and the transmission ring.

[0013] In some embodiments, the reset member includes a reset shaft rotatably arranged in the transmission ring, a reset torsion spring is arranged on the outside of the reset shaft, and the end of the reset torsion spring away from the reset shaft is arranged on the transmission ring, the end of the reset shaft away from the transmission ring is rotatably arranged in the rotating ring, a limiting block is provided at the end of the reset shaft close to the rotating ring, and a limiting groove is opened in the rotating ring for use with the limiting block, and multiple stirring plates are arranged on the outside of the corresponding reset shafts.

[0014] In some embodiments, the discharge member includes a discharge pipe arranged on one side of the mixing barrel, the discharge pipe is communicated with the mixing barrel, a reducer is provided at one end of the discharge pipe away from the mixing barrel, a capillary is provided at one end of the reducer away from the discharge pipe, a reducer is provided at one end of the capillary away from the reducer, and a reducer is provided at one end of the capillary away from the reducer, and the opposite ends of the reducer and the reducer are the same as the radius of the discharge pipe, and the opposite ends of the reducer and the reducer are communicated with the radius of the capillary, and the radius of the discharge pipe is larger than that of the capillary, and the capillary is provided inside the capillary. A discharge one-way valve is provided, and the discharge one-way valve opens toward the second reducer tube. A discharge rack is provided inside the second reducer tube. An impact plate is provided at the axis of the discharge rack through a rotating shaft, and the side of the impact plate close to the capillary tube is an inclined surface. Feeding pipes are provided at the bottom of the three batching barrels, and the three feeding pipes are communicated with the corresponding batching barrels. The opposite ends of the three feeding pipes are provided at the bottom of the mixing barrel and communicate with the mixing barrel. Feeding one-way valves are provided in the three feeding pipes, and the opening directions of the three feeding one-way valves are all toward the mixing barrel.

[0015] In some embodiments, a temperature control component is provided on the outside of the mixing barrel, and the temperature inside the mixing barrel is controlled by the temperature control component to maintain the temperature required for the zinc stearate to be stirred and mixed during overcharging;

[0016] The temperature control component includes a water supply part arranged on one side of the support frame, which is used to control the hot water to always flow outside the mixing barrel. A wrapping part is provided on the outside of the mixing barrel, which is used to wrap the mixing barrel. A recovery part is provided on one side of the mixing barrel, which is used to recover water with lower temperature.

[0017] In some embodiments, the water supply component includes a hot water bucket arranged on one side of the mixing bucket for storing water, a bucket cover is arranged on the top of the hot water bucket, a plurality of heating rods are arranged at the bottom of the bucket cover, a connecting pipe is arranged at the bottom of the hot water bucket, and the connecting pipe is communicated with the hot water bucket, a water supply pipe is arranged at the bottom of the connecting pipe, and the connecting pipe is communicated with the water supply pipe, a connecting one-way valve is arranged in the connecting pipe, and the opening direction of the connecting one-way valve is toward the water supply pipe, a water supply one-way valve is arranged in the water supply pipe, and the water supply one-way valve is toward the A mixing barrel, a water supply plate is slidably provided in the water supply pipe, a water supply rod is provided on the side of the water supply plate away from the mixing barrel, and the water supply rod is slidably provided on the end of the water supply pipe away from the mixing barrel, a control plate is provided on the end of the water supply rod away from the water supply plate, a control groove is provided in the control plate, a motor is provided under the hot water barrel, a circular plate is provided at the output end of the motor, a control rod is provided on the side of the circular plate away from the motor, and the control rod is away from the axis of the circular plate, and the control rod is slidably provided in the control groove.

[0018] In some embodiments, the wrapping member includes a water inlet pipe arranged at the end of the water supply pipe away from the motor, a connecting pipe is provided at the end of the water inlet pipe away from the water supply pipe, and the connecting pipe is communicated with the water inlet pipe, three wrapping pipes are provided on the outside of the communicating pipe, the opposite ends of the three wrapping pipes are arranged at the bottom of the corresponding mixing barrel, and the three feeding pipes are respectively located in the corresponding wrapping pipes, so that a cavity is formed between the three wrapping pipes and the corresponding feeding pipes, a wrapping cover is provided on the outside of the mixing barrel, the wrapping cover is communicated with the three wrapping pipes, and the wrapping cover completely wraps the outer wall of the mixing barrel, so that a cavity is formed between the mixing barrel and the wrapping cover, an insulation pipe is provided on the outside of the discharge pipe, and the end of the insulation pipe away from the discharge pipe is arranged on the outside of the reducer pipe 2, the discharge pipe, reducer pipe 1, thin tube and reducer pipe 2 are all located in the insulation pipe, so that a cavity is formed between the inner wall of the insulation pipe and the outer walls of the discharge pipe, reducer pipe 1, thin tube and reducer pipe 2.

[0019] In some embodiments, the recovery part includes a recovery pipe arranged on one side of the wrapping cover, the end of the recovery pipe away from the wrapping cover is arranged in the hot water bucket, and the two ends of the recovery pipe are respectively communicated with the corresponding wrapping cover and the hot water bucket, a fixing plate is provided in the recovery pipe, a fixing groove is provided in the fixing plate, a fixing frame is provided at the bottom of the fixing plate, a fixing spring is provided at the axis of the fixing frame, and a rubber plate is provided on the top of the fixing spring for use in conjunction with the fixing groove.

