Antifungal agent drying apparatus
Patent Information
- Application Number
- CN202522007518.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-18
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-09-18
AI Technical Summary
[0003] The technical problem solved by this utility model is to provide an automatic drying mechanism for anti-mildew agents.
Smart Images

Figure CN224730974U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of industrial equipment, specifically to a drying equipment for antifungal agents. Background Technology
[0002] Antifungal agents are agents that prevent mold growth caused by microorganisms. When drying granular antifungal agents, the process involves mixing the agents together and then heating them while stirring. Utility Model Content
[0003] The technical problem solved by this utility model is to provide an automatic drying mechanism for anti-mildew agents.
[0004] To solve the above-mentioned technical problems, this utility model provides the following technical solution: a mildew-preventing agent drying device, including an outer cylinder and an inner cylinder, the outer cylinder and the inner cylinder being pivotally connected, the inner cylinder being connected to a motor assembly, the motor assembly being disposed outside the outer cylinder, the top and bottom of the inner cylinder being open, the top of the inner cylinder being fixedly connected to a top rotating shaft via a top connecting rod, the bottom of the inner cylinder being fixedly connected to a bottom rotating shaft via a bottom connecting rod, and the motor assembly being connected to the bottom rotating shaft; there is a gap between the top of the inner cylinder and the inner top of the outer cylinder, and a gap between the bottom of the inner cylinder and the inner bottom of the outer cylinder, an inner spiral blade is provided on the inner side wall of the inner cylinder, and an outer spiral blade is provided on the outer side wall of the inner cylinder; a heating resistor is provided in the side wall of the inner cylinder.
[0005] According to the above technical solution, the anti-mold agent is placed inside the outer cylinder. The motor assembly (including the motor and transmission box) drives the inner cylinder to rotate. The outer spiral blades on the outer wall of the inner cylinder drive the anti-mold agent to flow upward along the gap between the outer wall of the inner cylinder and the inner wall of the outer cylinder. The anti-mold agent enters the inner cylinder through the gap between the top of the inner cylinder and the top of the outer cylinder. The inner spiral blades on the inner wall of the inner cylinder drive the anti-mold agent to flow downward. The anti-mold agent enters the space between the outer wall of the inner cylinder and the inner wall of the outer cylinder through the gap between the bottom of the inner cylinder and the bottom of the outer cylinder. Thus, driven by the outer and inner spiral blades of the inner cylinder, the anti-mold agent circulates in the space between the outer wall of the inner cylinder and the inner wall of the outer cylinder, and between the inner cylinders. The heating resistor heats the side wall of the inner cylinder, drying the anti-mold agent.
[0006] The bottom rotating shaft is hollow, the bottom connecting rod is hollow, and a bottom inner conductive ring is fitted on the bottom rotating shaft. A bottom outer conductive ring is set at the bottom of the outer cylinder. The bottom outer conductive ring and the bottom inner conductive ring are movably fitted together. The bottom inner conductive ring is connected to the resistance wire. The resistance wire enters the side wall of the inner cylinder through the hollow cavity of the bottom rotating shaft and the bottom connecting rod and is connected to the heating resistor. The bottom outer conductive ring is connected to the bottom outer wire, and the bottom outer wire is connected to the power supply.
[0007] The top rotating shaft is hollow, the top connecting rod is hollow, and a top inner conductive ring is fitted on the top rotating shaft. A top outer conductive ring is set on the top cover of the outer cylinder. The top outer conductive ring and the top inner conductive ring are movably fitted together. The top inner conductive ring is connected to the resistance wire. The resistance wire enters the side wall of the inner cylinder through the hollow cavity of the top rotating shaft and the top connecting rod and is connected to the heating resistor. The top outer conductive ring is connected to the top outer wire. The top outer wire is connected to the top cover to achieve grounding of the top outer wire.
[0008] A bottom sleeve is fixedly installed at the bottom of the outer cylinder, and the bottom outer conductive ring is fitted into the bottom sleeve.
[0009] The top cover is fixedly fitted with a top sleeve, and the top outer conductive ring is fitted into the top sleeve.
[0010] The top of the outer cylinder has a feed inlet, and the bottom of the outer cylinder has a discharge outlet, which is equipped with a plug.
[0011] An inner cylinder shell is fitted over the inner cylinder, and a resistor groove is provided on the inner cylinder, in which the heating resistor is positioned. An outer spiral blade is disposed on the inner cylinder shell.
