High-adaptability resistor K forming machine
By designing a highly adaptable resistor forming machine, the total length and bending length of the resistor can be adjusted, solving the problem that existing equipment cannot adapt to resistors of different specifications, reducing processing costs, and improving the adaptability and practicality of the equipment.
Patent Information
- Application Number
- CN202422853463.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-22
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-11-22
AI Technical Summary
Existing resistor forming machines cannot be adapted to different specifications of tape and reel resistors, resulting in increased processing costs.
A highly adaptable resistor forming machine was designed. Through the integrated feeding mechanism, bending and cutting mechanism and forming mechanism, the total length and bending length of the resistor can be adjusted. With the cooperation of horizontal and vertical drive components, it can adapt to the processing and forming of resistors of different specifications.
It enables coordinated adjustment of resistor feeding, lead cutting, bending, and K-forming, adapting to the processing and forming of resistors of different specifications, reducing processing costs, and improving the adaptability and practicality of the equipment.
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Figure CN223506107U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of resistor processing and forming equipment, and in particular to a highly adaptable resistor forming machine. Background Technology
[0002] A resistor forming machine is a specialized piece of equipment used to manufacture resistors. Its main function is to process resistive materials into resistors with specific resistance values and dimensions.
[0003] The existing patent "A horizontal resistor bending and K-forming feeder (application number: 202022979197.1)" discloses that: it includes a main body, a feeding mechanism, a bending and cutting mechanism and a K-forming mechanism. The feeding mechanism is installed at the front end of the main body. The feeding mechanism drives the paper tape resistor to move forward and enter the bending and cutting mechanism and the K-forming mechanism. The bending and cutting mechanism bends and cuts the resistor leads. The K-forming mechanism processes the resistor leads to form K-grooves.
[0004] However, while the above structure can integrate feeding, bending and cutting, and K-forming functions to achieve rapid resistor forming, it also has the limitation that the feeding mechanism, bending and cutting mechanism, and K-forming mechanism cannot be adjusted. It can only process one type of tape and reel resistor. Therefore, the above patent cannot be adapted to different specifications of tape and reel resistors, which increases the processing cost. Utility Model Content
[0005] The purpose of this invention is to provide a highly adaptable resistor taping forming machine, which addresses the shortcomings of the existing technology and aims to solve the technical problem that the existing resistor taping forming machine cannot be adapted to different specifications of tape and reel resistors.
[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0007] A highly adaptable resistance forming machine includes an integrated feeding mechanism, bending and cutting mechanism and forming mechanism;
[0008] The feeding mechanism includes a base plate, two sliding plates slidably connected to the base plate, and side plates fixedly connected to the sliding plates;
[0009] The bending and cutting mechanism includes a lifting unit, an adjusting rod fixedly connected to the lifting unit, and a cutting block and a bending block arranged on the adjusting rod and parallel to each other;
[0010] The forming mechanism includes a vertical drive component, a horizontal drive component that cooperates with and is connected to the vertical drive component, and a forming block that is connected to the horizontal drive component;
[0011] The cutting block and bending block are perpendicular to the forming block, which is used to create K-grooves on the resistor.
[0012] The present invention is further configured such that: the feeding mechanism includes a pressure plate and a pressure sheet that is engaged with the pressure plate; the side plate is provided with a protrusion, and a material passage is formed between the pressure plate and the protrusion.
[0013] The present invention is further configured such that: the feeding mechanism includes a sliding member disposed on the side plate, a pushing block disposed at both ends of the sliding member, and an elastic member and a pushing piece disposed in cooperation with the pushing block, wherein both ends of the elastic member abut against the pushing piece and the side plate respectively.
[0014] The present invention is further configured such that: the bending and cutting mechanism also includes a positioning seat, the positioning seat is provided with a first groove, and the cutting block is accommodated in the first groove so that the cutting block extends and retracts along the first groove.
[0015] The present invention is further configured such that: the cutting block is provided with a first cutting blade, and a second cutting blade is provided below the positioning seat; the first cutting blade and the second cutting blade are perpendicular to each other; there is a gap between the positioning seat and the second cutting blade; and the two ends of the resistor are accommodated in the gap.
[0016] The present invention is further configured such that: the bending and cutting mechanism also includes a bending seat, the bending seat is provided with a second groove, and the bending block is inserted into the second groove so that the bending block can extend and retract along the second groove.