[0020] The present invention has at least the following beneficial effects:

[0021] Efficient mixing and intermittent feeding:

[0022] The device achieves efficient mixing of zinc stearate ingredients through the stirring component, ensuring that the ingredients can be evenly mixed in the mixing barrel. The setting of the ingredient barrel allows intermittent feeding, which improves production efficiency and ensures the accuracy and stability of the ingredients.

[0023] Flexible stirring and resetting mechanism:

[0024] The driving parts, transmission parts and reset parts in the stirring assembly work together to realize the flexible rotation and timely reset of the stirring plate. The stirring plate stirs the ingredients while rotating, improving the mixing efficiency, while the reset part ensures that the stirring plate can be quickly reset after stopping rotation, ready for the next stirring.

[0025] Intelligent discharge and feeding system:

[0026] The design of the discharge piece enables the mixed zinc stearate to be discharged smoothly from the mixing barrel, while avoiding leakage during the mixing process. The setting of the feeding pipe and feeding one-way valve allows the ingredients in the mixing barrel to be automatically added to the mixing barrel when needed, realizing automatic feeding.

[0027] Precise temperature control components:

[0028] The temperature control component ensures that the temperature in the mixing barrel is always maintained within the range required for the mixing of zinc stearate through the cooperation of water supply parts, wrapping parts and recovery parts. The hot water barrel, heating rod and connecting one-way valve and other components work together to achieve the circulation supply of hot water and stable temperature control. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0030] Figure 2 This is a schematic diagram of the structure of the mixing barrel of the present invention;

[0031] Figure 3 For the present invention Figure 1 A schematic side section diagram of the structure in another orientation;

[0032] Figure 4 It is a schematic side cross-sectional view of the temperature control assembly structure of the present invention;

[0033] Figure 5 This is a schematic diagram of the explosion of the recovery component structure of the present invention;

[0034] Figure 6 This is a schematic diagram of the structure of the driving member of the present invention;

[0035] Figure 7 This is a side sectional schematic diagram of the stirring plate structure of the present invention;

[0036] Figure 8 This is an exploded schematic diagram of the transmission part structure of the present invention;

[0037] Figure 9 For the present invention Figure 8 A schematic diagram of the enlarged structure of area A;

[0038] Figure 10 For the present invention Figure 8 Schematic diagram of the enlarged structure of area B;

[0039] Figure 11 This is a schematic diagram of the transmission torsion spring structure of the present invention;

[0040] Figure 12 It is a side cross-sectional schematic diagram of the discharge member structure of the present invention;

[0041] Figure 13 This is a schematic structural diagram of the feed check valve of the present invention.

[0042] In the figure: 1. Support frame; 2. Mixing barrel; 3. Batching barrel; 4. Mixing plate; 5. Mixing assembly; 6. Driving member; 61. Electric push rod; 62. Driving plate; 63. Bearing; 64. Driving rope; 7. Transmission member; 71. Round rod; 72. Transmission ring; 73. Transmission plate; 74. Transmission slot; 75. Transmission torsion spring; 76. Rotating ring; 8. Reset member; 81. Reset shaft; 82. Reset torsion spring; 83. Limit block; 84. Limit slot; 9. Discharge member; 91. Discharge pipe; 92. Reducer 1; 93. Thin pipe; 94. Reducer 2; 95. Discharge check valve; 96. Discharge frame; 97. Impact plate; 98. Feed pipe; 99. Feed check valve; 10. Temperature control group 11. Water supply parts; 111. Hot water bucket; 112. Bucket cover; 113. Heating rod; 114. Connecting pipe; 115. Water supply pipe; 116. Connecting one-way valve; 117. Water supply one-way valve; 118. Water supply plate; 119. Water supply rod; 1110. Control board; 1111. Control slot; 1112. Motor; 1113. Round plate; 1114. Control lever; 12. Wrapping parts; 121. Water inlet pipe; 122. Connecting pipe; 123. Wrapping pipe; 124. Wrapping cover; 125. Insulation pipe; 13. Recovery parts; 131. Recovery pipe; 132. Fixing plate; 133. Fixing slot; 134. Fixing frame; 135. Fixing spring; 136. Rubber sheet. DETAILED DESCRIPTION

[0043] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.

[0044] See also Figure 1-13 The present invention provides a technical solution: a zinc stearate mixing reaction device capable of intermittent feeding, comprising a support frame 1;

[0045] A mixing barrel 2 is provided below the support frame 1 and is used to store the mixed zinc stearate ingredients;

[0046] There are three batching barrels 3, and the three batching barrels 3 are respectively arranged on one side of the mixing barrel 2, and the three batching barrels 3 are respectively used to place stearic acid solution, caustic soda, and zinc sulfate aqueous solution;

[0047] There are multiple stirring plates 4, and the multiple stirring plates 4 are all arranged in the stirring barrel 2;

[0048] The stirring assembly 5 is arranged in the stirring barrel 2. The stirring assembly 5 controls the ingredients in the three ingredient barrels 3 to enter the ingredient barrel 3, and controls the multiple stirring plates 4 to stir the mixed ingredients in the ingredient barrel 3 while rotating, so that the ingredients are mixed evenly and discharged from the stirring barrel 2.

