A feeding mechanism for resistance detection
By designing a feeding mechanism for resistance detection, the problem of low resistance detection efficiency in the prior art is solved, and the automation and continuous resistance detection are realized, and the detection efficiency is improved.
Patent Information
- Application Number
- CN202510328041.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-19
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2045-03-19
AI Technical Summary
The existing resistance detection methods are inefficient and require manual or semi-automatic connection of resistors to the detection device one by one. It takes a long time and is difficult to meet the needs of large-scale and high-efficiency production and testing.
A feeding mechanism for resistance detection is designed, including bottom plate, vertical plate, arc groove, top plate, oblique groove, spindle, cam, clamping assembly, etc., and automatic feeding and detection of resistance is realized through an asynchronous transmission mechanism and a synchronous transmission mechanism.
It realizes automation and continuous resistance detection, improves detection efficiency, and can handle multiple resistors simultaneously to meet the needs of large-scale production and inspection.
Smart Images

Figure CN119841016B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of resistance detection and feeding, and particularly relates to a feeding mechanism for resistance detection. Background Art
[0002] A resistor is one of the basic components in a circuit, and the accuracy of its resistance value directly affects the performance and function of the circuit. By detecting the resistor, deviations or faults in the resistance value can be detected in a timely manner, ensuring that the circuit can operate normally according to the design requirements and avoiding problems such as circuit short circuits, open circuits, and signal abnormalities.
[0003] In the current technical field, the commonly used method for resistor detection is to place the resistors to be tested one by one inside a dedicated detection device. During the specific operation process, the two pins of the resistor need to be carefully connected to both ends of the detection device respectively to ensure good and stable electrical contact. Subsequently, relying on the precision circuit and algorithm inside the detection device, the resistance value of the resistor is accurately judged and analyzed to verify whether it meets the predetermined standards or specifications. However, this traditional detection method has an obvious efficiency bottleneck. Since only one resistor can be detected at a time and the resistor needs to be manually or semi-automatically connected to the detection device in sequence, the entire process takes a long time and is cumbersome to operate, resulting in low detection efficiency and being difficult to meet the production and detection requirements of large-scale and high efficiency. Summary of the Invention
[0004] Aiming at the deficiencies of the existing technology, the purpose of the present invention is to provide a feeding mechanism for resistor detection.
[0005] To solve the above technical problems, the present invention is realized through the following technical solutions: A feeding mechanism for resistor detection includes a bottom plate, on which two vertical plates are vertically provided. Above the vertical plates, a plurality of arc grooves for placing resistors are continuously provided. A top plate is slidably provided between the two vertical plates. Above the top plate, a plurality of inclined grooves for lifting the resistors are continuously provided. The number of arc grooves is the same as that of the inclined grooves. A main shaft is rotatably provided on the two vertical plates together. A cam one for driving the top plate to move is provided on the main shaft and located between the two vertical plates. The cam one contacts the bottom of the top plate; Clamping components are provided on the outer sides of the two vertical plates respectively. The clamping component includes a cam two fixed on the main shaft. The cam two is arranged in the opposite direction to the cam one. A flat plate is contacted below the cam two. A sliding rod is connected to the flat plate. The sliding rod is slidably arranged on the corresponding vertical plate. A semi-circular plate is connected to the upper part of the sliding rod. A first spring is sleeved outside the sliding rod. The two ends of the first spring are respectively connected to the semi-circular plate and the vertical plate; The clamping component further includes two conductive clips whose middles are commonly hinged to the side surface of the vertical plate. The two conductive clips are symmetrically and obliquely arranged. The upper ends of the two conductive clips are used for clamping the pins of the resistor. The lower ends of the two conductive clips commonly contact the arc surface of the semi-circular plate. One conductive clip is connected with a wire.
