Copper corrosion inhibitor storage device for lithium bromide chilled water system
By combining adjustment, lifting, and limiting devices, the problem of existing storage devices being inconvenient for quickly fixing storage tanks is solved, thus enabling rapid storage of copper corrosion inhibitors.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HENAN JINDADI CHEM IND CO LTD
- Filing Date
- 2025-05-20
- Publication Date
- 2026-05-01
AI Technical Summary
Existing copper corrosion inhibitor storage devices are not convenient for quickly fixing storage tanks, resulting in wasted time.
The position is adjusted by an adjustment device, the lifting device is used for lifting and lowering, the monitoring device monitors the distance, the limit device limits the movement, and the storage device stores the contents, thus achieving rapid and secure storage of the storage container.
It enables rapid positioning of storage bins, improving storage efficiency.
Smart Images

Figure CN224184841U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of storage devices, and in particular to a copper corrosion inhibitor storage device for lithium bromide chilled water systems. Background Technology
[0002] Copper corrosion inhibitors can adsorb onto metal surfaces to form a thin film, protecting copper and other metals from corrosion by the atmosphere and harmful media. In circulating cooling water systems, copper corrosion inhibitors can be used in conjunction with various scale inhibitors, bactericides, and algaecides, showing excellent corrosion inhibition effects. They can also be used as anti-tarnishing agents for copper and silver, and as additives in automotive coolants and lubricating oils. Currently, in lithium bromide chilled water systems, copper corrosion inhibitors are soluble in solvents, making them very convenient to use. Before using copper corrosion inhibitors, they need to be stored in sealed containers. If exposed to air, they will come into contact with moisture, causing the reagent to become ineffective. Therefore, existing storage devices need to be improved to facilitate the storage of copper corrosion inhibitors.
[0003] For example, in a prior art represented by application number CN202022819859.9, the main structure includes a base, a connecting block, a fixing plate, and a storage tank. The base has a slide rail inside; the slide rail has a slider inside; the bottom of the connecting block is connected to the slider; a groove is formed on one side of the connecting block; a moving block is arranged inside the groove; a moving block is connected to one side of the fixing plate; a groove is formed on the side of the fixing plate away from the moving block; a connecting block is arranged inside the groove; and a limit block is connected to the outside of the connecting block. This device for facilitating the storage of copper corrosion inhibitor in lithium bromide chilled water systems uses a docking block that engages with the mounting block. Because the docking block and the rotating block form a rotating structure, rotating the rotating block causes the docking block to rotate and engage with the groove, thus fixing the docking block within the mounting block. This facilitates the sealed storage of the storage tank containing the copper corrosion inhibitor.
[0004] During use, it was found that existing storage devices are inconvenient for quickly fixing storage tanks, resulting in wasted time. Therefore, there is an urgent need for a copper corrosion inhibitor storage device for lithium bromide chilled water systems. Utility Model Content
[0005] To solve the above-mentioned technical problems, this utility model provides a copper corrosion inhibitor storage device for lithium bromide chilled water systems, which uses an adjustment device for position adjustment, a lifting device for lifting adjustment, a monitoring device for monitoring the distance relative to the storage device, a limiting device for limiting the storage device, and a storage device for storing copper corrosion inhibitor.
[0006] This utility model discloses a copper corrosion inhibitor storage device for a lithium bromide chilled water system, comprising an operating platform; it also includes an adjustment device, a lifting device, a monitoring device, a limiting device, and a storage device. The adjustment device and the storage device are both mounted on the operating platform, and the lifting device, the monitoring device, and the limiting device are all mounted on the adjustment device. The adjustment device adjusts the position, the lifting device raises and lowers the device, the monitoring device monitors the distance relative to the storage device, the limiting device limits the storage device, and the storage device stores the copper corrosion inhibitor.
[0007] Preferably, the operating table includes a base, which is installed in the work area and has a sliding groove; the base provides support.
[0008] Preferably, the adjustment device includes a motor, a double-acting lead screw, an adjusting block, and an adjusting block. The motor is mounted on the side of the base, and its output end is rotatably connected to the input end of the double-acting lead screw. The adjusting block and the adjusting block are threadedly mounted on the double-acting lead screw and are slidably mounted on a slide groove. When the motor is started, the double-acting lead screw is rotated, causing the adjusting blocks to move towards each other on the slide groove, thereby achieving position adjustment.