[0049] The stirring assembly 5 includes a driving member 6 arranged on the support frame 1, which is used to provide power for the rotation of multiple stirring plates 4. A transmission member 7 is provided in the stirring barrel 2, which is used to transmit power for the rotation of multiple stirring plates 4. A plurality of reset members 8 are provided in the stirring barrel 2, which are used to control the corresponding stirring plates 4 to reset in time. A discharge member 9 is provided on the outside of the stirring barrel 2, which is used to control the discharge of zinc stearate after uniform mixing in the stirring barrel 2, and the ingredients in the three ingredient barrels 3 enter the stirring barrel 2.

[0050] The driving member 6 includes an electric push rod 61 arranged on the support frame 1, and a driving plate 62 is provided at the output end of the electric push rod 61. A bearing 63 is provided at the bottom of the driving plate 62. The side of the bearing 63 close to its axis is rotatably arranged in the driving plate 62, and the side of the bearing 63 away from the axis of the driving plate 62 is provided with a driving rope 64 at its bottom. When the electric push rod 61 is turned on, the electric push rod 61 will control the driving plate 62 at its output end to slide on the inner wall of the mixing barrel 2 and control the driving plate 62 to move upward. When the driving plate 62 moves upward, the driving plate 62 will drive the bearing 63 to move upward together, and the bearing 63 will drive the driving rope 64 at its bottom upward together, so that the other end of the driving rope 64 pulls the transmission ring 72, which can provide power for stirring the mixed ingredients.

[0051] The transmission member 7 includes a round rod 71 arranged in the mixing barrel 2, a transmission ring 72 is rotatably arranged on the outside of the round rod 71, a transmission plate 73 is arranged on the outside of the transmission ring 72, a transmission groove 74 is opened in the transmission plate 73, and the drive rope 64 passes through the transmission groove 74 and is wound around the outside of the transmission ring 72, and the end of the drive rope 64 away from the bearing 63 is arranged on the outside of the transmission ring 72, a transmission torsion spring 75 is arranged on the outside of the round rod 71, and the end of the transmission torsion spring 75 away from the round rod 71 is arranged on the inner wall of the transmission ring 72, and a rotating ring 76 is rotatably provided in the mixing barrel 2 for use with the transmission ring 72. And multiple stirring plates 4 are all located between the rotating ring 76 and the transmission ring 72. When the driving rope 64 pulls the transmission ring 72, the driving rope 64 will control the transmission plate 73 to rotate on the top of the round rod 71 through the transmission groove 74, and then the transmission plate 73 drives the transmission ring 72 to rotate on the outside of the round rod 71. When the transmission ring 72 rotates, the transmission torsion spring 75 inside the transmission ring 72 will start to accumulate force, and the rotating ring 76 will rotate with the transmission ring 72 under the action of the reset shaft 81. Its function is to switch the power of the upward movement of the driving rope 64 into power for the rotation of the stirring plate 4.

[0052] The reset member 8 includes a reset shaft 81 rotatably arranged in the transmission ring 72, a reset torsion spring 82 is provided on the outside of the reset shaft 81, and the end of the reset torsion spring 82 away from the reset shaft 81 is arranged on the transmission ring 72, and the end of the reset shaft 81 away from the transmission ring 72 is rotatably arranged in the rotating ring 76, and a limit block 83 is provided at the end of the reset shaft 81 close to the rotating ring 76, and a limit groove 84 is provided in the rotating ring 76 for use with the limit block 83. Multiple stirring plates 4 are all arranged on the outside of the corresponding reset shaft 81. When the transmission plate 73 rotates together with the transmission ring 72, the multiple reset shafts 81 rotating in the transmission plate 73 will rotate with the transmission plate 73 as the axis, so that the multiple reset shafts 81 drive the stirring plates 4 on the outside thereof to rotate in the mixing barrel 2, and the reset torsion spring 82 provided at one end of the reset shaft 81 can be When the stirring plate 4 is pressed down, the reset shaft 81 is controlled to rotate, so that the reset shaft 81 drives the stirring plate 4 to fit the bottom of the inner wall of the stirring barrel 2. When the driving plate 62 is upward, the reset torsion spring 82 can control the reset shaft 81 to rotate, so that the stirring plate 4 outside the reset shaft 81 rotates along with the reset shaft 81, thereby expanding the stirring plate 4 and stirring the mixed liquid when following the rotation of the transmission plate 73. The limit block 83 provided at one end of the reset shaft 81 near the rotating ring 76 can cooperate with the limit groove 84 in the rotating ring 76 to limit the rotation angle of the reset shaft 81, so as to prevent the stirring plate 4 from changing its angle due to the water flow resistance during the stirring process of the stirring plate 4. Its function is to control the retraction and extension of the stirring plate 4 and enable the stirring plate 4 to stir the mixed liquid in the stirring barrel 2 after expansion.

