Air energy heat pump fin machining device

By designing the fin processing device of the air energy heat pump, the fin rolling assembly is used to drive the fin rolling assembly to roll the aluminum material, and the aluminum calibration assembly is used to prevent deviation, the problems of swing and deformation during the aluminum coil conveying process in the fin belt roller are solved, and the air flowability and working efficiency of the fin are improved.

CN120023218AInactive Publication Date: 2025-05-23SHANDONG HUAYU UNIV OF TECH
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Patent Information

Application Number
CN202510510154.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-23
Publication Date
2025-05-23
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing fin belt rollers have problems with swing and deformation during the aluminum coil conveying process, resulting in poor air flowability of the processed fins.

Method used

An air-energy heat pump fin processing device is designed, including a processing device base plate, a fin rolling assembly and an aluminum calibration assembly. The drive belt is driven by the drive motor to rotate, and the fin rolling assembly is driven to press the aluminum roller into corrugated fins, and the aluminum calibration assembly is used to prevent the aluminum from going off.

Benefits of technology

The stable conveying of aluminum coils during processing and flat rolling of fins is achieved, the air flowability of fins is improved, manpower is saved and work efficiency is improved.

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Abstract

The invention provides an air energy heat pump fin machining device, and relates to the technical field of fin machining, the air energy heat pump fin machining device comprises a machining device bottom plate, a fin rolling and folding assembly and an aluminum material calibration assembly, a driving motor mounting frame is integrally arranged at the upper end of the machining device bottom plate, and an integrated mounting bottom plate is fixedly mounted at the upper end of the driving motor mounting frame; the fin rolling and folding assembly is fixedly mounted on the surface of the upper end of the assembly mounting bottom plate, and calibration supporting assemblies are arranged on the surface of the upper end of the assembly mounting bottom plate and located on the two sides of the fin rolling and folding assembly; according to the device, an aluminum coiled material is placed in the aluminum material calibration assembly, the aluminum material is firstly guided to penetrate through the calibration supporting assembly and the fin rolling and folding assembly, then a driving motor is started, a driving belt is driven to rotate through a rotating motor driving disc, and therefore the fin rolling and folding assembly can be driven to roll the aluminum material into wave-shaped fins; and each fold of the formed fins is very flat, so that the side openings are not flattened, and the air circulation is not influenced.
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Description

Technical Field

[0001] The invention relates to the technical field of fin processing, in particular to an air energy heat pump fin processing device. Background Art

[0002] The fin rolling machine is a special equipment for producing fins in radiators and condensers. It uses aluminum flat strip coils to roll the flat strips into fin strips. The machine tool needs to ensure that the conveying direction of the strip is stable and without swinging during operation. At present, some equipment requires manual adjustment, which is time-consuming and labor-intensive. Therefore, how to make the fin rolling machine automatically correct the strip to make the conveying direction of the strip stable and without swinging, save manpower, and improve work efficiency. For example, a new type of radiator fin correction equipment with application number CN202222657488.8, in the specific implementation of the above technical solution, during the transportation of aluminum coils, the aluminum coils cannot be smoothly transported to the rolling gear before they are rolled into undulating fins, resulting in the edges of the aluminum being squeezed and scraped during transportation, resulting in a large amount of deformation, resulting in poor air fluidity in the processed fins. Summary of the invention

[0003] In view of the deficiencies in the prior art, the present invention provides an air-energy heat pump fin processing device, which solves the problems raised in the background technology.

[0004] To achieve the above objectives, the present invention is implemented through the following technical solutions: an air-energy heat pump fin processing device, comprising a processing device bottom plate, a fin rolling assembly and an aluminum calibration assembly, the upper end of the processing device bottom plate is integrally provided with a drive motor mounting frame, the upper end of the drive motor mounting frame is fixedly installed with a collection mounting bottom plate, the fin rolling assembly is fixedly installed on the upper end surface of the collection mounting bottom plate, and calibration support assemblies are provided on the upper end surface of the collection mounting bottom plate and on both sides of the fin rolling assembly; The aluminum calibration assembly is also fixedly mounted on the upper surface of the collective mounting base plate.

