Organic silicon preparation device for clothing comfort regulator
Through the design of the rotating cylinder and the multi-channel feeding unit, the rapid and uniform mixing of silicone raw materials is achieved, which solves the problem of uneven mixing in the prior art and improves production efficiency.
Patent Information
- Application Number
- CN202510465872.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-15
- Publication Date
- 2025-08-15
AI Technical Summary
The existing silicone preparation device accumulates in layers during feeding, resulting in uneven mixing, affecting the production efficiency of clothing comfort regulators.
The rotary cylinder and multi-channel feeding unit are designed, combined with the injection unit and the stirring unit, and through multi-position injection and stirring treatment, ensuring that the raw materials are quickly and evenly mixed in the kettle body.
It improves the silicone production efficiency of clothing comfort regulators, reduces the mixing time of raw materials, and avoids stratified aggregation.
Smart Images

Figure CN120479336A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of organosilicon preparation, in particular to an organosilicon preparation device for a clothing comfort regulator. Background Art
[0002] With the continuous development of society and the significant improvement in people's living standards, people have higher expectations for the clothing they wear in their daily lives, especially in terms of comfort. Modern consumers are increasingly concerned with the wearing experience of clothing, seeking clothing that is softer, more breathable, and effectively prevents static electricity. In response to this market trend, organosilicon compounds, as highly effective clothing comfort modifiers, are widely used in the textile industry due to their unique physical and chemical properties. Organosilicon compounds can impart an exceptionally soft touch to textiles, significantly improve the breathability of clothing, and effectively reduce static electricity, providing a more comfortable and pleasant experience for the wearer. These advantages have led to organosilicon compounds playing an increasingly important role in the clothing manufacturing industry.
[0003] Currently, existing organosilicon production equipment has certain shortcomings in terms of reaction efficiency and product quality stability, resulting in varying performance of the resulting garment comfort conditioners. To improve the reaction efficiency and product quality stability of organosilicon production, the existing production process first adds the various reactants to a reactor in a predetermined ratio via a feed system. Next, the heating system is activated to raise the temperature within the reactor to the set reaction temperature. Simultaneously, a stirring system is activated to ensure thorough mixing of the reactants and promote the reaction. During the reaction, temperature and pressure sensors monitor the temperature and pressure within the reactor in real time and provide feedback to the temperature and pressure controllers. The temperature controller automatically adjusts the heating power and coolant flow rate based on the temperature signal to maintain the reaction temperature within the set range. The pressure controller adjusts the valves in the feed and discharge systems based on the pressure signal to ensure stable pressure within the reactor. After the reaction is complete, the heating and stirring systems are turned off, the discharge valve is opened, and the prepared organosilicon product is transferred to a product storage tank via the discharge system.
[0004] Although the equipment in the above scheme can fully mix and quickly react the reactants through the designed reactor and efficient heating and cooling system, thereby improving the reaction efficiency, during the feeding process, all the raw materials are put into the reactor at one time for stirring. Under this method, the raw materials are layered and aggregated together. This layered aggregation method causes the time for the raw materials to reach a fully uniform mixing state to become longer. Due to the unsatisfactory mixing state, the production efficiency of silicone for clothing comfort regulator is affected. Summary of the Invention
[0005] The object of the present invention is to provide a silicone preparation device for a clothing comfort regulator to solve the problems raised in the above background technology.
[0006] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: a silicone preparation device for a clothing comfort regulator, comprising a kettle body for fully mixing reactants, a drive motor installed on the top of the kettle body, and the drive motor is connected to a rotating drum via a belt drive structure; and further comprising: a multi-channel feeding unit installed inside the rotating drum for injecting different raw materials into the kettle body, an injection unit for injecting different raw materials at multiple positions is provided on the outside of the rotating drum, and multiple groups of stirring units are installed on the outside of the injection unit.
[0007] Preferably, the multi-channel feeding unit includes an annular shell, a limiting sleeve, a feeding pipe and a sealing bearing. The annular shells are evenly provided in plurality, and each of the annular shells is interference fit connected to the inner wall of the rotating cylinder. The outer wall of the annular shell is provided with a first through hole, and the limiting sleeve is rotatably connected to the middle part of the annular shell through the sealing bearing. Each of the limiting sleeves is provided with a second through hole connected to the annular shell. The number of the feeding pipes is equal to the number of the annular shells. The bottom end of each feeding pipe is fixedly inserted in the second through hole, and a third through hole is provided on the rotating cylinder at a position corresponding to the first through hole.
