Capryloyl hydroxamic acid dissolving device
By introducing a drive component and a guide component into the capryloyl hydroxamic acid dissolving device, combined with the design of a transmission rod, a wave table, and a reciprocating spring, uniform stirring and rapid cleaning of capryloyl hydroxamic acid are achieved, solving the problems of uneven dissolution and inconvenient cleaning in traditional devices, and improving dissolution efficiency and the practicality of the device.
Patent Information
- Application Number
- CN202423047111.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-10
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-12-10
AI Technical Summary
In traditional capryloyl hydroxamic acid dissolution devices, simple rotational motion is insufficient to break up the agglomeration between particles, resulting in low dissolution rate and uneven dissolution.
The system employs a drive assembly and a guide assembly to drive the stirring rod, which in turn drives the stirring blade to rotate around the drive rod. Simultaneously, the system utilizes a transmission rod, annular wave table, T-shaped slide bar, and reciprocating spring to cause the stirring rod to reciprocate along the length of the T-shaped slide bar while rotating, generating strong shearing force and convection to break up the agglomerated structure.
The stirring efficiency and uniformity of octanoyl hydroxamic acid were improved, enhancing the dissolution effect. The design of the scraper and ejector assembly enabled rapid cleaning of the material at the bottom of the reactor, improving the practicality of the device.
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Figure CN223615879U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of dissolution equipment technology, and in particular to an octanoyl hydroxamic acid dissolution device. Background Technology
[0002] Octanoyl hydroxamic acid, as an organic acid, has attracted much attention due to its unique chemical structure and wide range of applications. It serves as a collector in the flotation of metal oxide minerals and also plays an important role in personal care and cosmetics.
[0003] However, due to its solid state and limited solubility in water or other solvents, capryloyl hydroxamic acid is often difficult to disperse uniformly, which limits its effectiveness. To fully realize its unique chemical properties and application potential, capryloyl hydroxamic acid needs to be converted to a liquid state through a dissolution process, making it easier to mix, store, transport, and apply. Therefore, dissolving capryloyl hydroxamic acid is not only a key step in improving its effectiveness but also an important prerequisite for expanding its application areas.
[0004] In traditional capryloyl hydroxamic acid dissolution devices, the stirring blades are usually fixed or perform simple rotational motion. These stirring methods are difficult to fully break up the agglomeration between particles during the stirring process, resulting in problems such as low dissolution rate and uneven dissolution. Utility Model Content
[0005] The purpose of this application is to solve the problem that in traditional capryloyl hydroxamic acid dissolving devices, simple rotational motion is insufficient to break up the agglomeration between particles during the stirring process, resulting in low dissolution rate and uneven dissolution. This application provides a capryloyl hydroxamic acid dissolving device.
[0006] To achieve the above objectives, this application specifically adopts the following technical solution:
[0007] An octanoyl hydroxamic acid dissolving device includes a reaction vessel with an inlet at one end and an outlet at the bottom. A drive rod is rotatably connected to the top of the reaction vessel. A lifting sleeve is symmetrically fixedly connected to one end of the drive rod. A T-shaped slide rod is slidably connected inside the lifting sleeve. The top of the T-shaped slide rod passes through the lifting sleeve and is fixedly connected to a stirring rod. Multiple stirring blades are fixedly connected to one end of the stirring rod. A reciprocating spring is sleeved on one end of the T-shaped slide rod. A transmission rod is fixedly connected to one end of the stirring rod. An annular wave table adapted to the transmission rod is fixedly connected to the inside of the reaction vessel. A guide assembly for guiding the stirring rod to rotate synchronously is symmetrically installed on one end of the drive rod. A drive assembly for driving the drive rod to rotate is installed on the top of the reaction vessel.
[0008] By adopting the above technical solution, and through the coordinated use of the drive component and the guide component, the drive component can drive the stirring rod to rotate and stir the stirring blades around the drive rod as the center. At the same time, by utilizing the coordination of the transmission rod, the annular wave table, the T-shaped slide bar, and the reciprocating spring, the drive rod drives the stirring rod to rotate while simultaneously moving it back and forth along the length of the T-shaped slide bar. This achieves the stirring rod driving the stirring blades to rotate and reciprocate up and down, effectively increasing the stirring coverage area of the stirring rod and stirring blades inside the reactor. This generates stronger shear force and convection, breaks down the agglomerate structure of octanoyl hydroxamic acid, and makes the stirring of octanoyl hydroxamic acid more uniform, effectively improving the stirring efficiency and effect of octanoyl hydroxamic acid.