[0053] The discharge member 9 includes a discharge pipe 91 provided on one side of the mixing barrel 2. The discharge pipe 91 is communicated with the mixing barrel 2. A reducer 92 is provided at one end of the discharge pipe 91 away from the mixing barrel 2. A capillary tube 93 is provided at one end of the reducer 92 away from the discharge pipe 91. A reducer 94 is provided at one end of the capillary tube 93 away from the reducer 92. The opposite ends of the reducer 92 and the reducer 94 are the same radius as the discharge pipe 91, while the opposite ends of the reducer 92 and the reducer 94 are communicated with the capillary tube 93. The radius of the discharge pipe 91 is larger than that of the capillary tube 93. A discharge check valve 95 is provided in the capillary tube 93, and the discharge check valve 95 opens toward the reducer. The second diameter tube 94 and the second diameter reducing tube 94 are provided with a discharge rack 96. The axis of the discharge rack 96 is provided with an impact plate 97 which is rotated by a rotating shaft, and the side of the impact plate 97 close to the capillary 93 is an inclined surface. The bottom of the three batching barrels 3 are provided with feeding pipes 98, and the three feeding pipes 98 are communicated with the corresponding batching barrels 3. The opposite ends of the three feeding pipes 98 are provided at the bottom of the mixing barrel 2 and are communicated with the mixing barrel 2. The three feeding pipes 98 are provided with feeding one-way valves 99. The opening directions of the three feeding one-way valves 99 are all toward the mixing barrel 2. When the driving plate 62 moves upward, the driving plate 62 will generate negative pressure in the mixing barrel 2, thereby causing the feeding pipes 98 to The feeding one-way valve 99 in the mixing barrel 3 is opened, and the ingredients in the feeding barrel 3 are extracted through the feeding pipe 98, so that the ingredients in the three mixing barrels 3 enter the mixing barrel 2. While the driving plate 62 moves upward and extracts the ingredients, the stirring plate 4 is stirring and mixing the ingredients that have just entered the mixing barrel 2. Until the driving plate 62 stops moving, the feeding one-way valve 99 is closed, and the stirring plate 4 stops rotating. At this time, the first mixing and stirring is completed. When the driving plate 62 moves downward, the liquid in the mixing barrel 2 will be mixed and stirred for the second time after the stirring plate 4 rotates in the opposite direction, and will be discharged through the discharge pipe 91. The discharged liquid will first pass through the reducer 92 and When entering the narrow tube 93, the discharge one-way valve 95 is opened. According to the narrow tube effect, when the liquid flows into the narrow channel, the liquid flow rate will increase, so that when the mixed liquid passes through the reducer 1 92 and the narrow tube 93, its flow rate increases, generating an impact force. When the mixed liquid enters the reducer 2 94 after passing through the narrow tube 93, the mixed liquid will impact the impact plate 97, causing the impact plate 97 to rotate and disperse the liquid, thereby completing the third mixing and making the three ingredients reach a completely mixed state. Its function is to use the liquid impact force generated by the narrow tube effect to break up the mixed liquid and then reorganize it to make the three ingredients completely mixed.

[0054] A temperature control assembly 10 is provided on the outside of the mixing barrel 2, and the temperature inside the mixing barrel 2 is controlled by the temperature control assembly 10 so that it is at the temperature required for the zinc stearate to be stirred and mixed during overcharging;

[0055] The temperature control component 10 includes a water supply component 11 arranged on one side of the support frame 1. The water supply component 11 is used to control hot water to always flow outside the mixing barrel 2. A wrapping component 12 is provided on the outside of the mixing barrel 2, and the wrapping component 12 is used to wrap the mixing barrel 2. A recovery component 13 is provided on one side of the mixing barrel 2, and the recovery component 13 is used to recover water with lower temperature.

[0056] The water supply part 11 includes a hot water bucket 111 arranged on one side of the mixing barrel 2 for storing water, a barrel cover 112 is arranged on the top of the hot water bucket 111, and a plurality of heating rods 113 are arranged at the bottom of the barrel cover 112. A connecting pipe 114 is arranged at the bottom of the hot water bucket 111, and the connecting pipe 114 is communicated with the hot water bucket 111. A water supply pipe 115 is arranged at the bottom of the connecting pipe 114, and the connecting pipe 114 is communicated with the water supply pipe 115. A connecting one-way valve 116 is arranged in the connecting pipe 114, and the opening direction of the connecting one-way valve 116 is toward the water supply pipe 115. A water supply one-way valve 117 is arranged in the water supply pipe 115, and the water supply one-way valve 117 is toward the mixing barrel 2. A water supply plate 118 is slidingly arranged in the water supply pipe 115, and the water supply A water supply rod 119 is provided on the side of the plate 118 away from the mixing barrel 2, and the water supply rod 119 is slidably provided on the end of the water supply pipe 115 away from the mixing barrel 2, and a control panel 1110 is provided on the end of the water supply rod 119 away from the water supply plate 118, and a control slot 1111 is provided in the control panel 1110. A motor 1112 is provided under the hot water barrel 111, and a circular plate 1113 is provided at the output end of the motor 1112. A control rod 1114 is provided on the side of the circular plate 1113 away from the motor 1112, and the control rod 1114 is away from the axis of the circular plate 1113. The control rod 1114 is slidably provided in the control slot 1111. When the motor 1112 is turned on, the motor 1112 will control the circular plate 1111 at its output end. 13 rotates, when the circular plate 1113 rotates, the circular plate 1113 will drive the control rod 1114 at its output end - the axis of the circular plate 1113 is the axis to rotate, when the control rod 1114 rotates with the circular plate 1113, the control rod 1114 will slide in the control groove 1111 while rotating, and drive the control plate 1110 to reciprocate through the control groove 1111, so that the control plate 1110 drives the water supply rod 119 on one side to reciprocate together, and the water supply rod 119 will drive the water supply plate 118 at one end to slide in the water supply pipe 115 during the movement. When the water supply plate 118 moves in the direction of the motor 1112, the water supply one-way valve 117 is closed, so that the water supply pipe 115 is shaped A negative pressure is formed, thereby opening the connecting one-way valve 116 in the connecting pipe 114, and the hot water in the hot water barrel 111 is extracted through the connecting one-way valve 116, so that the hot water enters the water supply pipe 115. When the water supply plate 118 moves toward the mixing barrel 2, the connecting one-way valve 116 is closed, and the water supply one-way valve 117 is opened. The water supply plate 118 will push the hot water into the water inlet pipe 121. The heating rod 113 arranged at the bottom of the barrel cover 112 can continuously heat the water in the hot water barrel 111, so that the water pushed into the water inlet pipe 121 by the water supply pipe 115 is always hot water. Its function is to push the hot water in the hot water barrel 111 to the outside of the mixing barrel 2, so that the liquid in the mixing barrel 2 reaches an appropriate reaction temperature.