[0008] Preferably, the injection unit includes an injection shell, an injection tube and a swinging member. There are multiple injection shells distributed in a spiral shape on the outer wall of the rotating cylinder. The lengths of the multiple injection shells from top to bottom are distributed in increasing order. The multiple injection shells are not connected to each other. Each of the third through holes is connected to a corresponding injection shell. The injection tube is rotatably connected to the bottom of the injection shell. The swinging member is arranged on the outside of the injection tube. A linkage unit for driving multiple groups of the swinging members to swing synchronously is installed on the top of the rotating cylinder.
[0009] Preferably, the swinging member includes a swing arm, a sliding column, a rotating disk and a transmission rod, one end of the swing arm is fixedly connected to the injection tube, a sliding groove is provided on the swing arm, the sliding column is slidably connected in the sliding groove, the upper end of the sliding column is fixed at the bottom outer edge position of the rotating disk, one end of the transmission rod is fixed at the top center position of the rotating disk, the two ends of the transmission rod respectively pass through the upper and lower ends of the injection shell, and the transmission rod is rotatably connected to the injection shell through a bearing, and the output end of the linkage unit is fixedly connected to the transmission rod.
[0010] Preferably, the linkage unit includes a fixed gear ring, a connecting column and a transmission gear, the bottom of the fixed gear ring is fixed to the top of the kettle body through a plurality of connecting columns, the number of the transmission gears and the transmission rods is equal, and the transmission gears are meshed and connected with the fixed gear ring, and the transmission gear is fixedly sleeved on the top of the transmission rod.
[0011] Preferably, the stirring unit includes a limiting ring, a fixing column and a stirring paddle. The limiting ring is fixedly sleeved on the outer wall of the injection shell. There are multiple fixing columns fixed on the outer wall of the limiting ring, and each of the fixing columns is fixed with a stirring paddle at one end away from the limiting ring.
[0012] Preferably, the injection tube is L-shaped, and a one-way valve is fixed to the end of the injection tube.
[0013] Preferably, a sealing cover is fixed to the bottom of the injection shell, the swing arm, the slide column and the rotating disk are all arranged inside the sealing cover, and the injection pipe is rotatably connected to the sealing cover.
[0014] Compared with the prior art, the present invention has the following beneficial effects:
[0015] 1. The present invention is capable of feeding different kinds of raw materials into the kettle from different heights in sequence through the designed rotating drum, multi-channel feeding unit and injection unit, and simultaneously performing stirring during the feeding process, thereby facilitating rapid and uniform mixing of the raw materials, avoiding stratification and aggregation of the raw materials, and further improving the production efficiency of silicone for clothing comfort regulators.
[0016] 2. In the present invention, the injection pipe is driven by the swinging member to swing left and right, and different kinds of raw materials can be further injected into the kettle body from different angles. The mixing process of the raw materials becomes more efficient, which greatly reduces the time required for raw material mixing. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0018] Figure 2 This is a schematic structural diagram of the multi-channel feeding unit of the present invention;
[0019] Figure 3 It is a partial cross-sectional schematic diagram of the internal structure of the annular shell and the limiting sleeve of the present invention;
[0020] Figure 4 is a cross-sectional view of the injection unit of the present invention;
[0021] Figure 5 It is a structural schematic diagram of the injection unit and the linkage unit of the present invention;
[0022] Figure 6 It is a structural schematic diagram of the swinging member of the present invention;
[0023] Figure 7 Schematic diagram of the structure of the stirring unit of the present invention;
[0024] Figure 8 for Figure 1 Enlarged view of area A in the middle.
[0025] In the figure: 1. kettle body; 101. driving motor; 102. rotating drum; 2. multi-channel feeding unit; 201. annular shell; 202. limiting sleeve; 203. feeding pipe; 204. sealing bearing; 205. first through hole; 206. second through hole; 207. third through hole; 3. injection unit; 301. injection shell; 302. injection pipe; 303. swinging member; 3031. swing arm; 3032. sliding column; 3033. rotating disk; 3034. transmission rod; 3035. sliding groove; 304. one-way valve; 305. sealing cover; 4. stirring unit; 401. limiting ring; 402. fixed column; 403. stirring paddle; 5. linkage unit; 501. fixed gear ring; 502. connecting column; 503. transmission gear. DETAILED DESCRIPTION
[0026] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments 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 efforts are within the scope of protection of the present invention.
