Aluminum shell blow water drying equipment
By designing multiple sets of equidistant clamping mechanisms and power shifting mechanisms in the aluminum shell water drying equipment, the problems of uneven drying and easy damage to the aluminum shell surface are solved, achieving efficient and uniform drying effect for the aluminum shell.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2026-01-29
- Publication Date
- 2026-04-07
AI Technical Summary
Existing drying technologies are prone to scratching or deformation on the aluminum shell surface, and suffer from uneven drying and low efficiency, especially with overhead chain conveyor or clamping mechanisms.
An aluminum shell water blowing and drying device was designed. It adopts multiple sets of equidistant clamping mechanisms, combined with power and displacement mechanisms, so that the position of the ball bearings on the surface of the aluminum shell can be changed to form a slit to introduce hot air, ensuring uniform coverage of hot air, and filtering the hot air through a high-efficiency filter to avoid contamination.
It achieves comprehensive and uniform drying of the aluminum shell surface, avoids scratches and deformation, improves drying efficiency and effect, and ensures the stability and appearance quality of the aluminum shell.
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Figure CN121612047B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of aluminum shell drying technology, specifically an aluminum shell water blowing and drying device. Background Technology
[0002] In the industrial manufacturing sector, aluminum shells, as a lightweight engineering material solution, have become an indispensable component of modern precision manufacturing due to their low density, high specific strength, excellent thermal conductivity, strong corrosion resistance, and good electromagnetic shielding properties. Their applications cover a wide range of high-end manufacturing scenarios, including chip heat dissipation shells and battery module shells in consumer electronics, packaging components and body structural components for the three-electric system of new energy vehicles, lightweight protective covers for aerospace instruments, precision instrument shells for medical equipment, and protective shells for industrial automation control systems.
[0003] After processes such as stamping, CNC machining, surface cleaning, or anodizing, aluminum shells often accumulate a large amount of water stains on their inner and outer surfaces due to coolant spraying, cleaning fluid adhesion, and residual process water. If not removed in time, the minerals in the water stains may cause surface watermarks, oxide spots, or corrosion points, seriously affecting the product's appearance quality and performance stability.
[0004] Existing drying technologies typically employ a hot air drying chamber approach: some equipment uses overhead chains to transport aluminum shells, but under the impact of strong airflow, the lightweight aluminum shells are prone to swaying and rotating, causing them to collide and scrape against each other, resulting in surface scratches or deformation. To avoid collisions, more equipment has shifted to an arranged rack system equipped with clamping mechanisms to hold individual aluminum shells. While this improves stability, the contact area between the clamping components and the aluminum shell surface creates obstructions, resulting in drying blind spots where hot air cannot reach. At the same time, the clamping force hinders the natural flow of residual water under gravity, making it difficult for localized water accumulation on the outer surface of the aluminum shell to evaporate quickly, significantly reducing drying uniformity and efficiency. Under the premise of ensuring the stability of the aluminum shell, it is difficult to effectively guarantee the drying effect. Summary of the Invention
[0005] The purpose of this invention is to provide an aluminum shell water blowing and drying device to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, the present invention provides the following technical solution:
[0007] An aluminum shell water blowing and drying device includes a cabinet, the cabinet having multiple installation chambers, and an aluminum shell placement structure being provided in each installation chamber.
[0008] The aluminum shell placement structure includes:
[0009] The housing is fixed in the installation chamber and the support seat is located in the housing, and two limiting strips are fixed on the support seat to support the aluminum housing;
[0010] Multiple vertical plates are fixed to the support base and are equidistantly distributed along the length of the support base. The multiple vertical plates are fixedly connected to two horizontal plates distributed vertically. Multiple clamping mechanisms are provided on both horizontal plates. The multiple clamping mechanisms are equidistantly distributed along the length of the horizontal plates and are used to clamp each aluminum shell to be dried.
