Creatine monohydrate crystallization processing device capable of accurately controlling temperature

By combining components such as sliding sleeves, sliding balls, rotating columns, clamps, retaining rings, and fixing rings, the sealing and fixing problems during the stirring process are solved, achieving uniformity and purity of crystallization and extending the equipment's lifespan.

CN223671409UActive Publication Date: 2025-12-16LIAONING TUOFENG LIFE SCIENCES CO LTD
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Patent Information

Application Number
CN202520036495.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-08
Publication Date
2025-12-16
Estimated Expiration
2035-01-08

AI Technical Summary

Technical Problem

Existing stirring devices cannot effectively seal and fix the crystals in the crystallization process of creatine monohydrate, which allows impurities to enter and affect the formation and growth of crystal nuclei. This results in uneven crystal particle size and irregular shape, reducing purity and shortening equipment life.

Method used

The monohydrate creatine crystallization processing device adopts precise temperature control. Through the combination design of components such as sliding sleeve, sliding ball, rotating column, ferrule, retaining ring and fixing ring, it achieves internal sealing and stable transmission. Utilizing the elastic deformation and corrosion resistance properties of the ferrule and retaining ring, it ensures that no gaps are generated during the rotation of the device, and the uniform cutting of crystals is achieved through the cooperation of cutter and spring.

Benefits of technology

It improves the sealing performance of the device and the uniformity of crystallization, extends the service life of the equipment, and ensures the purity and shape consistency of the crystals.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of stirrers, and discloses a creatine monohydrate crystal processing device capable of accurately controlling temperature, which comprises a box body, a sliding sleeve is fixedly connected to the inner wall of the box body, two fixing blocks are fixedly connected to the outer part of the sliding sleeve, a sliding ball is rotatably connected to the inner wall of the sliding sleeve, and the sliding ball is fixedly connected to the inner wall of the box body. The end, away from the fixing block, of the sliding ball is fixedly connected with a rotating column, the outer portion of the rotating column is movably connected with a clamping sleeve, the inner wall of the clamping sleeve is movably connected with a first clamping ring, the end, away from the rotating column, of the clamping sleeve is fixedly connected with a fixing ring, and the end, away from the first clamping ring, of the clamping sleeve is movably connected with a second clamping ring. The motor drives the rotating column to rotate, the rotating column extrudes the clamping sleeve, the clamping sleeve is connected with the fixing ring, and the first clamping ring and the fixing ring deform to apply pressure to the fixing ring, so that the internal sealing effect is improved, the rotating column is stabilized, and the abrasion degree of the rotating column is reduced.
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Description

TECHNICAL FIELD

[0001] The utility model relates to agitator technical field especially relates to accurate temperature control's creatine monohydrate crystallization processing device. BACKGROUND

[0002] Creatine monohydrate crystallization processing device is the equipment combination of producing high purity crystallization. Mainly have the reaction kettle, and the creatine dissolution and crystallization reaction are carried out here;The crystallizer can accurately control temperature and stirring speed and promote crystallization precipitation;In addition, the dissolving tank provides the dissolving site, the filtration equipment separates the crystallization and the mother liquor, the dryer removes the moisture and purifies the degree, and each component cooperates to output high-quality creatine monohydrate crystallization, wherein the stirring device uniformly disperses raw materials in the reaction kettle, and helps dissolution and crystallization.

[0003] The stirring device is mainly composed of a motor, a stirring shaft and a stirring paddle. The motor provides power to drive the stirring shaft to rotate, and the stirring shaft makes the paddle rotate. In the processing of creatine monohydrate crystallization, the paddle stirs the creatine raw materials and the solvent in the reaction kettle. In the dissolution stage, this stirring allows creatine molecules to be quickly and uniformly dispersed in the solvent, accelerating dissolution. In the crystallization stage, stirring makes the solution stable, creating a uniform environment for crystal nucleus formation and growth, avoiding local accumulation of crystals, and ensuring smooth crystallization process and crystal quality.

[0004] In the prior art, some stirring devices still use general packing seals, which cannot effectively seal and fix the inside during stirring. In the crystallization process, not only will the entry of impurities affect the formation and growth of crystal nucleus, leading to uneven crystal particle size and irregular shape, but also reduce the purity of creatine monohydrate crystals and shorten the service life of the equipment. Therefore, the accurate temperature control creatine monohydrate crystallization processing device is proposed to solve the above problems. Utility model content

[0005] In order to make up for the above shortcomings, the utility model provides an accurate temperature control creatine monohydrate crystallization processing device, aiming at improving the problem that the internal sealing and fixing cannot be effectively carried out during stirring in the prior art.

