一种混合搅拌罐取样结构
By introducing an outer sealing disc and an inner sealing disc structure into the sampling device of the mixing tank, combined with a pushing disc driven by a pushing cylinder, the problem of residue after sampling is solved, the inner wall of the sampler is cleaned, and the sampling quality and effect are ensured.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- DONGGUAN JINSHUO ELECTRONIC MATERIALS CO LTD
- Filing Date
- 2025-06-13
- Publication Date
- 2026-07-17
AI Technical Summary
Existing sampling devices for mixing tanks often leave material residue on the inner wall of the sampling tube and the inner wall of the sampling port after sampling, which affects the subsequent sampling results.
The device employs an outer and inner sealing disc structure. The sampling head is moved inward by a material-collecting cylinder, and the outer and inner sealing discs press together to discharge the material. A pushing cylinder drives a pushing disc to remove residues, ensuring the cleanliness of the inner wall of the sampler and the inner wall of the discharge pipe.
It effectively removes residues from the inner wall of the sampler and the inner wall of the discharge pipe, improving sampling quality and effectiveness, and ensuring accuracy and reliability for each sampling.
Smart Images

Figure CN224518251U_ABST
Abstract
Claims
1. A mixed-stir tank sampling structure, characterized by, include: Sampler cylinder (100), sampling assembly (200); The sampler body (100) includes a flange (101) fixedly mounted at its outer end. The sampling assembly (200) includes a sampling head (201) movably installed inside the sampler cylinder (100), an outer sealing disc (202) fixedly installed on one side of the sampling head (201), a first slot (203) opened on one side of the outer sealing disc (202), an inner sealing disc (204) fixedly installed inside the sampler cylinder (100), a second slot (205) opened on one side of the inner sealing disc (204), an installation pipe (206) and a discharge pipe (207) fixedly installed at the upper and lower ends of the sampler cylinder (100) respectively, and a pusher disc (208) movably matched and installed inside the installation pipe (206).
2. A mixed-stir tank sampling structure according to claim 1, characterized by The upper end of the mounting tube (206) is also fixedly installed with a pusher cylinder (209), and the pusher cylinder (209) is fixedly connected to the pusher disc (208).
3. A mixed-stir tank sampling structure according to claim 1, wherein A connecting shaft (210) is also fixedly installed on one side of the outer sealing disc (202), and a material taking cylinder (211) is also fixedly installed at one end of the sampler cylinder (100), and the material taking cylinder (211) is fixedly connected to the connecting shaft (210).
4. The mixed tank sampling structure according to claim 1, wherein, The inner sealing disc (204) also has a through hole (212) that matches the connecting shaft (210).
5. The mixed agitator tank sampling structure of claim 1, wherein, The sampler cylinder (100) is also fixedly installed with positioning blocks (213) on both the upper and lower sides, and the positioning blocks (213) are located outside the inner sealing disc (204).
6. A mixed-stir tank sampling structure according to claim 1, wherein The sampler cylinder (100) also has a material inlet (214) at one end of its upper part.
7. A mixed agitator tank sampling structure according to claim 1, wherein The outer end of the discharge pipe (207) is also threaded with a threaded cap (215).
8. A mixed vessel sampling structure according to claim 1, wherein The outer sealing disc (202) has the same structure as the inner sealing disc (204). The first slot (203) and the second slot (205) have the same structure, and both the first slot (203) and the second slot (205) are semi-cylindrical structures. The diameter of the mounting pipe (206) is the same as the diameter of the discharge pipe (207). The cross-sectional diameter of the pusher disc (208) is the same as the cross-sectional diameter of the first slot (203) and the second slot (205).