[0009] Preferably, the lifting device includes a guide shaft one, a motor two, a lead screw, a lifting platform one, a guide sleeve one, a guide shaft two, a guide sleeve two, and a lifting platform two. The guide shaft one is installed on the top of the adjusting block one, the motor two is installed on the top of the guide shaft one, and the output end of the motor two is rotatably connected to the input end of the lead screw. The lifting platform one is installed on the lead screw through a threaded connection, the guide sleeve one is installed on the lifting platform one, and the guide sleeve one is fitted onto the guide shaft one. The guide shaft two is installed on the top of the adjusting block two, and the guide sleeve two is fitted onto the guide shaft two. The lifting platform two is installed on the guide sleeve two, and the lifting platform one is slidably installed on the lifting platform two. By starting the motor two, the lead screw is driven to rotate, thereby achieving directional lifting and lowering of the lifting platform one on the guide shaft one through the guide sleeve one, and simultaneously driving the lifting platform two on the guide shaft two through the guide sleeve two.
[0010] Preferably, the monitoring device includes an optical sensor one and an optical sensor two, with the optical sensor one installed on the side of the adjustment block one and the optical sensor two installed on the side of the adjustment block two; position monitoring is performed through the optical sensor one and the optical sensor two.
[0011] Preferably, the limiting device includes a first locking screw, a first fixing plate, a second locking screw, and a second fixing plate. The first locking screw is threadedly connected to the first adjusting block, the first fixing plate is installed on the side end of the first locking screw, the second locking screw is threadedly connected to the second adjusting block, and the second fixing plate is installed on the side end of the second locking screw. By rotating the first locking screw and the second locking screw, the positions of the first fixing plate and the second fixing plate can be adjusted.
[0012] Preferably, the storage device includes a storage tank and a feed hopper. The storage tank is placed on the top of the base, and the feed hopper is connected and installed on the top of the storage tank. A valve is provided on the feed hopper. By opening the valve, the copper corrosion inhibitor can be conveniently placed into the interior of the storage tank through the feed hopper.
[0013] Compared with the prior art, the beneficial effects of this utility model are as follows: the position is adjusted by the adjustment device, the lifting device is used for lifting adjustment, the distance between the monitoring device and the storage device is monitored by the monitoring device, the storage device is limited by the limiting device, and the copper corrosion inhibitor is stored by the storage device. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the structure of this utility model;
[0015] Figure 2 yes Figure 1 Structural isometric view of the control panel and adjustment device in this utility model;
[0016] Figure 3 yes Figure 1 Structural isometric drawing of the operating platform and lifting device in this utility model;
[0017] Figure 4 yes Figure 3 Enlarged schematic diagram of the middle lifting device and storage device.
[0018] The attached diagram is labeled as follows: 01, operating platform; 11, base; 12, slide rail; 02, adjusting device; 21, motor one; 22, double-acting lead screw; 23, adjusting block one; 24, adjusting block two; 03, lifting device; 31, guide shaft one; 32, motor two; 33, lead screw; 34, lifting platform one; 35, guide sleeve one; 36, guide shaft two; 37, guide sleeve two; 38, lifting platform two; 04, monitoring device; 41, optical sensor one; 42, optical sensor two; 05, limiting device; 51, locking screw one; 52, fixed plate one; 53, locking screw two; 54, fixed plate two; 06, storage device; 61, storage tank; 62, feed hopper; 63, valve. Detailed Implementation
[0019] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. This utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to make the disclosure of this utility model more thorough and complete.
[0020] Example 1
[0021] A copper corrosion inhibitor storage device for lithium bromide chilled water systems includes an operating table 01; characterized in that it further includes an adjustment device 02, a lifting device 03, a monitoring device 04, a limiting device 05, and a storage device 06, wherein the adjustment device 02 and the storage device 06 are both installed on the operating table 01, and the lifting device 03, the monitoring device 04, and the limiting device 05 are all installed on the adjustment device 02.
[0022] The adjusting device 02 adjusts the position, the lifting device 03 raises and lowers the object, the monitoring device 04 monitors the distance, the limiting device 05 limits the position, and the storage device 06 stores the object.
[0023] The operating table 01 includes a base 11, which is installed in the work area and has a sliding groove 12.
