High-grade aluminum alloy anodizing intelligent temperature control equipment
By adjusting the air outlet direction of the fan, the problem of low heat dissipation efficiency caused by the fixed air outlet of the air-cooled chiller in the intelligent temperature control equipment for aluminum alloy anodizing is solved. This achieves efficient heat dissipation and stable temperature control, and improves the adaptability and convenience of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUBEI ZEMING ALUMINUM PRODUCTS CO LTD
- Filing Date
- 2025-07-03
- Publication Date
- 2026-08-04
AI Technical Summary
The air outlet direction of the air-cooled chiller in the existing intelligent temperature control equipment for aluminum alloy anodizing is fixed, which cannot adapt to different installation environments. This results in hot air not being able to be discharged smoothly, affecting heat dissipation efficiency and potentially causing high-temperature protection.
An adjustable fan outlet direction structure was designed. By combining a rotating plate, aluminum foil telescopic hose, sliding frame and locking device, the direction of the fan outlet can be flexibly adjusted and fixed to ensure smooth exhaust of hot air.
This improves the heat dissipation efficiency of the chiller, ensures the stability of temperature control, and enhances the adaptability and ease of use of the equipment in different environments.
Smart Images

Figure CN224591055U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of temperature control equipment technology, and in particular to a high-grade aluminum alloy anodizing intelligent temperature control equipment. Background Technology
[0002] The intelligent temperature control equipment (chiller) for aluminum alloy anodizing is a temperature control device specifically designed for high-end aluminum alloy anodizing processes. It can be defined as a specialized refrigeration device that uses an intelligent control system to regulate the refrigeration cycle, precisely maintaining a stable temperature in the anodizing bath to ensure the formation of a uniform and dense oxide film on the aluminum alloy surface. Specifically, this equipment typically consists of a compressor, evaporator, condenser, circulating water pump, intelligent temperature controller, and heat dissipation system (including cooling fans). Its core function is to promptly remove the heat generated in the bath during the anodizing process, keeping the bath temperature within the required process range.
[0003] The upward-facing and non-adjustable exhaust vents of air-cooled chillers present several disadvantages. From a heat dissipation efficiency perspective, the fixed upward-facing vents are difficult to adapt to different installation environments. If there are obstructions above the chiller (such as ceilings, beams, or other equipment), hot air cannot be expelled smoothly, causing it to accumulate at the top of the machine. This affects the heat exchange efficiency of the cooling fan, reducing the chiller's cooling efficiency and potentially causing frequent high-temperature protection activation due to poor heat dissipation. Utility Model Content
[0004] The purpose of this invention is to at least solve one of the aforementioned technical defects.
[0005] Therefore, one objective of this utility model is to propose a high-grade aluminum alloy anodizing intelligent temperature control device to solve the problems mentioned in the background art and overcome the shortcomings of the existing technology.
[0006] To achieve the above objectives, one embodiment of this utility model provides a high-grade aluminum alloy anodizing intelligent temperature control device, including a chiller body. A top frame is fixedly connected to the top of the chiller body, and a top plate is fixedly installed on the inner wall of the top frame by bolts. Two symmetrically arranged fans are embedded and fixedly installed on the top of the top plate. A connecting rod is fixedly connected to the top of the top frame, and a rotating plate is rotatably connected to the outer surface of the connecting rod. Symmetrically arranged aluminum foil telescopic hoses are fixedly connected between the rotating plate and the two fans, and the two aluminum foil telescopic hoses correspond to the two fans respectively. Two symmetrically arranged grooves are opened on the top surface of the top frame, and two sliding frames are slidably connected to the inner wall of each groove. Two symmetrically arranged support plates are rotatably connected between the two sliding frames and the rotating plate. Two symmetrically arranged side plates are fixedly connected to one side of the rotating plate, and a spring is fixedly connected to the outer side of each side plate. A locking pin is fixedly connected to the side of each spring away from the rotating plate, and both locking pins penetrate the side plates and engage with the chiller body.
[0007] Preferably, one of the above solutions is that two symmetrically arranged locking holes are provided on one side of the chiller body, and the two locking pins penetrate the side plate and are engaged with the chiller body through the locking holes.
[0008] Preferably, in any of the above solutions, a pull plate is fixedly connected between the two locking holes, and the pull plate is parallel to the chiller body.
[0009] Preferably, in any of the above solutions, a guide plate is fixedly connected to the inner wall of each groove, and the two sliding frames are slidably connected to the two guide plates respectively.
