Double-layer glass reaction kettle
By employing a coaxial stirring design with different directions in a double-layered glass reactor, the problems of slow stirring speed and heat loss were solved, achieving more efficient material mixing and heat preservation.
Patent Information
- Application Number
- CN202423096099.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-16
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-12-16
AI Technical Summary
The existing double-layer glass reactor has a slow stirring speed and unsatisfactory stirring effect, resulting in low material mixing efficiency and serious heat loss.
It adopts a coaxial stirring design in different directions, combined with heat-insulating components, and uses a motor to drive the mixing components to stir in different directions in the same direction. It also uses magnetic attraction to achieve heat preservation around the vessel body.
It improves the efficiency of material mixing and heat preservation, reduces heat loss, and enhances the overall mixing effect.
Smart Images

Figure CN223615883U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glass reactor technology, and more specifically, to a double-layered glass reactor. Background Technology
[0002] The working principle of a double-layered glass reactor involves injecting a constant-temperature hot melt or coolant into the jacket of the reactor to heat or cool the materials inside, while continuously stirring. This equipment can perform vacuum stirring reactions, distillation and concentration reactions, separation and extraction, and reaction heat experiments. Coolant can also be circulated through the jacket to lower the internal temperature of the reactor. Most current double-layered glass reactors suffer from slow stirring speeds and unsatisfactory stirring effects, resulting in long stirring times. Therefore, this solution proposes a new double-layered glass reactor. Utility Model Content
[0003] 1. Technical problem to be solved:
[0004] To address the problems existing in the prior art, the purpose of this utility model is to provide a double-layered glass reactor. Driven by a motor, the mixing components can be driven and stirred in different directions coaxially inside the double-layered glass reactor, and the stirring areas are also different. This increases the efficiency of material mixing inside the double-layered glass reactor, making the mixing more thorough. Furthermore, by pulling the heat-insulating components, the reactor body can be surrounded, reducing heat loss during heating, improving the overall heat preservation effect, and increasing the material mixing efficiency.
[0005] 2. Technical Solution:
[0006] To solve the above problems, the present invention adopts the following technical solution.
[0007] A double-layered glass reactor includes a support first, with a support second fixedly connected between the upper and lower inner walls of the support first. An annular plate is embedded at the outer end of the support second, and a reactor body is installed between the inner walls of the two support seconds. A motor is installed at the upper end of the reactor body, and a mixing component for stirring the solution is provided at the output end of the motor. A heat-insulating component for heat insulation and heat preservation is provided between the inner walls of the upper and lower annular plates.
[0008] A further improvement is that the mixing component includes a connecting seat fixedly connected to the inner wall of the top side of the vessel body. A transmission gear disk I and a transmission gear disk II are rotatably connected to the upper and lower inner walls of the connecting seat, respectively. A transmission gear I and a transmission gear II are respectively installed on the left and right inner walls of the connecting seat. The height of the transmission gear I is higher than half the height of the transmission gear II body. The top side of the transmission gear I is meshed with the inner wall of the transmission gear disk I, and the bottom side of the transmission gear II is meshed with the inner wall of the transmission gear disk II. The sides of the transmission gear I and the transmission gear II that are in contact with each other are meshed.
[0009] The output end of the motor is fixedly connected to a connecting rod, the bottom end of the transmission gear plate II is fixedly connected to a sleeve, the connecting rod passes through the inner wall of the sleeve and one end is fixedly connected to the transmission gear plate I, the outer end of the sleeve is fixedly connected to multiple sets of symmetrically distributed stirring rods I, and the bottom of the connecting rod is fixedly connected to multiple sets of symmetrically distributed stirring rods II.
[0010] A further improvement is that the diameter of the second stirring rod is set to be half the diameter of the first stirring rod, and the first and second stirring rods are distributed at staggered angles.
[0011] A further improvement is that the heat-insulating component includes a connecting shell that is fixedly connected between the inner walls of two annular plates. An annular groove is provided on one side of the annular plate, and a connecting plate is slidably connected between the inner walls of the annular groove. A rotating shaft is rotatably connected between the upper and lower inner walls on one side of the connecting shell. A heat-insulating pad is wound around the outer end of the rotating shaft by a torsion spring. One end of the heat-insulating pad is fixedly connected to the connecting plate, and a handle is fixedly connected to the side end of the connecting plate.
[0012] A further improvement is that a positive magnet is embedded at the outer end of the connecting plate, and a negative magnet is embedded at the outer end of the connecting shell, and the positive and negative magnets attract each other.
[0013] 3. Beneficial effects:
[0014] Compared with the prior art, the technical solution provided by this utility model has the following advantages:
[0015] This utility model is reasonably designed. Driven by a motor, the mixing components can be driven and stirred in different directions on the same axis inside the double-layered glass reactor. The stirring areas are also different, thereby increasing the efficiency of mixing and stirring of materials inside the double-layered glass reactor and making the mixing more thorough.
[0016] Furthermore, in actual use, the double-layered glass reactor can be surrounded by the heat-insulating components, which reduces heat loss during heating, improves the overall heat preservation effect, and increases the material mixing efficiency.