[0011] The power mechanism is located on the support base. The power mechanism can move along the length of the support base and cause multiple clamping mechanisms to perform clamping actions on the aluminum shell in sequence. The power mechanism is also connected to a shifting mechanism located on the support base.
[0012] The clamping mechanism includes two sleeve plates located on both sides of the aluminum shell. The sleeve plates facing the aluminum shell have balls that abut against the aluminum shell. The shifting mechanism can drive the sleeve plates to move along the width direction of the support base so as to change the position of the balls.
[0013] As described above, the aluminum shell drying equipment has an inclined surface on the side of the sleeve plate away from the support base. When the aluminum shell is in a clamping state, a slit is formed between the two sleeve plates between two adjacent aluminum shells, and hot air can pass through the slit through the inclined surface.
[0014] The aluminum shell water drying equipment described above: the cabinet is provided with an air inlet pipe, the air inlet pipe is connected to a high-efficiency filter, the air inlet pipe is used to introduce hot air into the shell through the high-efficiency filter, and the bottom of the shell is also provided with an air outlet pipe.
[0015] As described above, the aluminum shell water drying equipment includes a power mechanism that is movably mounted on the support base. The lateral moving base is fixedly connected to a follower plate, and the lateral moving base can be driven by a linear drive module mounted on the support base to move along the length direction of the support base.
[0016] The follower plate is connected to the switching mechanism and also cooperates with the bidirectional drive component on the upright plate. The bidirectional drive component can drive the two sleeve plates to move away from or closer to each other.
[0017] The aluminum shell water drying equipment described above: the bidirectional drive assembly includes a threaded component mounted on the vertical plate and two sets of sliding fit structures connected to the threaded component.
[0018] The aluminum shell water drying equipment as described above: the threaded component includes a bidirectional lead screw rotatably mounted on the vertical plate and two sliders slidably mounted on the vertical plate and threadedly connected to the bidirectional lead screw. One end of the bidirectional lead screw is fixed with a gear, and the end of the follower plate away from the transverse sliding seat is fixedly mounted with a toothed plate that meshes with the gear.
[0019] As described above, the aluminum shell water drying equipment includes a sliding fit structure comprising two driven blocks slidably disposed on the horizontal plate, each of the two driven blocks being fixedly connected to a U-shaped arm, the U-shaped arm being slidably fitted with the sleeve plate;
[0020] The driven block is fixedly connected to a transmission plate, the slider is fixedly connected to a connecting arm, the connecting arm is fixedly provided with a protrusion, the protrusion is adapted to the inclined groove provided on the transmission plate, and the protrusion extends into the inclined groove and is slidably connected to the transmission plate.
[0021] As described above, the aluminum shell blowing and drying equipment has an elastic element between the U-shaped arm and the sleeve plate. The elastic element includes a guide post fixed inside the U-shaped arm and a cylindrical spring sleeved on the outer periphery of the guide post. A ring body fixedly connected to the sleeve plate is also slidably sleeved on the guide post. One end of the cylindrical spring is connected to the ring body, and the other end is connected to a frustum fixed to the end of the guide post.
[0022] As described above, the aluminum shell water drying equipment includes a shifting mechanism comprising a guide rail fixed to the support base and a driven plate slidably fitted on the guide rail. The driven plate is provided with a through groove, and a drive column adapted to the through groove is fixed on the driven plate. The drive column passes through the through groove and is slidably connected to the driven plate. The through groove includes an inclined section and a straight section connected together.
[0023] As described above, the aluminum shell water drying equipment has the following features: a vertical arm is fixedly mounted on the driven plate, two horizontal arms are fixedly connected to the vertical arm, and a transmission column is fixedly connected to the sleeve plate, with the transmission column slidingly abutting against the horizontal arms.