[0027] Example 1: Please refer to Figure 1 The organosilicon preparation device for a clothing comfort regulator shown in the figure includes a kettle 1 for fully mixing reactants. A drive motor 101 is installed on the top of the kettle 1. The drive motor 101 is connected to a rotating drum 102 via a belt transmission structure. The drive motor 101 drives the belt transmission structure to rotate, thereby driving the rotating drum 102 to rotate, driving the stirring structure in the kettle 1 to quickly mix the materials.
[0028] It also includes: a multi-channel feeding unit 2 installed inside the rotating cylinder 102 for injecting different raw materials into the kettle body 1, an injection unit 3 for injecting different raw materials at multiple positions is provided outside the rotating cylinder 102, and multiple groups of stirring units 4 are installed outside the injection unit 3.
[0029] In this solution, when the rotating drum 102 drives the stirring unit 4 to rotate and stir, different types of raw materials are injected into the injection unit 3 according to their respective paths through the multi-channel feeding unit 2, and the injection unit 3 can discharge the corresponding raw materials at different heights inside the kettle body 1, that is, during the injection process, various raw materials are discharged into the kettle body 1 separately and will not be discharged into the kettle body 1 in a concentrated manner. In the process of discharging the raw materials, the stirring unit 4 performs mixing and stirring treatment, thereby facilitating rapid and uniform mixing of the raw materials, avoiding the raw materials from being stratified and aggregated, and further improving the production efficiency of silicone for clothing comfort regulators.
[0030] For further information, see Figure 2 and Figure 3 The multi-channel feeding unit 2 includes an annular shell 201, a limiting sleeve 202, a feeding pipe 203 and a sealing bearing 204. There are multiple annular shells 201, and each annular shell 201 is interference fit with the inner wall of the rotating cylinder 102. The outer wall of the annular shell 201 is provided with a first through hole 205. The limiting sleeve 202 is rotatably connected to the middle part of the annular shell 201 through the sealing bearing 204. Each limiting sleeve 202 is provided with a second through hole 206 connected to the annular shell 201. The number of the feeding pipes 203 is equal to the number of the annular shells 201. The bottom end of each feeding pipe 203 is fixedly inserted in the second through hole 206. A third through hole 207 is provided on the rotating cylinder 102 at a position corresponding to the first through hole 205.
[0031] Specifically, the raw materials are pumped into the feed pipe 203 through the external injection system, and enter the annular shell 201 from the second through hole 206, then enter the third through hole 207 from the first through hole 205 on the annular shell 201, and finally enter the injection unit 3 at the corresponding position, thereby discharging different types of raw materials through multiple channels, avoiding pouring them in at one time and causing the raw materials to be layered and gathered together.
[0032] For further information, see Figure 4 and Figure 5 The injection unit 3 includes an injection shell 301, an injection tube 302 and a swinging member 303. The injection shells 301 are distributed in a spiral shape on the outer wall of the rotating cylinder 102. The lengths of the multiple injection shells 301 from top to bottom are distributed in an increasing manner. The multiple injection shells 301 are not connected to each other. Each of the third through holes 207 is connected to a corresponding injection shell 301. The injection tube 302 is rotatably connected to the bottom of the injection shell 301. The swinging member 303 is arranged on the outside of the injection tube 302. The top of the rotating cylinder 102 is installed with a linkage unit 5 for driving multiple groups of the swinging members 303 to swing synchronously.
[0033] Specifically, since the lengths of the multiple injection shells 301 are different, the positions at which the raw materials entering the injection shells 301 enter the kettle body 1 from the lowest injection tube 302 are also different, so that different types of raw materials are fed into the kettle body 1 in turn from different heights inside the kettle body 1, thereby facilitating rapid and uniform mixing of the raw materials and effectively improving the efficiency of mixing the raw materials.
[0034] For further information, see Figure 7 The stirring unit 4 includes a limiting ring 401, a fixing column 402 and a stirring paddle 403. The limiting ring 401 is fixedly sleeved on the outer wall of the injection shell 301. There are multiple fixing columns 402 fixed on the outer wall of the limiting ring 401, and each of the fixing columns 402 is fixed with a stirring paddle 403 at one end away from the limiting ring 401.
[0035] Specifically, when the rotating cylinder 102 rotates, it drives the multiple sets of limiting rings 401 outside the injection shell 301 to rotate, and then drives the stirring paddle 403 to rotate. Since there is a stirring paddle 403 below and above each injection shell 301, the injected raw materials will be stirred by the stirring paddle 403 during the falling process, so that the raw materials at different positions can be mixed evenly, greatly improving the mixing efficiency.
