Activated carbon adsorption box convenient for medicament replacement
By designing and replacing activated carbon components and servo motor drive system in the activated carbon adsorption box, the rapid and convenient replacement of activated carbon is achieved, and the problems of long time and high working intensity of activated carbon replacement in the prior art are solved.
Patent Information
- Application Number
- CN202421402754.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-19
- Publication Date
- 2025-05-23
- Estimated Expiration
- 2034-06-19
AI Technical Summary
When replacing activated carbon, the existing activated carbon adsorption box requires operators to take out and place them piece by piece, which takes a long time and increases the working intensity.
An activated carbon adsorption box is designed to facilitate the replacement of the agent. By replacing the activated carbon components, the threaded screws and moving blocks are driven by a servo motor to achieve rapid movement of the activated carbon placement rack and the extraction and installation of the activated carbon placement box, simplifying the activated carbon replacement process.
It greatly reduces the time and working intensity of activated carbon replacement, and improves the efficiency and convenience of replacing activated carbon.
Smart Images

Figure CN222889610U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of an activated carbon adsorption box for conveniently replacing medicaments, in particular to an activated carbon adsorption box for conveniently replacing medicaments. Background Art
[0002] An activated carbon adsorption box that is convenient for replacing reagents. The activated carbon adsorption box is a device used to remove harmful substances from the air or gas. Its main principle is to adsorb harmful substances through activated carbon, thereby purifying the air or gas. The design of the activated carbon adsorption box should take into account the convenience of replacing reagents, including a structure that is easy to open and close, and the convenience of cleaning and replacing activated carbon.
[0003] In the existing activated carbon adsorption box technology that is convenient for replacing reagents, the operator places the reagent into the activated carbon adsorption box for storage and placement, thereby purifying the air or gas. When the activated carbon inside the activated carbon adsorption box needs to be replaced, the operator needs to take out multiple activated carbon blocks from the inside of the box and replace multiple new activated carbon blocks inside the box.
[0004] Since the activated carbon inside the adsorption box needs to be replaced, the operator has to take out or place multiple activated carbon blocks one by one, which not only increases the workload of the staff, but also a replacement may take several hours or even longer, which may be very time-consuming.
[0005] Therefore, it is necessary to provide an activated carbon adsorption box that is convenient for replacing reagents to solve the above technical problems. Utility Model Content
[0006] In view of the above situation, in order to overcome the defects of the prior art, the utility model provides an activated carbon adsorption box which is convenient for replacing reagents. By centralizing multiple activated carbon blocks, the activated carbon inside the adsorption box can be quickly replaced, which can save time and reduce the workload of operators.
[0007] In order to achieve the above purpose, the technical solution adopted by the utility model is as follows:
[0008] An activated carbon adsorption box for convenient replacement of reagents comprises: an activated carbon adsorption box mechanism and an activated carbon replacement component, wherein the activated carbon replacement component comprises a first activated carbon placement rack and a second activated carbon placement rack, the first activated carbon placement rack and the second activated carbon placement rack are provided with a first fixed plate and a second fixed plate, the first fixed plate and the second fixed plate are provided with a slot inside, the internal slots of the first fixed plate and the second fixed plate are connected with an activated carbon placement box by sliding, an activated carbon block is placed in the activated carbon placement box in advance, one end of the activated carbon placement box is connected and fixed with a handle by a bolt, the upper ends of the first fixed plate and the second fixed plate are connected and fixed to an upper moving block by welding, the lower ends of the first fixed plate and the second fixed plate are connected and fixed to a lower moving block by welding, a threaded hole is provided inside the upper moving block, a threaded screw is connected through the inside of the threaded hole, and a servo motor is installed at one end of the threaded screw.
[0009] Preferably, the upper moving block and the lower moving block are connected inside the box by sliding, and a moving groove is provided inside the box.
[0010] Preferably, the first filter screen and the second filter screen are connected and fixed to each other at both side ends of the first fixing plate and the second fixing plate by screws, and grid slots are provided inside the first filter screen and the second filter screen.
[0011] Preferably, honeycomb holes are provided on both sides of the activated carbon placement box, and a discharge port is provided at the lower end of the activated carbon placement box.