[0005] Preferably, two drive motors are fixedly mounted on the inner wall of the drive motor mounting frame, and motor drive disks are coaxially fixedly mounted on the output shafts of the two drive motors.

[0006] Preferably, the fin folding assembly includes: a folding assembly side plate, a gear roller sliding groove, a sliding limit strip, a sliding groove threaded top cover, a gear roller sliding seat, a sliding seat sliding sleeve, an adjusting bolt, a sliding bearing seat, a first gear roller shaft, a first roller pressure gear roller, a drive disk shaft, and a gear roller drive disk; The two side plates of the roll folding assembly are provided with a gear roller sliding groove, the gear roller sliding groove is provided with a sliding groove threaded top cover, the inner walls on both sides of the gear roller sliding groove are integrated with sliding limit strips, a gear roller sliding seat is slidably provided on the sliding limit strips, the upper end of the gear roller sliding seat is integrated with a sliding seat sliding sleeve, and an adjusting bolt is rotatably inserted into the sliding seat sliding sleeve; The gear roller sliding seat is provided with a sliding bearing seat, a first gear roller shaft is rotatably provided on the sliding bearing seat, and a first roller pressure gear roller is coaxially fixedly installed on the first gear roller shaft.

[0007] Preferably, a first synchronous gear disc is coaxially fixedly installed at one end of the first gear roller shaft, a fixed bearing seat is fixedly installed on the side plate of the roll-folding assembly, a second gear roller shaft is rotatably installed on the fixed bearing seat, and a second roller-pressing gear roller is coaxially fixedly installed on the second gear roller shaft; A second synchronous gear plate is coaxially fixedly mounted on one end of the second gear roller shaft, and a gear roller driving plate is coaxially fixedly mounted on the other end of the second gear roller shaft.

[0008] Preferably, the first synchronous gear plate and the second synchronous gear plate are meshed with each other.

[0009] Preferably, a drive belt is sleeved on the gear roller drive disc and the motor drive disc.

[0010] Preferably, the calibration support assembly comprises: a support assembly side seat, a support side seat, a side seat connecting plate, a support bolt, a support transmission plate, and a transmission plate support beam; A supporting side seat is fixedly installed on the inner surface of the side seat of the supporting assembly, a side seat connecting plate is arranged at the upper end of the supporting side seat, a plurality of supporting bolts are fixedly installed on the side seat connecting plate, a supporting transmission plate is arranged at the lower end of the supporting bolts, and a plurality of transmission plate supporting beams are arranged between the two supporting side seats.

[0011] Preferably, the aluminum calibration assembly includes: a calibration assembly base plate, a limit clamp, a clamp adjustment bolt, a calibration support frame, an aluminum support plate, a pressure support rod, an adjustment slide, an adjustment sliding seat, and an adjustment hydraulic cylinder; Two limit clamps are fixedly installed on the upper end of the calibration component bottom plate, and clamp adjustment bolts are arranged between the limit clamps. A calibration support frame is fixedly installed on the upper end of the calibration component bottom plate, and an aluminum support plate is fixedly installed on the upper end of the calibration support frame. Pressure support rods are fixedly installed at the four corners of the upper end of the aluminum support plate. An adjusting slide is fixedly mounted on the upper end of the pressure support rod, an adjusting sliding seat is slidably arranged on the adjusting slide, and an adjusting hydraulic cylinder is fixedly mounted on the adjusting sliding seat.

[0012] Preferably, a hydraulic cylinder connecting rod is fixedly installed at the output end of the adjusting hydraulic cylinder, and an aluminum pressing plate is fixedly installed at the lower end of the hydraulic cylinder connecting rod; An aluminum material pressing groove is provided at the upper end of the aluminum material supporting plate, a top pressing plate is fixedly installed in the aluminum material pressing groove, and an aluminum material inclined groove is provided at the front end of the aluminum material pressing groove.

[0013] Preferably, the front end of the calibration support frame is integrally provided with an aluminum material support arm, an aluminum material rotating shaft is rotatably installed between the aluminum material support arms, and two aluminum material empty plates are coaxially arranged on the aluminum material rotating shaft.