[0017] The present invention is further configured such that: a pressure block is provided on the side of the bending seat, and a bearing seat is provided below the pressure block, and the resistor is placed between the pressure block and the bearing seat.
[0018] The present invention is further configured such that: the molding mechanism includes a base and a molding seat disposed above the base, the molding seat is provided with a third groove, and the molding block is accommodated in the third groove.
[0019] The present invention is further configured such that: a discharge plate is provided on one side of the forming base, the discharge plate is provided with a fourth groove, a feeding groove is installed in the fourth groove, a feeding port is provided directly below the two discharge plates, and a receiving cabinet is provided in the feeding port.
[0020] The present invention is further configured such that: a fixed seat is provided on one side of the base, the fixed seat is connected to the horizontal driving component and the vertical driving component, the fixed seat is provided with a through hole, and the forming block passes through the through hole.
[0021] Compared with the prior art, the beneficial effects of this application are:
[0022] The resistor of this invention is housed between two side plates. By adjusting the positions of two sliding plates on the base plate, the distance between the two side plates can be adjusted. When the resistor enters the bending and cutting mechanism, the lifting unit can drive the adjusting rod to rise and fall, thereby driving the cutting block and bending block to cut and bend the resistor. By adjusting the different positions of the cutting block and bending block on the adjusting rod, the total length of the resistor and the bending length can be adjusted. Finally, the forming block is driven by the horizontal driving component to punch a K-groove into the resistor, and the vertical driving component can drive the horizontal driving component to move in the vertical direction, thereby adjusting the position of the K-groove. This invention can coordinate and adjust feeding, cutting, bending, and K-groove punching to adapt to the processing and forming of resistors of different specifications, reduce processing costs, meet different production needs, and improve the adaptability and practicality of the equipment. Attached Figure Description
[0023] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0024] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0025] Figure 2 This is an exploded structural diagram of the present invention;
[0026] Figure 3 This is an exploded view of the feeding mechanism in this utility model;
[0027] Figure 4 This is an exploded view of the bending and cutting mechanism and the forming mechanism in this utility model.
[0028] The details of the reference numerals used in the above figures are as follows:
[0029] 1-Machine;
[0030] 2-Feeding mechanism, 21-Base plate, 22-Slide plate, 23-Side plate, 231-Protrusion, 24-Pressure plate, 25-Pressure sheet, 26-Sliding part, 27-Push block, 28-Elastic part, 29-Push sheet;
[0031] 3-Bending and cutting mechanism, 31-Lifting unit, 32-Adjusting rod, 33-Cut block, 331-First cutter, 34-Bending block, 35-Positioning seat, 351-First groove, 36-Second cutter, 37-Bending seat, 371-Second groove, 38-Pressure block, 39-Bearing seat;
[0032] 4-Forming mechanism, 41-Horizontal drive component, 42-Vertical drive component, 43-Forming block, 44-Base, 45-Forming seat, 451-Third groove, 46-Discharge plate, 461-Fourth groove, 47-Discharge trough, 48-Discharge port, 49-Receiving cabinet, 50-Fixed seat, 501-Through hole. Detailed Implementation
[0033] In the description of this application, the term "multiple" refers to two or more (including two). Technical terms such as "first," "second," etc., are used only to distinguish different objects and should not be construed as indicating or implying relative importance or implicitly specifying the number, specific order, or primary / secondary relationship of the indicated technical features. Terms such as "installation," "connection," and "linking" should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; "linking" can be a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.
[0034] In the description of this application, the technical terms "upper", "lower", "front", "rear", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing the embodiments of this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the embodiments of this application.
[0035] In order to better understand the above-mentioned objectives, technical solutions and advantages of this application, the technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings, so as to understand in detail how to solve the problems raised in the background art.
[0036] like Figures 1 to 4 As shown, a highly adaptable resistor K-groove forming machine includes an integrated feeding mechanism 2, bending and cutting mechanism 3, and forming mechanism 4. The feeding mechanism 2 includes a base plate 21, two sliding plates 22 slidably connected to the base plate 21, and a side plate 23 fixedly connected to the sliding plates 22. The bending and cutting mechanism 3 includes a lifting unit 31, an adjusting rod 32 fixedly connected to the lifting unit 31, and a cutting block 33 and a bending block 34 arranged on the adjusting rod 32 and parallel to each other. The forming mechanism 4 includes a horizontal drive member 41, a vertical drive member 42 connected to the horizontal drive member 41, and a forming block 43 connected to the vertical drive member 42. The cutting block 33 and the bending block 34 are both perpendicular to the forming block 43, and the forming block 43 is used to punch K-grooves into the resistor.