[0012] Preferably, sliding grooves are provided on both sides of the upper end of the activated carbon placement box, the interior of the sliding groove is slidably connected with a sliding rod, the lower end of the sliding rod is equipped with a wiping sponge, and the wiping sponge is installed inside the activated carbon placement box.
[0013] Preferably, a medicine placing groove is provided inside the box body, ventilation grooves are provided on both side ends of the medicine placing groove, through holes are provided on both sides of the box body and ventilation pipes are installed, the lower end of the box body is connected and fixed to the supporting column by welding, and a box door is installed at one end of the box body.
[0014] Compared with the prior art, the utility model has the following beneficial effects:
[0015] (1) The utility model utilizes the replacement of activated carbon components, drives the servo motor to drive the threaded screw to rotate, and further drives the upper moving block and the lower moving block to slide and move inside the moving groove, and further moves the first activated carbon placement rack and the second activated carbon placement rack out of the box body, and the operator holds the handle to pull out the activated carbon placement box, and further inserts the new activated carbon block into the activated carbon placement box from the groove, which can avoid the operator taking out or placing multiple activated carbon blocks one by one, thereby reducing the labor intensity of work.
[0016] (2) The utility model utilizes a first filter net and a second filter net, which can block the activated carbon particles and prevent them from entering the reagent tank. Furthermore, the activated carbon can absorb and filter the harmless gas before it can enter the reagent tank.
[0017] (3) The utility model utilizes a wiping sponge, a sliding rod, and a sliding groove. The operator moves the sliding rod inside the sliding groove, thereby further driving the wiping sponge to move inside the activated carbon placement box. The residual activated carbon particles inside the activated carbon placement box can be cleaned. Removing the residual activated carbon particles can prevent them from accumulating inside the device. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 A schematic diagram of the structure of the activated carbon adsorption box provided by the utility model for convenient replacement of reagents from a first perspective;
[0019] Figure 2 A schematic diagram of the structure of the activated carbon adsorption box provided by the utility model for convenient replacement of reagents from a second perspective;
[0020] Figure 3 A schematic diagram of the structure of the reagent slot and reagent through hole of the activated carbon adsorption box for convenient reagent replacement provided by the utility model;
[0021] Figure 4 A schematic diagram of the structure of the replacement activated carbon component of the activated carbon adsorption box for convenient replacement of reagents provided by the utility model;
[0022] Figure 5 A schematic diagram of the structure of an activated carbon placement box of an activated carbon adsorption box for convenient replacement of reagents provided by the utility model;
[0023] Figure 6 A schematic diagram of the filter structure of the activated carbon adsorption box for convenient replacement of reagents provided by the utility model;
[0024] 10. The names corresponding to the reference numerals are: 100, activated carbon adsorption box mechanism; 101, box body; 102, box door; 103, supporting pillar; 104, ventilation pipe; 105, reagent placement slot; 106, through hole; 107, ventilation slot; 200, activated carbon assembly replacement; 201, servo motor; 202, moving groove; 203, first fixed plate; 204, second fixed plate; 205, upper moving block; 206, lower moving block; 207, threaded hole; 208, activated carbon placement box; 209, handle; 210, threaded screw; 211, notch; 212, first activated carbon placement rack; 213, second activated carbon placement rack; 214, discharge port; 215, honeycomb hole; 216, sliding groove; 217, sliding rod; 218, wiping sponge; 219, first filter screen; 220, second filter screen; 221, grid slot. DETAILED DESCRIPTION
[0025] The present invention is further described below in conjunction with the accompanying drawings and embodiments. The present invention includes but is not limited to the following embodiments.
