Norfloxacin material drying device
Through the combination of the feeding plate, mixing rack and disassembly, the problem of agglomeration in the norfloxacin material drying device is solved, and a more uniform and efficient drying process is achieved.
Patent Information
- Application Number
- CN202422324743.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-09-23
AI Technical Summary
The existing norfloxacin material drying device is prone to agglomeration, resulting in uneven drying effects and low efficiency.
The coordinated cooperation of the feeding plate, mixing rack and breaking up the Norfloxacin material is used to increase the contact area with the heat source and prevent agglomeration by repeatedly throwing and breaking up the norfloxacin material.
Improve the drying effect and efficiency of norfloxacin materials to prevent the occurrence of agglomeration.
Smart Images

Figure CN223121836U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of norfloxacin drying, and particularly relates to a norfloxacin material drying device. Background Art
[0002] Norfloxacin is a broad-spectrum antibiotic belonging to the quinolone class of drugs. It is mainly used to treat infections caused by sensitive strains, such as urinary tract infections, intestinal infections, skin and soft tissue infections, etc. Currently, during the processing and production of norfloxacin materials, a special norfloxacin material drying device is required to achieve the required drying degree.
[0003] Existing norfloxacin material drying devices mostly adopt the box or dynamic conveyor belt method, combined with a stirring mechanism and a heating structure (such as heating pipes or circulating drying airflows) to achieve the necessary drying conditions. However, the undried norfloxacin materials are prone to forming lumps, and the conventional single stirring design is not sufficient to completely disperse the materials, thus limiting the uniformity and efficiency of the drying effect. Summary of the Utility Model
[0004] In view of this, the utility model provides a norfloxacin material drying device, which can cooperate with a material distributing plate, a stirring frame and a dispersing frame to fully disperse the norfloxacin materials during the transmission and drying process, thereby increasing the contact area with the heat source, preventing the norfloxacin materials from caking and resulting in poor drying effect, and improving the drying effect and efficiency of the norfloxacin materials.
[0005] To solve the above technical problems, the utility model provides a norfloxacin material drying device, which includes an installation shell and a rotating shell rotatably connected inside the installation shell. One end of the installation shell is an open structure. A transmission cylinder is arranged inside the rotating shell. A plurality of discharge ports are arranged at one end of the transmission cylinder far away from the opening of the installation shell. A plurality of material distributing plates are arranged on the inner arc surfaces of the rotating shell and the transmission cylinder. A dispersing mechanism for dispersing norfloxacin materials is arranged inside both the installation shell and the rotating shell. The dispersing mechanism includes a dispersing frame rotatably connected to one end of the installation shell far away from its own opening. A rotating hole adapted to the dispersing frame is arranged on the transmission cylinder. A plurality of stirring frames are rotatably connected inside the rotating shell. That is, the norfloxacin materials are repeatedly scattered by the material distributing plates, and then dispersed by the rotating stirring frames and dispersing frame, so that the norfloxacin materials are fully dispersed during the transmission and drying process, increasing the contact area with the heat source, preventing the norfloxacin materials from caking and resulting in poor drying effect, and improving the drying effect and efficiency of the norfloxacin materials.
[0006] Spiral sheets are arranged on the inner arc surfaces of the transmission cylinder and the rotating shell. Avoidance openings adapted to the spiral sheets are arranged on a plurality of material distributing plates, which play a role in transporting the norfloxacin materials.
[0007] Heating wires are provided inside both the transmission cylinder and the rotating shell. That is, the heat generated by the heating wires provides the required heat for the norfloxacin material, promoting water evaporation and playing a role in...
[0008] The dispersing mechanism further includes a first gear provided at one end of the dispersing frame away from the opening of the mounting shell. A second gear is provided at one end of the stirring frame close to the first gear, and the second gears are all meshed and connected with the first gear. That is, when the first conical gear ring rotates, it drives the stirring frame to rotate synchronously through the second conical gear ring meshed with it, playing a role in rapid transmission.
[0009] It further includes a synchronous driving component. The synchronous driving component is used to synchronously drive the transmission cylinder and the first gear to rotate in opposite directions. The synchronous driving component includes a rotating rod rotatably connected to one end of the inner cavity of the mounting shell away from its own opening. A bevel gear is provided at one end of the rotating rod close to the axis of the mounting shell. A first conical gear ring is provided at one end of the transmission cylinder away from the opening of the mounting shell. A second conical gear ring is provided on the side of the first gear close to the transmission cylinder. The second conical gear ring and the first conical gear ring are both meshed and connected with the bevel gear. That is, when the bevel gear rotates, it drives the transmission cylinder and the dispersing frame to rotate in opposite directions synchronously through the first conical gear ring and the second conical gear ring meshed with it.