[0024] The adjustment device 02 includes a motor 21, a bidirectional lead screw 22, an adjustment block 23, and an adjustment block 24. The motor 21 is mounted on the side of the base 11. The output end of the motor 21 is rotatably connected to the input end of the bidirectional lead screw 22. The adjustment block 23 and the adjustment block 24 are mounted on the bidirectional lead screw 22 by threaded connection. Both the adjustment block 23 and the adjustment block 24 are slidably mounted on the slide groove 12.
[0025] The lifting device 03 includes a guide shaft 31, a motor 32, a lead screw 33, a lifting platform 34, a guide sleeve 35, a guide shaft 36, a guide sleeve 37, and a lifting platform 38. The guide shaft 31 is installed on the top of the adjusting block 23. The motor 32 is installed on the top of the guide shaft 31. The output end of the motor 32 is rotatably connected to the input end of the lead screw 33. The lifting platform 34 is installed on the lead screw 33 by a threaded connection. The guide sleeve 35 is installed on the lifting platform 34 and is fitted onto the guide shaft 31. The guide shaft 36 is installed on the top of the adjusting block 24. The guide sleeve 37 is fitted onto the guide shaft 36. The lifting platform 38 is installed on the guide sleeve 37. The lifting platform 34 is slidably installed on the lifting platform 38.
[0026] The limiting device 05 includes a first locking screw 51, a first fixing plate 52, a second locking screw 53, and a second fixing plate 54. The first locking screw 51 is threadedly connected to the first adjusting block 23. The first fixing plate 52 is installed on the side end of the first locking screw 51. The second locking screw 53 is threadedly connected to the second adjusting block 24. The second fixing plate 54 is installed on the side end of the second locking screw 53.
[0027] The storage device 06 includes a storage tank 61 and a feeding hopper 62. The storage tank 61 is placed on the top of the base 11, and the feeding hopper 62 is connected to the top of the storage tank 61. A valve 63 is provided on the feeding hopper 62.
[0028] The adjusting device 02 adjusts the position, the lifting device 03 raises and lowers the object, the limiting device 05 limits the position, and the storage device 06 stores the object.
[0029] Open valve 63 to easily place copper corrosion inhibitor into storage tank 61 through feed hopper 62. Then place storage tank 61 on top of base 11. Start motor 1 21 to drive bidirectional lead screw 22 to rotate, moving adjustment block 1 23 and adjustment block 24 towards each other on slide groove 12 to adjust their positions. When a certain position is reached, stop motor 1 21. Rotate locking screw 1 51 and locking screw 2 53 to adjust the positions of fixed plate 1 52 and fixed plate 2 54, thereby limiting the lateral movement of storage tank 61. Then start motor 2 32 to drive lead screw 33 to rotate, causing lifting platform 1 34 to descend directionally on guide shaft 1 31 through guide sleeve 1 35. At the same time, lifting platform 2 38 descends directionally on guide shaft 2 36 through guide sleeve 2 37. When lifting platform 2 38 contacts the top of feed hopper 62, stop motor 2 32 to complete the vertical fixation of storage device 06.
[0030] Example 2
[0031] like Figures 1 to 4 As shown, in addition to Embodiment 1, a monitoring device 04 is also included;
[0032] The monitoring device 04 includes an optical sensor 41 and an optical sensor 42. The optical sensor 41 is installed on the side of the adjustment block 23, and the optical sensor 42 is installed on the side of the adjustment block 24.
[0033] Monitoring device 04 performs distance monitoring;
[0034] The distance to the storage tank 61 is monitored by optical sensor 41 and optical sensor 42, causing motor 21 to stop automatically.
[0035] This invention relates to a copper corrosion inhibitor storage device for a lithium bromide chilled water system. During operation, valve 63 is first opened, allowing the copper corrosion inhibitor to be conveniently placed into the storage tank 61 via the feed hopper 62. The storage tank 61 is then placed on top of the base 11. The motor 21 is started, driving the bidirectional lead screw 22 to rotate, causing adjusting blocks 23 and 24 to move towards each other on the slide groove 12, thus adjusting their position. Optical sensors 41 and 42 monitor the distance to the storage tank 61. When a certain position is reached, the motor 21 automatically... When the movement stops, the positions of the first and second fixed plates 52 and 54 are adjusted by rotating the first locking screw 51 and the second locking screw 53, thereby limiting the lateral movement of the storage tank 61. Then, the second motor 32 is started, which drives the lead screw 33 to rotate, so that the first lifting platform 34 is oriented downward on the first guide shaft 31 through the first guide sleeve 35. At the same time, the second lifting platform 38 is oriented downward on the second guide shaft 36 through the second guide sleeve 37. When the second lifting platform 38 contacts the top of the feed hopper 62, the second motor 32 is stopped, and the storage device 06 is fixed vertically.