[0006] In order to achieve the above purpose, the utility model adopts the following technical scheme:

[0007] The invention discloses a precise temperature control creatine monohydrate crystallization processing device, which comprises a box body, a sliding sleeve fixedly connected to the inner wall of the box body, two fixed blocks fixedly connected to the outer portion of the sliding sleeve, a sliding ball rotatably connected to the inner wall of the sliding sleeve, a rotating column fixedly connected to the end of the sliding ball away from the fixed blocks, a clamping sleeve movably connected to the outer portion of the rotating column, a clamping ring one movably connected to the inner wall of the clamping sleeve, a fixed ring fixedly connected to the end of the clamping sleeve away from the rotating column, a clamping ring two movably connected to the end of the clamping sleeve away from the clamping ring one, two connecting columns fixedly connected to the outer portion of the rotating column, and a fixing assembly for fixing subsequent components fixedly connected to the ends of the two connecting columns away from the rotating column.

[0008] As a further description of the above technical solution:

[0009] The fixing assembly comprises a U-shaped column fixedly connected to the outer portion of the connecting column, four housings fixedly connected to the outer portion of the U-shaped column, a cutter one slidingly connected to the inner wall of each of the four housings, a sliding plate fixedly connected to the outer portion of the cutter one, three springs fixedly connected to the end of the sliding plate away from the cutter one, a limiting plate fixedly connected to the ends of the three springs away from the sliding plate, and a cutter two fixedly connected to the end of the limiting plate away from the springs.

[0010] As a further description of the above technical solution:

[0011] The clamping ring one is movably connected to the inner wall of the box body, the clamping ring two is movably connected to the inner wall of the box body, and the box body is fixedly connected with a support frame.

[0012] As a further description of the above technical solution:

[0013] The end of the fixed ring away from the clamping sleeve is movably connected to the inner wall of the box body, and the outer portion of the clamping ring one is in contact with the outer portion of the fixed ring.

[0014] As a further description of the above technical solution:

[0015] The end of the fixed ring away from the clamping ring one is in contact with the outer portion of the clamping ring two, and the end of the clamping ring one away from the box body is movably connected to the outer portion of the rotating column.

[0016] As a further description of the above technical solution:

[0017] The end of the clamping ring two away from the box body is movably connected to the outer portion of the rotating column, and the outer portion of the rotating column is fixedly connected to the inner wall of the U-shaped column.

[0018] As a further description of the above technical solution:

[0019] The outer part of the sliding plate is connected to the inner wall of the shell, and the outer part of the limiting plate is connected to the inner wall of the shell.

[0020] Further description of the above technical solution:

[0021] The outer part of the second cutter is connected to the inner wall of the shell, and the outer part of the spring is connected to the inner wall of the shell.

[0022] The utility model has the advantages of the following beneficial effects:

[0023] 1. In the utility model, the rotating column is driven by the motor to rotate, the rotating column extrudes the sleeve, then the sleeve transmits the force to the snap ring one and the fixed ring, and the sleeve is clamped in the snap ring one and the fixed ring, because the sleeve is connected to the fixed ring, the snap ring one and the fixed ring are deformed to apply pressure to the fixed ring, the fixed ring extrudes the box body in the opposite direction of the rotating column, and because of their own characteristics, they have elasticity and corrosion resistance, so no gap is generated in the extrusion process, the internal sealing effect is improved, and the rotating column is connected to the sliding ball below to rotate in the sliding sleeve, the sliding sleeve has the same characteristics, so that the rotating column is stable and the wear degree is reduced.

[0024] 2. In the utility model, when the rotating column rotates to drive the U-shaped column to rotate, the cutter one and the cutter two are collided by the internal crystals, and some crystals of different sizes are cut and uniformly distributed, the cutter one is extruded by the spring behind the sliding plate to buffer the cutter one when cutting the crystal, and the cutter one is protected, and the cutter two has the same effect as the cutter one when rotating in the opposite direction, and the spring has the effects of protection and buffering, and the service life of the device is prolonged. BRIEF DESCRIPTION OF DRAWINGS

[0025] Figure 1 The utility model provides a precise temperature control one water creatine crystallization processing device's structure diagram of the sliding sleeve;

[0026] Figure 2 The utility model provides a precise temperature control one water creatine crystallization processing device's structure diagram of the sliding sleeve;

[0027] Figure 3 The utility model provides a precise temperature control one water creatine crystallization processing device's structure diagram of the sliding sleeve;

[0028] Figure 4 The utility model provides a precise temperature control one water creatine crystallization processing device's structure diagram of the sliding sleeve.