[0057] The wrapping member 12 includes a water inlet pipe 121 arranged at the end of the water supply pipe 115 away from the motor 1112, and a connecting pipe 122 is provided at the end of the water inlet pipe 121 away from the water supply pipe 115, and the connecting pipe 122 is communicated with the water inlet pipe 121, and three wrapping pipes 123 are provided on the outside of the communicating pipe 122, and the opposite ends of the three wrapping pipes 123 are all arranged at the bottom of the corresponding batching barrel 3, and the three feeding pipes 98 are respectively located in the corresponding wrapping pipes 123, so that a cavity is formed between the three wrapping pipes 123 and the corresponding feeding pipes 98, and a wrapping cover 124 is provided on the outside of the mixing barrel 2, and the wrapping cover 124 is communicated with the three wrapping pipes 123, and the wrapping cover 124 completely wraps the outer wall of the mixing barrel 2, so that a cavity is formed between the mixing barrel 2 and the wrapping cover 124, and an insulation pipe 125 is provided on the outside of the discharge pipe 91, and the insulation pipe 125 is provided on the reducer at the end away from the discharge pipe 91. On the outside of tube 2 94, the discharge pipe 91, reducer 1 92, thin tube 93 and reducer 2 94 are all located in the insulation tube 125, so that a cavity is formed between the inner wall of the insulation tube 125 and the outer walls of the discharge pipe 91, reducer 1 92, thin tube 93 and reducer 2 94. When hot water enters the water inlet pipe 121, the hot water will enter the three wrapped tubes 123 respectively through the connecting pipe 122 at one end of the water inlet pipe 121, so that the ingredients begin to preheat in the process of entering the mixing barrel 2, and the hot water will enter the wrapped cover 124 and the insulation tube 125 while circulating, replacing the hot water in the wrapped cover 124, the wrapped tube 123 and the insulation tube 125, so that the wrapped tube 123, the wrapped cover 124 and the insulation tube 125 always maintain the same temperature as that in the hot water barrel 111. Its function is to ensure that the mixed liquid in the mixing barrel 2 has sufficient temperature to react.

[0058] The recycling part 13 includes a recycling pipe 131 arranged on one side of the wrapping cover 124, and the end of the recycling pipe 131 away from the wrapping cover 124 is arranged in the hot water barrel 111, and the two ends of the recycling pipe 131 are respectively communicated with the corresponding wrapping cover 124 and the hot water barrel 111, a fixing plate 132 is provided in the recycling pipe 131, a fixing groove 133 is opened in the fixing plate 132, a fixing frame 134 is provided at the bottom of the fixing plate 132, a fixing spring 135 is provided at the axis of the fixing frame 134, and a rubber plate 136 is provided on the top of the fixing spring 135 for use with the fixing groove 133. When the hot water replaces the water in the wrapping cover 124, the wrapping pipe 123 and the insulation pipe 125, the water inside them that has been used for insulation will be squeezed to the recycling pipe 131, and the recycling After being squeezed by the water pressure, the water in the collection tube 131 will push the pressure toward the rubber plate 136, causing the rubber plate 136 to separate from the fixed plate 132, and then the fixed groove 133 in the fixed plate 132 to separate from the obstruction of the rubber plate 136, so that the water flow can pass through the fixed groove 133 and enter the hot water barrel 111 along the recovery tube 131, and then be heated by the heating rod 113. The fixing spring 135 can control the rubber plate 136 to block the fixed groove 133 when the water pressure in the recovery tube 131 is in a normal state, thereby preventing the hot water in the wrapping cover 124 from being lost. Its function is to circulate the water in the hot water barrel 111 and the wrapping cover 124, the wrapping tube 123, and the insulation tube 125 to ensure that the ingredients in the mixing barrel 2 have sufficient reaction temperature.