[0024] Compared with the prior art, the beneficial effects of the present invention are:
[0025] To address this, the present invention provides two horizontally distributed plates on a support base, each plate equipped with multiple sets of equidistant clamping mechanisms. During operation, the power mechanism drives these clamping mechanisms to clamp the aluminum shell one by one. The ball bearings on the side of the sleeve plate reduce the obstruction area on the aluminum shell surface during clamping, preventing excessive obstruction and resulting in a large drying blind spot. This ensures the stability of the aluminum shell while preventing obstruction of the natural flow of residual water under gravity. Furthermore, during the water drying process, the power mechanism triggers a shifting mechanism, which causes the sleeve plate and the U-shaped arm to slide relative to each other, allowing the ball bearings to roll on the aluminum shell surface. This changes the position of the ball bearings, causing them to be misaligned, thus exposing all parts of the aluminum shell surface and effectively ensuring the comprehensiveness and effectiveness of the water drying process.
[0026] Furthermore, during operation, after multiple aluminum shells are clamped, a gap is left between the two sleeve plates of two adjacent aluminum shells. This gap forms a slit. Since the side of the sleeve plate away from the support base has an inclined surface, during the water drying process, hot air is blown from top to bottom. This causes some hot air to pass between the sleeve plate and the aluminum shell, while some hot air passes through the slit under the guidance of the inclined surface. The slit can effectively accelerate the hot air, preventing the blowing force of the hot air to remove water stains from the water stains from decreasing as the blowing stroke increases, thus improving the smoothness of the water stains separating from the aluminum shells in the later stage. Attached Figure Description
[0027] Figure 1 This is a schematic diagram of one embodiment of an aluminum shell water drying device.
[0028] Figure 2 This is a structural schematic diagram from another angle of one embodiment of an aluminum shell water drying device.
[0029] Figure 3 This is a schematic diagram of the internal structure of the installation chamber in one embodiment of an aluminum shell water drying device.
[0030] Figure 4 This is a schematic diagram of the shell structure in one embodiment of an aluminum shell water drying device.
[0031] Figure 5 This is a schematic diagram of the shell from another angle in one embodiment of an aluminum shell water drying device.
[0032] Figure 6 This is a schematic diagram of the internal structure of the shell in one embodiment of an aluminum shell water drying device.
[0033] Figure 7 This is a schematic diagram of the clamping state of the aluminum shell in one embodiment of the aluminum shell blowing and drying equipment.
[0034] Figure 8 for Figure 7 A structural diagram from another angle.
[0035] Figure 9 for Figure 8 Enlarged view of the structure at point A in the middle.
[0036] Figure 10 This is a schematic diagram showing the distribution of multiple vertical plates and two horizontal plates in one embodiment of an aluminum shell water drying device.
[0037] Figure 11 for Figure 10 A structural diagram from another angle.
[0038] Figure 12 for Figure 11 Enlarged view of the structure at point B in the middle.
[0039] Figure 13 This is a schematic diagram showing the connection relationship between the U-shaped arm and the sleeve plate in one embodiment of an aluminum shell water drying device.
[0040] Figure 14 for Figure 13 A structural diagram from another angle.
[0041] Figure 15 This is an exploded view of the clamping mechanism in one embodiment of an aluminum shell water drying device.
[0042] In the diagram: 1. Cabinet; 101. Installation chamber; 2. Cylinder lifting door; 3. Air inlet pipe; 4. High-efficiency filter; 5. Air outlet pipe; 6. Housing; 7. Support base; 8. Limiting strip; 9. Linear drive module; 10. Horizontal sliding base; 11. Vertical plate; 12. Horizontal plate; 13. Two-way lead screw; 14. Gear; 15. Gear plate; 16. Follower plate; 1601. Drive column; 17. Slider; 18. Connecting arm; 1801, convex column; 19, driven block; 20, transmission plate; 2001, inclined groove; 21, U-shaped arm; 22, sleeve plate; 2201, ball bearing; 2202, inclined surface; 23, guide column; 2301, frustum; 24, ring body; 25, cylindrical spring; 26, transmission column; 27, guide rail; 28, driven plate; 2801, inclined section; 2802, straight section; 29, vertical arm; 30, horizontal arm. Detailed Implementation
[0043] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0044] Furthermore, elements in this invention are referred to as being "fixed to" or "set on" another element, which may be directly on the other element or may also include an intervening element. When an element is considered to be "connected" to another element, it may be directly connected to the other element or may also include an intervening element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementations.