[0037] Specifically, including but not limited to, the resistor in this embodiment is a tape-and-reel resistor. The feeding mechanism 2, bending and cutting mechanism 3, and forming mechanism 4 are all mounted on the machine base 1. Thus, the feeding mechanism 2 can feed material from one side of the machine base 1 to the other side. The base plate 21 is a rectangular plate with a track on the top surface. The bottom surface of the slide plate 22 is provided with protrusions. The track and the protrusions correspond to each other and can be fixed with screws to facilitate the disassembly and assembly of the slide plate 22. Side plates 23 are installed on both symmetrical sides of the slide plate 22, thereby forming a feeding channel, which can realize the overall adjustment of the feeding mechanism 2.
[0038] Specifically, including but not limited to, the bending block 34 and the cutting block 33 are arranged in a stepped manner, and the bending block 34 and the cutting block 33 are respectively located on the inner and outer sides of the adjusting block. There are two cutting blocks 33 and two bending blocks 34, which are symmetrical to each other. The lifting unit 31 is equipped with a cylinder and multiple fixing blocks. The multiple fixing blocks can fix the lifting unit 31 to the machine base 1. The adjusting rod 32 is installed on the fixing block of the mountain-shaped structure. The fixing block is connected to the telescopic rod of the cylinder. When the resistor enters below the bending and cutting mechanism 3 through the feeding mechanism 2, the lifting unit 31 starts and drives the adjusting rod 32 to continuously descend, thereby driving the cutting block 33 to cut first and then bend. The adjusting rod 32 is also equipped with a scale, which is conducive to the precise adjustment of the cutting block 33 and the bending block 34. The bending block 34 and the cutting block 33 are rectangular blocks. Their positioning and installation can be fixed to the fixing block of the mountain-shaped structure by snapping with the adjusting rod 32 or by setting a block on the top.
[0039] Specifically, including but not limited to, both the horizontal drive component 41 and the vertical drive component 42 can be cylinders, connected in sequence. The front end of the forming block 43 has a K-shaped protrusion. Correspondingly, a forming base 44 can be provided on one side of the forming seat 45. The forming base 44 has a groove, which corresponds to the protrusion. Based on this, after the vertical drive component 42 drives the horizontal drive component 41 to adjust up and down, the horizontal drive component 41 drives the forming block 43 to punch a K-groove into the resistor, thereby completing the processing of the resistor K-groove. It is worth noting that the forming block 43 and the horizontal drive component 41 can be set as detachable structures, and the corresponding forming base 44 can also be disassembled and installed by screws. This allows the forming block 43 and the forming base 44 to be replaced when dealing with different forming requirements of resistors, further improving the adaptability and practicality of the equipment.
[0040] The above solution allows for the coordinated adjustment of feeding, cutting, bending, and forming, enabling the equipment to adapt to the processing and forming of resistors of different specifications, reducing processing costs, meeting different production needs, and improving the adaptability and practicality of the equipment.
[0041] like Figure 1 and Figure 3As shown, in one specific embodiment of the improvement, the feeding mechanism 2 also includes a pressure plate 24 and a pressure piece 25 that is engaged with the pressure plate 24. The side plate 23 is provided with a protrusion 231, and a material passage is formed between the pressure plate 24 and the protrusion 231.
[0042] Specifically, including but not limited to, the top of the side plate 23 is provided with an arc-shaped groove, and the corresponding hole is provided in the pressure plate 24. The two can be connected by screws. At the same time, the pressure plate 25 has a U-shaped structure, with one side fixedly connected to the pressure plate 24 and the other side protruding and contacting the resistor, thereby limiting the resistor. The structure of the protrusion 231 corresponds to the tape of the resistor, so that the tape can be placed on the plane of the protrusion 231. Based on this, there is a gap between the pressure plate 24 and the protrusion 231 of the side plate 23. This gap can accommodate the resistor tape, thereby forming a material passage, and a feeding channel is formed between the two side plates 23. Of course, when dealing with different resistor specifications, the height of the material passage can be adjusted by changing the installation height of the pressure plate 24. This can be quickly achieved by loosening and tightening the screws.
