Pharmaceutical reaction kettle

By installing an adjustable support mechanism at the bottom of the reactor, the problems of swaying and tilting of traditional reactors on uneven ground are solved, achieving equipment stability and installation adaptability, and ensuring the smooth progress of the pharmaceutical process and the quality of the drugs.

CN223818655UActive Publication Date: 2026-01-23SHANGHAI TOFFLON PHARM EQUIP CO LTD
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Patent Information

Application Number
CN202520103408.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-16
Publication Date
2026-01-23
Estimated Expiration
2035-01-16

AI Technical Summary

Technical Problem

Traditional pharmaceutical reaction vessels, due to their fixed height and non-adjustable support structure, cannot adapt to uneven ground, resulting in shaking or tilting, which affects the stability of the pharmaceutical process and the lifespan of the equipment.

Method used

Three sets of adjustable support mechanisms are adopted, including a first rotating plate, a second rotating plate, a U-shaped plate, a rotation adjustment mechanism, and an anti-slip support mechanism. The height and angle of the reactor are adjusted by threaded connection and bidirectional threaded screw to adapt to different ground flatness.

Benefits of technology

It improves the stability and installation adaptability of the reactor, reduces shaking or tilting caused by uneven ground, ensures the smooth progress of the pharmaceutical process, and reduces the negative impact of equipment instability on drug quality.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223818655U_ABST
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Abstract

The utility model relates to a pharmaceutical reaction kettle which comprises three groups of adjustable supporting mechanisms which are connected to the edge of the lower end surface of the reaction kettle at equal intervals; the adjustable supporting mechanism comprises a first rotating plate, a second rotating plate, a U-shaped plate body, a rotating adjusting mechanism and an anti-skid supporting mechanism. The U-shaped plate body is connected to the lower end face of the reaction kettle, the upper ends of the first rotating plate and the second rotating plate are rotationally connected with the U-shaped plate body, and the lower ends of the first rotating plate and the second rotating plate are connected with the anti-skid supporting mechanism; the rotation adjusting mechanism is connected with the first rotating plate and the second rotating plate. The utility model aims to provide the pharmaceutical reaction kettle for overcoming the existing defects, and the flexibility and the adaptability of equipment installation are improved.
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Description

Technical Field

[0001] This utility model relates to a pharmaceutical reaction vessel. Background Technology

[0002] Traditional pharmaceutical reaction vessels face numerous challenges in practical applications. The flatness of the ground varies across different pharmaceutical facilities. For example, in older pharmaceutical workshops or temporary laboratories, the ground may be slightly tilted or uneven. Most existing reaction vessels employ a fixed height and non-adjustable support structure. This design prevents effective adjustment to adapt to uneven ground, leading to frequent wobbling or tilting.

[0003] In pharmaceutical manufacturing, complex chemical reactions occur inside the reactor, requiring extremely stable environments. Shaking or tilting of the reactor can disrupt the normal reaction process, potentially affecting the uniformity of material mixing and preventing the reaction from proceeding according to predetermined reaction kinetics. This can consequently impact the quality, purity, and yield of the drug. Furthermore, equipment instability can increase wear and tear on components, shorten the reactor's lifespan, increase maintenance costs and the frequency of equipment replacement, leading to economic losses for pharmaceutical companies.

[0004] Therefore, a pharmaceutical reaction vessel is proposed to address the above problems. Utility Model Content

[0005] The purpose of this invention is to overcome the existing defects and provide a pharmaceutical reaction vessel that improves the flexibility and adaptability of equipment installation.

[0006] The technical solution to achieve the above objective is: a pharmaceutical reaction vessel, comprising three sets of adjustable support mechanisms, wherein the three sets of adjustable support mechanisms are equidistantly connected at the lower end edge of the reaction vessel;

[0007] The adjustable support mechanism includes a first rotating plate, a second rotating plate, a U-shaped plate, a rotation adjustment mechanism, and an anti-slip support mechanism;

[0008] The U-shaped plate is connected to the lower end face of the reactor. The upper ends of the first rotating plate and the second rotating plate are rotatably connected to the U-shaped plate, and the lower ends are connected to the anti-slip support mechanism. The rotation adjustment mechanism is connected to the first rotating plate and the second rotating plate respectively.