[0006] Furthermore, a loading rack is provided on the bottom plate and at the front side of the vertical plate, the loading rack is rotatably provided with a driven shaft, and a motor is fixedly provided on the loading rack, the rotating shaft of the motor is connected to the driven shaft, an asynchronous transmission mechanism is provided between the driven shaft and the main shaft, the driving wheel of the asynchronous transmission mechanism is fixedly provided on the driven shaft, the driven wheel of the asynchronous transmission mechanism is fixedly provided on the main shaft, and the diameter of the driving wheel of the asynchronous transmission mechanism is four times the diameter of the driven wheel.
[0007] Furthermore, a loading tray is fixedly provided on the loading rack, and the loading tray is located between two vertical plates. Four material ports for clamping resistors are evenly arranged on the cylindrical surface of the loading tray, and a material storage for storing resistors is provided on the bottom plate and on the side of the loading tray.
[0008] Furthermore, an arc guide rod for prying the resistor is provided between the vertical plate and the loading tray, the lower end of the arc guide rod is connected to the upper side of the vertical plate, and the upper end of the arc guide rod is located below the top of the loading tray.
[0009] Furthermore, a secondary shaft is provided on the two vertical plates and close to the tail side of the vertical plates so as to rotate together, a synchronous transmission mechanism is provided between the secondary shaft and the main shaft, a driving wheel and a driven wheel of the synchronous transmission mechanism are respectively installed on the main shaft and the secondary shaft, and the driving wheel and the driven wheel of the synchronous transmission mechanism have the same diameter, and a cam for driving the top plate to move is provided on the secondary shaft and located between the two vertical plates.
[0010] Furthermore, two groups of vertical insertion components are provided above the base plate, and the vertical insertion components include two guide rods vertically arranged above the base plate, and a slide is provided on the two guide rods for sliding together, and two vertical rotating plates are provided on the slide. The lower part of the vertical rotating plate is hinged to the upper end of the connecting rod, and the lower end of the connecting rod is hinged to the convex point of the swing plate.
[0011] Furthermore, the centers of the two swing plates of the first group of vertical insertion components are fixed on the main shaft, and a cutter is provided in the middle of the slide, and a top cutting block is provided on the outer sides of the vertical plates on both sides and below the cutter.
[0012] Furthermore, the centers of the two swing plates of the second group of vertical insertion components are fixed on the secondary shaft, and a bending knife is provided in the middle of the slide, and a bending top block is provided on the outer side of the vertical plates on both sides and below the cutting knife.
[0013] The beneficial effects of the present invention compared with the prior art are:
[0014] (1) During the downward movement of the top plate of the present invention, after the resistor is placed in the next adjacent arc slot, the spring 1 provides elastic force to move the slide bar upward, and the semicircular plate opens the lower ends of the two conductive clips of the clamping assembly, so that the upper ends of the two conductive clips are brought together, that is, the conductive clips of the two clamping assemblies clamp the pins at both ends of the resistor at the same time, the conductive clips and the wires are connected, and the wires are connected to the detection device, which facilitates the detection of the resistor and improves the detection efficiency.
[0015] (2) The present invention provides power through a motor and transmits the power through an asynchronous transmission mechanism. When the main shaft and the cam rotate one full circle, the top plate makes one reciprocating motion. The resistor on the original first arc groove will move to the second arc groove. At the same time, the feeding tray rotates one-quarter of a circle, and a new resistor drops along the arc guide rod into the first arc groove. By repeating the above process, continuous feeding can be achieved.
[0016] (3) The main shaft of the present invention drives the rotation of the center of the first set of swing plates, causing the carriage to make a reciprocating linear motion up and down along the guide rod. When the top plate moves downward, the carriage drives the cutting tool to descend synchronously. The two leads of the resistor on the corresponding arc groove are located on the cutting top block, and the cutting tool coincides with the cutting top block to cut off the excess length of the two leads of the resistor.