[0026] First embodiment:
[0027] like Figure 1-4As shown, the utility model provides an activated carbon adsorption box for conveniently replacing reagents, including: an activated carbon adsorption box mechanism 100 and a replacement activated carbon assembly 200, the replacement activated carbon assembly 200 includes a first activated carbon placement rack 212 and a second activated carbon placement rack 213, the first activated carbon placement rack 212 and the second activated carbon placement rack 213 are provided with a first fixing plate 203 and a second fixing plate 204, the first fixing plate 203 and the second fixing plate 204 are provided with a notch 211, the first fixing plate 203 The inner notch 211 of the second fixed plate 204 is connected to the activated carbon placement box 208 by sliding, and the activated carbon block is placed in the activated carbon placement box 208 in advance. One end of the activated carbon placement box 208 is connected and fixed with the handle 209 by bolts. The upper ends of the first fixed plate 203 and the second fixed plate 204 are connected and fixed with the upper moving block 205 by welding, and the lower ends of the first fixed plate 203 and the second fixed plate 204 are connected and fixed with the lower moving block 206 by welding. The upper moving block 205 is provided with a The threaded hole 207 has a threaded screw 210 passing through it, and a servo motor 201 is installed at one end of the threaded screw 210. The upper moving block 205 and the lower moving block 206 are connected to the inside of the box body 101 by sliding. The box body 101 has a moving groove 202. In actual use, when the activated carbon adsorption box containing the medicine needs to be replaced, the servo motor 201 is driven to drive the threaded screw 210 to rotate, which further drives the upper moving block 205 and the lower moving block 206 to move. The moving block 205 and the lower moving block 206 slide inside the moving groove 202, further moving the first activated carbon placement rack 212 and the second activated carbon placement rack 213 out of the box body 101, and the operator holds the handle 209 to pull out the activated carbon placement box 208, and further inserts the new activated carbon block into the activated carbon placement box 208 from the slot 211, which can avoid the operator taking out or placing multiple activated carbon blocks one by one, thereby reducing labor intensity.
[0028] In this embodiment, by replacing the activated carbon assembly 200, the servo motor 201 is driven to drive the threaded screw 210 to rotate, and further drive the upper moving block 205 and the lower moving block 206 to slide inside the moving groove 202, and further move the first activated carbon placement rack 212 and the second activated carbon placement rack 213 out of the box body 101, and the operator holds the handle 209 to pull out the activated carbon placement box 208, and further inserts the new activated carbon block, the activated carbon placement box 208 from the slot 211, which can avoid the operator from taking out or placing multiple activated carbon blocks one by one, thereby reducing labor intensity.
[0029] Second embodiment:
[0030] like Figure 1 , Figure 4 , Figure 6 As shown, the first filter screen 219 and the second filter screen 220 are connected and fixed by screws at both side ends of the first fixing plate 203 and the second fixing plate 204, and grid slots 221 are provided inside the first filter screen 219 and the second filter screen 220. The first filter screen 219 and the second filter screen 220 can block the activated carbon particles and prevent them from entering the reagent tank 105, and further, the harmless gas after being adsorbed and filtered by the activated carbon can enter the reagent tank 105.
[0031] In this embodiment, by utilizing the first filter 219 and the second filter 220, the activated carbon particles can be blocked by the first filter 219 and the second filter 220 to prevent them from entering the reagent tank 105, and further, the harmless gas adsorbed and filtered by the activated carbon can enter the reagent tank 105.
[0032] Third embodiment:
[0033] like Figure 5 As shown, honeycomb holes 215 are opened on both sides of the activated carbon placement box 208, and a discharge port 214 is opened at the lower end of the activated carbon placement box 208. The discharge port 214 can discharge the residual activated carbon particles inside the activated carbon placement box 208, and can flow the adsorbed and filtered gas from the honeycomb holes 215.
[0034] Fourth embodiment:
[0035] like Figure 5 As shown, sliding grooves 216 are provided on both sides of the upper end of the activated carbon placement box 208, and the interior of the sliding grooves 216 is connected to a sliding rod 217 by sliding. A wiping sponge 218 is installed at the lower end of the sliding rod 217. The wiping sponge 218 is installed inside the activated carbon placement box 208. When the operator moves the sliding rod 217 inside the sliding groove 216, the wiping sponge 218 is further driven to move inside the activated carbon placement box 208, so that the residual activated carbon particles inside the activated carbon placement box 208 can be cleaned.
[0036] In this embodiment, by utilizing the wiping sponge 218, the sliding rod 217, and the sliding groove 216, the operator moves the sliding rod 217 inside the sliding groove 216, thereby further driving the wiping sponge 218 to move inside the activated carbon placement box 208, and the residual activated carbon particles inside the activated carbon placement box 208 can be cleaned. Removing the residual activated carbon particles can prevent them from accumulating inside the device.
[0037] Fifth embodiment:
[0038] like Figure 1 , Figure 3 As shown, a medicine placement groove 105 is provided inside the box body 101, ventilation grooves 107 are provided on both sides of the medicine placement groove 105, through holes 106 are provided on both sides of the box body 101 and ventilation pipes 104 are installed, the lower end of the box body 101 is connected and fixed to the supporting column 103 by welding, and a box door 102 is installed at one end of the box body 101.