[0017] It should be noted that the structures not described in this utility model are the same as or can be implemented using existing technology, and will not be elaborated here, as they do not involve the design points and improvement directions of this utility model. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0019] Figure 2 This is a schematic diagram of the structure of the hybrid component of this utility model;
[0020] Figure 3 This is a cross-sectional structural diagram of the heat-insulating component of this utility model;
[0021] Figure 4 This is a partial structural schematic diagram of the present invention.
[0022] Explanation of the labels in the diagram:
[0023] 1. Support 1; 2. Support 2; 3. Annular plate; 31. Annular groove; 4. Kettle body; 5. Motor;
[0024] 51. Connecting seat; 52. Transmission gear disc one; 53. Transmission gear disc two; 54. Transmission gear one; 55. Transmission gear two; 56. Connecting rod; 57. Sleeve; 58. Stirring rod one; 59. Stirring rod two;
[0025] 6. Heat-insulating component; 61. Connecting housing; 62. Connecting plate; 63. Rotating shaft; 64. Insulation pad; 65. Positive magnet; 66. Handle; 67. Negative magnet. Detailed Implementation
[0026] To facilitate understanding of this utility model, a more comprehensive description of the utility model will be given below with reference to the accompanying drawings, which show several embodiments of the utility model. However, the utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided so that the disclosure of the utility model will be more thorough and complete.
[0027] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "page", "bottom", "inner", "outer", "clockwise", "counterclockwise", 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, and are not intended to 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.
[0028] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0029] In this utility model, unless otherwise explicitly specified and limited, the terms "installed," "connected," "linked," "fixed," "provided with," and "located in" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances. Example
[0030] Please see Figures 1-4 A double-layered glass reactor includes a support 1, with a second support 2 fixedly connected between the upper and lower inner walls of the first support 1. An annular plate 3 is embedded at the outer end of the second support 2. A reactor body 4 is installed between the inner walls of the two second support 2s. A motor 5 is installed at the upper end of the reactor body 4. A mixing component for stirring the solution is provided at the output end of the motor 5. A heat-insulating component 6 for heat insulation and heat preservation is provided between the inner walls of the upper and lower annular plates 3.
[0031] In order to further improve the existing double-layer glass reactor's slow stirring speed and unsatisfactory stirring effect during use, this embodiment, driven by motor 5, enables the mixing components to perform coaxial but different direction stirring operations inside the double-layer glass reactor, and the stirring areas are also different. This increases the efficiency of material mixing inside the double-layer glass reactor, making the mixing more thorough. In addition, the double-layer glass reactor needs to be heated according to the internal reaction process during actual use. In this embodiment, the heat-insulating component 6 can be pulled to surround the reactor body, reducing heat loss during heating, improving the overall heat preservation effect, and increasing the material mixing efficiency.
[0032] Please see Figures 1-2 The mixing component includes a connecting seat 51 fixedly connected to the inner wall of the top side of the vessel body 4. A transmission gear disk 1 52 and a transmission gear disk 2 53 are rotatably connected to the upper and lower inner walls of the connecting seat 51, respectively. A transmission gear 1 54 and a transmission gear 2 55 are respectively installed on the left and right inner walls of the connecting seat 51. The height of the transmission gear 1 54 is higher than half the height of the transmission gear 2 55. The top side of the transmission gear 1 54 is meshed with the inner wall of the transmission gear disk 1 52, and the bottom side of the transmission gear 2 55 is meshed with the inner wall of the transmission gear disk 2 53. The sides of the transmission gear 1 54 and the transmission gear 2 55 that are in contact with each other are meshed.
[0033] The output end of the motor 5 is fixedly connected to a connecting rod 56, the bottom end of the transmission gear 53 is fixedly connected to a sleeve 57, the connecting rod 56 extends through the inner wall of the sleeve 57, and one end is fixedly connected to the transmission gear 52. The outer end of the sleeve 57 is fixedly connected to a plurality of symmetrically distributed stirring rods 58, and the bottom of the connecting rod 56 is fixedly connected to a plurality of symmetrically distributed stirring rods 59.
[0034] More specifically: the diameter of the second stirring rod 59 is set to be half the diameter of the first stirring rod 58, and the first stirring rod 58 and the second stirring rod 59 are distributed at an alternating angle.
[0035] During use, the drive motor 5 drives the connecting rod 56 and the connected transmission gear 52 to move synchronously. At this time, the stirring rod 59 located at the bottom of the vessel 4 rotates synchronously with the rotation of the connecting rod 56, thereby mixing and stirring the material at the bottom.
[0036] While the transmission gear disk 52 rotates, it meshes with the transmission gear 54 on one side of its inner wall. The transmission gear 54 operates synchronously with the transmission gear disk 52. At the same time, the transmission gear 54, the transmission gear 55, and the transmission gear disk 53 on the bottom side are all meshed. When the transmission gear 54 and the transmission gear 55 are meshing, they rotate in opposite directions. As a result, when the connecting rod 56 connected to the transmission gear disk 52 rotates clockwise, the sleeve 57 connected to the transmission gear disk 53 rotates counterclockwise. The stirring rod 58 stirs in the same direction inside the vessel body 4, realizing mixing and stirring in different directions in the coaxial vertical direction inside the vessel body 4. This makes the materials inside the vessel body 4 more fully mixed and improves the mixing efficiency.