[0009] Preferably, the upper back plate of the U-shaped plate is connected to the lower end face of the reactor, and the side wings on both sides are connected to the first rotating plate. The upper ends of the first rotating plate and the second rotating plate are rotatably connected to the first rotating shaft.

[0010] Preferably, a first rotating hole is formed on the first rotating plate, and a second rotating hole is formed on the second rotating plate; the rotation adjustment mechanism is connected in the first rotating hole and the second rotating hole.

[0011] Preferably, the rotation adjustment mechanism includes a first guide sleeve, a second guide sleeve, and a bidirectional threaded screw; the first guide sleeve is connected in the first rotation hole, the second guide sleeve is connected in the second rotation hole, the bidirectional threaded screw passes through the first guide sleeve and the second guide sleeve, and a first nut and a second nut are connected to the bidirectional threaded screw, the first nut is connected to the side of the first guide sleeve, and the second nut is connected to the side of the second guide sleeve.

[0012] Preferably, the anti-slip support mechanism includes two bottom support pads, which are respectively connected to the lower ends of the first rotating plate and the second rotating plate.

[0013] Preferably, the first guide sleeve is rotatably connected to the first rotating hole via two second rotating shafts.

[0014] Preferably, the second guide sleeve is rotatably connected to the second rotating hole via two third rotating shafts.

[0015] Preferably, one end of the bidirectional threaded screw is connected to a rotating handle.

[0016] The beneficial effects of this invention are as follows: This pharmaceutical reaction vessel features an adjustable support mechanism fixed at the bottom edge of the vessel body; it boasts high stability. Due to the adjustable support mechanism, the cooperation of components such as the first rotating plate, the second rotating plate, and the handle with a bidirectional threaded screw allows for adjustment to accommodate surfaces of varying flatness. This adjustability ensures stable support for the reaction vessel body under various operating conditions, reducing swaying or tilting caused by uneven ground, thereby guaranteeing the smooth progress of the pharmaceutical process and minimizing the negative impact on drug quality that may result from equipment instability. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the bottom of the pharmaceutical reaction vessel of this utility model;

[0018] Figure 2 This is a front view of the pharmaceutical reaction vessel of this utility model;

[0019] Figure 3 This is a bottom view of the pharmaceutical reaction vessel of this utility model from another perspective;

[0020] Figure 4 yes Figure 1 Enlarged view of point A in the middle;

[0021] Figure 5 yes Figure 3 Enlarged view of section B in the middle.

[0022] In the figure: 1. Reactor body; 2. Adjustable support mechanism; 3. U-shaped plate; 4. Upper back plate; 5. Side wing; 6. First rotating plate; 7. Second rotating plate; 8. Bottom support pad; 9. First rotating hole; 10. First guide sleeve; 11. First nut; 12. Second rotating hole; 13. Second guide sleeve; 14. Second nut; 15. Bidirectional threaded screw. Detailed Implementation

[0023] The technical solution of this utility model will now be clearly and completely described in conjunction with the accompanying drawings. In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this utility model and simplifying the description. They do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0024] The present invention will be further described below with reference to the accompanying drawings.

[0025] like Figure 1-5 As shown, a pharmaceutical reaction vessel includes three sets of adjustable support mechanisms 2, which are equidistantly connected at the lower edge of the reaction vessel 1. Each adjustable support mechanism 2 includes a first rotating plate 6, a second rotating plate 7, a U-shaped plate 3, a rotation adjustment mechanism, and an anti-slip support mechanism. The U-shaped plate 3 is connected to the lower edge of the reaction vessel 1. The upper ends of the first rotating plate 6 and the second rotating plate 7 are rotatably connected to the U-shaped plate 3, and the lower ends are connected to the anti-slip support mechanism. The rotation adjustment mechanism is connected to the first rotating plate 6 and the second rotating plate 7 respectively.

[0026] like Figure 4 As shown, the upper back plate 4 of the U-shaped plate 3 is connected to the lower end face of the reactor 1, and the side wings 5 ​​on both sides are connected to the first rotating plate. The upper ends of the first rotating plate 6 and the second rotating plate 7 are rotatably connected to the first rotating shaft. The upper back plate 4 of the U-shaped plate 3 and the bottom edge of the reactor body 1 are fixedly connected by a threaded connection. The opening of the U-shaped plate 3 faces downward.