[0014] The present invention provides an air energy heat pump fin processing device, which has the following beneficial effects: (1) The present invention places the aluminum coil in the aluminum calibration assembly, and first guides the aluminum through the calibration support assembly and the fin rolling assembly, then starts the drive motor, and drives the drive belt to rotate by rotating the motor drive disk, thereby driving the fin rolling assembly to roll the aluminum into a corrugated fin, and each fold of the formed fin is very flat, so that the side opening is not flattened to affect air circulation; (2) The present invention drives the gear roller driving disk to rotate through a driving belt, and then the second gear roller can be rotated synchronously through the second gear roller shaft, and the gear roller sliding seat at the lower end is driven to slide in the gear roller sliding groove by rotating the adjusting bolt, so that the first gear roller shaft on the sliding bearing seat can be lowered, so that the first gear roller on it is meshed with the second gear roller at the lower end, and at the same time, the first synchronous gear plate and the second synchronous gear plate on the side are meshed and rotated, and the wear between the first gear roller and the second gear roller at the lower end can be reduced by the meshing of the first synchronous gear plate and the second synchronous gear plate, and the corrugated fin can be rolled out by the rolling between the first gear roller and the second gear roller at the lower end; (3) The present invention can calibrate the aluminum material sliding on the supporting conveyor plate through the spacing between the two side seat connecting plates, thereby preventing the aluminum material calibrated on the aluminum material calibration assembly from deviating due to sliding resistance; (4) The present invention allows the aluminum coil placed on the empty aluminum tray to pass through the aluminum inclined groove, and is guided through the aluminum inclined groove to pass between the aluminum pressure plate and the top pressure plate, and is guided through the aluminum pressure alignment groove to pass between the two limit clamps, thereby facilitating calibration and guidance, and also preventing the aluminum from jumping and deviating due to sliding resistance during transportation, resulting in bumping and deformation of the aluminum. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is a schematic diagram of the structure of the present invention from a first viewing angle; Figure 2 It is a structural schematic diagram of the second viewing angle of the present invention; Figure 3It is a structural schematic diagram of the present invention from a third viewing angle; Figure 4 It is a schematic diagram of the structure of the fin roll-folding assembly in the present invention; Figure 5 It is a structural schematic diagram of the fin roll-folding assembly in the present invention from another perspective; Figure 6 It is a structural schematic diagram of the calibration support assembly in the present invention; Figure 7 It is a structural schematic diagram of the calibration support assembly in the present invention from another perspective; Figure 8 This is a schematic diagram of the structure of the aluminum calibration assembly of the present invention from a first viewing angle; Fig. 9 It is a structural schematic diagram of the aluminum material calibration assembly of the present invention from a second viewing angle; Fig.10 It is a structural schematic diagram of the aluminum calibration component in the present invention from a third viewing angle.

[0016] Among them, 1. Processing device bottom plate; 2. Drive motor mounting frame; 3. Assembly mounting bottom plate; 4. Fin rolling assembly; 401. Rolling assembly side plate; 402. Gear roller sliding groove; 403. Sliding limit strip; 404. Sliding groove threaded top cover; 405. Gear roller sliding seat; 406. Sliding seat sliding sleeve; 407. Adjusting bolt; 408. Sliding bearing seat; 409. First gear roller shaft; 410. Second gear roller shaft; 411. First roller pressure gear roller; 412. Second roller pressure gear roller; 413. Fixed bearing seat; 414. Drive disc shaft; 415. Gear roller drive disc; 416. First synchronous gear disc; 417. Second synchronous gear disc; 5. Calibration support assembly; 501. Support assembly side seat; 502. Support side seat; 503, side seat connecting plate; 504, support bolt; 505, support conveyor plate; 506, conveyor plate support beam; 6, motor drive disk; 7, drive belt; 8, aluminum calibration assembly; 801, calibration assembly base plate; 802, limit clamp; 803, clamp adjustment bolt; 804, calibration support frame; 805, aluminum support plate; 806, pressure support rod; 807, adjustment slide plate; 808, adjustment sliding seat; 809, adjustment hydraulic cylinder; 810, hydraulic cylinder connecting rod; 811, aluminum pressure plate; 812, aluminum pressure groove; 813, top pressure plate; 814, aluminum inclined groove; 815, aluminum support arm; 816, aluminum rotating shaft; 817, aluminum empty plate; 9, drive motor. DETAILED DESCRIPTION