[0009] Furthermore, the guiding assembly includes a guide block symmetrically fixedly connected to one end of the drive rod, and one end of the stirring rod is provided with a guide slot adapted to the guide block.
[0010] By adopting the above technical solution, and by setting the guide block and guide slot to work together, it is easy to drive the stirring rod and the drive rod to rotate synchronously when the drive rod and the T-shaped slide rod drive the stirring rod to rotate. This reduces the situation where the stirring rod deflects around the T-shaped slide rod as the center, and improves the stability of the device.
[0011] Furthermore, the drive assembly includes a driven gear fixedly connected to the top of the drive rod, a drive motor fixedly connected to the top of the reactor, and a drive gear meshing with the driven gear fixedly connected to the output end of the drive motor.
[0012] By adopting the above technical solution and setting up the cooperation between the driving gear and the driven gear, it is easy to drive the driving motor to mesh with the driving gear, thereby driving the drive rod to rotate, thus improving the practicality of the device.
[0013] Furthermore, one end of the transmission rod is ball-jointed with a ball bearing, and one end of the ball bearing abuts against the top of the annular wave platform.
[0014] By adopting the above technical solution, and through the cooperation of the ball bearings and the transmission rod, the wear between the transmission rod and the annular wave table is effectively reduced, the service life of the device is extended, and the jamming between the transmission rod and the annular wave table is reduced.
[0015] Furthermore, the bottom of the drive rod is provided with an ejection groove, the bottom of the reactor is equipped with a scraper, and the top of the scraper is fixedly connected with a rectangular ejection rod. One end of the rectangular ejection rod passes through the drive rod and extends into the interior of the ejection groove. An ejection assembly for ejecting the scraper is installed inside the ejection groove.
[0016] By adopting the above technical solution, and by setting the ejector component and scraper to work together, the ejector component can drive the scraper to fit against the bottom of the reactor. Then, by activating the drive component and the drive rod, the scraper can be driven to scrape off the material adhering to the bottom of the reactor. The scraped material can then be discharged through the outlet, thus facilitating the cleaning and removal of the material adhering to the bottom of the reactor.
[0017] Furthermore, the ejection assembly includes a compression plate fixedly connected to the top of the rectangular ejection rod, the compression plate being slidably connected inside the ejection groove, and an ejection spring being fixedly connected to the top of the compression plate.
[0018] By adopting the above technical solution, and by setting the ejector spring and the extrusion plate together, the scraper can be ejected downward along the length of the rectangular ejector rod, so that the scraper fits into the inner bottom of the reactor, thereby improving the scraping effect of the scraper on the material adhering to the bottom of the reactor.
[0019] Furthermore, the scraper has a groove at the bottom middle section that matches the discharge port.
[0020] By adopting the above technical solution and using the groove in conjunction with the discharge port, the area of the scraper bottom blocking the top of the discharge port is effectively reduced, thereby improving the discharge effect of the discharge port.
[0021] Furthermore, the drive rod has a mounting groove in the middle section, a temperature sensor is fixedly connected inside the mounting groove, a controller is fixedly connected to one side of the reactor, a heating chamber is provided in the middle section of the reactor, an electric heating wire is fixedly connected inside the heating chamber, and the controller is electrically connected to the temperature sensor and the electric heating wire.
[0022] By adopting the above technical solution, and by setting up a temperature sensor, controller, and electric heating wire in combination, it is convenient to control the opening and closing of the electric heating wire by the controller according to the working temperature monitored in real time in the installation tank, thereby realizing the temperature regulation of the raw materials inside the reactor and improving the practicality of the device.
[0023] In summary, this application includes at least one of the following beneficial effects:
[0024] 1. By setting up the driving component and the guiding component in combination, the driving component can drive the stirring rod to rotate and stir the stirring blades around the driving rod as the center. At the same time, by using the transmission rod in conjunction with the annular wave table, T-shaped slide bar, and reciprocating spring, the driving rod drives the stirring rod to rotate while simultaneously moving the stirring rod back and forth along the length of the T-shaped slide bar. This achieves the stirring rod driving the stirring blades to rotate and reciprocate up and down at the same time, effectively increasing the stirring coverage area of the stirring rod and stirring blades inside the reactor, generating stronger shear force and convection, making the stirring of octanoyl hydroxamic acid more uniform, and effectively improving the stirring efficiency and effect of octanoyl hydroxamic acid.
