Continuous flattening device for fuse melt
By designing a continuous flattening device including wire laying, guiding, flattening and wire retraction mechanism, the problem of fuse melts not being continuously produced and multi-specified processing in the prior art is solved, and efficient multi-specified melt processing is achieved.
Patent Information
- Application Number
- CN202422084208.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-27
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-08-27
AI Technical Summary
The prior art cannot realize the continuous production and multi-spec processing of fuse melts, and the pressure wheel spacing cannot be adjusted.
A continuous flattening device including a wire laying mechanism, a guide mechanism, a flattening mechanism and a wire retracting mechanism is designed, and the adjustable first and second pressure wheels are used to flatten, and continuous production and multi-specimen processing are achieved through the guide mechanism and wire retracting mechanism.
The continuous processing and production of fuse melts is realized, production efficiency is improved, and melts of different specifications can be processed.
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Figure CN223023170U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of fuses, in particular to a continuous flattening device for a fuse melt. Background Art
[0002] A fuse refers to an electrical appliance that melts its melt by the heat generated by itself to cut off the circuit when the current exceeds the specified value. The fusing performance of a fuse mainly depends on the design of the melt. Some fuse melts adopt a flat design, but the common melt is circular, so the circular melt needs to be processed into a flat shape.
[0003] In the prior art, two pressing wheels are usually used to process the circular melt. For example, a fuse flattening and feeding mechanism disclosed in Chinese Patent Publication No. CN214516737U; however, this solution is used as a feeding mechanism to cooperate with a full-automatic fuse assembly device and cannot process the fuse melt alone or continuously produce the fuse melt alone.
[0004] Moreover, the distance between the two pressing wheels in this solution cannot be adjusted, and only one specification of melt can be processed; Summary of the Utility Model
[0005] The purpose of the utility model is to provide a continuous flattening device for a fuse melt, which can mainly solve the problem that the fuse melt cannot continuously produce fuse melts of multiple specifications, and has the advantage of being able to continuously flatten and process a flat melt.
[0006] To achieve the above purpose, the solution of the utility model is:
[0007] A continuous flattening device for a fuse melt includes a wire feeding mechanism, a guiding mechanism, a flattening mechanism, and a wire winding mechanism that are sequentially arranged at intervals;
[0008] The wire feeding mechanism is used to output the fuse melt, and the guiding mechanism is connected between the wire feeding mechanism and the flattening mechanism to guide the fuse melt output by the wire feeding mechanism into the flattening mechanism;
[0009] The flattening mechanism includes a first pressing wheel and a second pressing wheel that rotate in opposite directions. The first pressing wheel and the second pressing wheel are stacked with an adjustable vertical distance, and a first gear and a second gear that mesh with each other are respectively arranged on the first pressing wheel and the second pressing wheel; a flattening channel for the fuse melt to pass through is formed between the first pressing wheel and the second pressing wheel;
[0010] The wire winding mechanism is used to collect the fuse melt flattened and output by the flattening mechanism.
[0011] Further, the wire pay-off mechanism includes a wire pay-off wheel that rotationally outputs the fuse melt; the wire take-up mechanism includes a wire arranging device and a wire take-up wheel. The wire arranging device is connected between the flattening mechanism and the wire take-up wheel and is used to guide the flattened fuse melt to the wire take-up wheel for winding.
[0012] Further, a cleaning mechanism is also provided between the guiding mechanism and the flattening mechanism; the cleaning mechanism includes a cleaning cylinder and a sponge. The top of the cleaning cylinder is open, and the sponge is filled inside the cleaning cylinder from the opening, and the sponge is infiltrated with a cleaning liquid; two symmetrically arranged notches are recessed at the opening edge of the cleaning cylinder, and the fuse melt passes through the cleaning cylinder from the notches and clings to the sponge.