[0010] The synchronous driving component further includes a motor provided outside the mounting shell. The output shaft of the motor is fixedly connected to one end of the rotating rod away from the bevel gear, that is, playing a role in rapid driving.
[0011] The spiral directions of the two spiral vanes are opposite, so that the norfloxacin material can move smoothly in the transmission cylinder and the rotating shell.
[0012] The beneficial effects of the above technical solutions of the present utility model are as follows:
[0013] 1. The heat generated by the heating wires provides the required heat for the norfloxacin material, promoting water evaporation. Relevant staff feed the norfloxacin material to be dried into the opening end of the transmission cylinder. As the transmission cylinder rotates, the spiral vanes inside it will drive the norfloxacin material to move along the transmission cylinder towards the discharge port. Finally, it is discharged into the rotating shell from the discharge port, and then the spiral vanes in the rotating shell stir the norfloxacin material to move along the transmission cylinder towards the discharge port of the transmission cylinder. During this process, the spiral vanes can convey the norfloxacin material while also stirring it, and the baffle plate can repeatedly throw up the norfloxacin material, and then it is dispersed by the rotating stirring frame and dispersing frame, so that the norfloxacin material is fully dispersed during the transmission and drying process, increasing the contact area with the heat source, preventing the norfloxacin material from caking and resulting in poor drying effect, and improving the drying effect and efficiency of the norfloxacin material.
[0014] 2. The motor operates, and the output shaft of the motor rotates to drive the rotating rod and the bevel gear thereon to rotate synchronously. When the bevel gear rotates, it drives the transmission cylinder and the dispersing frame to rotate in opposite directions synchronously through the bevel gear ring 1 and the bevel gear ring 2 engaged therewith. When the bevel gear ring 1 rotates, it drives the stirring frame to rotate synchronously through the bevel gear ring 2 engaged and connected therewith. When the transmission cylinder rotates, it drives the rotating shell, the discharge port, the spiral blade, the material deflecting plate, the heating wire, the stirring frame and the bevel gear ring 2 to rotate synchronously, so that the stirring frame rotates around its own axis while revolving around the central axis of the device. Description of the Drawings
[0015] Figure 1 It is a schematic diagram of the main structure of a norfloxacin material drying device of the present utility model;
[0016] Figure 2 It is a schematic diagram of the structure of the dispersing mechanism of the present utility model;
[0017] Figure 3 It is an enlarged schematic diagram of part A of the present utility model;
[0018] Figure 4 It is an enlarged schematic diagram of part B of the present utility model.
[0019] Description of the reference numerals: 100, mounting shell; 101, rotating shell; 102, transmission cylinder; 103, discharge port; 104, spiral blade; 105, material deflecting plate; 106, heating wire; 200, dispersing frame; 201, stirring frame; 202, gear 1; 203, gear 2; 300, rotating rod; 301, bevel gear; 302, bevel gear ring 1; 303, bevel gear ring 2; 304, motor. Detailed Description of the Embodiment
[0020] To make the objectives, technical solutions and advantages of the embodiments of the present utility model clearer, the technical solutions of the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the described embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art fall within the protection scope of the present utility model. Figures 1-4 As shown in the following figures:
[0021] As Figures 1-4 shown:
[0022] This embodiment provides a drying device for norfloxacin materials, which includes a mounting shell 100 and a rotating shell 101 rotatably connected inside the mounting shell 100. The mounting shell 100 is used to provide rotational support for the rotating shell 101. One end of the mounting shell 100 is an open structure. The end of the rotating shell 101 close to the opening of the mounting shell 100 is provided with discharge ports evenly distributed in a ring shape for discharging the dried norfloxacin materials. A transmission cylinder 102 is arranged inside the rotating shell 101. The end of the transmission cylinder 102 close to the opening of the mounting shell 100 is also an open structure. The end of the transmission cylinder 102 far from the opening of the mounting shell 100 is provided with a plurality of discharge ports 103, and the discharge ports 103 are evenly distributed along the circumferential direction of the transmission cylinder 102. A plurality of material guiding plates 105 are arranged on the inner arc surfaces of the rotating shell 101 and the transmission cylinder 102, and the plurality of material guiding plates 105 are respectively evenly distributed along the circumferential directions of the rotating shell 101 and the transmission cylinder 102 where they are located. Dispersing mechanisms for dispersing the norfloxacin materials are arranged inside both the mounting shell 100 and the rotating shell 101. The dispersing mechanism includes a dispersing frame 200 rotatably connected to the end of the mounting shell 100 far from its own opening. At the center of the end of the mounting shell 100 far from its own opening, a rotating groove for providing rotational support for the dispersing frame 200 is provided. The transmission cylinder 102 is provided with a rotating hole adapted to the dispersing frame 200, and the rotating hole is used to provide rotational support for the dispersing frame 200. A plurality of stirring frames 201 are rotatably connected inside the rotating shell 101. Rotating holes for providing rotational support for the plurality of stirring frames 201 are arranged inside the rotating shell 101, and the plurality of stirring frames 201 are evenly distributed along the circumferential direction of the rotating shell 101.