[0029] LEGEND:

[0030] 1, box; 2, sliding sleeve; 3, fixed block; 4, sliding ball; 5, rotating column; 6, clamping sleeve; 7, clamping ring one; 8, fixed ring; 9, clamping ring two; 10, connecting column; 11, U-shaped column; 12, shell; 13, cutter one; 14, sliding plate; 15, spring; 16, limiting plate; 17, cutter two; 18, support frame. DETAILED DESCRIPTION

[0031] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.

[0032] Referring to Figures 1 to 3 An embodiment provided by the utility model: a precise temperature control creatine monohydrate crystallization processing device, comprising a box 1, the box 1 is the shell of the whole device, plays the role of protecting internal components and providing stable support, can prevent external factors from interfering with the internal crystallization process. The inner wall of the box 1 is fixedly connected with a sliding sleeve 2, the sliding sleeve 2 is installed on the inner wall of the box 1, which provides a relatively stable and smooth track for the rotation of the subsequent sliding ball 4, ensures that it can rotate smoothly and reduces friction loss. The outer part of the sliding sleeve 2 is fixedly connected with two fixed blocks 3, the fixed blocks 3 are mainly used to further stabilize the position of the sliding sleeve 2 in the box 1, so that it is installed more firmly and is not prone to loosening. The inner wall of the sliding sleeve 2 is rotatably connected with a sliding ball 4, the sliding ball 4 can rotate flexibly in the sliding sleeve 2, so that the rotating column 5 connected therewith rotates smoothly, and the wear of itself is reduced during the rotation process by relying on the characteristics of the sliding sleeve 2. The end of the sliding ball 4 away from the fixed block 3 is fixedly connected with a rotating column 5, the rotating column 5 is a key component for power transmission, which rotates under the driving of the motor, and then drives other related components to work cooperatively, realizing the whole crystallization process.

[0033] The outer part of the rotating column 5 is movably connected with a sleeve 6, which is connected with the rotating column 5 and can be displaced and deformed under the action of the rotating column 5 to transmit force to other components. The inner wall of the sleeve 6 is movably connected with a ring 7, which cooperates with the sleeve 6 and deforms when receiving the force transmitted by the sleeve 6, participating in the fixing and sealing mechanism of the whole device. The end of the sleeve 6 away from the rotating column 5 is fixedly connected with a fixed ring 8, which plays an important role in sealing and transmitting reaction force in the device, and cooperates with the ring 7 and other components to ensure the sealing of the device. The end of the sleeve 6 away from the ring 7 is movably connected with a ring 9, which also participates in the structure stability and force transmission and sealing of the device, and cooperates with other components. The outer part of the rotating column 5 is fixedly connected with two connecting columns 10, which connect the rotating column 5 with the subsequent fixed assembly to ensure smooth transmission of power and synchronous operation of the fixed assembly with the rotating column 5. The ends of the two connecting columns 10 away from the rotating column 5 are fixedly connected with a fixed assembly for fixing the subsequent components.

[0034] Referring to Figures 2 to 4 The fixed assembly includes a U-shaped column 11, which plays a role in connecting and transmitting rotating power in the device. When the rotating column 5 rotates, it drives the U-shaped column 11 to rotate, so that the other components installed on the outside of the U-shaped column 11 start to work. The outer part of the U-shaped column 11 is fixedly connected with four housings 12, which provide installation space and protection for the internal cutter 13 and other components, so that they can stably perform corresponding actions inside. The inner wall of each of the four housings 12 is slidably connected with a cutter 13, which is used for cutting crystals. During the rotation of the U-shaped column 11 driven by the rotating column 5, the cutter 13 will contact the internal crystals and cut the crystals of different sizes to make them more uniform. The outer part of the cutter 13 is fixedly connected with a sliding plate 14, which moves with the cutter 13 to provide a corresponding support structure for the buffer action of the cutter 13.

[0035] Three springs 15 are fixedly connected to the end of the slide plate 14 away from the first cutter 13. When the first cutter 13 encounters large crystals and is squeezed, the springs 15 can buffer the impact force on the first cutter 13 through their own elastic deformation, thus protecting the first cutter 13 and the entire device and extending the service life of the device. The end of the three springs 15 away from the slide plate 14 is fixedly connected to the limit plate 16. The limit plate 16 limits the excessive deformation of the springs 15, ensuring that the springs 15 play a buffering and protective role within a reasonable range. The end of the limit plate 16 away from the springs 15 is fixedly connected to the second cutter 17. The second cutter 17 is similar to the first cutter 13. During the crystallization process, when the first cutter 13 is buffered to one side due to force, the second cutter 17 cuts the crystals from the other side, achieving the same function of cutting uniform crystals and cooperating with the first cutter 13 to complete the entire cutting work. The housing 1 is connected to the support frame 18, which has the effect of stabilizing and fixing the motor.