[0013] Further, a guiding plate is also vertically provided between the flattening mechanism and the guiding mechanism. The guiding plate has a guiding hole facing the flattening channel, and the guiding hole allows the fuse melt to pass through; two rotatable and spaced-apart guiding rollers are also vertically provided between the flattening mechanism and the wire take-up mechanism, and the fuse melt passes between the two guiding rollers.
[0014] Further, the guiding mechanism includes a fixing plate and a plurality of guiding pulleys; each guiding pulley is rotatably installed on the fixing plate at intervals.
[0015] Further, the guiding mechanism further includes a material sensor, which is arranged between two guiding pulleys and is used to detect whether there is a fuse melt passing through.
[0016] Further, a power mechanism is also included; the power mechanism drives the first pressing wheel to rotate; the rotation of the first pressing wheel drives the second pressing wheel to rotate in the opposite direction.
[0017] Further, a first driving wheel is also provided on the first pressing wheel; the wire take-up mechanism includes a wire arranging device, a wire take-up wheel, a second driving wheel, and a third driving wheel; the wire arranging device is connected between the flattening mechanism and the wire take-up wheel and is used to guide the flattened fuse melt to the wire take-up wheel for winding; the wire take-up wheel, the second driving wheel, and the third driving wheel are coaxially arranged, and the wire arranging device includes a fourth driving wheel; the first driving wheel and the second driving wheel are connected by belt drive, and the third driving wheel and the fourth driving wheel are also connected by belt drive; the rotation of the first pressing wheel drives the second driving wheel to rotate, the rotation of the second driving wheel drives the wire take-up wheel and the third driving wheel to rotate; the rotation of the third driving wheel drives the fourth driving wheel to rotate, driving the wire arranging device to operate.
[0018] Further, the flattening mechanism further includes an adjusting assembly;
[0019] The adjusting assembly includes an adjusting seat, an adjusting spring, an adjusting pressing plate, and an adjusting rod;
[0020] The adjusting seat includes partition plates spaced front and rear, with a rotating space therebetween, and grooves are provided on the partition plates; the second pressing wheel and the first pressing wheel are arranged vertically in the rotating space; bearings are respectively sleeved on the rotating shafts at both ends of the first pressing wheel and the second pressing wheel, and the bearings of the second pressing wheel and the first pressing wheel are stacked vertically in the grooves, and the adjusting spring is arranged between the bearings of the second pressing wheel and the first pressing wheel.
[0021] The adjusting pressing plate is arranged above the adjusting seat. There are two adjusting rods, which are respectively rotatably and vertically installed on the adjusting pressing plate and extend into the grooves respectively to limit the bearing of the second pressing wheel.
[0022] Further, an adjusting rotating wheel and a synchronous adjusting gear set are provided on the adjusting pressing plate; the synchronous adjusting gear set includes a front gear, a middle gear and a rear gear meshing with each other in sequence front and rear. The axles of the front gear and the rear gear are respectively penetrated by the adjusting rods, and the adjusting rotating wheel is connected with the middle gear for driving the middle gear to rotate, and the rotation of the middle gear drives the front gear and the rear gear to rotate synchronously.
[0023] After adopting the above technical solution, the fuse melt is automatically paid out by the wire pay-off mechanism, flattened by the flattening mechanism, and then collected by the wire winding mechanism, so that the continuous processing and production of the fuse melt can be effectively realized, and the production efficiency is greatly improved; moreover, the distance between the first pressing wheel and the second pressing wheel is adjustable, and fuse melts of different specifications can be flattened and processed. Specifically, the vertical distance between the first pressing wheel and the second pressing wheel can be finely adjusted on the basis of keeping the first gear and the second gear always meshing, so as to control the change of the size of the flattening channel, that is, the flattening degree of the circular fuse melt can be changed, and the flattening operation of fuse melts of different specifications can be realized. Description of the Drawings
[0024] Figure 1 is a perspective view of an embodiment of the present utility model;
[0025] Figure 2 is a partial structure perspective view of an embodiment of the present utility model;
[0026] Figure 3 is a top view of an embodiment of the present utility model;
[0027] Figure 4 is Figure 3 a sectional view taken along line A-A of;
[0028] Figure 5 is Figure 4 an enlarged view at C of;
[0029] Figure 6 is Figure 3 a sectional view taken along line B-B of;
[0030] Figure 7 For Figure 6 the enlarged view at position D.