[0017] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0018] like Figures 1 to 3 As shown, an embodiment of the present invention provides an air-energy heat pump fin processing device, including a processing device base plate 1, a fin rolling assembly 4 and an aluminum calibration assembly 8, a driving motor mounting frame 2 is integrally arranged on the upper end of the processing device base plate 1, a collective mounting base plate 3 is fixedly installed on the upper end of the driving motor mounting frame 2, the fin rolling assembly 4 is fixedly installed on the upper end surface of the collective mounting base plate 3, calibration support assemblies 5 are arranged on the upper end surface of the collective mounting base plate 3 and on both sides of the fin rolling assembly 4; the aluminum calibration assembly 8 is also fixedly installed on the upper end surface of the collective mounting base plate 3, two driving motors 9 are fixedly installed on the inner wall of the driving motor mounting frame 2, and motor driving disks 6 are coaxially fixedly installed on the output shafts of the two driving motors 9.

[0019] In the above technical solution, the aluminum coil is placed in the aluminum calibration assembly 8, and the aluminum is first guided through the calibration support assembly 5 and the fin rolling assembly 4, and then the drive motor 9 is started, and the drive belt 7 is driven to rotate by the rotating motor drive disk 6, thereby driving the fin rolling assembly 4 to roll the aluminum into a corrugated fin, and each fold of the formed fin is very flat, so as not to cause the side opening to be flattened and affect the air circulation.

[0020] like Figure 1 , Figure 4 , Figure 5As shown, the fin folding assembly 4 includes: a folding assembly side plate 401, a gear roller sliding groove 402, a sliding limit strip 403, a sliding groove threaded top cover 404, a gear roller sliding seat 405, a sliding seat sliding sleeve 406, an adjusting bolt 407, a sliding bearing seat 408, a first gear roller shaft 409, a first roller pressing gear roller 411, a driving disk shaft 414, and a gear roller driving disk 415; a gear roller sliding groove 402 is provided on both of the folding assembly side plates 401, a sliding groove threaded top cover 404 is provided on the gear roller sliding groove 402, sliding limit strips 403 are integrated on the inner walls of both sides of the gear roller sliding groove 402, a gear roller sliding seat 405 is slidably provided on the sliding limit strip 403, a sliding seat sliding sleeve 406 is integrated on the upper end of the gear roller sliding seat 405, and an adjusting bolt 407 is rotatably inserted on the sliding seat sliding sleeve 406; the gear roller sliding groove 402 is provided with a gear roller sliding groove 402, and the gear roller sliding groove 402 is provided with a gear roller sliding groove 402. A sliding bearing seat 408 is arranged on the roller sliding seat 405, and a first gear roller shaft 409 is rotatably arranged on the sliding bearing seat 408, a first roller pressure gear roller 411 is coaxially fixedly installed on the first gear roller shaft 409, a first synchronous gear disk 416 is coaxially fixedly installed on one end of the first gear roller shaft 409, a fixed bearing seat 413 is fixedly installed on the side plate 401 of the rolling and folding assembly, a second gear roller shaft 410 is rotatably installed on the fixed bearing seat 413, a second roller pressure gear roller 412 is coaxially fixedly installed on the second gear roller shaft 410; a second synchronous gear disk 417 is coaxially fixedly installed on one end of the second gear roller shaft 410, a gear roller driving disk 415 is coaxially fixedly installed on the other end of the second gear roller shaft 410, the first synchronous gear disk 416 and the second synchronous gear disk 417 are meshingly arranged, and a driving belt 7 is sleeved on the gear roller driving disk 415 and the motor driving disk 6.