[0043] like Figure 1 and Figure 3 As shown, in one specific embodiment of the improvement, the feeding mechanism 2 further includes a sliding member 26 disposed on the side plate 23, a push block 27 disposed at both ends of the sliding member 26, and an elastic member 28 and a pusher plate 29 disposed in cooperation with the push block 27. The two ends of the elastic member 28 abut against the pusher plate 29 and the side plate 23, respectively.
[0044] Specifically, including but not limited to, the sliding element 26 is a structure of a slider and a slide rail. The slide rail is located inside the side plate 23. The slider has extension rods on both sides. The push block 27 is mounted on the extension rods. The extension rods also have multiple holes. The push block 27 has elongated holes, which allows for adjustment of the installation position of the push block 27, thereby changing the resistance length between two push blocks 27. The side of the push block 27 has mounting holes. The elastic element 28 is a spring. The center of the spring, one end of the pusher piece 29, and the mounting holes correspond to each other. At this time, the three can be connected by screws. 28 and pusher plate 29 can rotate relative to the screw. One end of elastic member 28 is connected to the front end of pusher plate 29, and the other end of elastic member 28 is inserted into the hole on side plate 23. Sliding member 26 is also connected to push block and cylinder transmission structure, so that sliding member 26 can move back and forth. Based on this, when the resistor enters the feed channel, sliding member 26 moves back and forth continuously, thereby driving elastic member 28 to rotate, so that the front end of pusher plate 29 can be raised or lowered, thereby realizing the resistor moving forward along the feed channel. Of course, the front end of feeding mechanism 2 is provided with a deflection track to facilitate the precise entry of resistor.
[0045] like Figure 2 and Figure 4As shown, as an improved specific embodiment, the bending and cutting mechanism 3 also includes a positioning seat 35, which is provided with a first groove 351. The cutting block 33 is accommodated in the first groove 351 so that the cutting block 33 can extend and retract along the first groove 351.
[0046] Specifically, including but not limited to, the positioning seat 35 has an L-shaped structure, with a first groove 351 located on its side and extending vertically. The positioning seat 35 is located above the second cutter 36, and both can be fixed to the top of the forming seat 45 by screws. The first groove 351 corresponds to the cutting block 33, allowing the cutting block 33 to extend and retract vertically through the first groove 351. When the position of the cutting block 33 is adjusted, it can be adjusted by moving the forming seat 45 on the base 44. The positioning seat 35 can accurately position the cutting block 33, ensuring processing accuracy.
[0047] like Figure 2 and Figure 4 As shown, in one specific embodiment of the improvement, the cutting block 33 is provided with a first cutter 331, and a second cutter 36 is provided below the positioning seat 35. The first cutter 331 and the second cutter 36 are perpendicular to each other, and there is a gap between the positioning seat 35 and the second cutter 36. The two ends of the resistor are accommodated in the gap.
[0048] Specifically, including but not limited to, the first cutter 331 is located at the bottom of the cutting blade, and the blade of the first cutter 331 is vertically downward. The second cutter 36 has a rectangular structure, is horizontally arranged, and the blade can be set to be vertically upward. The thickness of the cutting edge at the front end is small, so that there is a gap between the bottom surface of the positioning seat 35 and the front end of the second cutter 36. This gap can be used for the passage of resistors. The blades of the first cutter 331 and the second cutter 36 are opposite each other to form a shearing structure, which can quickly cut the resistor and prevent the resistor from bending or being damaged during the cutting process.
[0049] like Figure 2 and Figure 4 As shown, in one specific embodiment of the improvement, the bending and cutting mechanism 3 also includes a bending seat 37. The bending seat 37 is provided with a second groove 371. The bending block 34 is inserted into the second groove 371 so that the bending block 34 can extend and retract along the second groove 371. A pressure block 38 is provided on the side of the bending seat 37. A bearing seat 39 is provided below the pressure block 38. A resistor is placed between the pressure block 38 and the bearing seat 39.