[0031] Label description: continuous flattening device 10, fuse melt 20, machine platform 30;
[0032] Wire feeding mechanism 1, wire feeding wheel 11, wire feeding motor 12;
[0033] Guiding mechanism 2, fixing plate 21, guiding pulley 22, material sensor 23;
[0034] Flattening mechanism 3, first pressing wheel 31, first gear 311, first sprocket 312, first driving wheel 313, second pressing wheel 32, second gear 321, flattening channel 33, adjusting assembly 34, adjusting seat 341, adjusting spring 342, adjusting pressing plate 343, adjusting rod 344, partition plate 345, rotating space 346, groove 347, rotating shaft 35, bearing 36, adjusting rotating wheel 37, synchronous adjusting gear set 38, front gear 381, middle gear 382, rear gear 383;
[0035] Wire winding mechanism 5, wire arranging device 51, wire winding wheel 52, second driving wheel 53, third driving wheel 54, fourth driving wheel 55,
[0036] Cleaning mechanism 6, cleaning cylinder 61, opening 611, notch 612, sponge 62;
[0037] Guide plate 7, guide hole 71;
[0038] Guide roller 8;
[0039] Power mechanism 9, second sprocket 91. Specific embodiments
[0040] To make the objectives, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are some, but not all, of the embodiments of the present application. Usually, the components of the embodiments of the present application described and illustrated herein can be arranged and designed in various different configurations.
[0041] As Figures 1 to 7 shown, a continuous flattening device 10 for a fuse melt in this embodiment includes a wire feeding mechanism 1, a guiding mechanism 2, a flattening mechanism 3, and a wire winding mechanism 5 that are sequentially arranged at intervals.
[0042] In this embodiment, the wire feeding mechanism 1, the guiding mechanism 2, the flattening mechanism 3, and the wire winding mechanism 5 are installed on the machine platform 30 from right to left in sequence, but not limited thereto.
[0043] The wire feeding mechanism 1 is used to output the fuse melt 20, and the guiding mechanism 2 is connected between the wire feeding mechanism 1 and the flattening mechanism 3, and is used to guide the fuse melt 20 output by the wire feeding mechanism 1 into the flattening mechanism 3.
[0044] The flattening mechanism 3 includes a first pressing wheel 31 and a second pressing wheel 32 that rotate in opposite directions. The second pressing wheel 32 and the first pressing wheel 31 are stacked in an adjustable vertical distance, and a first gear 311 and a second gear 321 that mesh with each other are respectively arranged on the first pressing wheel 31 and the second pressing wheel 32; a flattening channel 33 for the fuse melt 20 to pass through is formed between the second pressing wheel 32 and the first pressing wheel 31; thus, the first pressing wheel 31 and the second pressing wheel 32 can rotate in opposite directions through the interaction of the first gear 311 and the second gear 321 to squeeze the circular fuse melt 20 in the flattening channel 33 into a flat fuse melt 20, and can drive the fuse melt 20 to move at the same time. Moreover, the vertical distance between the first pressing wheel 31 and the second pressing wheel 32 can be finely adjusted on the basis of keeping the first gear 311 and the second gear 321 always meshing, so as to control the size of the flattening channel 33 to change, that is, the flattening degree of the circular fuse melt 20 can be changed, and the flattening operation of fuse melts 20 of different specifications can be realized.
[0045] The wire winding mechanism 5 is used to collect the fuse melt 20 flattened and output by the flattening mechanism 3 to realize continuous production.