[0045] Please see Figures 1-15 In this embodiment, an aluminum shell water blowing and drying device includes a cabinet 1, which has multiple installation chambers 101 inside, and an aluminum shell placement structure inside the installation chambers 101.
[0046] The aluminum casing placement structure includes:
[0047] The housing 6 is fixed in the installation chamber 101 and the support seat 7 is located in the housing 6, and two limiting strips 8 are fixed on the support seat 7 for supporting the aluminum housing;
[0048] Multiple vertical plates 11 are fixed on the support base 7 and are equidistantly distributed along the length of the support base 7. The multiple vertical plates 11 are fixedly connected to two horizontal plates 12 that are distributed vertically. Multiple clamping mechanisms are provided on the two horizontal plates 12. The multiple clamping mechanisms are equidistantly distributed along the length of the horizontal plates 12 and are used to clamp each aluminum shell to be dried.
[0049] The power mechanism is located on the support base 7. The power mechanism can move along the length of the support base 7 and cause multiple clamping mechanisms to perform clamping actions on the aluminum shell in sequence. The power mechanism is also connected to the shifting mechanism located on the support base 7.
[0050] The clamping mechanism includes two sleeve plates 22 located on both sides of the aluminum shell. The sleeve plate 22 has a ball bearing 2201 that abuts against the aluminum shell on the side facing the aluminum shell. The shifting mechanism can drive the sleeve plate 22 to move along the width direction of the support seat 7 so as to change the position of the ball bearing 2201.
[0051] In this embodiment, it should be noted that multiple cylinder lifting doors 2 are provided on both sides of the cabinet 1. The cylinder lifting doors 2 are used to switch the blocking and opening states of the installation chamber 101.
[0052] Furthermore, in actual operation, the support base 7 can be removed from the housing 6, thereby facilitating the robotic arm to transport the aluminum shell to be dried onto the support base 7 and to remove the dried aluminum shell from the support base 7.
[0053] In detail, the limiting strips 8 are arranged in a stepped shape, so that when the robot places the aluminum shell on the two limiting strips 8, the limiting strips 8 can initially position the aluminum shell and prevent the aluminum shell from shifting in the width direction of the support base 7.
[0054] As a further embodiment of the present invention, please refer again. Figure 13 and Figure 15 The sleeve plate 22 has an inclined surface 2202 on the side away from the support base 7. When the aluminum shell is in the clamping state, a slit is formed between the two sleeve plates 22 between two adjacent aluminum shells, and hot air can pass through the slit through the inclined surface 2202.
[0055] In this embodiment, during operation, after multiple aluminum shells are clamped, a gap is created between the two sleeve plates 22 of adjacent aluminum shells, forming the slit. Since the sleeve plate 22 has an inclined surface 2202 on the side away from the support base 7, during the water drying process, hot air is blown from top to bottom, so that part of the hot air passes between the sleeve plate 22 and the aluminum shell, and part of the hot air passes through the slit under the guiding effect of the inclined surface 2202. The slit can effectively accelerate the hot air, preventing the blowing force of the hot air to remove water stains from the water stains from decreasing as the blowing stroke increases, thus improving the smoothness of the water stains separating from the aluminum shells in the later stage.
[0056] As a further embodiment of the present invention, please refer again. Figure 1 , Figure 2 , Figure 3 as well as Figure 5 The cabinet 1 is provided with an air inlet pipe 3, which is connected to a high-efficiency filter 4. The air inlet pipe 3 is used to introduce hot air into the housing 6 through the high-efficiency filter 4. The bottom of the housing 6 is also provided with an air outlet pipe 5.