[0010] Preferably, each of the above-mentioned solutions has a locking bolt threaded to its top, and the bottom surfaces of the two locking bolts are respectively in contact with the top surfaces of the two guide plates.
[0011] Preferably, one side of the rotating plate has a through-hole, and the rotating plate is rotatably connected to the connecting rod through the through-hole.
[0012] Preferably, in any of the above embodiments, the top surface of the rotating plate has two symmetrically arranged exhaust holes, and the two exhaust holes correspond to two fans respectively.
[0013] Compared with the prior art, the advantages and beneficial effects of this utility model are as follows:
[0014] 1. When adjusting the air outlet direction, the specific operating steps are as follows: First, pull the pull plate to stretch the locking pin spring, causing the locking pin to disengage from the locking hole and release the fixing of the rotating plate. Then, rotate the rotating plate around the connecting rod. At this time, the support plate drives the sliding frame to slide along the guide plate in the groove. The aluminum foil telescopic hose extends and retracts with the rotation of the rotating plate. When the rotating plate is adjusted to a suitable angle, rotate the locking bolt so that its bottom surface is in contact with the top surface of the guide plate, fixing the position of the sliding frame. This operating procedure realizes flexible adjustment of the fan outlet direction. By rotating the plate, the orientation of the exhaust hole is changed, avoiding the problem of hot air not being able to be discharged due to obstructions above. The aluminum foil telescopic hose ensures smooth air transmission from the fan. At the same time, the cooperation between the sliding frame and the guide plate and the fixing of the locking bolt enhance the stability of the rotating plate after adjustment, effectively improving the heat dissipation efficiency of the chiller body and ensuring that it can stably control the temperature environment required for aluminum alloy anodizing.
[0015] 2. When fixing and storing the rotating plate, the specific operating steps are as follows: reverse the locking bolt so that its bottom end is away from the guide rod, allowing it to engage with the sliding frame. Then, push the rotating plate to rotate around the connecting rod until it reaches the desired position. Insert the locking pin into the locking hole to lock the rotating plate. This operating procedure, through the engagement of the locking pin and the locking hole, and the fixing of the sliding frame with the locking bolt, ensures the stability of the rotating plate during use and storage. Simultaneously, the telescopic characteristics of the aluminum foil flexible hose do not affect the rotation of the rotating plate, reducing space occupation when the equipment is not in use, facilitating storage and transportation, and improving the adaptability and ease of use of the equipment in different working environments. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the first working state structure of the assembly of this utility model;
[0017] Figure 2 This is a schematic diagram of the second working state structure of the assembly of this utility model;
[0018] Figure 3 This is a schematic diagram of the main structure of the chiller of this utility model;
[0019] Figure 4 This is a schematic diagram of the rotating plate of this utility model.
[0020] In the diagram: 1-Chiller body, 2-Top frame, 3-Top plate, 4-Fan, 5-Connecting rod, 6-Rotating plate, 7-Aluminum foil telescopic hose, 8-Groove, 9-Sliding frame, 10-Support plate, 11-Side plate, 12-Spring, 13-Locking pin, 14-Locking hole, 15-Pull plate, 16-Guide plate, 17-Locking bolt, 18-Rotating hole, 19-Exhaust hole. Detailed Implementation
[0021] The present invention will be further described below with reference to the accompanying drawings, but the scope of protection of the present invention is not limited thereto.
[0022] like Figures 1 to 4 As shown, a high-end aluminum alloy anodized intelligent temperature control device includes a chiller body 1. A top frame 2 is fixedly connected to the top of the chiller body 1. A top plate 3 is fixedly installed on the inner wall of the top frame 2 by bolts. Two symmetrically arranged fans 4 are embedded and fixedly installed on the top of the top plate 3. A connecting rod 5 is fixedly connected to the top of the top frame 2. A rotating plate 6 is rotatably connected to the outer surface of the connecting rod 5. A symmetrically arranged aluminum foil telescopic hose 7 is fixedly connected between the rotating plate 6 and the two fans 4. The two aluminum foil telescopic hoses 7 correspond to the two fans 4 respectively. Two symmetrically arranged grooves 8 are opened on the top surface of the top frame 2. Two sliding frames 9 are slidably connected to the inner wall of each groove 8. Two symmetrically arranged support plates 10 are rotatably connected between the two sliding frames 9 and the rotating plate 6. Two symmetrically arranged side plates 11 are fixedly connected to one side of the rotating plate 6. A spring 12 is fixedly connected to the outer side of each side plate 11. A locking pin 13 is fixedly connected to the side of each spring 12 away from the rotating plate 6. Both locking pins 13 penetrate the side plate 11 and are engaged with the chiller body 1.