[0012] The antifungal agent enters the outer cylinder through the feed inlet, and the inner cylinder rotates under the drive of the motor assembly. Driven by the outer and inner spiral blades of the inner cylinder, the antifungal agent automatically circulates in the space between the outer and inner walls of the inner cylinder, as well as within the inner cylinder itself. Heating resistors heat the side walls of the inner cylinder, drying the antifungal agent. Attached Figure Description
[0013] The present invention will be further described below with reference to the accompanying drawings:
[0014] Figure 1 This is a schematic diagram of the appearance of the antifungal agent drying equipment;
[0015] Figure 2 for Figure 1 Top view;
[0016] Figure 3 for Figure 1 A sectional view;
[0017] Figure 4 for Figure 3 AA section view;
[0018] Figure 5 for Figure 3 Enlarged view at point B in the middle;
[0019] Figure 6 for Figure 3 Enlarged view of point C.
[0020] Explanation of symbols in the diagram:
[0021] 10. Outer cylinder; 11. Top cover; 12. Bottom sleeve; 13. Top sleeve; 14. Feed inlet; 15. Plug;
[0022] 20. Inner cylinder; 21. Top connecting rod; 22. Top pivot; 23. Bottom connecting rod; 24. Bottom pivot; 25. Inner spiral blade; 26. Outer spiral blade; 27. Inner cylinder outer shell;
[0023] 30. Motor assembly;
[0024] 40. Heating resistor; 41. Bottom inner conductive ring; 42. Bottom outer conductive ring; 43. Resistance wire; 44. Bottom outer wire; 45. Top inner conductive ring; 46. Top outer conductive ring; 47. Top outer wire. Detailed Implementation
[0025] like Figure 3 The anti-mildew agent drying equipment includes an outer cylinder 10 and an inner cylinder 20, which are pivotally connected. A motor assembly 30 is connected to the inner cylinder and is located outside the outer cylinder. The top and bottom of the inner cylinder are open. The top of the inner cylinder is fixedly connected to a top rotating shaft 22 via a top connecting rod 21, and the bottom of the inner cylinder is fixedly connected to a bottom rotating shaft 24 via a bottom connecting rod 23. The motor assembly is connected to the bottom rotating shaft. There is a gap between the top of the inner cylinder and the inner top of the outer cylinder, and a gap between the bottom of the inner cylinder and the inner bottom of the outer cylinder. Inner spiral blades 25 are provided on the inner sidewall of the inner cylinder, and outer spiral blades 26 are provided on the outer sidewall of the inner cylinder. A heating resistor 40 is installed in the sidewall of the inner cylinder.
[0026] like Figure 5 The bottom rotating shaft 24 is hollow, the bottom connecting rod 23 is hollow, the bottom inner conductive ring 41 is sleeved on the bottom rotating shaft, and the bottom outer conductive ring 42 is set at the bottom of the outer cylinder. The bottom outer conductive ring and the bottom inner conductive ring are movably engaged. The bottom inner conductive ring is connected to the resistance wire 43. The resistance wire enters the side wall of the inner cylinder 20 through the hollow cavity of the bottom rotating shaft and the bottom connecting rod and is connected to the heating resistor 40. The bottom outer conductive ring is connected to the bottom outer wire 44, and the bottom outer wire is connected to the power supply.
[0027] like Figure 6 The top rotating shaft 22 is hollow, the top connecting rod 21 is hollow, the top inner conductive ring 45 is sleeved on the top rotating shaft, and the top outer conductive ring 46 is provided on the top cover 11 of the outer cylinder 10. The top outer conductive ring and the top inner conductive ring are movably engaged. The top inner conductive ring is connected to the resistance wire 43. The resistance wire enters the side wall of the inner cylinder 20 through the hollow cavity of the top rotating shaft and the top connecting rod and is connected to the heating resistor 40. The top outer conductive ring is connected to the top outer wire 47, and the top outer wire is connected to the top cover 11.
[0028] A bottom sleeve 12 is fixedly installed at the bottom of the outer cylinder 10, and the bottom outer conductive ring 42 is fitted in the bottom sleeve.
[0029] The top cover 11 is fixedly mounted with the top sleeve 13, and the top outer conductive ring 46 is fitted in the top sleeve.
[0030] The top of the outer cylinder 10 is provided with a feed inlet 14, and the bottom of the outer cylinder is provided with a discharge outlet, which is equipped with a plug 15.
[0031] The inner cylinder 20 is fitted with an inner cylinder outer shell 27, and a resistor groove is provided on the inner cylinder, with the heating resistor 40 positioned in the resistor groove.