[0057] In this embodiment, the high-efficiency filter 4 is an application of existing technology. This application does not specifically limit its particular model. During operation, the high-efficiency filter 4 is used to filter the hot air, preventing water, oil, grease, and dirt from being blown onto the aluminum shell product during the drying process. The top-to-bottom airflow, combined with the gravity effect of the water, enhances the water removal effect, preventing detached water droplets from scattering and re-adhering.
[0058] As a further embodiment of the present invention, please refer again. Figure 7 and Figure 10 The power mechanism includes a transverse sliding seat 10 movably mounted on the support base 7. The transverse sliding seat 10 is fixedly connected to a follower plate 16, and the transverse sliding seat 10 can be driven by a linear drive module 9 mounted on the support base 7 to move along the length direction of the support base 7. The follower plate 16 is connected to the shifting mechanism and also cooperates with a bidirectional drive assembly mounted on the vertical plate 11. The bidirectional drive assembly can drive the two sleeve plates 22 to move away from or closer to each other.
[0059] In this embodiment, it should be noted that the linear drive module 9 is based on the screw drive principle to realize the movement of the transverse shift seat 10 in the length direction of the support seat 7. During operation, when the robot places multiple aluminum shells to be dried one by one on the two limiting plates 8, the transverse shift seat 10 moves along the length direction of the support seat 7, thereby enabling the bidirectional drive components on multiple vertical plates 11 to be triggered sequentially, so that multiple clamping mechanisms clamp the aluminum shells one by one. Conversely, after the drying process is completed, during the reverse movement and reset of the transverse shift seat 10, the multiple aluminum shells can be released from the clamping state one by one, making it easy for the robot to remove the processed aluminum shells one by one.
[0060] As a further embodiment of the present invention, please refer again. Figure 9 The bidirectional drive assembly includes a threaded component mounted on the vertical plate 11 and two sets of sliding fit structures connected to the threaded component. The threaded component includes a bidirectional lead screw 13 rotatably mounted on the vertical plate 11 and two sliders 17 slidably mounted on the vertical plate 11 and threadedly connected to the bidirectional lead screw 13. A gear 14 is fixed to one end of the bidirectional lead screw 13, and a toothed plate 15 that meshes with the gear 14 is fixedly mounted to the end of the follower plate 16 away from the transverse sliding seat 10. The sliding fit structure includes two driven blocks 19 slidably disposed on the horizontal plate 12. Each of the two driven blocks 19 is fixedly connected to a U-shaped arm 21, and the U-shaped arm 21 is slidably fitted with the sleeve plate 22. The driven blocks 19 are fixedly connected to a transmission plate 20. A connecting arm 18 is fixedly fixed on the slider 17. A protrusion 1801 is fixedly provided on the connecting arm 18. The protrusion 1801 is adapted to the inclined groove 2001 provided on the transmission plate 20, and the protrusion 1801 extends into the inclined groove 2001 and is slidably connected to the transmission plate 20.
[0061] In this embodiment, when the robotic arm places the aluminum shells to be dried one by one onto the two limiting plates 8, the linear drive module 9 drives the transverse seat 10 to move along the length of the support seat 7. When the toothed plate 15 engages with the gear 14, the gear 14 causes the bidirectional lead screw 13 to rotate. Subsequently, the two sliders 17 simultaneously engage with the bidirectional lead screw 13 and slide away from each other on the vertical plate 11. Correspondingly, the protrusion 1801 engages with the transmission plate 20 through the inclined groove 2001, so that the transmission plate 20 drives the driven block 19 and the U-shaped arm 21 to move toward the aluminum shell. Finally, the ball bearing 2201 on the side of the sleeve plate 22 abuts against the surface of the aluminum shell, achieving stable treatment of the aluminum shell and avoiding collisions and scratches between the aluminum shells during the subsequent drying process due to the swinging and rotation of the aluminum shell, which would cause surface scratches or deformation.