[0037] Please see Figure 1 and Figures 3-4 The heat-insulating component 6 includes a connecting housing 61 fixedly connected between the inner walls of two annular plates 3. An annular groove 31 is provided on one side of the annular plate 3. A connecting plate 62 is slidably connected between the inner walls of the annular groove 31. A rotating shaft 63 is rotatably connected between the upper and lower inner walls on one side of the connecting housing 61. A heat-insulating pad 64 is wound around the outer end of the rotating shaft 63 by a torsion spring. One end of the heat-insulating pad 64 is fixedly connected to the connecting plate 62. A handle 66 is fixedly connected to the side end of the connecting plate 62.
[0038] More specifically: a positive magnet 65 is embedded at the outer end of the connecting plate 62, and a negative magnet 67 is embedded at the outer end of the connecting shell 61. The positive magnet 65 and the negative magnet 67 attract each other.
[0039] In the process of using this solution, when the reactor needs to be heated according to the internal reaction process, the operator can pull the handle 66 to stretch out the heat insulation pad 64 that was originally wrapped around the surface of the rotating shaft 63. At this time, the torsion spring is stressed, and then the connecting plate 62 is pulled to slide around the annular groove 31 once, so that the positive magnet 65 comes into contact with the negative magnet 67 on the back side of the connecting shell 61. Under magnetic adsorption, the two are fixed together, thereby enclosing the reactor body, reducing heat loss during the heating process, improving the overall heat preservation effect, and increasing the material mixing efficiency.
[0040] When not in use, the positive magnet 65 and the negative magnet 67 are separated, and the connecting plate 62 is not pulled. Under the reset property of the torsion spring, the heat insulation pad 64 is allowed to rewind on the surface of the rotating shaft 63, and the connecting plate 62 slides back to its initial state inside the annular groove 31 for subsequent use and without obstructing the line of sight in daily life.
[0041] The above-described embodiments are merely illustrative of certain implementations of this utility model, and their descriptions are relatively specific and detailed. However, they should not be construed as limiting the scope of this utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these modifications and improvements all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.
Claims
1. A double-layered glass reactor, comprising a support frame (1), characterized in that: A second bracket (2) is fixedly connected between the upper and lower inner walls of the first bracket (1). An annular plate (3) is embedded at the outer end of the second bracket (2). A vessel body (4) is installed between the inner walls of the two second brackets (2). A motor (5) is installed at the upper end of the vessel body (4). A mixing component for stirring the solution is provided at the output end of the motor (5). A heat-insulating component (6) for heat insulation and heat preservation is provided between the inner walls of the upper and lower annular plates (3). The mixing component includes a connecting seat (51) fixedly connected to the inner wall of the top side of the vessel body (4). The upper and lower inner walls of the connecting seat (51) are respectively rotatably connected to a first transmission gear disk (52) and a second transmission gear disk (53). The left and right inner walls of the connecting seat (51) are respectively equipped with a first transmission gear (54) and a second transmission gear (55). The height of the first transmission gear (54) is higher than half the height of the second transmission gear (55). The top side of the first transmission gear (54) is meshed with the inner wall of the first transmission gear disk (52), and the bottom side of the second transmission gear (55) is meshed with the inner wall of the second transmission gear disk (53). The sides of the first transmission gear (54) and the second transmission gear (55) that are in contact with each other are meshed. The output end of the motor (5) is fixedly connected to a connecting rod (56), the bottom end of the transmission gear plate (53) is fixedly connected to a sleeve (57), the connecting rod (56) extends through the inner wall of the sleeve (57), and one end is fixedly connected to the transmission gear plate (52). The outer end of the sleeve (57) is fixedly connected to multiple sets of symmetrically distributed stirring rods (58), and the bottom of the connecting rod (56) is fixedly connected to multiple sets of symmetrically distributed stirring rods (59). The heat-insulating component (6) includes a connecting shell (61) fixedly connected between the inner walls of two annular plates (3). An annular groove (31) is provided on one side of the annular plate (3). A connecting plate (62) is slidably connected between the inner walls of the annular groove (31). A rotating shaft (63) is rotatably connected between the upper and lower inner walls on one side of the connecting shell (61). A heat-insulating pad (64) is wound around the outer end of the rotating shaft (63) by a torsion spring. One end of the heat-insulating pad (64) is fixedly connected to the connecting plate (62). A handle (66) is fixedly connected to the side end of the connecting plate (62).
2. The double-layered glass reactor according to claim 1, characterized in that: The diameter of the second stirring rod (59) is half that of the first stirring rod (58), and the first stirring rod (58) and the second stirring rod (59) are staggered at an angle.
3. The double-layered glass reactor according to claim 1, characterized in that: A positive magnet (65) is embedded at the outer end of the connecting plate (62), and a negative magnet (67) is embedded at the outer end of the connecting shell (61). The positive magnet (65) and the negative magnet (67) attract each other.