[0017] (4) The auxiliary shaft of the present invention drives the rotation of the center of the second set of swing plates, causing the carriage to make a reciprocating linear motion up and down along the guide rod. When the top plate moves downward, the carriage drives the pressing and bending knife to descend synchronously. The two leads of the resistor on the corresponding arc groove are located on the bending top block, and the pressing and bending knife coincides with the bending top block to bend the two leads of the resistor, facilitating the further installation of the resistor. Description of the Drawings
[0018] Figure 1 is a schematic structural diagram of the front side of an embodiment of the present invention.
[0019] Figure 2 is a schematic structural diagram of the back side of an embodiment of the present invention.
[0020] Figure 3 is a schematic structural diagram of the installation of the top plate of the present invention.
[0021] Figure 4 is a schematic structural diagram of the positional relationship between the vertical plate and the top plate of the present invention.
[0022] Figure 5 is a schematic structural diagram of the clamping assembly of the present invention.
[0023] Figure 6 is a schematic structural diagram of the installation of the feeding tray of the present invention.
[0024] Figure 7 is a schematic structural diagram of the vertical insertion assembly of the present invention.
[0025] Figure 8 is Figure 2 a partial enlarged view at position A in
[0026] Figure 9 is Figure 2 a partial enlarged view at position B in
[0027] Attached drawing reference numerals: 1 - bottom plate; 2 - vertical plate; 201 - arc groove; 3 - resistor; 4 - top plate; 401 - inclined groove; 5 - main shaft; 6 - cam one; 7 - cam two; 8 - flat plate; 9 - slide bar; 10 - semi - circular plate; 11 - spring one; 12 - conductive clip; 13 - spring two; 14 - wire; 15 - loading rack; 16 - moving shaft; 17 - motor; 18 - asynchronous transmission mechanism; 19 - loading tray; 1901 - material inlet; 20 - material library; 21 - arc guide rod; 22 - auxiliary shaft; 23 - synchronous transmission mechanism; 24 - guide rod; 25 - carriage; 26 - vertical rotating plate; 27 - connecting rod; 28 - swing plate; 29 - cutting knife; 30 - cutting top block; 31 - pressing and bending knife; 32 - bending top block. Detailed implementation mode
[0028] In order to make the purpose, technical solution and advantages of the present invention clearer, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.
[0029] As Figures 1 to 9 shown, a feeding mechanism for resistor detection includes a bottom plate 1, two vertical plates 2 are vertically arranged on the bottom plate 1, a plurality of arc grooves 201 for placing resistors 3 are continuously arranged above the vertical plates 2, a top plate 4 is slidably arranged between the two vertical plates 2, a plurality of inclined grooves 401 for jacking up the resistors 3 are arranged above the top plate 4, the number of the arc grooves 201 is the same as that of the inclined grooves 401, a main shaft 5 is rotatably arranged on the two vertical plates 2 together, and a cam one 6 for driving the top plate 4 to move is arranged on the main shaft 5 and in the middle of the two vertical plates 2, and the cam one 6 is in contact with the bottom of the top plate 4.
[0030] Specifically, the pins at both ends of the resistor 3 are respectively placed in the arc grooves 201 of the two vertical plates 2. Due to the self - gravity of the top plate 4, the bottom of the top plate 4 is always in contact with the cam one 6. The main shaft 5 drives the cam one 6 to rotate, and the cam one 6 drives the top plate 4 to move up and down between the two vertical plates 2. When the top plate 4 rises, the inclined groove 401 on the top plate 4 jacks the resistor 3 out of the arc groove 201 upward. When the resistor 3 leaves the arc groove 201, the resistor 3 slides along the inclined groove 401 to the upper part of the adjacent next arc groove 201. When the top plate 4 descends, the resistor 3 is placed in the adjacent next arc groove 201, and the inclined groove 401 is separated from the resistor 3. By reciprocally sliding the top plate 4 up and down between the two plates, the resistor 3 can move forward in turn in the vertical plates 2 and the arc grooves 201.