[0021] In the above technical solution, the gear roller driving disk 415 is driven to rotate by the driving belt 7, and then the second gear roller shaft 410 can be used to synchronize the rotation of the second roller 412, and the adjusting bolt 407 is rotated to drive the gear roller sliding seat 405 at the lower end to slide in the gear roller sliding groove 402, so that the first gear roller shaft 409 on the sliding bearing seat 408 can be lowered, so that the first roller 411 on it is engaged with the second roller 412 at the lower end, and at the same time, the first synchronous gear plate 416 and the second synchronous gear plate 417 on the side are engaged and rotated, and the engagement of the first synchronous gear plate 416 and the second synchronous gear plate 417 can reduce the wear between the first roller 411 and the second roller 412 at the lower end, and the corrugated fin can be rolled out by the rolling between the first roller 411 and the second roller 412 at the lower end.

[0022] like Figure 1 , Figure 6 , Figure 7As shown, the calibration support assembly 5 includes: a support assembly side seat 501, a support side seat 502, a side seat connecting plate 503, a support bolt 504, a support transfer plate 505, and a transfer plate support beam 506; the support side seat 502 is fixedly installed on the inner surface of the support assembly side seat 501, a side seat connecting plate 503 is arranged at the upper end of the support side seat 502, a plurality of support bolts 504 are fixedly installed on the side seat connecting plate 503, a support transfer plate 505 is arranged at the lower end of the support bolt 504, and a plurality of transfer plate support beams 506 are arranged between the two support side seats 502.

[0023] In the above technical solution, the aluminum material sliding on the support conveying plate 505 can be calibrated by the spacing between the two side seat connecting plates 503, thereby preventing the calibrated aluminum material on the aluminum material calibration assembly 8 from deviating due to sliding resistance.

[0024] like Figure 1 , Figures 8 to 9 As shown, the aluminum calibration component 8 includes: a calibration component base plate 801, a limit clamping plate 802, a clamping plate adjustment bolt 803, a calibration support frame 804, an aluminum support plate 805, a pressure-aligning support rod 806, an adjustment slide 807, an adjustment sliding seat 808, and an adjustment hydraulic cylinder 809; two limit clamping plates 802 are fixedly installed on the upper end of the calibration component base plate 801, and a clamping plate adjustment bolt 803 is arranged between the limit clamping plates 802, a calibration support frame 804 is fixedly installed on the upper end of the calibration component base plate 801, an aluminum support plate 805 is fixedly installed on the upper end of the calibration support frame 804, and pressure-aligning support rods 806 are fixedly installed at the four corners of the upper end of the aluminum support plate 805; the upper end of the pressure-aligning support rod 806 is fixedly installed with an adjustment slide 807 An adjusting sliding seat 808 is slidably provided on the adjusting slide plate 807, an adjusting hydraulic cylinder 809 is fixedly installed on the adjusting sliding seat 808, a hydraulic cylinder connecting rod 810 is fixedly installed on the output end of the adjusting hydraulic cylinder 809, and an aluminum pressing plate 811 is fixedly installed on the lower end of the hydraulic cylinder connecting rod 810; an aluminum pressing groove 812 is provided on the upper end of the aluminum support plate 805, a top pressing plate 813 is fixedly installed in the aluminum pressing groove 812, an aluminum inclined groove 814 is provided at the front end of the aluminum pressing groove 812, an aluminum support arm 815 is integrally provided at the front end of the calibration support frame 804, an aluminum rotating shaft 816 is rotatably installed between the aluminum support arms 815, and two aluminum empty plates 817 are coaxially provided on the aluminum rotating shaft 816.

[0025] In the above technical solution, the aluminum coil placed on the aluminum empty tray 817 passes through the aluminum inclined groove 814, and is guided through the aluminum inclined groove 814 to pass between the aluminum pressure plate 811 and the top pressure plate 813, and is guided through the aluminum pressure alignment groove 812 to pass between the two limit clamps 802, thereby facilitating calibration and guiding, and preventing the aluminum from jumping and deviating due to the sliding resistance during transportation, causing the aluminum to be bumped and deformed.