[0036] The motor 21, motor 32, optical sensor 41, and optical sensor 42 of this utility model are commercially available. Technical personnel in this industry only need to install and operate them according to the accompanying instruction manual, without requiring any creative work from those skilled in the art.
[0037] The main function of this utility model is to enable rapid positioning of the storage tank.
[0038] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.
Claims
1. A copper corrosion inhibitor storage device for lithium bromide chilled water systems, comprising an operating table (01); characterized in that, It also includes an adjustment device (02), a lifting device (03), a monitoring device (04), a limit device (05), and a storage device (06). The adjustment device (02) and the storage device (06) are both installed on the operating table (01), and the lifting device (03), the monitoring device (04), and the limit device (05) are all installed on the adjustment device (02). The adjustment device (02) adjusts the position, the lifting device (03) lifts and lowers, the monitoring device (04) monitors the distance, the limit device (05) limits the position, and the storage device (06) stores the contents.
2. The copper corrosion inhibitor storage device for lithium bromide chilled water systems as described in claim 1, characterized in that, The operating table (01) includes a base (11), which is installed in the working area and has a sliding groove (12).
3. The copper corrosion inhibitor storage device for a lithium bromide chilled water system as described in claim 2, characterized in that, The adjustment device (02) includes a motor (21), a two-way lead screw (22), an adjustment block (23), and an adjustment block (24). The motor (21) is installed on the side of the base (11). The output end of the motor (21) is rotatably connected to the input end of the two-way lead screw (22). The adjustment block (23) and the adjustment block (24) are installed on the two-way lead screw (22) by threaded connection. The adjustment block (23) and the adjustment block (24) are both slidably installed on the slide groove (12).
4. The copper corrosion inhibitor storage device for a lithium bromide chilled water system as described in claim 3, characterized in that, The lifting device (03) includes a guide shaft (31), a motor (32), a lead screw (33), a lifting platform (34), a guide sleeve (35), a guide shaft (36), a guide sleeve (37), and a lifting platform (38). The guide shaft (31) is installed on the top of the adjusting block (23). The motor (32) is installed on the top of the guide shaft (31). The output end of the motor (32) is rotatably connected to the input end of the lead screw (33). The lifting platform (34) is installed on the lead screw (33) by a threaded connection. The guide sleeve (35) is installed on the lifting platform (34). The guide sleeve (35) is fitted on the guide shaft (31). The guide shaft (36) is installed on the top of the adjusting block (24). The guide sleeve (37) is fitted on the guide shaft (36). The lifting platform (38) is installed on the guide sleeve (37). The lifting platform (34) is slidably installed on the lifting platform (38).
5. The copper corrosion inhibitor storage device for a lithium bromide chilled water system as described in claim 3, characterized in that, The monitoring device (04) includes an optical sensor one (41) and an optical sensor two (42). The optical sensor one (41) is installed on the side of the adjustment block one (23), and the optical sensor two (42) is installed on the side of the adjustment block two (24).
6. The copper corrosion inhibitor storage device for a lithium bromide chilled water system as described in claim 3, characterized in that, The limiting device (05) includes a first locking screw (51), a first fixing plate (52), a second locking screw (53), and a second fixing plate (54). The first locking screw (51) is installed on the first adjusting block (23) by a threaded connection. The first fixing plate (52) is installed on the side end of the first locking screw (51). The second locking screw (53) is installed on the second adjusting block (24) by a threaded connection. The second fixing plate (54) is installed on the side end of the second locking screw (53).
7. The copper corrosion inhibitor storage device for a lithium bromide chilled water system as described in claim 2, characterized in that, The storage device (06) includes a storage tank (61) and a feed hopper (62). The storage tank (61) is placed on the top of the base (11), and the feed hopper (62) is connected to the top of the storage tank (61). A valve (63) is provided on the feed hopper (62).
Citation Information
Patent Citations
Device for conveniently storing copper corrosion inhibitor for lithium bromide chilled water system
CN213863273U