[0036] For further information, see Figure 6 The injection pipe 302 is "L"-shaped, and a one-way valve 304 is fixed at the end of the injection pipe 302. The one-way valve 304 can effectively prevent the raw materials in the kettle body 1 from flowing back along the injection pipe 302, thereby ensuring that the injection path of the material remains single and avoiding possible material mixing or contamination problems.
[0037] Example 2: Please refer to Figure 5 and Figure 6 This embodiment further explains the first embodiment, and the difference lies in that the injection method of the injection tube 302 is optimized.
[0038] Specifically, the swing member 303 includes a swing arm 3031, a sliding column 3032, a rotating disk 3033 and a transmission rod 3034. One end of the swing arm 3031 is fixedly connected to the injection tube 302. A sliding groove 3035 is provided on the swing arm 3031. The sliding column 3032 is slidably connected to the sliding groove 3035. The upper end of the sliding column 3032 is fixed to the bottom outer edge of the rotating disk 3033. One end of the transmission rod 3034 is fixed to the top center of the rotating disk 3033. The two ends of the transmission rod 3034 respectively pass through the upper and lower ends of the injection shell 301, and the transmission rod 3034 is rotatably connected to the injection shell 301 through a bearing. The output end of the linkage unit 5 is fixedly connected to the transmission rod 3034.
[0039] At the same time, the linkage unit 5 includes a fixed gear ring 501, a connecting column 502 and a transmission gear 503. The bottom of the fixed gear ring 501 is fixed to the top of the kettle body 1 through multiple connecting columns 502. The number of the transmission gears 503 and the transmission rod 3034 is equal, and the transmission gear 503 is meshed and connected with the fixed gear ring 501. The transmission gear 503 is fixedly sleeved on the top of the transmission rod 3034.
[0040] Specifically, since each transmission rod 3034 is connected to a transmission gear 503, the rotating drum 102 will drive the transmission gear 503 to revolve around the central axis of the rotating drum 102 when it rotates, and the transmission gear 503 is meshed with the fixed gear ring 501, so that multiple transmission gears 503 will also rotate when they revolve, and the rotating transmission gear 503 drives the transmission rod 3034 to rotate, prompting the rotating disks 3033 under the multiple injection shells 301 to work together, and the rotating disk 3033 will drive the sliding column 3032 to slide in the sliding groove 3035 of the swing arm 3031, thereby driving the swing arm 3031 to swing in an arc, and finally driving the injection tube 302 to swing back and forth, and adjusting the angle of the material injected into the kettle body 1 by the injection tube 302 by swinging left and right, so that different kinds of raw materials can be further injected into the kettle body 1 from different angles and directions, making the mixing process of the raw materials more efficient and greatly reducing the time required for mixing the raw materials.
[0041] Example 3: Please refer to Figure 6 and Figure 8 This embodiment further illustrates other embodiments, the difference being that the connection components between the swing member 303 and the injection shell 301 are optimized.
[0042] Specifically, the swing member 303 includes a swing arm 3031, a slide column 3032, a rotating disk 3033 and a transmission rod 3034. One end of the swing arm 3031 is fixedly connected to the injection tube 302. A sliding groove 3035 is provided on the swing arm 3031. The slide column 3032 is slidably connected to the sliding groove 3035. The upper end of the slide column 3032 is fixed to the outer edge of the bottom of the rotating disk 3033. One end of the transmission rod 3034 is fixed to the top of the rotating disk 3033. At the center position, the two ends of the transmission rod 3034 respectively pass through the upper and lower ends of the injection shell 301, and the transmission rod 3034 is rotatably connected to the injection shell 301 through a bearing, and the output end of the linkage unit 5 is fixedly connected to the transmission rod 3034; a sealing cover 305 is also fixed to the bottom of the injection shell 301, the swing arm 3031, the sliding column 3032 and the rotating disk 3033 are all arranged inside the sealing cover 305, and the injection tube 302 is rotatably connected to the sealing cover 305.
[0043] Specifically, due to the complex state of coexistence of liquid and solid inside the kettle body 1, in order to avoid the adsorption of materials on the swing arm 3031, the sliding column 3032 and the rotating disk 3033, thereby affecting the transmission effect, measures are taken to seal these three in the sealing cover 305, which can effectively isolate the direct contact between the materials and these transmission components, thereby ensuring the normal operation and transmission efficiency of the equipment.
[0044] 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.