[0036] Reference Figures 2 to 3 The external movable connection of snap ring 7 to the inner wall of housing 1 allows it to better deform and adjust its position according to the direction and magnitude of the force transmitted by sleeve 6 when subjected to force, ensuring the stability and sealing effect of the entire device structure. Similarly, snap ring 9 is also externally movably connected to the inner wall of housing 1, participating in the coordinated changes of the device under force to ensure the normal coordinated operation of all components. The end of the fixing ring 8 furthest from sleeve 6 is movably connected to the inner wall of housing 1. This connection ensures that when subjected to force transmitted from sleeve 6 and other components, it can press against housing 1 in the opposite direction of rotating column 5, achieving a tight fit and improving the internal sealing effect. The external contact of snap ring 7 with the external contact of fixing ring 8 allows for effective force transmission between them, and due to their elasticity and other properties, no gaps are generated during mutual compression, further ensuring good internal sealing of the device.

[0037] The fixed ring 8 is in contact with the outside of the snap ring 9 away from the end of the snap ring 1 7, and such a contact relationship makes the whole force transmission and sealing structure form a coherent whole, and each component cooperates with each other to maintain the stability and sealing of the device. The end of the snap ring 1 7 away from the box 1 is movably connected to the outside of the rotating column 5, and this connection mode enables the snap ring 1 7 to change its position and state accordingly when the rotating column 5 rotates and the force changes, and cooperates with other components to realize the function of the device. The end of the snap ring 2 9 away from the box 1 is movably connected to the outside of the rotating column 5, and similar to the snap ring 1 7, the snap ring 2 9 participates in the overall force and action coordination of the device through such connection, ensuring the normal cooperation of each component when the rotating column 5 rotates and other operations. The outside of the rotating column 5 is fixedly connected to the inner wall of the U-shaped column 1 1, and such fixed connection ensures that the rotating column 5 can stably transmit the rotating power to the U-shaped column 1 1, so that the U-shaped column 1 1 can accurately drive the components outside it to perform corresponding crystallization processing actions.

[0038] Referring to Figure 4 The outside of the slide plate 1 4 is slidably connected to the inner wall of the shell 1 2, and the sliding of the slide plate 1 4 in the inner wall of the shell 1 2 enables the cutter 1 3 to stably slide the slide plate 1 4 in the shell 1 2 when it is subjected to crystallization extrusion, so that the spring 1 5 can normally play a buffering role. The outside of the limiting plate 1 6 is slidably connected to the inner wall of the shell 1 2, and the sliding connection of the limiting plate 1 6 ensures that it can reasonably move in the shell 1 2 following the deformation of the spring 1 5 and the movement of the slide plate 1 4, thereby limiting the spring 1 5 and assisting the cutter 2 1 7 to work. The outside of the cutter 2 1 7 is slidably connected to the inner wall of the shell 1 2, and the sliding connection of the cutter 2 1 7 in the shell 1 2 enables it to slide and cut according to the crystallization condition and the action of the cutter 1 3, thereby better completing the task of uniform cutting of the crystal. The outside of the spring 1 5 is slidably connected to the inner wall of the shell 1 2, and the sliding connection of the spring 1 5 in the shell 1 2 ensures that it can deform in a reasonable direction during the extension and contraction buffering process, without abnormal situations such as jamming, thereby ensuring the normal play of its buffering and protection functions.

[0039] Working principle: through the motor drives rotating column 5 to rotate, wherein rotating column 5 will extrude the sleeve 6, then the sleeve 6 will transmit force to the snap ring one 7 and the fixed ring 8, and the sleeve 6 will be clamped in the snap ring one 7 and the fixed ring 8, since the sleeve 6 is connected with the fixed ring 8, so when extruding the sleeve 6, the snap ring one 7 and the fixed ring 8 are deformed to exert pressure on the fixed ring 8, at the same time the fixed ring 8 extrudes the box body 1 in the opposite direction of the rotating column 5, so that the rotating column 5 is tightly attached to the box body 1 when rotating, and because of their own characteristics, they will produce elasticity and have the effect of corrosion resistance, so that no gap is generated during their mutual extrusion, so that the sealing effect is improved, wherein the lower connected sliding ball 4 of the rotating column 5 will rotate in the sliding sleeve 2 when rotating, and the sliding sleeve 2 has the same characteristics as the above, so that not only the rotating column 5 is stabilized, but also the wear degree is reduced.