[0023] As an optional technical solution of this utility model, two symmetrically arranged locking holes 14 are provided on one side of the chiller body 1. Both locking pins 13 penetrate the side plate 11 and are engaged with the chiller body 1 through the locking holes 14. The locking pins 13 penetrate the side plate 11 and are engaged in the locking holes 14, which can fix the rotating plate 6 at the adjusted angle, prevent it from shifting due to vibration during equipment operation, ensure the stability of the air outlet direction, and facilitate quick release of fixation for angle adjustment, thus taking into account both stability and flexibility.
[0024] As an optional technical solution of this utility model, a pull plate 15 is fixedly connected between the two locking holes 14. The pull plate 15 is parallel to the chiller body 1. Pulling the pull plate 15 can simultaneously drive the two locking pins 13 to disengage from the locking holes 14. There is no need to operate each individual locking pin 13 separately, which simplifies the steps of unfixing and improves the operating efficiency of the angle adjustment of the rotating plate 6. It is especially suitable for scenarios that require frequent adjustment of the air outlet direction.
[0025] As an optional technical solution of this utility model, a guide plate 16 is fixedly connected to the inner wall of each groove 8, and two sliding frames 9 are slidably connected to the two guide plates 16 respectively. The guide plate 16 restricts the sliding trajectory of the sliding frame 9 so that it can only move in a straight line, ensuring that the support plate 10 drives the rotating plate 6 to rotate smoothly, avoiding the tilting of the rotating plate 6 due to the offset of the sliding frame 9, and ensuring the smoothness and stability of the angle adjustment.
[0026] As an optional technical solution of this utility model, each sliding frame 9 is threadedly connected to a locking bolt 17 at its top. The bottom surfaces of the two locking bolts 17 are respectively attached to the top surfaces of the two guide plates 16. After the rotating plate 6 is adjusted to a suitable angle, the locking bolts 17 are tightened to press the guide plate 16, which can prevent the sliding frame 9 from sliding due to vibration during equipment operation, enhance the reliability of the angle fixation of the rotating plate 6, and avoid the unexpected change of the air outlet direction from affecting the heat dissipation effect.
[0027] As an optional technical solution of this utility model, a rotating hole 18 is provided through one side of the rotating plate 6. The rotating plate 6 is rotatably connected to the connecting rod 5 through the rotating hole 18. The rotating hole 18 allows the rotating plate 6 to rotate flexibly around the connecting rod 5, ensuring that the rotation process is smooth and without jamming. This provides a structural basis for multi-angle adjustment of the air outlet direction, enabling the rotating plate 6 to adapt to different installation environments and heat dissipation requirements.
[0028] As an optional technical solution of this utility model, two symmetrically arranged exhaust holes 19 are opened through the top surface of the rotating plate 6. The two exhaust holes 19 correspond to the two fans 4 respectively. The positions of the exhaust holes 19 and the fans 4 are corresponding, so that the hot air discharged by the fans 4 can be efficiently discharged through the exhaust holes 19, reducing wind resistance and preventing hot air from accumulating inside the equipment. At the same time, with the angle adjustment of the rotating plate 6, the hot air is accurately guided to the appropriate direction, improving the heat dissipation efficiency.
[0029] A high-end aluminum alloy anodizing intelligent temperature control device, the working principle of which is as follows:
[0030] 1) First pull the pull plate 15, which will cause the locking pin 13 to compress the spring 12, so that the locking pin 13 will disengage from the locking hole 14 and release the fixation of the rotating plate 6.
[0031] 2): Rotate the rotating plate 6 around the connecting rod 5. At this time, the support plate 10 drives the sliding frame 9 to slide along the guide plate 16 in the groove 8. The aluminum foil telescopic hose 7 extends and retracts with the rotation of the rotating plate 6.
[0032] 3) After the rotating plate 6 is adjusted to the appropriate angle, rotate the locking bolt 17 so that its bottom surface is in contact with the top surface of the guide plate 16, and fix the position of the sliding frame 9. This operation allows for flexible adjustment of the air outlet direction of the fan 4, and changes the orientation of the exhaust port 19 by rotating the rotating plate 6.