[0031] A clamping assembly is provided on the outer side of the two vertical plates 2, and the clamping assembly includes a cam 2 7 fixed on the main shaft 5, and the cam 2 7 is arranged in the opposite direction to the cam 1 6. The lower part of the cam 2 7 contacts with a flat plate 8, and the upper end of the flat plate 8 is connected to a slide bar 9, and the slide bar 9 is slidably arranged on the corresponding vertical plate 2. The upper part of the slide bar 9 is connected to a semicircular plate 10, and the outer sleeve of the slide bar 9 is provided with a spring 11, and the two ends of the spring 11 are respectively connected to the semicircular plate 10 and the vertical plate 2; the clamping assembly also includes two conductive clips 12 whose middle parts are hinged to the side of the vertical plate 2, and the two conductive clips 12 are symmetrically arranged obliquely. The upper ends of the two conductive clips 12 are used to clamp the pins of the resistor 3, and the lower ends of the two conductive clips 12 are in contact with the arc surface of the semicircular plate 10, and one conductive clip 12 is connected to a wire 14, and the wire 14 is connected to the detection device.
[0032] Specifically, when the top plate 4 moves upward, before the inclined groove 401 contacts the resistor 3, the main shaft 5 drives the cam 2 7 of the clamping assembly to rotate synchronously. At this time, the cam 2 7 drives the flat plate 8 and the slide bar 9 to move downward, the spring 11 is compressed, and the semicircular plate 10 is gradually separated from the lower end of the conductive clip 12. The spring 2 13 provides power to separate the upper ends of the two conductive clips 12 of the clamping assembly, that is, the two conductive clips 12 of the two clamping assemblies release the pins at both ends of the resistor 3 at the same time; when the top plate 4 moves downward, after the resistor 3 is placed in the next adjacent arc groove 201, the spring 11 provides elastic force to move the slide bar 9 upward, and the semicircular plate 10 opens the lower ends of the two conductive clips 12 of the clamping assembly, so that the upper ends of the two conductive clips 12 are brought together, that is, the conductive clips 12 of the two clamping assemblies clamp the pins at both ends of the resistor 3 at the same time, the conductive clips 12 and the wire 14 are connected, and the wire 14 is connected to the detection device, which is convenient for detecting the resistor 3.
[0033] A loading rack 15 is provided on the bottom plate 1 and at the front side of the vertical plate 2. The loading rack 15 is rotatably provided with a driven shaft 16, and a motor 17 is fixedly provided on the loading rack 15. The rotating shaft of the motor 17 is connected to the driven shaft 16. An asynchronous transmission mechanism 18 is provided between the driven shaft 16 and the main shaft 5. The driving wheel of the asynchronous transmission mechanism 18 is fixedly provided on the driven shaft 16, and the driven wheel of the asynchronous transmission mechanism 18 is fixedly provided on the main shaft 5. The diameter of the driving wheel of the asynchronous transmission mechanism 18 is four times the diameter of the driven wheel.
[0034] Specifically, the asynchronous transmission mechanism 18 is composed of a driving wheel, a driven wheel and a transmission belt, and the transmission belt is wound around the driving wheel and the driven wheel. The driving wheel rotates, and the power is transmitted through the transmission belt to drive the driven wheel to rotate, and the speed of the driven wheel is four times that of the driving wheel. The motor 17 drives the driving shaft 16 to rotate, and the power is transmitted through the asynchronous transmission mechanism 18 to drive the main shaft 5 to rotate, and the speed of the main shaft 5 is four times that of the driving shaft 16.
[0035] A loading tray 19 is fixedly provided on the loading rack 15, and the loading tray 19 is located between two vertical plates 2. Four material ports 1901 for clamping the resistors 3 are evenly arranged on the cylindrical surface of the loading tray 19. A material storage 20 for storing the resistors 3 is arranged on the bottom plate 1 and on the side of the loading tray 19.