[0040] When the rotating column 5 rotates to drive the U-shaped column 11 to rotate, the cutter one 13 and the cutter two 17 will be collided by the internal crystal, and some crystals of different sizes will be cut evenly, wherein the cutter one 13 will extrude the spring 15 behind the sliding plate 14 to buffer the cutter one 13 when cutting the crystal, which plays a protective role, and can rotate in the opposite direction, so that the cutter two 17 plays the same effect as the cutter one 13, and the spring 15 plays a protective and buffering role, prolonging the service life of the device.

[0041] Finally, it should be pointed out that: the above only for the preferred embodiments of the present application, and not for limiting the present application, although the present application has been described in detail with reference to the foregoing embodiments, for those skilled in the art, it can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement for part of the technical features, any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application, should be included in the protection scope of the present application.

Claims

1. A precision temperature-controlled creatine monohydrate crystallization processing apparatus comprising a housing (1), characterized in that: The inner wall of the box (1) is fixedly connected with a sliding sleeve (2), the outer portion of the sliding sleeve (2) is fixedly connected with two fixed blocks (3), the inner wall of the sliding sleeve (2) is rotatably connected with a sliding ball (4), one end of the sliding ball (4) away from the fixed block (3) is fixedly connected with a rotating column (5), the outer portion of the rotating column (5) is movably connected with a clamping sleeve (6), the inner wall of the clamping sleeve (6) is movably connected with a clamping ring I (7), one end of the clamping sleeve (6) away from the rotating column (5) is fixedly connected with a fixed ring (8), one end of the clamping sleeve (6) away from the clamping ring I (7) is movably connected with a clamping ring II (9), the outer portion of the rotating column (5) is fixedly connected with two connecting columns (10), and one end of the two connecting columns (10) away from the rotating column (5) is fixedly connected with a fixing assembly for fixing subsequent components.

2. The precise temperature-controlled creatine monohydrate crystallization processing apparatus of claim 1, wherein: The fixing assembly comprises a U-shaped column (11), the outer portion of the U-shaped column (11) is fixedly connected to the outer portion of the connecting column (10), the outer portion of the U-shaped column (11) is fixedly connected with four housings (12), the inner wall of each of the four housings (12) is slidably connected with a cutter I (13), the outer portion of the cutter I (13) is fixedly connected with a sliding plate (14), one end of the sliding plate (14) away from the cutter I (13) is fixedly connected with three springs (15), one end of the three springs (15) away from the sliding plate (14) is fixedly connected with a limiting plate (16), and one end of the limiting plate (16) away from the spring (15) is fixedly connected with a cutter II (17).

3. The precise temperature-controlled creatine monohydrate crystallization processing apparatus of claim 1, wherein: The outer portion of the clamping ring I (7) is movably connected to the inner wall of the box (1), the outer portion of the clamping ring II (9) is movably connected to the inner wall of the box (1), and the outer portion of the box (1) is fixedly connected with a support frame (18).

4. The precise temperature-controlled creatine monohydrate crystallization processing apparatus of claim 1, wherein: One end of the fixed ring (8) away from the clamping sleeve (6) is movably connected to the inner wall of the box (1), and the outer portion of the clamping ring I (7) is in contact with the outer portion of the fixed ring (8).

5. The precise temperature-controlled creatine monohydrate crystallization processing apparatus of claim 1, wherein: One end of the fixed ring (8) away from the clamping ring I (7) is in contact with the outer portion of the clamping ring II (9), and one end of the clamping ring I (7) away from the box (1) is movably connected to the outer portion of the rotating column (5).

6. The precise temperature-controlled creatine monohydrate crystallization processing apparatus of claim 2, wherein: One end of the clamping ring II (9) away from the box (1) is movably connected to the outer portion of the rotating column (5), and the outer portion of the rotating column (5) is fixedly connected to the inner wall of the U-shaped column (11).

7. The precise temperature-controlled creatine monohydrate crystallization processing apparatus of claim 2, wherein: The outer portion of the sliding plate (14) is slidably connected to the inner wall of the housing (12), and the outer portion of the limiting plate (16) is slidably connected to the inner wall of the housing (12).

8. The precise temperature-controlled creatine monohydrate crystallization processing apparatus of claim 2, wherein: The outer portion of the cutter II (17) is slidably connected to the inner wall of the housing (12), and the outer portion of the spring (15) is slidably connected to the inner wall of the housing (12).