[0045] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A silicone preparation device for a clothing comfort regulator, comprising: A kettle (1) for fully mixing reactants, wherein a driving motor (101) is installed on the top of the kettle (1), and the driving motor (101) is connected to a rotating drum (102) via a belt transmission structure; It is characterized by further comprising: A multi-channel feeding unit (2) is installed inside the rotating cylinder (102) for injecting different raw materials into the kettle (1); an injection unit (3) is provided outside the rotating cylinder (102) for injecting different raw materials at multiple positions; and multiple groups of stirring units (4) are installed outside the injection unit (3).
2. The organic silicon preparation device for a clothing comfort regulator according to claim 1, characterized in that: The multi-channel feeding unit (2) comprises an annular shell (201), a limiting sleeve (202), a feeding pipe (203) and a sealing bearing (204). The annular shell (201) is evenly provided with a plurality of them, and each of the annular shells (201) is connected to the inner wall of the rotating cylinder (102) by interference fit. The outer wall of the annular shell (201) is provided with a first through hole (205). The limiting sleeve (202) is connected to the annular shell through the sealing bearing (204). (201) is rotatably connected to the middle part of the annular shell (201), each of the limiting sleeves (202) is provided with a second through hole (206) connected to the annular shell (201), the number of the feeding pipes (203) is equal to the number of the annular shell (201), the bottom end of each of the feeding pipes (203) is fixedly inserted into the second through hole (206), and a third through hole (207) is provided on the rotating cylinder (102) at a position corresponding to the first through hole (205).
3. The organic silicon preparation device for a clothing comfort regulator according to claim 1, characterized in that: The injection unit (3) comprises an injection shell (301), an injection tube (302) and an oscillating member (303). A plurality of the injection shells (301) are spirally distributed on the outer wall of the rotating cylinder (102). The lengths of the plurality of injection shells (301) are distributed in increasing order from top to bottom. The plurality of injection shells (301) are not connected to each other. Each of the third through holes (207) is connected to a corresponding injection shell (301). The injection tube (302) is rotatably connected to the bottom of the injection shell (301). The oscillating member (303) is arranged on the outside of the injection tube (302). A linkage unit (5) for driving a plurality of groups of oscillating members (303) to oscillate synchronously is installed on the top of the rotating cylinder (102).
4. The organic silicon preparation device for a clothing comfort regulator according to claim 3, characterized in that: The swing member (303) comprises a swing arm (3031), a sliding column (3032), a rotating disk (3033) and a transmission rod (3034). One end of the swing arm (3031) is fixedly sleeved with the injection tube (302). A sliding groove (3035) is provided on the swing arm (3031). The sliding column (3032) is slidably connected in the sliding groove (3035). The upper end of the sliding column (3032) is fixed at the outer edge of the bottom of the rotating disk (3033). One end of the transmission rod (3034) is fixed at the top center of the rotating disk (3033). The two ends of the transmission rod (3034) respectively pass through the upper and lower ends of the injection shell (301), and the transmission rod (3034) is rotatably connected to the injection shell (301) through a bearing. The output end of the linkage unit (5) is fixedly connected to the transmission rod (3034).
5. The organic silicon preparation device for a clothing comfort regulator according to claim 4, characterized in that: The linkage unit (5) comprises a fixed gear ring (501), a connecting column (502) and a transmission gear (503); the bottom of the fixed gear ring (501) is fixed to the top of the kettle body (1) via a plurality of connecting columns (502); the number of the transmission gears (503) and the number of the transmission rods (3034) are equal, and the transmission gears (503) are meshed and connected with the fixed gear ring (501); and the transmission gear (503) is fixedly sleeved on the top of the transmission rod (3034).
6. The organic silicon preparation device for a clothing comfort regulator according to claim 3, characterized in that: The stirring unit (4) comprises a limiting ring (401), a fixing column (402) and a stirring paddle (403); the limiting ring (401) is fixedly sleeved on the outer wall of the injection shell (301); a plurality of fixing columns (402) are fixed on the outer wall of the limiting ring (401); and a stirring paddle (403) is fixed on the end of each fixing column (402) away from the limiting ring (401).
7. The organic silicon preparation device for a clothing comfort regulator according to claim 3, characterized in that: The injection pipe (302) is L-shaped, and a one-way valve (304) is fixed at the end of the injection pipe (302).
8. The organic silicon preparation device for a clothing comfort regulator according to claim 4, characterized in that: A sealing cover (305) is also fixed to the bottom of the injection shell (301), the swing arm (3031), the sliding column (3032) and the rotating disk (3033) are all arranged inside the sealing cover (305), and the injection pipe (302) is rotatably connected to the sealing cover (305).