[0025] 2. The drive assembly drives the drive rod to rotate the scraper at a slow speed. At the same time, an ejector spring rebounds and ejects the extrusion slide plate, causing the extrusion slide plate to push the scraper downwards along the length of the rectangular ejector rod. This causes the bottom of the scraper to come into contact with the bottom of the reactor, allowing the scraper to scrape the material adhering to the bottom of the reactor and push it through the groove under the force of gravity into the discharge port. This facilitates the rapid discharge of the material adhering to the bottom of the reactor and effectively improves the practicality of the device. Attached Figure Description
[0026] Figure 1 This is a three-dimensional structural diagram of the main body of the device in this application.
[0027] Figure 2 This is a side sectional view of the main body of the device in this application.
[0028] Figure 3 This is a partial exploded view of the main structure of the device in this application.
[0029] Explanation of reference numerals in the attached figures:
[0030] 1. Reactor; 2. Inlet; 3. Outlet; 4. Drive rod; 5. Lifting sleeve; 6. T-shaped slide bar; 7. Stirring rod; 8. Stirring blade; 9. Reciprocating spring; 10. Transmission rod; 11. Annular wave table; 12. Guide block; 13. Guide slot; 14. Driven gear; 15. Drive motor; 16. Drive gear; 17. Ball bearing; 18. Ejection chute; 19. Scraper; 20. Rectangular ejection rod; 21. Extrusion slide plate; 22. Ejection spring; 23. Groove; 24. Mounting slot; 25. Temperature sensor; 26. Controller; 27. Heating chamber; 28. Electric heating wire. Detailed Implementation
[0031] The following is in conjunction with the appendix Figure 1-3 This application will be described in further detail.
[0032] This application discloses an octanoyl hydroxamic acid dissolution device.
[0033] Reference Figures 1-3 An octanoyl hydroxamic acid dissolving device includes a reaction vessel 1, with an inlet 2 at one end and an outlet 3 at the bottom. A drive rod 4 is rotatably connected to the top of the reaction vessel 1. A lifting sleeve 5 is symmetrically fixedly connected to one end of the drive rod 4. A T-shaped slide rod 6 is slidably connected inside the lifting sleeve 5. The top of the T-shaped slide rod 6 passes through the lifting sleeve 5 and is fixedly connected to a stirring rod 7. Multiple stirring blades 8 are fixedly connected to one end of the stirring rod 7. A reciprocating spring 9 is sleeved on one end of the T-shaped slide rod 6. A transmission rod 10 is fixedly connected to one end of the stirring rod 7. An annular wave table 11 adapted to the transmission rod 10 is fixedly connected to the inner side of the reaction vessel 1. A guide assembly for guiding the stirring rod 7 to rotate synchronously is symmetrically installed at one end of the drive rod 4. A drive assembly for driving the drive rod 4 to rotate is installed on the top of the reaction vessel 1.
[0034] The guiding component includes a guide block 12 symmetrically fixedly connected to one end of the drive rod 4, and a guide slot 13 adapted to the guide block 12 is provided at one end of the stirring rod 7.
[0035] Furthermore, the drive assembly includes a driven gear 14 fixedly connected to the top of the drive rod 4, a drive motor 15 fixedly connected to the top of the reactor 1, and a drive gear 16 that meshes with the driven gear 14 fixedly connected to the output end of the drive motor 15.
[0036] Furthermore, one end of the transmission rod 10 is ball-jointed with a ball bearing 17, and one end of the ball bearing 17 abuts against the top of the annular wave table 11.
[0037] In use, the raw materials are first introduced into the reactor 1 through the feed inlet 2. Then, the drive motor 15 is started to drive the drive gear 16 to mesh with the driven gear 14, and drive the drive rod 4 to rotate. This causes the drive rod 4 to drive the stirring rod 7 to drive the stirring blade 8 to rotate and stir around the drive rod 4. At the same time, the stirring rod 7 drives the transmission rod 10 to drive the ball 17 to roll along the top of the annular wave table 11. When the stirring rod 7 drives the ball 17 to move to a high position along the top of the annular wave table 11, the stirring rod 7 drives the reciprocating spring 9 to squeeze the T-shaped slide rod 6 to produce a contraction deformation. At the same time, the stirring rod 7 drives the stirring blade 8 to rotate upward along the length of the reciprocating spring 9.