[0033] In summary, this high-end aluminum alloy anodizing intelligent temperature control equipment first pulls the pull plate 15, which drives the locking pin 13 to compress the spring 12, causing the locking pin 13 to disengage from the locking hole 14 and release the fixation on the rotating plate 6. Then, the rotating plate 6 rotates around the connecting rod 5. At this time, the support plate 10 drives the slide frame 9 to slide along the guide plate 16 in the groove 8. The aluminum foil telescopic hose 7 extends and retracts with the rotation of the rotating plate 6. When the rotating plate 6 is adjusted to a suitable angle, the locking bolt 17 is rotated so that its bottom surface fits against the top surface of the guide plate 16, fixing the position of the slide frame 9. This operating procedure enables flexible adjustment of the air outlet direction of the fan 4. By rotating the rotating plate 6, the orientation of the exhaust port 19 is changed, avoiding the problem of hot air not being able to be discharged due to obstructions above. The aluminum foil telescopic hose 7 ensures smooth air transmission from the fan 4. At the same time, the cooperation between the sliding frame 9 and the guide plate 16 and the fixing of the locking bolt 17 enhance the stability of the rotating plate 6 after adjustment, effectively improving the heat dissipation efficiency of the chiller body 1 and ensuring that it can stably control the temperature environment required for aluminum alloy anodizing. When fixing and storing the rotating plate, the specific operating steps are as follows: reverse the locking bolt 17 so that its bottom end is away from the guide rod 16, which can contact the locking of the sliding frame 9. At this time, push the rotating plate 6 to rotate around the connecting rod 5 until the rotating plate 6 rotates to the appropriate position. Then, insert the locking pin 13 into the locking hole 14 to lock the rotating plate 6. This operating procedure ensures the stability of the rotating plate 6 during use and storage by locking the locking pin 13 and locking the locking hole 14 and fixing the sliding frame 9 with the locking bolt 17. At the same time, the telescopic characteristics of the aluminum foil telescopic hose 7 do not affect the rotation of the rotating plate 6, so that the equipment can reduce space occupation when not in use, making it easy to store and transport, and improving the adaptability and ease of use of the equipment in different working environments.
Claims
1. A high-grade aluminum alloy anodizing intelligent temperature control device, characterized in that: The system includes a chiller body (1), a top frame (2) fixedly connected to the top of the chiller body (1), a top plate (3) fixedly installed on the inner wall of the top frame (2) by bolts, two symmetrically arranged fans (4) embedded and fixedly installed on the top of the top plate (3), a connecting rod (5) fixedly connected to the top of the top frame (2), a rotating plate (6) rotatably connected to the outer surface of the connecting rod (5), and symmetrically arranged aluminum foil telescopic hoses (7) fixedly connected between the rotating plate (6) and the two fans (4), with the two aluminum foil telescopic hoses (7) corresponding to the two fans (4) respectively. Two symmetrically arranged grooves (8) are opened on the top surface. Two sliding frames (9) are slidably connected to the inner wall of each groove (8). Two symmetrically arranged support plates (10) are rotatably connected between the two sliding frames (9) and the rotating plate (6). Two symmetrically arranged side plates (11) are fixedly connected to one side of the rotating plate (6). A spring (12) is fixedly connected to the outer side of each side plate (11). A locking pin (13) is fixedly connected to the side of each spring (12) away from the rotating plate (6). Both locking pins (13) penetrate the side plate (11) and are engaged with the chiller body (1).
2. The high-grade aluminum alloy anodizing intelligent temperature control device according to claim 1, characterized in that: Two symmetrically arranged locking holes (14) are provided on one side of the chiller body (1). The two locking pins (13) penetrate the side plate (11) and are engaged with the chiller body (1) through the locking holes (14).
3. The high-grade aluminum alloy anodizing intelligent temperature control device according to claim 2, characterized in that: A pull plate (15) is fixedly connected between the two locking holes (14), and the pull plate (15) is parallel to the chiller body (1).
4. The high-grade aluminum alloy anodizing intelligent temperature control device according to claim 3, characterized in that: Each groove (8) has a guide plate (16) fixedly connected to its inner wall, and the two sliding frames (9) are slidably connected to the two guide plates (16) respectively.
5. The high-grade aluminum alloy anodizing intelligent temperature control device according to claim 4, characterized in that: Each of the slide frames (9) has a locking bolt (17) threaded to its top, and the bottom surfaces of the two locking bolts (17) are respectively attached to the top surfaces of the two guide plates (16).
6. The high-grade aluminum alloy anodizing intelligent temperature control equipment according to claim 5, characterized in that: A rotating hole (18) is provided through one side of the rotating plate (6), and the rotating plate (6) is rotatably connected to the connecting rod (5) through the rotating hole (18).
7. The high-grade aluminum alloy anodizing intelligent temperature control device according to claim 6, characterized in that: The top surface of the rotating plate (6) has two symmetrically arranged exhaust holes (19), which correspond to the two fans (4) respectively.