[0039] During use, first, when the activated carbon adsorption box containing the reagent is in use and the activated carbon blocks inside the adsorption box need to be replaced, the servo motor 201 is driven to drive the threaded screw 210 to rotate, further driving the upper moving block 205 and the lower moving block 206 to slide and move inside the moving groove 202, further moving the first activated carbon placement rack 212 and the second activated carbon placement rack 213 out of the box body 101, and the operator holds the handle 209 to pull out the activated carbon placement box 208, and further inserts the new activated carbon block, the activated carbon placement box 208 from the slot 211, so that the operator can avoid taking out or placing multiple activated carbon blocks one by one, thereby reducing the labor intensity of the work. After that, the operator can further drive the wiping sponge 218 to move inside the activated carbon placement box 208 by moving the sliding rod 217 inside the sliding groove 216, so as to clean the residual activated carbon particles inside the activated carbon placement box 208.
[0040] The above embodiment is only one of the preferred implementation modes of the present utility model and should not be used to limit the protection scope of the present utility model. Any changes or modifications that are made to the main design concept and spirit of the present utility model without any substantive significance, as long as the technical problems solved are still consistent with the present utility model, should be included in the protection scope of the present utility model.
Claims
1. An activated carbon adsorption box for convenient replacement of reagents, characterized in that: include: An activated carbon adsorption box mechanism (100) and an activated carbon replacement component (200), wherein the activated carbon replacement component (200) comprises a first activated carbon placement rack (212) and a second activated carbon placement rack (213), wherein the first activated carbon placement rack (212) and the second activated carbon placement rack (213) are provided with a first fixing plate (203) and a second fixing plate (204), wherein the first fixing plate (203) and the second fixing plate (204) are provided with a notch (211) inside, wherein the internal notch (211) of the first fixing plate (203) and the second fixing plate (204) are connected to an activated carbon placement box (208) by sliding, wherein the activated carbon placement box An activated carbon block is placed in advance inside the (208), one end of the activated carbon placement box (208) is connected and fixed with a handle (209) by bolts, the upper ends of the first fixed plate (203) and the second fixed plate (204) are connected and fixed with an upper moving block (205) by welding, and the lower ends of the first fixed plate (203) and the second fixed plate (204) are connected and fixed with a lower moving block (206) by welding, a threaded hole (207) is opened inside the upper moving block (205), a threaded screw (210) is passed through the inside of the threaded hole (207), and a servo motor (201) is installed at one end of the threaded screw (210).
2. The activated carbon adsorption box for convenient replacement of reagents according to claim 1 is characterized in that: The upper moving block (205) and the lower moving block (206) are connected inside the box body (101) by sliding, and a moving groove (202) is provided inside the box body (101).
3. The activated carbon adsorption box for convenient replacement of reagents according to claim 1 is characterized in that: The first filter screen (219) and the second filter screen (220) are connected and fixed to each other by screws at both side ends of the first fixing plate (203) and the second fixing plate (204); grid slots (221) are provided inside the first filter screen (219) and the second filter screen (220).
4. The activated carbon adsorption box for convenient replacement of reagents according to claim 1 is characterized in that: Honeycomb holes (215) are provided on both sides of the activated carbon placement box (208), and a discharge port (214) is provided at the lower end of the activated carbon placement box (208).
5. The activated carbon adsorption box for convenient replacement of reagents according to claim 4, characterized in that: Sliding grooves (216) are provided on both sides of the upper end of the activated carbon placement box (208), and the interior of the sliding groove (216) is connected to a sliding rod (217) by sliding, and a wiping sponge (218) is installed at the lower end of the sliding rod (217), and the wiping sponge (218) is installed inside the activated carbon placement box (208).
6. The activated carbon adsorption box for convenient replacement of reagents according to claim 2, characterized in that: The box body (101) is provided with a medicine placement groove (105) inside, and ventilation grooves (107) are provided at both sides of the medicine placement groove (105). Through holes (106) are provided on both sides of the box body (101) and a ventilation pipe (104) is installed. The lower end of the box body (101) is connected and fixed to a supporting column (103) by welding, and a box door (102) is installed at one end of the box body (101).