[0062] To address this, the present invention provides two horizontally distributed plates 12 on the support base 7, each plate 12 having multiple sets of equidistantly arranged clamping mechanisms. During operation, the power mechanism drives the multiple clamping mechanisms to clamp the aluminum shell one by one. The inclusion of ball bearings 2201 on the side of the sleeve plate 22 reduces the obstruction area on the aluminum shell surface during clamping, avoiding a large blind spot in drying caused by excessive obstruction. This ensures the stability of the aluminum shell while preventing obstruction of the natural flow of residual water under gravity. Furthermore, during the water drying process, the power mechanism triggers the shifting mechanism, which drives the sleeve plate 22 and the U-shaped arm 21 to slide relative to each other, causing the ball bearings 2201 to roll on the aluminum shell surface. This changes the position of the ball bearings 2201, causing them to shift sequentially, thus exposing all parts of the aluminum shell surface and effectively ensuring the comprehensiveness and effectiveness of the water drying process.
[0063] As a further embodiment of the present invention, please refer again. Figure 15 An elastic element is provided between the U-shaped arm 21 and the sleeve plate 22. The elastic element includes a guide post 23 fixed inside the U-shaped arm 21 and a cylindrical spring 25 sleeved on the outer periphery of the guide post 23. A ring 24 fixedly connected to the sleeve plate 22 is also slidably sleeved on the guide post 23. One end of the cylindrical spring 25 is connected to the ring 24, and the other end is connected to a frustum 2301 fixed to the end of the guide post 23.
[0064] As a further embodiment of the present invention, please refer again. Figure 7 , Figure 10 as well as Figure 12 The switching mechanism includes a guide rail 27 fixed to the support base 7 and a driven plate 28 slidably fitted onto the guide rail 27. The driven plate 28 has a through groove, and a drive column 1601 adapted to the through groove is fixed on the follower plate 16. The drive column 1601 passes through the through groove and is slidably connected to the driven plate 28. The through groove includes an inclined section 2801 and a straight section 2802 connected together. A vertical arm 29 is fixed on the driven plate 28, and two horizontal arms 30 are fixedly connected to the vertical arm 29. A transmission column 26 is also fixedly connected to the sleeve plate 22, and the transmission column 26 slidably abuts against the horizontal arms 30.
[0065] In this embodiment, with attachment Figure 7Taking the state shown as an example, at this time, multiple aluminum shells are in a clamped state. The drive column 1601 is located at the connection between the inclined section 2801 and the straight section 2802. In the middle of the water drying process, the linear drive module 9 drives the transverse shift seat 10 to continue moving, so that the follower plate 16 drives the drive column 1601 into the inclined section 2801. Then, the drive column 1601 and the driven plate 28 slide together, so that the driven plate 28 slides on the guide rail 27. Correspondingly, the driven plate 28 pushes the transmission column 26 through the vertical arm 29 and the horizontal arm 30, so that the sleeve plate 22 and the U-shaped arm 21 slide relative to each other. The position of the ball 2201 changes, and the sequential position of the ball 2201 is misaligned, so that all parts of the aluminum shell surface can be exposed, effectively ensuring the comprehensiveness and effectiveness of the water drying process.