[0038] Then, when the stirring rod 7 drives the ball bearing 17 to move from the top of the annular wave platform 11 to the lowest point, the reciprocating spring 9 rebounds and pushes out the T-shaped slide rod 6 to the inner bottom of the lifting sleeve 5. At the same time, the stirring rod 7 drives the stirring blade 8 to rotate downwards along the length of the reciprocating spring 9. While the driving rod 4 drives the stirring rod 7 to rotate, the stirring rod 7 engages with the guide slot 13 and is locked at one end of the guide block 12. This reduces the deflection of the stirring rod 7 around the T-shaped slide rod 6, making it easier to drive the stirring rod 7 to rotate and reciprocate upwards and downwards. This effectively increases the stirring coverage area of the stirring rod 7 and the stirring blade 8 inside the reactor 1, allowing the octanoyl hydroxamic acid material inside the reactor 1 to move upwards and downwards while being stirred. This generates stronger shear force and convection, breaking the agglomerate structure of the octanoyl hydroxamic acid material and making the octanoyl hydroxamic acid material more uniformly stirred. This effectively improves the stirring efficiency and effect of the octanoyl hydroxamic acid material.
[0039] Reference Figure 2 and Figure 3 The bottom of the drive rod 4 is provided with an ejection groove 18, the bottom of the reactor 1 is provided with a scraper 19, and the top of the scraper 19 is fixedly connected with a rectangular ejection rod 20. One end of the rectangular ejection rod 20 passes through the drive rod 4 and extends into the interior of the ejection groove 18. The interior of the ejection groove 18 is provided with an ejection assembly for ejecting the scraper 19.
[0040] The ejection assembly includes a compression plate 21 fixedly connected to the top of the rectangular ejection rod 20, the compression plate 21 being slidably connected inside the ejection groove 18, and an ejection spring 22 being fixedly connected to the top of the compression plate 21.
[0041] Furthermore, the bottom middle section of the scraper 19 is provided with a groove 23 that is compatible with the discharge port 3.
[0042] In use, when it is necessary to discharge the material inside the reactor 1 through the discharge port 3, the ejector spring 22 rebounds and ejects the extrusion plate 21, causing the extrusion plate 21 to push the scraper 19 downward along the length of the rectangular ejector rod 20, so that the bottom of the scraper 19 abuts against the inner bottom of the reactor 1. Then, the drive assembly is activated to drive the drive rod 4 to drive the scraper 19 to rotate slowly, so that the scraper 19 scrapes the material adhering to the bottom of the reactor 1 and moves it. Thus, the material adhering to the reactor 1 passes through the groove 23 and enters the discharge port 3 under the push of gravity and the scraper 19, thereby facilitating the rapid discharge of the material adhering to the bottom of the reactor 1 and effectively improving the practicality of the device.
[0043] Reference Figures 1-3The drive rod 4 has a mounting groove 24 in the middle section. A temperature sensor 25 is fixedly connected inside the mounting groove 24. A controller 26 is fixedly connected to one side of the reactor 1. A heating chamber 27 is provided in the middle section of the reactor 1. An electric heating wire 28 is fixedly connected inside the heating chamber 27. The controller 26 is electrically connected to the temperature sensor 25 and the electric heating wire 28.
[0044] In use, the working temperature inside the reactor 1 is first monitored in real time by the temperature sensor 25, and the monitoring data is transmitted to the controller 26. Then, the controller 26 analyzes the working temperature inside the reactor 1 and controls the opening and closing of the electric heating wire 28 according to the actual situation. Thus, the electric heating wire 28 is used to heat or stop heating the inner wall of the heating chamber 27, thereby realizing the temperature regulation of the raw materials inside the reactor 1 and improving the practicality of the device.
[0045] The implementation principle of the capryloyl hydroxamic acid dissolving device in this embodiment is as follows: First, the drive motor 15 is started to drive the active gear 16 to mesh with the driven gear 14. At the same time, the guide block 12 is used to drive the drive rod 4 to drive the stirring rod 7 to rotate and stir. The stirring rod 7 drives the transmission rod 10 to drive the ball 17 to roll along the top of the annular wave table 11. When the stirring rod 7 drives the ball 17 to move to a high position along the top of the annular wave table 11, the stirring rod 7 drives the reciprocating spring 9 to squeeze the T-shaped slide rod 6 to produce a contraction deformation. At the same time, the stirring rod 7 drives the stirring blade 8 to rotate upward along the length direction of the reciprocating spring 9.