[0046] Therefore, by automatically feeding the wire by the wire feeding mechanism 1 to output the fuse melt 20, flattening the fuse melt 20 by the flattening mechanism 3, and then collecting the fuse melt 20 by the wire winding mechanism 5, the continuous flattening processing and production of the fuse melt 20 can be effectively realized, and the production efficiency can be greatly improved; moreover, the distance between the first pressing wheel 31 and the second pressing wheel 32 is adjustable, and fuse melts 20 of different specifications can be flattened and processed.
[0047] Specifically, as Figure 1 and Figure 2 shown, the wire feeding mechanism 1 includes a wire feeding wheel 11, and the wire feeding wheel 11 rotates to output the fuse melt 20; a wire feeding motor 12 can be arranged at the rear side of the wire feeding wheel 11, and the wire feeding wheel 11 is driven to rotate by the wire feeding motor 12. Of course, other methods can also be used to drive the wire feeding wheel 11 to rotate.
[0048] The wire winding mechanism 5 includes a wire arranging device 51 and a wire winding wheel 52, as Figure 3The wire arranging device 51 is connected between the flattening mechanism 3 and the wire reel 52, and is used to guide the flattened fuse 20 to the wire reel 52 for reeling. The wire arranging device 51 can adopt the existing technology, and its function is to guide the fuse 20 output by the flattening mechanism 3 so that it can be reeled along the axial direction on the wire reel 52, ensuring that the fuse 20 on the wire reel 52 will not be entangled when reeling.
[0049] See also Figure 1 , Figure 4 and Figure 5 A cleaning mechanism 6 is also provided between the guide mechanism 2 and the flattening mechanism 3; the cleaning mechanism 6 includes a cleaning cylinder 61 and a sponge 62. The cleaning cylinder 61 has an opening 611 at the top, and the sponge 62 is filled into the cleaning cylinder 61 from the opening 611, and the sponge 62 is soaked with cleaning liquid; the edge of the opening 611 of the cleaning cylinder 61 is concave with two symmetrically arranged notches 612, and the fuse melt 20 passes through the cleaning cylinder 61 from the notches 612 and is closely attached to the sponge 62. Therefore, before entering the flattening mechanism 3, the fuse melt 20 can be cleaned by passing through the cleaning cylinder 61 and closely attached to the sponge 62 in advance, and the cleaning liquid in the sponge 62 can be a cleaning liquid such as alcohol, which is used to clean the impurities that may exist on the fuse melt 20, so as to ensure the cleanliness of the fuse melt 20 after being flattened.
[0050] In this embodiment, a guide plate 7 may be vertically arranged between the flattening mechanism 3 and the guide mechanism 2, and the guide plate 7 may be arranged between the cleaning mechanism 6 and the flattening mechanism 3. The guide plate 7 has a guide hole 71 facing the flattening channel 33, and the guide hole 71 is for the fuse melt 20 to pass through; so that the fuse melt 20 can pass through the flattening channel 33 in an aligned manner to ensure the flattening effect, and the guide hole 71 can also block and remove other impurities that may be attached to the fuse melt 20.
[0051] See Figure 2 and Figure 3 Two rotatable and mutually spaced guide rollers 8 are vertically arranged between the flattening mechanism 3 and the wire taking-up mechanism 5, and the fuse melt 20 passes between the two guide rollers 8. The guide rollers 8 are arranged to limit the fuse melt 20 in the flattening channel 33 of the flattening mechanism 3, so as to prevent the fuse melt 20 in the flattening channel 33 from moving together and leaving the flattening channel 33 when the wire arranging device 51 drives the fuse melt 20 to move forward and backward, thereby preventing the flattening effect from being affected.
[0052] For example Figure 4 and Figure 5The guide mechanism 2 includes a fixed plate 21 and a plurality of guide pulleys 22. In this embodiment, three guide pulleys 22 are arranged at intervals from left to right and at different heights. The guide pulleys 22 are rotatably mounted on the fixed plate 217 at intervals from each other. The guide pulleys 22 can also be arranged to tension the fuse 20 released by the pay-off wheel 11 to allow the fuse 20 to smoothly enter the flattening mechanism 3.