[0027] like Figure 4As shown, a first rotating plate 6 has a first rotating hole 9, and a second rotating plate 7 has a second rotating hole 12; a rotation adjustment mechanism is connected within the first rotating hole 9 and the second rotating hole 12. The rotation adjustment mechanism includes a first guide sleeve 10, a second guide sleeve 13, and a bidirectional threaded screw 15; the first guide sleeve 10 is connected to the first rotating hole 9, and the first guide sleeve 10 is rotatably connected within the first rotating hole 9 via two second rotating shafts. The second guide sleeve 13 is connected to the second rotating hole 12, and the second guide sleeve 13 is rotatably connected within the second rotating hole 12 via two third rotating shafts.

[0028] like Figure 5 As shown, a bidirectional threaded screw 15 passes through the first guide sleeve 10 and the second guide sleeve 13. A first nut 11 and a second nut 14 are connected to the bidirectional threaded screw 15. The first nut 11 is connected to the side of the first guide sleeve 10, and the second nut 14 is connected to the side of the second guide sleeve 13. A rotating handle is connected to one end of the bidirectional threaded screw 15 for easy gripping and rotation. The bidirectional threaded screw 15 and the first nut 11 are threadedly engaged, and the bidirectional threaded screw 15 and the second nut 14 are also threadedly engaged.

[0029] like Figure 4 As shown, the anti-slip support mechanism includes two bottom support pads 8, which are respectively connected to the lower ends of the first rotating plate 6 and the second rotating plate 7.

[0030] First, connect the upper back plate 4 of the U-shaped plate 3 in the adjustable support mechanism 2 to the bottom edge of the reactor body 1. Since they are fixed together by a threaded connection, ensure that the thread of the upper back plate 4 of the U-shaped plate 3 matches the corresponding thread at the bottom edge of the reactor body 1. Then, slowly screw the upper back plate 4 of the U-shaped plate 3 into the bottom edge of the reactor body 1 like tightening a screw until it is secure. This completes the initial installation of the adjustable support mechanism 2 and the reactor body 1.

[0031] Adjusting the adjustable support mechanism 2 to adapt to different ground surfaces: When it is necessary to adjust the height of the reactor body 1 to adapt to different flat ground surfaces, the user operates the bidirectional threaded screw 15. Because the bidirectional threaded screw 15 passes through the first guide sleeve 10 and the second guide sleeve 13, and the bidirectional threaded screw 15 is threadedly engaged with the first nut 11 and the second nut 14. When the bidirectional threaded screw 15 is rotated clockwise, assuming the bidirectional thread design of the bidirectional threaded screw 15 is as follows: clockwise rotation brings the first rotating plate 6 and the second rotating plate 7 closer together. Since the first nut 11 and the second nut 14 are threadedly engaged with the bidirectional threaded screw 15 respectively, and the first guide sleeve 10 and the second guide sleeve 13 rotate within the first rotating hole 9 of the first rotating plate 6 and the second rotating hole 12 of the second rotating plate 7 respectively, the first nut 11 and the second nut 14 will move on the bidirectional threaded screw 15.

[0032] The movement of the first nut 11 and the second nut 14 will cause the first rotating plate 6 and the second rotating plate 7 to move relative to each other. The first rotating plate 6 and the second rotating plate 7 are rotated and engaged by the hinge connection at their upper parts. At the same time, the bottom support pad 8, which is fixed together at their lower parts, will change its relative height and angle as the first rotating plate 6 and the second rotating plate 7 move. For example, if it is on a slightly inclined ground, this adjustment can make the bottom support pad 8 make better contact with the ground, ensuring the stability of the reactor body 1.

[0033] Conversely, when the handle double-threaded screw 15 is turned counterclockwise, assuming that this rotation will cause the first rotating plate 6 and the second rotating plate 7 to move away from each other, the first nut 11 and the second nut 14 will move in opposite directions due to the above-mentioned threaded fit and rotational connection, thereby causing the first rotating plate 6 and the second rotating plate 7 to rotate in opposite directions, thereby adjusting the height and angle of the bottom support pad 8 to adapt to different ground conditions.