[0046] Then, when the stirring rod 7 drives the ball 17 to move along the top of the annular wave table 11 to the lowest position, the reciprocating spring 9 rebounds and pushes out the T-shaped slide rod 6 to move to the inner bottom of the lifting sleeve 5. At the same time, the stirring rod 7 drives the stirring blade 8 to rotate downward along the length of the reciprocating spring 9.
[0047] Next, when it is necessary to discharge the material inside the reactor 1 through the discharge port 3, the ejector spring 22 rebounds and ejects the extrusion slide plate 21, and the extrusion slide plate 21 pushes the scraper 19 downward along the length of the rectangular ejector rod 20, so that the bottom of the scraper 19 abuts against the inner bottom of the reactor 1. Then, the drive assembly is started to drive the drive rod 4 to drive the scraper 19 to rotate slowly, so that the scraper 19 scrapes the material adhering to the bottom of the reactor 1 and moves it, so that the material adhering to the reactor 1 passes through the groove 23 and enters the interior of the discharge port 3 under the push of gravity and the scraper 19.
Claims
1. An octanoyl hydroxamic acid dissolution apparatus, comprising a reaction vessel (1), characterized in that: The reactor (1) is provided with a feed inlet (2) at one end and a discharge outlet (3) at the bottom. The reactor (1) is rotatably connected to a drive rod (4) at the top. A lifting sleeve (5) is symmetrically fixedly connected to one end of the drive rod (4). A T-shaped slide rod (6) is slidably connected inside the lifting sleeve (5). The top of the T-shaped slide rod (6) passes through the lifting sleeve (5) and is fixedly connected to a stirring rod (7). A plurality of stirring blades (8) are fixedly connected to one end of the stirring rod (7). A reciprocating spring (9) is sleeved on one end of the T-shaped slide rod (6). A transmission rod (10) is fixedly connected to one end of the stirring rod (7). An annular wave table (11) adapted to the transmission rod (10) is fixedly connected to the inner side of the reactor (1). A guide assembly for guiding the stirring rod (7) to rotate synchronously is symmetrically installed at one end of the drive rod (4). A drive assembly for driving the drive rod (4) to rotate is installed on the top of the reactor (1).
2. The octanoyl hydroxamic acid dissolving device according to claim 1, characterized in that: The guiding assembly includes a guide block (12) symmetrically fixedly connected to one end of the drive rod (4), and a guide slot (13) adapted to the guide block (12) is provided at one end of the stirring rod (7).
3. The octanoyl hydroxamic acid dissolving device according to claim 1, characterized in that: The drive assembly includes a driven gear (14) fixedly connected to the top of the drive rod (4), a drive motor (15) fixedly connected to the top of the reactor (1), and a drive gear (16) meshing with the driven gear (14) fixedly connected to the output end of the drive motor (15).
4. The octanoyl hydroxamic acid dissolving device according to claim 1, characterized in that: One end of the transmission rod (10) is ball-jointed with a ball (17), and one end of the ball (17) abuts against the top of the annular wave table (11).
5. The octanoyl hydroxamic acid dissolving device according to claim 1, characterized in that: The bottom of the drive rod (4) is provided with an ejection groove (18), and the bottom of the reactor (1) is provided with a scraper (19). The top of the scraper (19) is fixedly connected with a rectangular ejection rod (20). One end of the rectangular ejection rod (20) passes through the drive rod (4) and extends into the interior of the ejection groove (18). The interior of the ejection groove (18) is provided with an ejection assembly for ejecting the scraper (19).
6. The octanoyl hydroxamic acid dissolving apparatus according to claim 5, characterized in that: The ejection assembly includes a compression plate (21) fixedly connected to the top of the rectangular ejection rod (20), the compression plate (21) being slidably connected inside the ejection groove (18), and an ejection spring (22) being fixedly connected to the top of the compression plate (21).
7. The octanoyl hydroxamic acid dissolving apparatus according to claim 5, characterized in that: The scraper (19) has a groove (23) at the bottom middle section that is adapted to the discharge port (3).
8. The octanoyl hydroxamic acid dissolving device according to claim 1, characterized in that: The drive rod (4) has a mounting groove (24) in the middle section. A temperature sensor (25) is fixedly connected inside the mounting groove (24). A controller (26) is fixedly connected to one side of the reactor (1). A heating chamber (27) is provided in the middle section of the reactor (1). An electric heating wire (28) is fixedly connected inside the heating chamber (27). The controller (26) is electrically connected to the temperature sensor (25) and the electric heating wire (28).