[0053] In addition, the guide mechanism 2 may further include a material sensor 23, which may be disposed between the two right guide pulleys 22 to detect whether a fuse 20 passes through. When the pay-off wheel 11 completely outputs the fuse 20 and the guide pulley 22 completely outputs the fuse 20, if the material sensor 23 cannot detect the fuse 20, an alarm will be sounded to notify the production personnel to replenish the material on the pay-off wheel 11 to ensure continuous production.
[0054] For example Figure 1 and Figure 2 As shown, the continuous flattening device 10 also includes a power mechanism 9.
[0055] The power mechanism 9 drives the first pressure wheel 31 to rotate; specifically, a first sprocket 312 can be set on the front end of the first pressure wheel 31, and a second sprocket 91 can be set on the power output end of the power mechanism 9, and the first sprocket 312 and the second sprocket 91 are connected by a transmission chain (omitted in the figure).
[0056] The first pressing wheel 31 and the second pressing wheel 32 are meshed with each other through the first gear 311 and the second gear 321, so that the rotation of the first pressing wheel 31 can drive the second pressing wheel 32 to rotate in the opposite direction, thereby achieving the flattening operation of the fuse element 20.
[0057] In this embodiment, a first driving wheel 313 is further provided at the rear end of the first pressing wheel 31 .
[0058] The wire taking-up mechanism 5 further includes a second driving wheel 53 and a third driving wheel 54 ; the wire taking-up wheel 52 , the second driving wheel 53 and the third driving wheel 54 are coaxially arranged, and the wire arranging device 51 includes a fourth driving wheel 55 .
[0059] The first driving wheel 313 and the second driving wheel 53 can be connected by a belt (omitted in the figure), and the third driving wheel 54 and the fourth driving wheel 55 can also be connected by a belt (omitted in the figure); therefore, when the first pressing wheel 31 is driven to rotate by the power mechanism 9, the first pressing wheel 31 rotates to drive the second driving wheel 53, and the second driving wheel 53 rotates to drive the take-up wheel 52 and the third driving wheel 54; the third driving wheel 54 rotates to drive the fourth driving wheel 55 to rotate, and drives the wire arrangement device 51 to operate. In this way, the synchronous operation of flattening and taking up can be achieved, and the synchronization rate of the device can be improved.
[0060] In order to facilitate the adjustment of the second pressing wheel 32 and the first pressing wheel 31, the flattening mechanism 3 of this embodiment further includes an adjusting assembly 34.
[0061] Refer to Figure 6 and Figure 7 , the adjusting assembly 34 includes an adjusting seat 341, an adjusting spring 342, an adjusting pressing plate 343 and an adjusting rod 344.
[0062] The adjusting seat 341 includes partition plates 345 spaced front and rear. There is a rotating space 346 between the partition plates 345, and grooves 347 are provided on the partition plates 345; the second pressing wheel 32 and the first pressing wheel 31 are arranged vertically in the rotating space 346; the rotating shafts 35 at both ends of the second pressing wheel 32 and the first pressing wheel 31 are respectively penetrated with bearings 36, and the bearings 36 of the second pressing wheel 32 and the first pressing wheel 31 are stacked vertically in the grooves 347. At the same time, the adjusting spring 342 is arranged between the bearings 36 of the second pressing wheel 32 and the first pressing wheel 31; and the adjusting pressing plate 343 is arranged above the adjusting seat 341. There are two adjusting rods 344, which are respectively rotatably and liftably installed on the adjusting pressing plate 343 and respectively extend into the grooves 347 to limit the bearing 36 of the second pressing wheel 32.