[0059] During use, when it is necessary to mix and stir the ingredients in the mixing barrel 2, the electric push rod 61 is turned on, and the electric push rod 61 will control the driving plate 62 at its output end to slide on the inner wall of the mixing barrel 2, and control the driving plate 62 to move upward. When the driving plate 62 moves upward, the driving plate 62 will drive the bearing 63 to move upward together, and the bearing 63 will drive the driving rope 64 at its bottom upward together, so that the other end of the driving rope 64 pulls the transmission ring 72. The three ingredient barrels 3 are respectively used to place stearic acid solution, caustic soda, and zinc sulfate aqueous solution. When the driving rope 64 pulls the transmission ring 72, the driving rope 64 will pass through the transmission ring 72. The movable groove 74 controls the transmission plate 73 to rotate on the top of the round rod 71, thereby making the transmission plate 73 drive the transmission ring 72 to rotate on the outside of the round rod 71. When the transmission ring 72 rotates, the transmission ring 72 will make the transmission torsion spring 75 inside it start to store force, and the rotating ring 76 will rotate along with the transmission ring 72 under the action of the reset shaft 81. When the transmission plate 73 rotates along with the transmission ring 72, the multiple reset shafts 81 rotating in the transmission plate 73 will rotate around the transmission plate 73 as the axis, thereby making the multiple reset shafts 81 drive the stirring plates 4 outside thereof to rotate in the stirring barrel 2. The reset torsion spring 75 provided at one end of the reset shaft 81 The spring 82 can control the rotation of the reset shaft 81 while the driving plate 62 presses the stirring plate 4 downward, so that the reset shaft 81 drives the stirring plate 4 to fit the bottom of the inner wall of the stirring barrel 2. When the driving plate 62 is upward, the reset torsion spring 82 can control the rotation of the reset shaft 81, so that the stirring plate 4 outside the reset shaft 81 rotates along with the reset shaft 81, thereby expanding the stirring plate 4 and stirring the mixed liquid when rotating along with the transmission plate 73. The limit block 83 provided at one end of the reset shaft 81 close to the rotating ring 76 can cooperate with the limit groove 84 in the rotating ring 76 to limit the rotation angle of the reset shaft 81. To prevent the stirring plate 4 from changing its angle due to the resistance of the water flow during the stirring process of the water flow, when the driving plate 62 moves downward, the transmission torsion spring 75 controls the transmission ring 72 to reverse, thereby causing the driving rope 64 to be wound around the outside of the transmission ring 72 again. At this time, due to the presence of the bearing 63, the driving rope 64 will not be tangled when it is retracted, thereby achieving the effect of facilitating folding. The rotating transmission ring 72 can also drive the multiple reset shafts 81 to reverse through the transmission plate 73, thereby causing the multiple stirring plates 4 to stir the mixed liquid again, making the mixing more uniform.

[0060] When the driving plate 62 moves upward, the driving plate 62 will generate negative pressure in the mixing barrel 2, thereby opening the feeding check valve 99 in the feeding pipe 98, and extracting the ingredients in the ingredient barrel 3 through the feeding pipe 98, so that the ingredients in the three ingredient barrels 3 enter the mixing barrel 2. While the driving plate 62 moves upward and extracts the ingredients, the stirring plate 4 is stirring and mixing the ingredients that have just entered the mixing barrel 2. Until the driving plate 62 stops moving, the feeding check valve 99 is closed, and the stirring plate 4 stops rotating. At this time, the first mixing and stirring is completed. When the driving plate 62 moves downward, the liquid in the mixing barrel 2 is reversely stirred by the stirring plate 4. After the rotation, the liquid is mixed and stirred for the second time and discharged through the discharge pipe 91. The discharged liquid first passes through the reducer 1 92 and opens the discharge check valve 95 when entering the narrow tube 93. According to the narrow tube effect, the liquid flow rate increases when entering the narrow channel, so that the mixed liquid has an increased flow rate when passing through the reducer 1 92 and the narrow tube 93, generating an impact force. When the mixed liquid enters the reducer 2 94 after passing through the narrow tube 93, the mixed liquid impacts the impact plate 97, causing the impact plate 97 to rotate and disperse the liquid, thus completing the third mixing and making the three ingredients completely mixed.

[0061] When the three ingredients are stirred and mixed in the mixing barrel 2, the motor 1112 is turned on, and the motor 1112 will control the circular plate 1113 at its output end to rotate. When the circular plate 1113 rotates, the circular plate 1113 will drive the control rod 1114 at its output end - the axis of the circular plate 1113 is the axis to rotate. When the control rod 1114 rotates with the circular plate 1113, the control rod 1114 will slide in the control groove 1111 while rotating, and drive the control plate 1110 to reciprocate through the control groove 1111, so that the control plate 1110 drives the water supply rod 119 on one side to reciprocate together, and the water supply rod 119 will drive one end of it during the movement. The water supply plate 118 slides in the water supply pipe 115. When the water supply plate 118 moves in the direction of the motor 1112, the water supply one-way valve 117 is closed, so that a negative pressure is formed in the water supply pipe 115, and then the connecting one-way valve 116 in the connecting pipe 114 is opened, and the hot water in the hot water barrel 111 is extracted through the connecting one-way valve 116, so that the hot water enters the water supply pipe 115. When the water supply plate 118 moves in the direction of the mixing barrel 2, the connecting one-way valve 116 is closed, the water supply one-way valve 117 is opened, and the water supply plate 118 pushes the hot water into the water inlet pipe 121. The heating rod 113 provided at the bottom of the barrel cover 112 can continuously heat the water in the hot water barrel 111, so that the water supply The water pushed into the water inlet pipe 121 by the water pipe 115 is always hot water. When the hot water enters the water inlet pipe 121, the hot water will enter the three wrapped pipes 123 respectively through the connecting pipe 122 at one end of the water inlet pipe 121, so that the ingredients begin to preheat in the process of entering the mixing barrel 2, and the hot water will enter the wrapped cover 124 and the insulation pipe 125 while circulating, and the hot water in the wrapped cover 124, the wrapped pipe 123 and the insulation pipe 125 will be replaced, so that the wrapped pipe 123, the wrapped cover 124 and the insulation pipe 125 will always maintain the same temperature as that in the hot water barrel 111. When the water is replaced, the water inside it that has been used for insulation will be squeezed toward the recovery pipe 131. After being squeezed by the water pressure, the water in the recovery pipe 131 will squeeze the pressure toward the rubber plate 136, causing the rubber plate 136 to separate from the fixed plate 132, and then the fixed groove 133 in the fixed plate 132 to separate from the obstruction of the rubber plate 136, so that the water flow can pass through the fixed groove 133 and enter the hot water barrel 111 along the recovery pipe 131, and then be heated by the heating rod 113. The fixed spring 135 can control the rubber plate 136 to block the fixed groove 133 when the water pressure in the recovery pipe 131 is in a normal state, thereby preventing the hot water in the wrapping cover 124 from being lost.