[0036] An arc guide rod 21 for prying the resistor 3 is arranged between the vertical plate 2 and the loading tray 19. The lower end of the arc guide rod 21 is connected to the upper part of the first side of the vertical plate 2, and the upper end of the arc guide rod 21 is located below the top of the loading tray 19.
[0037] Specifically, the moving shaft 16 drives the loading tray 19 to rotate synchronously. When the loading port 1901 of the loading tray 19 is located in the material storage 20, the resistor 3 in the material storage 20 is squeezed into the material port 1901. When the material port 1901 clamping the resistor 3 moves to the top of the loading tray 19, the resistor 3 is located above the upper end of the arc guide rod 21. As the loading tray 19 continues to rotate, the arc guide rod 21 extrudes the resistor 3 in the material port 1901, and the resistor 3 slides down along the material port 1901 onto the vertical plate 2 and falls into the first arc groove 201 on the vertical plate 2. When the main shaft 5 and the first cam 6 rotate one circle, the top plate 4 makes a reciprocating motion. The resistor 3 on the original first arc groove 201 will move to the second arc groove 201. At the same time, the loading tray 19 rotates one quarter of a circle, and a new resistor 3 falls into the first arc groove 201 along the arc guide rod 21. The feeding is repeated in this way.
[0038] A secondary shaft 22 is rotatably arranged on the two vertical plates 2 and near the tail side of the vertical plates 2. A synchronous transmission mechanism 23 is arranged between the secondary shaft 22 and the main shaft 5. The driving wheel and the driven wheel of the synchronous transmission mechanism 23 are respectively installed on the main shaft 5 and the secondary shaft 22, and the driving wheel and the driven wheel of the synchronous transmission mechanism 23 have the same diameter. A first cam 6 for driving the top plate 4 to move is arranged on the secondary shaft 22 and between the two vertical plates 2.
[0039] Specifically, the synchronous transmission mechanism 23 is composed of a driving wheel, a driven wheel and a transmission belt. The transmission belt is wound around the driving wheel and the driven wheel together, and the driving wheel and the driven wheel have the same diameter. When the driving wheel rotates, power is transmitted through the transmission belt to drive the driven wheel to rotate synchronously. Through the synchronous transmission mechanism 23 to transmit power, the main shaft 5 drives the secondary shaft 22 to rotate synchronously, so the first cams 6 on the main shaft 5 and the secondary shaft 22 rotate synchronously, and thus the reciprocating motion of the top plate 4 is more stable.
[0040] Two groups of vertical insertion assemblies are arranged above the bottom plate 1. The vertical insertion assembly includes two guide rods 24 vertically arranged above the bottom plate 1. A sliding frame 25 is slidably arranged on the two guide rods 24. Two vertical rotating plates 26 are arranged on the sliding frame 25. The lower part of the vertical rotating plate 26 is hinged to the upper end of the connecting rod 27, and the lower end of the connecting rod 27 is hinged to the convex point of the swing plate 28.
[0041] Specifically, the swing plate 28 rotates around the center, transmits power through the connecting rod 27, and enables the carriage 25 to perform reciprocating linear motion up and down along the guide rod 24.
[0042] At the centers of the two swing plates 28 of the first group of vertical insertion components, they are fixedly arranged on the main shaft 5. A cutting knife 29 is provided in the middle of the carriage 25. Below the cutting knife 29 and on the outer sides of the two vertical plates 2, there are cutting top blocks 30, and the cutting top block 30 is located below an arc groove 201.
[0043] Specifically, the main shaft 5 drives the centers of the first group of swing plates 28 to rotate. When the top plate 4 moves upward, the carriage 25 drives the cutting knife 29 to rise synchronously, creating space for the top plate 4 to lift the resistor 3. When the top plate 4 moves downward, the carriage 25 drives the cutting knife 29 to descend synchronously. The two leads of the resistor 3 corresponding to the arc groove 201 are located on the cutting top block 30, and the cutting knife 29 coincides with the cutting top block 30 to cut off the excess lengths of the two leads of the resistor 3.