[0063] Thus, the second pressing wheel 32 and the first pressing wheel 31 can move up and down in the rotating space 346 along the two grooves 347. And the adjusting spring 342 provides an elastic force to make the second pressing wheel 32 and the first pressing wheel 31 tend to separate from each other, while the adjusting rod 344 presses the second pressing wheel 32 to make it close to the first pressing wheel 31. Therefore, the rotation and lifting of the adjusting rod 344 in cooperation with the adjusting spring 342 can realize the adjustment of the distance between the second pressing wheel 32 and the first pressing wheel 31.
[0064] In order to facilitate the synchronous lifting of the two adjusting rods 344 and ensure the balance of the front and rear ends of the second pressing wheel 32 and the first pressing wheel 31, an adjusting rotating wheel 37 and a synchronous adjusting gear set 38 are provided on the adjusting pressing plate 343.
[0065] Specifically, as Figure 1 and Figure 3 , the synchronous adjusting gear set 38 includes a front gear 381, a middle gear 382 and a rear gear 383 that are meshed with each other in sequence front and rear. The axles of the front gear 381 and the rear gear 383 are respectively penetrated by the adjusting rods 344. The adjusting rotating wheel 37 is connected to the middle gear 382 for driving the middle gear 382 to rotate, and the rotation of the middle gear 382 drives the front gear 381 and the rear gear 383 to rotate synchronously.
[0066] Thus, by rotating the adjustment wheel 37, the middle gear 382 can be driven to rotate. The rotation of the middle gear 382 synchronously drives the front gear 381 and the rear gear 383 to rotate, so as to drive the two adjustment rods 344 to rise or fall synchronously, and thus cooperate with the adjustment spring 342 to adjust the rise or fall of the second pressing wheel 32, realizing the adjustment of the flattening channel 33. This meets the requirements of producing and processing fuse melts 20 of different specifications.
[0067] The above description is only the preferred embodiment of the present invention. The protection scope of the present invention is not limited to the above embodiments. All technical solutions falling within the idea of the present invention belong to the protection scope of the present invention. It should be pointed out that for those of ordinary skill in the art, any equivalent changes and modifications made without departing from the principle of the present invention should still fall within the protection scope of the present invention.
[0068] In the description of the embodiments of the present application, it should be understood that the indicated orientation or positional relationship is based on the orientation or positional relationship shown in the drawings, or the orientation or positional relationship in which the product of this application is usually placed during use, or the orientation or positional relationship commonly understood by those skilled in the art. It is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present application. In the description of the present application, the meanings of "a plurality of" and "several" are two or more, unless otherwise specifically defined.
Claims
1. A continuous flattening device for fuse melt, characterized in that: It includes a wire-releasing mechanism, a guiding mechanism, a flattening mechanism and a wire-receiving mechanism which are arranged in sequence and at intervals; The wire-releasing mechanism is used to output the fuse melt, and the guide mechanism is connected between the wire-releasing mechanism and the flattening mechanism to guide the fuse melt output by the wire-releasing mechanism into the flattening mechanism; The flattening mechanism comprises a first pressing wheel and a second pressing wheel rotating in opposite directions, the first pressing wheel and the second pressing wheel are stacked with an adjustable upper and lower spacing, and the first pressing wheel and the second pressing wheel are respectively provided with a first gear and a second gear meshing with each other; a flattening channel for the fuse to pass through is formed between the first pressing wheel and the second pressing wheel; The wire taking-up mechanism is used for collecting the fuse melt output by the flattening mechanism.
2. A continuous flattening device for fuse melt according to claim 1, characterized in that: The wire-releasing mechanism comprises a wire-releasing wheel, which rotates to output the fuse melt; the wire-receiving mechanism comprises a wire-arranging device and a wire-receiving wheel, and the wire-arranging device is connected between the flattening mechanism and the wire-receiving wheel to guide the flattened fuse melt to the wire-receiving wheel for winding.