[0062] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0063] While the embodiments of the present invention have been shown and described, it will be apparent to those skilled in the art that various changes, modifications, substitutions, and alterations can be made to the embodiments without departing from the principles and spirit of the invention.

Claims

1. A zinc stearate mixing reaction device capable of intermittent feeding, comprising a support frame (1); characterized in that: Also includes A stirring barrel (2) is arranged below the support frame (1), and the mixed zinc stearate ingredients are stored in the stirring barrel (2); There are three batching barrels (3), and the three batching barrels (3) are respectively arranged on one side of the mixing barrel (2); A plurality of stirring plates (4) are provided, and the plurality of stirring plates (4) are all provided in the stirring barrel (2); A stirring assembly (5) is arranged in the stirring barrel (2), and the stirring assembly (5) is used to control the ingredients in the three batching barrels (3) to enter the batching barrel (3), and to control the plurality of stirring plates (4) to stir the mixed ingredients in the batching barrels (3) while rotating, so that the mixed ingredients are evenly mixed and discharged from the stirring barrel (2); The stirring assembly (5) includes a driving member (6) arranged on the support frame (1), and the driving member (6) is used to provide power for the rotation of the plurality of stirring plates (4). A transmission member (7) is provided in the stirring barrel (2), and the transmission member (7) is used to transmit power for the rotation of the plurality of stirring plates (4). A plurality of reset members (8) are provided in the stirring barrel (2), and the plurality of reset members (8) are used to control the corresponding stirring plates (4) to reset in time. A discharge member (9) is provided on the outside of the stirring barrel (2), and the discharge member (9) is used to control the discharge of the zinc stearate after uniform mixing in the stirring barrel (2), and the ingredients in the three ingredient barrels (3) enter the stirring barrel (2). The driving member (6) includes an electric push rod (61) arranged on the support frame (1), a driving plate (62) is provided at the output end of the electric push rod (61), a bearing (63) is provided at the bottom of the driving plate (62), the bearing (63) is rotatably arranged in the driving plate (62) on one side close to the axis thereof, and a driving rope (64) is provided at the bottom of the bearing (63) on the side away from the axis of the driving plate (62). A temperature control component (10) is provided on the outside of the stirring barrel (2), and the temperature inside the stirring barrel (2) is controlled by the temperature control component (10) so as to be at a temperature required for the zinc stearate to be stirred and mixed during overcharging; The temperature control assembly (10) includes a water supply component (11) arranged on one side of the support frame (1), and the water supply component (11) includes a hot water bucket (111) arranged on one side of the mixing barrel (2) for storing water. The water supply component (11) is used to control hot water to always flow outside the mixing barrel (2). A wrapping component (12) is provided on the outside of the mixing barrel (2), and the wrapping component (12) is used to wrap the mixing barrel (2). A recovery component (13) is provided on one side of the mixing barrel (2), and the recovery component (13) is used to recover water with a lower temperature.

2. The zinc stearate mixing reaction device capable of intermittent feeding according to claim 1, characterized in that: The transmission member (7) comprises a round rod (71) arranged in the mixing barrel (2), a transmission ring (72) is rotatably arranged on the outer side of the round rod (71), a transmission plate (73) is arranged on the outer side of the transmission ring (72), a transmission groove (74) is opened in the transmission plate (73), and the driving rope (64) passes through the transmission groove (74) and is wound around the outer side of the transmission ring (72), and the end of the driving rope (64) away from the bearing (63) is arranged on the outer side of the transmission ring (72), a transmission torsion spring (75) is arranged on the outer side of the round rod (71), and the end of the transmission torsion spring (75) away from the round rod (71) is arranged on the inner wall of the transmission ring (72), a rotating ring (76) used in conjunction with the transmission ring (72) is rotatably arranged in the mixing barrel (2), and the plurality of stirring plates (4) are located between the rotating ring (76) and the transmission ring (72).

3. The zinc stearate mixing reaction device capable of intermittent loading according to claim 2, characterized in that: The reset member (8) includes a reset shaft (81) rotatably arranged in the transmission ring (72), a reset torsion spring (82) is arranged on the outside of the reset shaft (81), and the end of the reset torsion spring (82) away from the reset shaft (81) is arranged on the transmission ring (72), the end of the reset shaft (81) away from the transmission ring (72) is rotatably arranged in the rotating ring (76), a limit block (83) is arranged at the end of the reset shaft (81) close to the rotating ring (76), and a limit groove (84) used in conjunction with the limit block (83) is opened in the rotating ring (76), and the plurality of stirring plates (4) are all arranged on the outside of the corresponding reset shaft (81).