[0032] The antifungal agent is fed into the outer cylinder 10 through the inlet 14. The motor assembly 30 drives the inner cylinder 20 to rotate. The outer spiral blades 26 on the outer wall of the inner cylinder drive the antifungal agent to flow upward along the gap between the outer wall of the inner cylinder and the inner wall of the outer cylinder. The antifungal agent also enters the inner cylinder 20 through the gap between the top of the inner cylinder and the top of the inner cylinder. The inner spiral blades 25 on the inner wall of the inner cylinder drive the antifungal agent to flow downward. The antifungal agent enters the space between the outer wall of the inner cylinder and the inner wall of the outer cylinder through the gap between the bottom of the inner cylinder and the bottom of the inner cylinder. Thus, driven by the outer spiral blades 26 and the inner spiral blades 25, the antifungal agent circulates in the space between the outer wall of the inner cylinder and the inner wall of the outer cylinder, as well as between the inner cylinders. The heating resistor 40 heats the side wall of the inner cylinder 20, drying the antifungal agent.
[0033] The above description is only a preferred embodiment of this utility model. For those skilled in the art, there will be changes in the specific implementation and application scope based on the idea of this utility model. The content of this specification should not be construed as a limitation of this utility model.
Claims
1. A mildew inhibitor drying device, comprising an outer cylinder (10) and an inner cylinder (20), the outer cylinder and the inner cylinder being pivotally connected, the inner cylinder being connected to a motor assembly (30), the motor assembly being disposed outside the outer cylinder, characterized in that: The inner cylinder has openings at the top and bottom. The top of the inner cylinder is fixedly connected to the top rotating shaft (22) via a top connecting rod (21). The bottom of the inner cylinder is fixedly connected to the bottom rotating shaft (24) via a bottom connecting rod (23). The motor assembly is connected to the bottom rotating shaft. The top of the inner cylinder has a gap with the top of the outer cylinder, and the bottom of the inner cylinder has a gap with the bottom of the outer cylinder. The inner sidewall of the inner cylinder is provided with an inner spiral blade (25), and the outer sidewall of the inner cylinder is provided with an outer spiral blade (26). A heating resistor (40) is provided in the sidewall of the inner cylinder.
2. The antifungal drying equipment as described in claim 1, characterized in that: The bottom rotating shaft (24) is hollow, the bottom connecting rod (23) is hollow, the bottom inner conductive ring (41) is sleeved on the bottom rotating shaft, the bottom outer conductive ring (42) is set at the bottom of the outer cylinder, the bottom outer conductive ring and the bottom inner conductive ring are in movable cooperation, the bottom inner conductive ring is connected to the resistance wire (43), the resistance wire enters the side wall of the inner cylinder (20) through the hollow cavity of the bottom rotating shaft and the bottom connecting rod, and is connected to the heating resistor (40), the bottom outer conductive ring is connected to the bottom outer wire (44), and the bottom outer wire is connected to the power supply.
3. The antifungal drying equipment as described in claim 2, characterized in that: The top rotating shaft (22) is hollow, the top connecting rod (21) is hollow, the top inner conductive ring (45) is sleeved on the top rotating shaft, the top outer conductive ring (46) is set on the top cover (11) of the outer cylinder (10), the top outer conductive ring and the top inner conductive ring are in movable cooperation, the top inner conductive ring is connected to the resistance wire (43), the resistance wire enters the side wall of the inner cylinder (20) through the hollow cavity of the top rotating shaft and the top connecting rod, and is connected to the heating resistor (40), the top outer conductive ring is connected to the top outer wire (47), and the top outer wire is connected to the top cover (11).
4. The antifungal drying equipment as described in claim 2, characterized in that: A bottom sleeve (12) is fixedly installed at the bottom of the outer cylinder (10), and a bottom outer conductive ring (42) is fitted in the bottom sleeve.
5. The antifungal drying equipment as described in claim 3, characterized in that: The top cover (11) is fixedly mounted on the top sleeve (13), and the top outer conductive ring (46) is fitted in the top sleeve.
6. The antifungal drying equipment as described in claim 1, characterized in that: The top of the outer cylinder (10) is provided with a feed inlet (14), and the bottom of the outer cylinder is provided with a discharge outlet, which is equipped with a plug (15).
7. The antifungal drying equipment as described in claim 1, characterized in that: The inner cylinder (20) is fitted with an inner cylinder shell (27), and a resistor groove is provided on the inner cylinder, with the heating resistor (40) positioned in the resistor groove.