[0044] At the centers of the two swing plates 28 of the second group of vertical insertion components, they are fixedly arranged on the auxiliary shaft 22. A pressing and bending knife 31 is provided in the middle of the carriage 25. Below the cutting knife 29 and on the outer sides of the two vertical plates 2, there are bending top blocks 32, and the cutting top block 30 is located below another arc groove 201.
[0045] Specifically, the auxiliary shaft 22 drives the centers of the second group of swing plates 28 to rotate. When the top plate 4 moves upward, the carriage 25 drives the pressing and bending knife 31 to rise synchronously, creating space for the top plate 4 to lift the resistor 3. When the top plate 4 moves downward, the carriage 25 drives the pressing and bending knife 31 to descend synchronously. The two leads of the resistor 3 corresponding to the arc groove 201 are located on the bending top block 32, and the pressing and bending knife 31 coincides with the bending top block 32 to bend the two leads of the resistor 3, facilitating the further installation of the resistor 3.
[0046] Working principle: The produced resistor 3 is placed into the material storage 20. The motor 17 is started, and the motor 17 drives the moving shaft 16 to rotate. The moving shaft 16 drives the feeding tray 19 to rotate synchronously. When the feeding port 1901 of the feeding tray 19 is located in the material storage 20, the resistor 3 in the material storage 20 is squeezed into the feeding port 1901. When the feeding port 1901 with the resistor 3 clamped moves to the top of the feeding tray 19, the resistor 3 is located above the upper end of the arc guide rod 21. As the feeding tray 19 continues to rotate, the arc guide rod 21 extrudes the resistor 3 in the feeding port 1901, and the resistor 3 slides down along the feeding port 1901 onto the vertical plate 2 and falls into the first arc groove 201 on the vertical plate 2.
[0047] Power is transmitted through the asynchronous transmission mechanism 18. The moving shaft 16 drives the main shaft 5 to rotate, and the rotational speed of the main shaft 5 is four times that of the moving shaft 16. The main shaft 5 drives the first cam 6 to rotate synchronously, and the first cam 6 drives the top plate 4 to reciprocate. When the top plate 4 rises, the inclined groove 401 on the top plate 4 pushes the resistor 3 out of the arc groove 201 upward. When the resistor 3 leaves the arc groove 201, the resistor 3 slides along the inclined groove 401 to the upper side of the adjacent next arc groove 201. When the top plate 4 descends, the resistor 3 is placed into the adjacent next arc groove 201, and the inclined groove 401 is separated from the resistor 3. By reciprocating up and down between the two plates, the resistor 3 can move forward in the vertical plate 2 and the arc groove 201 in sequence.
[0048] When the main shaft 5 and the first cam 6 rotate one circle, the top plate 4 makes one reciprocating motion. The resistor 3 on the original first arc groove 201 will move to the second arc groove 201. At the same time, the feeding tray 19 rotates one-quarter of a circle, and a new resistor 3 falls into the first arc groove 201 along the arc guide rod 21. The above process is repeated for continuous feeding.