[0026] Working principle: The present invention places the aluminum coil in the aluminum calibration assembly 8, and first guides the aluminum through the calibration support assembly 5 and the fin rolling assembly 4, then starts the drive motor 9, and drives the drive belt 7 to rotate by rotating the motor drive disk 6, so as to drive the fin rolling assembly 4 to roll the aluminum into a corrugated fin, and each fold of the formed fin is very flat, so as not to cause the side opening to be flattened and affect the air circulation; The gear roller driving disk 415 is driven to rotate by the driving belt 7, and then the second gear roller shaft 410 can be used to synchronize the rotation of the second roller gear roller 412, and the gear roller sliding seat 405 at the lower end is driven to slide in the gear roller sliding groove 402 by rotating the adjusting bolt 407, so that the first gear roller shaft 409 on the sliding bearing seat 408 can be lowered, so that the first roller gear roller 411 on it is meshed with the second roller gear roller 412 at the lower end, and at the same time, the first synchronous gear plate 416 and the second synchronous gear plate 417 on the side are meshed and rotated, and the wear between the first roller gear roller 411 and the second roller gear roller 412 at the lower end can be reduced by the meshing of the first synchronous gear plate 416 and the second synchronous gear plate 417, and the corrugated fin can be rolled out by the rolling between the first roller gear roller 411 and the second roller gear roller 412 at the lower end; The distance between the two side seat connecting plates 503 enables the aluminum material sliding on the supporting conveying plate 505 to be calibrated, thereby preventing the aluminum material calibrated on the aluminum material calibration assembly 8 from deviating due to sliding resistance. Among them, the aluminum coil placed on the aluminum empty tray 817 passes through the aluminum inclined groove 814, and is guided by the aluminum inclined groove 814 to pass between the aluminum pressure plate 811 and the top pressure plate 813, and is guided by the aluminum pressure alignment groove 812 to pass between the two limit clamps 802, so as to facilitate calibration and guidance, and also prevent the aluminum from jumping and deviating due to the sliding resistance during transportation, causing the aluminum to be bumped and deformed.

[0027] Obviously, the above embodiments of the present invention are merely examples for clearly illustrating the present invention, and are not limitations on the implementation methods of the present invention. For ordinary technicians in the relevant field, other different forms of changes or modifications can be made on the basis of the above description. It is impossible to list all the implementation methods here. All obvious changes or modifications derived from the technical solution of the present invention are still within the protection scope of the present invention.

Claims

1. An air energy heat pump fin processing device, comprising a processing device bottom plate (1), a fin rolling component (4) and an aluminum material calibration component (8), characterized in that: A drive motor mounting frame (2) is integrally provided on the upper end of the processing device bottom plate (1); a collective mounting bottom plate (3) is fixedly installed on the upper end of the drive motor mounting frame (2); the fin rolling assembly (4) is fixedly installed on the upper end surface of the collective mounting bottom plate (3); and calibration support assemblies (5) are provided on the upper end surface of the collective mounting bottom plate (3) and on both sides of the fin rolling assembly (4); The aluminum material calibration component (8) is also fixedly mounted on the upper surface of the collective mounting base plate (3).

2. The air energy heat pump fin processing device according to claim 1 is characterized in that: Two drive motors (9) are fixedly mounted on the inner wall of the drive motor mounting frame (2), and a motor drive disk (6) is coaxially fixedly mounted on the output shafts of the two drive motors (9).

3. The air energy heat pump fin processing device according to claim 2 is characterized in that: The fin folding assembly (4) comprises: a folding assembly side plate (401), a toothed roller sliding groove (402), a sliding limit strip (403), a sliding groove threaded top cover (404), a toothed roller sliding seat (405), a sliding seat sliding sleeve (406), an adjusting bolt (407), a sliding bearing seat (408), a first toothed roller shaft (409), a first roller pressure toothed roller (411), a drive disk shaft (414), and a toothed roller drive disk (415); The two side plates (401) of the rolling folding assembly are each provided with a toothed roller sliding groove (402), a sliding groove threaded top cover (404) is provided on the toothed roller sliding groove (402), sliding limit strips (403) are integrally provided on the inner walls on both sides of the toothed roller sliding groove (402), a toothed roller sliding seat (405) is slidably provided on the sliding limit strip (403), a sliding seat sliding sleeve (406) is integrally provided on the upper end of the toothed roller sliding seat (405), and an adjusting bolt (407) is rotatably inserted into the sliding seat sliding sleeve (406); A sliding bearing seat (408) is provided on the gear roller sliding seat (405), a first gear roller shaft (409) is rotatably provided on the sliding bearing seat (408), and a first roller pressure gear roller (411) is coaxially fixedly installed on the first gear roller shaft (409).