[0066] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
[0067] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. An aluminum shell water blowing and drying device, comprising a cabinet, wherein the cabinet is provided with multiple installation chambers, and an aluminum shell placement structure is provided in the installation chambers; Its features are, The aluminum casing placement structure includes: The housing is fixed in the installation chamber and the support seat is located in the housing, and two limiting strips are fixed on the support seat to support the aluminum housing; Multiple vertical plates are fixed to the support base and are equidistantly distributed along the length of the support base. The multiple vertical plates are fixedly connected to two horizontal plates distributed vertically. Multiple clamping mechanisms are provided on both horizontal plates. The multiple clamping mechanisms are equidistantly distributed along the length of the horizontal plates and are used to clamp each aluminum shell to be dried. The power mechanism is located on the support base. The power mechanism can move along the length of the support base and cause multiple clamping mechanisms to perform clamping actions on the aluminum shell in sequence. The power mechanism is also connected to a shifting mechanism located on the support base. The clamping mechanism includes two sleeve plates located on both sides of the aluminum shell. The sleeve plate has a ball bearing that abuts against the aluminum shell on the side facing the aluminum shell. The shifting mechanism can drive the sleeve plate to move along the width direction of the support seat so as to change the position of the ball bearing. The power mechanism includes a transverse sliding seat movably mounted on the support base. The transverse sliding seat is fixedly connected to a follower plate, and the transverse sliding seat can be driven by a linear drive module mounted on the support base to move along the length direction of the support base. The follower plate is connected to the switching mechanism and also cooperates with the bidirectional drive component on the upright plate. The bidirectional drive component can drive the two sleeve plates to move away from or closer to each other.
2. The aluminum shell water-blowing and drying equipment according to claim 1, characterized in that, The sleeve plate has an inclined surface on the side away from the support base. When the aluminum shell is in the clamping state, a slit is formed between the two sleeve plates between two adjacent aluminum shells, and hot air can pass through the slit through the inclined surface.
3. The aluminum shell water blowing and drying equipment according to claim 1, characterized in that, The cabinet is equipped with an air inlet pipe, which is connected to a high-efficiency filter. The air inlet pipe is used to introduce hot air into the housing through the high-efficiency filter. The bottom of the housing is also equipped with an air outlet pipe.
4. The aluminum shell water blowing and drying equipment according to claim 3, characterized in that, The bidirectional drive assembly includes a threaded component mounted on the vertical plate and two sets of sliding fit structures connected to the threaded component.
5. The aluminum shell water drying equipment according to claim 4, characterized in that, The threaded component includes a bidirectional lead screw rotatably mounted on the vertical plate and two sliders slidably mounted on the vertical plate and threadedly connected to the bidirectional lead screw. One end of the bidirectional lead screw is fixed with a gear, and the end of the follower plate away from the transverse sliding seat is fixedly mounted with a toothed plate that meshes with the gear.
6. The aluminum shell water-blowing and drying equipment according to claim 5, characterized in that, The sliding fit structure includes two driven blocks slidably disposed on the horizontal plate, and each of the two driven blocks is fixedly connected to a U-shaped arm, the U-shaped arm being slidably fitted with the sleeve plate; The driven block is fixedly connected to a transmission plate, the slider is fixedly connected to a connecting arm, the connecting arm is fixedly provided with a protrusion, the protrusion is adapted to the inclined groove provided on the transmission plate, and the protrusion extends into the inclined groove and is slidably connected to the transmission plate.
7. The aluminum shell water-blowing and drying equipment according to claim 6, characterized in that, An elastic element is provided between the U-shaped arm and the sleeve plate. The elastic element includes a guide post fixed inside the U-shaped arm and a cylindrical spring sleeved on the outer periphery of the guide post. A ring body fixedly connected to the sleeve plate is also slidably sleeved on the guide post. One end of the cylindrical spring is connected to the ring body, and the other end is connected to a frustum fixed to the end of the guide post.
8. The aluminum shell water blowing and drying equipment according to claim 7, characterized in that, The shifting mechanism includes a guide rail fixed on the support base and a driven plate slidably fitted on the guide rail. The driven plate is provided with a through groove, and a drive column adapted to the through groove is fixed on the driven plate. The drive column passes through the through groove and is slidably connected to the driven plate. The through groove includes an inclined section and a straight section connected together.
9. The aluminum shell water-blowing and drying equipment according to claim 8, characterized in that, A vertical arm is fixed to the driven plate, and two horizontal arms are fixedly connected to the vertical arm. A transmission column is also fixedly connected to the sleeve plate, and the transmission column slides against the horizontal arms.
Citation Information
Patent Citations
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CN120720830A