[0050] Specifically, including but not limited to, the bending seat 37 and the bending block 34 are fitted together, the second groove 371 and the bending block 34 have corresponding structures, allowing the bending block 34 to move up and down within the second groove 371, and the pressure block 38 is installed on the side of the bending seat 37. At this time, the pressure block 38 is positioned further inward on the resistor than the bending block 34, ensuring that the resistor is bent when fixed. The pressure block 38 has a rectangular structure, with a vertically arranged elongated hole in its center. A screw can be passed through this elongated hole and fixed to the bending seat 37. Note that the pressure block 38 is not locked with a screw, and the elongated hole of the pressure block 38 can move up and down according to the screw. The bearing seat 39 is set on the pressure block. Directly below 38, two bearing seats 39 are fixed to the side of the forming seat 45. Based on this, when the lifting unit 31 drives the bending block 34 to move downward, the bending seat 37 and the pressing block 38 also move downward at the same time. First, the pressing block 38 presses down on the resistor, and then the bending seat 37 and the pressing plate 25 form a limit stop. The bending block 34 moves downward along the second groove 371 relative to the bending seat 37, thereby completing the bending of the resistor. The bending angle can be set by the descent distance of the bending block 34. On the one hand, it can stabilize the resistor by pressing it, which is beneficial to the stability of resistor cutting and bending. On the other hand, it can continuously press and fix the resistor until the K groove is punched out. After the processing is completed, the entire block is retracted. At this time, the resistor can be pushed out by the ejector plate.
[0051] like Figure 4 As shown, in one specific embodiment of the improvement, the molding mechanism 4 further includes a base 44 and a molding seat 45 disposed above the base 44. The molding seat 45 is provided with a third groove 451, and the molding block 43 is accommodated in the third groove 451.
[0052] Specifically, including but not limited to, two bases 44 are symmetrically fixed on the surface of the machine base 1, the forming base 45 is a rectangular structure, the third groove 451 is set on the top surface of the forming base 45, the third groove 451 is one of rectangular, trapezoidal or arc shape, and the structure of the forming block 43 corresponds to the third groove 451 to ensure that the forming block 43 can pass through the third groove 451, and the second cutter 36 is covered on the top surface of the forming base 45.
[0053] like Figure 2 and Figure 4 As shown, in one specific embodiment of the improvement, a discharge plate 46 is provided on one side of the molding base 45. The discharge plate 46 is provided with a fourth groove 461. A feeding groove 47 is installed in the fourth groove 461. A feeding port 48 is located directly below the two discharge plates 46. A receiving cabinet 49 is provided in the feeding port 48.
[0054] Specifically, including but not limited to, the discharge plate 46 is fixed to the outer side of the forming seat 45, the fourth groove 461 is a horizontal notch, the gap between the second cutter 36 and the positioning seat 35 corresponds to the fourth groove 461, and a feeding trough 47 is provided at the outlet of the fourth groove 461. The feeding trough 47 is fixed to the side of the discharge plate 46, so that the discharge port of the feeding trough 47 is flush with the fourth groove 461, ensuring that the processed tape flows out for recycling; the feeding port 48 is set on the surface of the machine base 1, and directly below the center between the two discharge plates 46; the receiving cabinet 49 is set on the side of the machine base 1, and the receiving cabinet 49 is a drawer structure. The feeding port 48 and the receiving cabinet 49 are connected, so that the processed resistors can be collected for unified transportation and use.
[0055] like Figure 2 and Figure 4 As shown, in one specific embodiment of the improvement, a fixed seat 50 is provided on one side of the base 44. The fixed seat 50 is slidably connected to the vertical drive member 42. The fixed seat 50 is provided with a through hole 501, through which the molding block 43 passes.
[0056] Specifically, including but not limited to, the fixed base 50 can be an L-shaped structure composed of two horizontal and vertical fixed blocks connected together. Both fixed blocks have through holes 501, which are used for the telescopic rods of the horizontal drive member 41 and the vertical drive member 42 to pass through. At this time, the fixed base 50 and the base 44 are fixedly installed together. The vertical drive member 42 is set above the horizontal fixed block. The telescopic rod of the vertical drive member 42 is fixedly connected to the horizontal drive member 41, so that it can be adjusted up and down. The telescopic rod of the horizontal drive member 41 passes through the through hole 501 of the vertical fixed block. The diameter of the through hole 501 can correspond to the groove depth of the third groove 451 on the forming base 45, ensuring that the forming block 43 has an adjustment range to meet different needs.