[0049] When the detection device detects the resistor 3, the spring 11 provides elastic force to make the slide bar 9 and the semicircular plate 10 in the upper position, and the semicircular plate 10 opens the lower ends of the two conductive clips 12 of the clamping assembly to bring the upper ends of the two conductive clips 12 closer together. The spring 2 13 is in a compressed state, that is, the conductive clips 12 of the two clamping assemblies clamp the pins at both ends of the resistor 3 located in the arc groove 201 above them at the same time, the conductive clips 12 and the wire 14 are conductive, and the wire 14 is connected to the detection device, thereby achieving the purpose of the detection device detecting the resistor 3. The main shaft 5 rotates one circle to realize automatic detection of the next resistor 3, and the process is as follows: when the top plate 4 moves upward and before the inclined groove 401 contacts the resistor 3, the main shaft 5 drives the cam 2 7 of the clamping assembly to rotate synchronously. At this time, the cam 2 7 drives the flat plate 8, the slide bar 9 and the semicircular plate 10 to move downward, the spring 11 is compressed, and the semicircular plate 10 and the lower end of the conductive clip 12 are gradually separated. The spring 2 13 provides elastic force to separate the upper ends of the two conductive clips 12 of the clamping assembly, that is, the conductive clips 12 of the two clamping assemblies release the pins at both ends of the resistor 3 at the same time; when the top plate 4 continues to move upward to the upper position, the inclined groove 401 on the top plate 4 pushes the detected resistor 3 upward from the arc groove 201. When the top plate 4 moves downward, the spring 11 provides elastic force to move the slide bar 9 and the semicircular plate 10 upward. Before the semicircular plate 10 contacts the conductive clip 12 again, the detected resistor 3 is placed in the next adjacent arc groove 201, and the next resistor 3 is placed in the arc groove 201 above the conductive clip 12. When the top plate 4 continues to move downward to the lower position, the slide bar 9 and the semicircular plate 10 move upward to the upper position again, and the semicircular plate 10 again opens the lower ends of the two conductive clips 12 of the clamping assembly. Then, the conductive clips 12 of the two clamping assemblies clamp the pins at both ends of the next resistor 3 at the same time, and the detection device can complete the detection of the next resistor 3.
[0050] The main shaft 5 drives the center of the first set of swing plates 28 to rotate, so that the slide 25 moves back and forth along the guide rod 24. When the top plate 4 moves upward, the slide 25 and the cutter 29 rise synchronously to make room for the top plate 4 to lift the resistor 3. When the top plate 4 moves downward, the slide 25 and the cutter 29 fall synchronously, and the two pins of the resistor 3 corresponding to the arc groove 201 are located on the top cutting block 30, and the cutter 29 overlaps with the top cutting block 30 to cut off the excess length of the two pins of the resistor 3.
[0051] The secondary shaft 22 drives the central rotation of the second set of swing plates 28, causing the carriage 25 to perform reciprocating linear motion up and down along the guide rod 24. When the top plate 4 moves upward, the carriage 25 drives the pressing bending knife 31 to rise synchronously, creating space for the top plate 4 to lift the resistor 3. When the top plate 4 moves downward, the carriage 25 drives the pressing bending knife 31 to descend synchronously. The two pins of the resistor 3 corresponding to the arc groove 201 are located on the bending top block 32, and the pressing bending knife 31 coincides with the bending top block 32 to bend the two pins of the resistor 3, facilitating the further installation of the resistor 3.
[0052] The above are only specific embodiments of the present invention, but the technical features of the present invention are not limited thereto. Any simple changes, equivalent substitutions, or modifications made based on the present invention to solve substantially the same technical problems and achieve substantially the same technical effects are all covered by the protection scope of the present invention.