4. The air energy heat pump fin processing device according to claim 3 is characterized in that: A first synchronous toothed disc (416) is coaxially fixedly mounted on one end of the first toothed roller shaft (409); a fixed bearing seat (413) is fixedly mounted on the side plate (401) of the rolling assembly; a second toothed roller shaft (410) is rotatably mounted on the fixed bearing seat (413); and a second roller-pressing toothed roller (412) is coaxially fixedly mounted on the second toothed roller shaft (410); A second synchronous gear disk (417) is coaxially fixedly mounted on one end of the second gear roller shaft (410), and a gear roller driving disk (415) is coaxially fixedly mounted on the other end of the second gear roller shaft (410).

5. The air energy heat pump fin processing device according to claim 4 is characterized in that: The first synchronous toothed disc (416) and the second synchronous toothed disc (417) are arranged in meshing engagement.

6. The air energy heat pump fin processing device according to claim 5, characterized in that: A driving belt (7) is sleeved on the gear roller driving disk (415) and the motor driving disk (6).

7. The air energy heat pump fin processing device according to claim 6, characterized in that: The calibration support assembly (5) comprises: a support assembly side seat (501), a support side seat (502), a side seat connecting plate (503), a support bolt (504), a support transmission plate (505), and a transmission plate support beam (506); A supporting side seat (502) is fixedly mounted on the inner surface of the supporting assembly side seat (501); a side seat connecting plate (503) is arranged at the upper end of the supporting side seat (502); a plurality of supporting bolts (504) are fixedly mounted on the side seat connecting plate (503); a supporting transmission plate (505) is arranged at the lower end of the supporting bolts (504); and a plurality of transmission plate supporting beams (506) are arranged between the two supporting side seats (502).

8. The air energy heat pump fin processing device according to claim 7, characterized in that: The aluminum material calibration component (8) comprises: a calibration component base plate (801), a limit clamping plate (802), a clamping plate adjustment bolt (803), a calibration support frame (804), an aluminum material support plate (805), a pressure support rod (806), an adjustment slide plate (807), an adjustment sliding seat (808), and an adjustment hydraulic cylinder (809); Two limit clamps (802) are fixedly mounted on the upper end of the calibration component base plate (801), a clamp adjustment bolt (803) is arranged between the limit clamps (802), a calibration support frame (804) is fixedly mounted on the upper end of the calibration component base plate (801), an aluminum support plate (805) is fixedly mounted on the upper end of the calibration support frame (804), and calibration support rods (806) are fixedly mounted at the four corners of the upper end of the aluminum support plate (805); An adjusting slide plate (807) is fixedly mounted on the upper end of the pressure-aligning support rod (806), an adjusting sliding seat (808) is slidably mounted on the adjusting slide plate (807), and an adjusting hydraulic cylinder (809) is fixedly mounted on the adjusting sliding seat (808).

9. The air energy heat pump fin processing device according to claim 8, characterized in that: A hydraulic cylinder connecting rod (810) is fixedly mounted on the output end of the regulating hydraulic cylinder (809), and an aluminum pressing plate (811) is fixedly mounted on the lower end of the hydraulic cylinder connecting rod (810); An aluminum material pressing groove (812) is provided at the upper end of the aluminum material support plate (805), a top pressing plate (813) is fixedly installed in the aluminum material pressing groove (812), and an aluminum material inclined groove (814) is provided at the front end of the aluminum material pressing groove (812).

10. The air energy heat pump fin processing device according to claim 9, characterized in that: The front end of the calibration support frame (804) is integrally provided with an aluminum material support arm (815), an aluminum material rotating shaft (816) is rotatably mounted between the aluminum material support arms (815), and two aluminum material empty plates (817) are coaxially arranged on the aluminum material rotating shaft (816).

Citation Information

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