[0023] Relevant staff feed the norfloxacin materials to be dried into the open end of the transmission cylinder 102. As the transmission cylinder 102 rotates, the spiral blades 104 inside it will drive the norfloxacin materials to move along the transmission cylinder 102 towards the discharge ports 103. Finally, the materials are discharged into the rotating shell 101 through the discharge ports 103, and then the spiral blades 104 inside the rotating shell 101 stir the norfloxacin materials to move along the transmission cylinder 102 towards the discharge port of the transmission cylinder 102. During this process, the spiral blades 104 can convey the norfloxacin materials while stirring them. The material guiding plates 105 can repeatedly throw up the norfloxacin materials, and then the rotating stirring frames 201 and dispersing frame 200 disperse them, so that the norfloxacin materials are fully dispersed during the transmission and drying process, increasing the contact area with the heat source, preventing the norfloxacin materials from caking and resulting in poor drying effect, and improving the drying effect and efficiency of the norfloxacin materials.
[0024] As Figures 1-4As shown in the figure, spiral fins 104 are provided on the inner arc surfaces of both the transfer cylinder 102 and the rotating housing 101. The spiral fins 104 inside the transfer cylinder 102 are used to convey the norfloxacin material into the rotating housing 101, and the spiral fins 104 inside the rotating housing 101 are used to convey the norfloxacin material to its discharge port. Avoidance openings adapted to the spiral fins 104 are provided on multiple material deflecting plates 105.
[0025] As Figures 2-4 shown in the figure, heating wires 106 are provided inside both the transfer cylinder 102 and the rotating housing 101. The heating wires 106 generate heat to provide the required heat for the norfloxacin material and promote water evaporation.
[0026] As Figures 2-4 shown in the figure, the dispersing mechanism further includes a first gear 202 provided at one end of the dispersing frame 200 away from the opening of the mounting housing 100. Second gears 203 are provided at one end of the stirring frame 201 close to the first gear 202. The second gears 203 are all meshed and connected with the first gear 202. When the first bevel gear ring 302 rotates, it drives the stirring frame 201 to rotate synchronously through the meshed second bevel gear ring 303, playing a role of rapid transmission.
[0027] As Figures 2-4 shown in the figure, it further includes a synchronous drive assembly. The synchronous drive assembly is used to synchronously drive the transfer cylinder 102 and the first gear 202 to rotate in opposite directions synchronously. The synchronous drive assembly includes a rotating rod 300 rotatably connected to one end of the inner cavity of the mounting housing 100 away from its own opening. A rotating slot for providing rotational support for the rotating rod 300 is provided at one end of the inner cavity of the mounting housing 100 away from its own opening. A bevel gear 301 is provided at one end of the rotating rod 300 close to the axis of the mounting housing 100. A first bevel gear ring 302 is provided at one end of the transfer cylinder 102 away from the opening of the mounting housing 100. A second bevel gear ring 303 is provided on one side of the first gear 202 close to the transfer cylinder 102. Both the second bevel gear ring 303 and the first bevel gear ring 302 are meshed and connected with the bevel gear 301.
[0028] The rotating rod 300 and the bevel gear 301 on it rotate synchronously. When the bevel gear 301 rotates, it drives the transfer cylinder 102 and the dispersing frame 200 to rotate in opposite directions synchronously through the meshed first bevel gear ring 302 and second bevel gear ring 303. When the first bevel gear ring 302 rotates, it drives the stirring frame 201 to rotate synchronously through the meshed second bevel gear ring 303.
[0029] As Figures 1-3 shown in the figure, the synchronous drive assembly further includes a motor 304 provided outside the mounting housing 100. The output shaft of the motor 304 is fixedly connected to one end of the rotating rod 300 away from the bevel gear 301. The rotation of the output shaft of the motor 304 drives the rotating rod 300 and the bevel gear 301 on it to rotate synchronously, playing a role of rapid drive.
[0030] As Figures 1-4As shown in the figure, the spiral directions of the two spiral vanes 104 are opposite, so that the norfloxacin material can move smoothly within the transmission cylinder 102 and the rotating housing 101.