[0057] Working principle: First, the corresponding resistor is fed, cut, bent, and grouted as a whole. Then, after the feeding mechanism 2 drives the resistor to the designated position, the lifting unit 31 drives the adjusting rod 32 to descend, thereby driving the cutting block 33 and bending block 34 to descend simultaneously. The pressing block 38 and the bearing seat 39 cooperate to fix the resistor. The first cutter 331 and the second cutter 36 cooperate to cut the resistor. Then, the bending block 34 bends the resistor. Finally, the transverse driving component 41 drives the forming block 43 and the forming seat 45 to cooperate to groove the resistor, forming an integrated processing structure. Cutting, bending, and grooving are completed in one step, and the length of the resistor's lead is also guaranteed.
[0058] Finally, it should be noted that the above description is only a preferred embodiment of this utility model, and the protection scope of this utility model is not limited to the above embodiments. All technical solutions within the scope of this utility model's concept are within the protection scope of this utility model. It should be pointed out that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within the protection scope of this utility model.
Claims
1. A highly adaptable resistance forming machine, characterized in that, It includes an integrated feeding mechanism, bending and cutting mechanism, and forming mechanism; The feeding mechanism includes a base plate, two sliding plates slidably connected to the base plate, and a side plate fixedly connected to the sliding plates; The bending and cutting mechanism includes a lifting unit, an adjusting rod fixedly connected to the lifting unit, and a cutting block and a bending block arranged on the adjusting rod and parallel to each other; The forming mechanism includes a vertical drive component, a horizontal drive component that is connected to the vertical drive component, and a forming block that is connected to the horizontal drive component. The cutting block and the bending block are both perpendicular to the forming block, and the forming block is used to create K-grooves on the resistor.
2. The highly adaptable resistance forming machine according to claim 1, characterized in that, The feeding mechanism further includes a pressure plate and a pressure sheet that engages with the pressure plate. The side plate is provided with a protrusion, and a material passage is formed between the pressure plate and the protrusion.
3. The highly adaptable resistance forming machine according to claim 2, characterized in that, The feeding mechanism further includes a sliding member disposed on the side plate, a pushing block disposed at both ends of the sliding member, and an elastic member and a pushing piece disposed in cooperation with the pushing block, wherein both ends of the elastic member abut against the pushing piece and the side plate respectively.
4. The highly adaptable resistance forming machine according to claim 1, characterized in that, The bending and cutting mechanism also includes a positioning seat, which has a first groove. The cutting block is accommodated in the first groove so that the cutting block can extend and retract along the first groove.
5. The highly adaptable resistance forming machine according to claim 4, characterized in that, The cutting block is provided with a first cutter, and a second cutter is provided below the positioning seat. The first cutter and the second cutter are perpendicular to each other. There is a gap between the positioning seat and the second cutter, and the two ends of the resistor are accommodated in the gap.
6. The highly adaptable resistance forming machine according to claim 5, characterized in that, The bending and cutting mechanism further includes a bending seat, which is provided with a second groove. The bending block is inserted into the second groove so that the bending block can extend and retract along the second groove.
7. A highly adaptable resistance forming machine according to claim 6, characterized in that, A pressure block is provided on the side of the bending seat, and a bearing seat is provided below the pressure block. The resistor is placed between the pressure block and the bearing seat.
8. The highly adaptable resistance forming machine according to claim 1, characterized in that, The molding mechanism further includes a base and a molding seat disposed above the base. The molding seat is provided with a third groove, and the molding block is accommodated in the third groove.
9. A highly adaptable resistance forming machine according to claim 8, characterized in that, A discharge plate is provided on one side of the forming base. The discharge plate is provided with a fourth groove. A feeding trough is installed in the fourth groove. A feeding port is located directly below the two discharge plates. A receiving cabinet is provided in the feeding port.
10. A highly adaptable resistance forming machine according to claim 9, characterized in that, A fixing seat is provided on one side of the base. The fixing seat is connected to the horizontal driving member and the vertical driving member. The fixing seat is provided with a through hole, through which the molding block passes.
Citation Information
Patent Citations
Horizontal resistor bending K forming feeder
CN214556923U