3. The continuous flattening device for fuse according to claim 1, characterized in that: A cleaning mechanism is also provided between the guide mechanism and the flattening mechanism; the cleaning mechanism comprises a cleaning cylinder and a sponge, the top of the cleaning cylinder is open, the sponge is filled into the interior of the cleaning cylinder from the opening, and the sponge is soaked in cleaning liquid; two symmetrically arranged notches are concavely provided on the opening edge of the cleaning cylinder, and the fuse melt passes through the cleaning cylinder from the notches and adheres closely to the sponge.
4. A continuous flattening device for fuse melt according to claim 1, characterized in that: A guide plate is provided between the flattening mechanism and the guide mechanism, wherein a guide hole is provided in the guide plate and faces the flattening channel, and the guide hole is used for the fuse to pass through; two rotatable guide rollers spaced apart from each other are provided between the flattening mechanism and the wire taking-up mechanism, and the fuse is used to pass through between the two guide rollers.
5. The continuous flattening device for fuse according to claim 1, characterized in that: The guide mechanism comprises a fixed plate and a plurality of guide pulleys; the guide pulleys are spaced from each other and rotatably installed on the fixed plate.
6. A continuous flattening device for fuse melt according to claim 5, characterized in that: The guide mechanism also includes a material sensor, which is arranged between the two guide pulleys and is used to detect whether a fuse melt passes through.
7. The continuous flattening device for fuse according to claim 1, characterized in that: It also includes a power mechanism; the power mechanism drives the first pressing wheel to rotate; the rotation of the first pressing wheel drives the second pressing wheel to rotate in the opposite direction.
8. The continuous flattening device for fuse according to claim 7, characterized in that: The first pressure wheel is also provided with a first driving wheel; the wire-taking mechanism comprises a wire arrangement device, a wire-taking wheel, a second driving wheel and a third driving wheel; the wire arrangement device is connected between the flattening mechanism and the wire-taking wheel, and is used to guide the flattened fuse to the wire-taking wheel for winding; the wire-taking wheel, the second driving wheel and the third driving wheel are coaxially arranged, and the wire arrangement device comprises a fourth driving wheel; the first driving wheel and the second driving wheel are connected by a belt drive, and the third driving wheel and the fourth driving wheel are also connected by a belt drive; the rotation of the first pressure wheel drives the second driving wheel to rotate, and the rotation of the second driving wheel drives the wire-taking wheel and the third driving wheel to rotate; the rotation of the third driving wheel drives the fourth driving wheel to rotate, thereby driving the wire arrangement device to operate.
9. A continuous flattening device for fuse melt according to claim 1, characterized in that: The flattening mechanism also includes an adjustment component; The adjustment assembly includes an adjustment seat, an adjustment spring, an adjustment pressure plate and an adjustment rod; The adjustment seat includes a partition plate spaced front and back, a rotation space is provided between the partition plates, and a groove is provided on the partition plate; the second pressing wheel and the first pressing wheel are arranged in the rotation space in an upper and lower distribution; the rotating shafts at both ends of the first pressing wheel and the second pressing wheel are respectively penetrated with bearings, and the bearings of the second pressing wheel and the first pressing wheel are stacked up and down in the groove, and the adjustment spring is arranged between the bearings of the second pressing wheel and the first pressing wheel; The adjusting pressure plate is arranged above the adjusting seat, and there are two adjusting rods which are respectively rotatably and liftably mounted on the adjusting pressure plate and extend into the grooves to limit the bearing of the second pressure wheel.
10. A continuous flattening device for fuse melt according to claim 9, characterized in that: The adjusting plate is provided with an adjusting wheel and a synchronous adjusting gear set; the synchronous adjusting gear set comprises a front gear, a middle gear and a rear gear meshing in sequence, the axes of the front gear and the rear gear are respectively passed through by the adjusting rod, the adjusting wheel is connected to the middle gear to drive the middle gear to rotate, and the rotation of the middle gear drives the front gear and the rear gear to rotate synchronously.
Citation Information
Patent Citations
Fuse flattening and feeding mechanism
CN214516737U