[0031] The working principle of a norfloxacin material drying device provided by the present utility model is as follows: The motor 304 and the heating wire 106 operate. The output shaft of the motor 304 rotates to drive the rotating rod 300 and the bevel gear 301 thereon to rotate synchronously. When the bevel gear 301 rotates, it drives the transmission cylinder 102 and the dispersing frame 200 to rotate synchronously and in opposite directions through the bevel gear ring 1 302 and the bevel gear ring 2 303 engaged therewith. When the bevel gear ring 1 302 rotates, it drives the stirring frame 201 to rotate synchronously through the bevel gear ring 2 303 engaged and connected therewith. When the transmission cylinder 102 rotates, it drives the rotating housing 101, the discharge port 103, the spiral vanes 104, the material deflecting plate 105, the heating wire 106, the stirring frame 201 and the bevel gear ring 2 303 to rotate synchronously. In this way, the stirring frame 201 rotates around its own axis while revolving. The heating wire 106 generates heat to provide the heat required for the norfloxacin material, promoting water evaporation. At this time, the relevant staff feeds the norfloxacin material to be dried into the opening end of the transmission cylinder 102. As the transmission cylinder 102 rotates, the spiral vanes 104 therein will drive the norfloxacin material to move along the transmission cylinder 102 towards the discharge port 103, and finally be discharged into the rotating housing 101 through the discharge port 103. Then, the spiral vanes 104 in the rotating housing 101 deflect the norfloxacin material to move along the transmission cylinder 102 towards the discharge port of the transmission cylinder 102. During this process, the spiral vanes 104 can convey the norfloxacin material while stirring it, and the material deflecting plate 105 can repeatedly throw up the norfloxacin material, and then the rotating stirring frame 201 and the dispersing frame 200 disperse it, so that the norfloxacin material is fully dispersed during the transmission and drying process, increasing the contact area with the heat source, preventing the norfloxacin material from caking and resulting in poor drying effect, and improving the drying effect and efficiency of the norfloxacin material.
[0032] In addition, it should be noted that in the description of the present utility model, unless otherwise clearly specified and limited, the terms "installation", "connection" and "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, and it can be the communication inside two components. For those skilled in the art, the specific meanings of the above terms in the present utility model can be understood according to specific situations.
[0033] The above is the preferred embodiment of the present utility model. It should be pointed out that for those of ordinary skill in the art, without departing from the principle described in the present utility model, several improvements and refinements can be made, and these improvements and refinements should also be regarded as the protection scope of the present utility model.
Claims
1. A drying device for norfloxacin materials, characterized in that: It includes an installation shell (100) and a rotating shell (101) rotatably connected inside the installation shell (100). One end of the installation shell (100) is an open structure. A transmission cylinder (102) is provided inside the rotating shell (101). Multiple discharge ports (103) are provided at one end of the transmission cylinder (102) far from the opening of the installation shell (100). Multiple material guiding plates (105) are provided on the inner arc surfaces of the rotating shell (101) and the transmission cylinder (102). A dispersion mechanism for dispersing norfloxacin material is provided inside both the installation shell (100) and the rotating shell (101). The dispersion mechanism includes a dispersion frame (200) rotatably connected to one end of the installation shell (100) far from its own opening. A rotating hole adapted to the dispersion frame (200) is provided on the transmission cylinder (102). Multiple stirring frames (201) are rotatably connected inside the rotating shell (101).
2. The norfloxacin material drying device according to claim 1, wherein: Spiral blades (104) are provided on the inner arc surfaces of both the transmission cylinder (102) and the rotating shell (101). Avoidance openings adapted to the spiral blades (104) are provided on each of the multiple material guiding plates (105).
3. A norfloxacin material drying device according to claim 1, characterized in that: Heating wires (106) are provided inside both the transmission cylinder (102) and the rotating shell (101).
4. A norfloxacin material drying device according to claim 1, characterized in that: The dispersion mechanism further includes a first gear (202) provided at one end of the dispersion frame (200) far from the opening of the installation shell (100). Second gears (203) are provided at one end of each of the stirring frames (201) close to the first gear (202). The second gears (203) are all meshed and connected with the first gear (202).
5. The norfloxacin material drying device according to claim 4, characterized in that: It further includes a synchronous driving assembly for synchronously driving the transmission cylinder (102) and the first gear (202) to rotate in opposite directions synchronously. The synchronous driving assembly includes a rotating rod (300) rotatably connected to one end of the inner cavity of the installation shell (100) far from its own opening. A bevel gear (301) is provided at one end of the rotating rod (300) close to the axis of the installation shell (100). A first bevel gear ring (302) is provided at one end of the transmission cylinder (102) far from the opening of the installation shell (100). A second bevel gear ring (303) is provided on one side of the first gear (202) close to the transmission cylinder (102). Both the second bevel gear ring (303) and the first bevel gear ring (302) are meshed and connected with the bevel gear (301).
6. A norfloxacin material drying device according to claim 5, characterized in that: The synchronous driving assembly further includes a motor (304) provided outside the installation shell (100). The output shaft of the motor (304) is fixedly connected to one end of the rotating rod (300) far from the bevel gear (301).
7. The norfloxacin material drying device according to claim 2, wherein: The spiral directions of the two spiral blades (104) are opposite.