Claims
1. A feeding mechanism for resistor detection, comprising a bottom plate (1), two vertical plates (2) being vertically arranged on the bottom plate (1), a plurality of arc grooves (201) for placing resistors (3) being continuously arranged above the vertical plates (2), a top plate (4) being slidably arranged between the two vertical plates (2), a plurality of inclined grooves (401) for lifting the resistors (3) being continuously arranged above the top plate (4), the number of the arc grooves (201) and the number of the inclined grooves (401) being the same, a main shaft (5) being rotatable together on the two vertical plates (2), a cam (6) for driving the top plate (4) to move being arranged on the main shaft (5) and located between the two vertical plates (2), the cam (6) being in contact with the bottom of the top plate (4); The outer sides of the two vertical plates (2) are each provided with a clamping assembly, the clamping assembly comprising a cam 2 (7) fixed on the main shaft (5), the cam 2 (7) and the cam 1 (6) being arranged in opposite directions, the lower side of the cam 2 (7) contacts a flat plate (8), the upper side of the flat plate (8) is connected with a slide bar (9), the slide bar (9) is slidably arranged on the corresponding vertical plate (2), the upper part of the slide bar (9) is connected with a semicircular plate (10), the outer side of the slide bar (9) is provided with a spring 1 (11), the two ends of the spring 1 (11) are respectively connected to the semicircular plate (10) and the vertical plate (2); The clamping assembly further comprises two conductive clips (12) whose middle parts are hinged to the side of the vertical plate (2), the two conductive clips (12) are symmetrically arranged obliquely, the upper ends of the two conductive clips (12) are used to clamp the pins of the resistor (3), the lower ends of the two conductive clips (12) are in contact with the arc surface of the semicircular plate (10), and one conductive clip (12) is connected to a wire (14); A loading rack (15) is provided on the bottom plate (1) and at the front side of the vertical plate (2); the loading rack (15) is rotatably provided with a driven shaft (16); a motor (17) is fixedly provided on the loading rack (15); the rotating shaft of the motor (17) is connected to the driven shaft (16); an asynchronous transmission mechanism (18) is provided between the driven shaft (16) and the main shaft (5); a driving wheel of the asynchronous transmission mechanism (18) is fixedly provided on the driven shaft (16); a driven wheel of the asynchronous transmission mechanism (18) is fixedly provided on the main shaft (5); and a diameter of the driving wheel of the asynchronous transmission mechanism (18) is four times a diameter of the driven wheel; A loading tray (19) is fixedly provided on the loading rack (15), and the loading tray (19) is located between the two vertical plates (2). Four material openings (1901) for clamping the resistor (3) are evenly arranged on the cylindrical surface of the loading tray (19), and a material storage (20) for storing the resistor (3) is provided on the bottom plate (1) and on the side of the loading tray (19); A secondary shaft (22) is provided on the two vertical plates (2) and close to the rear side of the vertical plates (2) so as to rotate together. A synchronous transmission mechanism (23) is provided between the secondary shaft (22) and the main shaft (5). The driving wheel and the driven wheel of the synchronous transmission mechanism (23) are respectively mounted on the main shaft (5) and the secondary shaft (22). The driving wheel and the driven wheel of the synchronous transmission mechanism (23) have the same diameter. A cam (6) for driving the top plate (4) to move is provided on the secondary shaft (22) and located between the two vertical plates (2); Two groups of vertical insertion components are arranged above the bottom plate (1), and the vertical insertion components include two guide rods (24) arranged vertically above the bottom plate (1), a slide frame (25) is slidably arranged on the two guide rods (24), and two vertical rotating plates (26) are arranged on the slide frame (25), the lower end of the vertical rotating plate (26) is hinged to the upper end of the connecting rod (27), and the lower end of the connecting rod (27) is hinged to the convex point of the swing plate (28); The centers of the two swing plates (28) of the first vertical insertion assembly are fixed on the main shaft (5), and a cutter (29) is provided in the middle of the slide (25). A top cutting block (30) is provided on the outer sides of the vertical plates (2) and below the cutter (29).
2. A feeding mechanism for resistance detection according to claim 1, characterized in that: An arc guide rod (21) for prying the resistor (3) is provided between the vertical plate (2) and the loading tray (19); the lower end of the arc guide rod (21) is connected to the upper part of the front side of the vertical plate (2); and the upper end of the arc guide rod (21) is located below the top of the loading tray (19).
3. A feeding mechanism for resistance detection according to claim 2, characterized in that: The centers of the two swing plates (28) of the second vertical insertion assembly are fixed on the secondary shaft (22), and a bending knife (31) is provided in the middle of the slide (25), and a bending top block (32) is provided on the outer sides of the vertical plates (2) and below the cutting knife (29).
Citation Information
Patent Citations
Capacitor and resistor directional correcting, bending and shearing device
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