[0034] High stability: Thanks to the adjustable support mechanism 2, the first rotating plate 6, the second rotating plate 7, and the handle double-threaded screw 15, among other components, can be adjusted to accommodate surfaces with varying flatness. This adjustability ensures stable support for the reactor body 1 under various operating conditions, reducing swaying or tilting caused by uneven ground, thus guaranteeing the smooth progress of the pharmaceutical process and minimizing the negative impact on drug quality that may result from equipment instability.

[0035] High installation adaptability: The bottom of the reactor body 1 is connected to the upper back plate 4 of the U-shaped plate 3 of the adjustable support mechanism 2 via a threaded connection. This connection method is simple and robust. Meanwhile, the structural features of the adjustable support mechanism 2 itself mean that the entire reactor can be installed without relying on a specific level ground condition. Installation can be easily completed in newly built pharmaceutical workshops or at sites requiring temporary installation, improving the flexibility and adaptability of equipment installation.

[0036] This pharmaceutical reactor features an adjustable support mechanism fixed at the bottom edge of the reactor body, ensuring high stability. The adjustable support mechanism, with its first rotating plate, second rotating plate, and bidirectional threaded screw handle, allows for adjustment to accommodate surfaces of varying flatness. This adjustability guarantees stable support for the reactor body under diverse operating conditions, reducing swaying or tilting caused by uneven ground. This ensures the smooth operation of the pharmaceutical process and minimizes the negative impact on drug quality that could result from equipment instability.

[0037] The above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this utility model.

Claims

1. A pharmaceutical reaction vessel, characterized in that, It includes three sets of adjustable support mechanisms (2), which are equidistantly connected at the lower end edge of the reactor (1); The adjustable support mechanism (2) includes a first rotating plate (6), a second rotating plate (7), a U-shaped plate (3), a rotation adjustment mechanism, and an anti-slip support mechanism; The U-shaped plate (3) is connected to the lower end face of the reactor (1). The upper ends of the first rotating plate (6) and the second rotating plate (7) are rotatably connected to the U-shaped plate (3), and the lower ends are connected to the anti-slip support mechanism. The rotation adjustment mechanism is connected to the first rotating plate (6) and the second rotating plate (7) respectively.

2. The pharmaceutical reaction vessel according to claim 1, characterized in that, The upper back plate (4) of the U-shaped plate (3) is connected to the lower end face of the reactor (1), and the side wings (5) on both sides are connected to the first rotating plate. The upper ends of the first rotating plate (6) and the second rotating plate (7) are rotatably connected to the first rotating shaft.

3. The pharmaceutical reaction vessel according to claim 1, characterized in that, The first rotating plate (6) has a first rotating hole (9), and the second rotating plate (7) has a second rotating hole (12); the rotating adjustment mechanism is connected in the first rotating hole (9) and the second rotating hole (12).

4. The pharmaceutical reaction vessel according to claim 3, characterized in that, The rotation adjustment mechanism includes a first guide sleeve (10), a second guide sleeve (13), and a bidirectional threaded screw (15); the first guide sleeve (10) is connected in the first rotation hole (9), the second guide sleeve (13) is connected in the second rotation hole (12), the bidirectional threaded screw (15) passes through the first guide sleeve (10) and the second guide sleeve (13), and a first nut (11) and a second nut (14) are connected on the bidirectional threaded screw (15), the first nut (11) is connected to the side of the first guide sleeve (10), and the second nut (14) is connected to the side of the second guide sleeve (13).

5. The pharmaceutical reaction vessel according to claim 1, characterized in that, The anti-slip support mechanism includes two bottom support pads (8), which are respectively connected to the lower ends of the first rotating plate (6) and the second rotating plate (7).

6. The pharmaceutical reaction vessel according to claim 4, characterized in that, The first guide sleeve (10) is rotatably connected to the first rotating hole (9) by two second rotating shafts.

7. The pharmaceutical reaction vessel according to claim 4, characterized in that, The second guide sleeve (13) is rotatably connected to the second rotating hole (12) via two third rotating shafts.

8. The pharmaceutical reaction vessel according to claim 4, characterized in that, One end of the bidirectional threaded screw (15) is connected to a rotating handle.