4. The zinc stearate mixing reaction device capable of intermittent feeding according to claim 3, characterized in that: The discharge member (9) includes a discharge pipe (91) arranged on one side of the mixing barrel (2), the discharge pipe (91) is communicated with the mixing barrel (2), a reducer pipe (92) is provided at one end of the discharge pipe (91) away from the mixing barrel (2), a thin tube (93) is provided at one end of the reducer pipe (92) away from the discharge pipe (91), a reducer pipe (94) is provided at one end of the thin tube (93) away from the reducer pipe (92), and the opposite ends of the reducer pipe (92) and the reducer pipe (94) are both of the same radius as the discharge pipe (91), while the opposite ends of the reducer pipe (92) and the reducer pipe (94) are both in communication with the thin tube (93) at the same radius, and the radius of the discharge pipe (91) is greater than that of the thin tube (93), and the thin tube (93) is A discharge one-way valve (95) is provided inside the reducer (94), and the discharge one-way valve (95) opens toward the reducer (94). A discharge rack (96) is provided inside the reducer (94), and an impact plate (97) is provided at the axis of the discharge rack (96) through a rotating shaft, and the impact plate (97) is inclined on the side close to the capillary tube (93). Feeding pipes (98) are provided at the bottom of the three batching barrels (3), and the three feeding pipes (98) are communicated with the corresponding batching barrels (3). The opposite ends of the three feeding pipes (98) are provided at the bottom of the mixing barrel (2) and communicate with the mixing barrel (2). Feeding one-way valves (99) are provided inside the three feeding pipes (98), and the opening directions of the three feeding one-way valves (99) are all toward the mixing barrel (2).

5. The zinc stearate mixing reaction device capable of intermittent loading according to claim 4, characterized in that: The hot water bucket (111) is provided with a bucket cover (112) on the top, and a plurality of heating rods (113) are provided at the bottom of the bucket cover (112). A connecting pipe (114) is provided at the bottom of the hot water bucket (111), and the connecting pipe (114) is communicated with the hot water bucket (111). A water supply pipe (115) is provided at the bottom of the connecting pipe (114), and the connecting pipe (114) is communicated with the water supply pipe (115). A connecting one-way valve (116) is provided in the connecting pipe (114), and the opening direction of the connecting one-way valve (116) is toward the water supply pipe (115). A water supply one-way valve (117) is provided in the water supply pipe (115), and the water supply one-way valve (117) is directed toward the mixing bucket (2). A water supply plate (118) is provided in the water supply pipe (115). A water supply rod (119) is provided on a side of the plate (118) away from the mixing barrel (2), and the water supply rod (119) is slidably provided at an end of the water supply pipe (115) away from the mixing barrel (2). A control panel (1110) is provided at an end of the water supply rod (119) away from the water supply plate (118), and a control slot (1111) is provided in the control panel (1110). A motor (1112) is provided below the hot water barrel (111), and a circular plate (1113) is provided at the output end of the motor (1112). A control rod (1114) is provided on a side of the circular plate (1113) away from the motor (1112), and the control rod (1114) is away from the axis of the circular plate (1113). The control rod (1114) is slidably provided in the control slot (1111).

6. The zinc stearate mixing reaction device capable of intermittent loading according to claim 5, characterized in that: The wrapping member (12) includes a water inlet pipe (121) arranged at one end of the water supply pipe (115) away from the motor (1112), a connecting pipe (122) is arranged at one end of the water inlet pipe (121) away from the water supply pipe (115), and the connecting pipe (122) is communicated with the water inlet pipe (121), three wrapping pipes (123) are arranged on the outside of the connecting pipe (122), and the opposite ends of the three wrapping pipes (123) are arranged at the bottom of the corresponding batching barrel (3), and the three feeding pipes (98) are respectively located in the corresponding wrapping pipes (123), so that a cavity is formed between the three wrapping pipes (123) and the corresponding feeding pipes (98), and a wrapping cover (123) is arranged on the outside of the mixing barrel (2). 4), the wrapping cover (124) is in communication with the three wrapping tubes (123), and the wrapping cover (124) completely wraps the outer wall of the mixing barrel (2), so that a cavity is formed between the mixing barrel (2) and the wrapping cover (124), and an insulation tube (125) is provided on the outside of the discharge pipe (91), and the end of the insulation tube (125) away from the discharge pipe (91) is provided on the outside of the reducer tube (94), and the discharge pipe (91), the reducer tube (92), the thin tube (93) and the reducer tube (94) are all located in the insulation tube (125), so that a cavity is formed between the inner wall of the insulation tube (125) and the outer walls of the discharge pipe (91), the reducer tube (92), the thin tube (93) and the reducer tube (94).

7. The zinc stearate mixing reaction device capable of intermittent feeding according to claim 6, characterized in that: The recovery member (13) comprises a recovery pipe (131) arranged on one side of the wrapping cover (124), one end of the recovery pipe (131) away from the wrapping cover (124) is arranged in the hot water barrel (111), and both ends of the recovery pipe (131) are respectively communicated with the corresponding wrapping cover (124) and the hot water barrel (111), a fixing plate (132) is arranged in the recovery pipe (131), a fixing groove (133) is opened in the fixing plate (132), a fixing frame (134) is arranged at the bottom of the fixing plate (132), a fixing spring (135) is arranged at the axis of the fixing frame (134), and a rubber plate (136) used in conjunction with the fixing groove (133) is arranged at the top of the fixing spring (135).

Citation Information

Patent Citations

  • Mixing equipment

    CN115212752A

  • Discharging mechanism of stirrer

    CN116712925A