An automatic copper thickness testing equipment
By introducing structures such as a conveyor frame, a horizontal plate, a pressure plate mechanism and a vacuum adsorption table into the copper thickness testing equipment, the problems of slippage and probe jamming during plate conveying are solved, and smooth conveying and accurate measurement of the plates are achieved.
Patent Information
- Application Number
- CN202411993197.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2044-12-31
AI Technical Summary
During the copper plate conveying and thickness measurement process, the unstable conveying shaft connection causes slippage and plate deviation, affecting work efficiency. In addition, the cylinder pushes the measuring instrument down, which easily causes the probe to get stuck and damage.
It adopts conveying rack, horizontal plate, pressing plate mechanism, front and back copper thickness measuring mechanism, vacuum adsorption table and positioning clapper mechanism. Through vacuum adsorption and synchronous belt transmission, it ensures the smooth transportation of plates, and uses cylinder and spring rod to protect the measuring instrument probe to avoid jamming.
It achieves smooth, accurate and fast conveying of plates, avoids damage to plates and probes, and improves conveying and measurement efficiency.
Smart Images

Figure CN119665892B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of plate thickness testing, and in particular to an automatic copper thickness testing device. Background Art
[0002] When processing copper plates, the plates need to be conveyed and their thickness measured to ensure the smooth progress of subsequent plate processing. The conveying and testing processes are all automated, which greatly improves the efficiency of plate conveying and testing.
[0003] When conveying plates, conveyor shafts are used for conveying. However, the conveyor belt used to drive the conveyor shaft may slip due to unstable connection with the conveyor shaft. This will cause the plates to deviate easily during transport. After deviating, the plates will get stuck, which will affect the efficiency of plate conveying. In addition, the conveyor shafts used to convey plates are difficult to disassemble and assemble, which is not conducive to daily maintenance. When testing the thickness of the plates, the cylinder will push the measuring instrument down and it will get stuck, which will damage the probe. Summary of the Invention
[0004] The main purpose of the present invention is to provide an automated copper thickness testing device, which can effectively solve the technical problems in the background technology.
[0005] To achieve the above object, the technical solution adopted by the present invention is:
[0006] An automated copper thickness testing device comprises a conveyor frame, a transverse plate and a pressure plate mechanism, wherein the upper surface of the conveyor frame is fixedly mounted with a transverse plate, the upper surface of the transverse plate and located in the front is fixedly mounted with a pressure plate mechanism, the upper surface of the transverse plate and located on one side of the pressure plate mechanism is fixedly mounted with a front copper thickness measuring mechanism, a No. 1 conveying shaft is movably mounted inside and at the rear of the conveyor frame, a No. 2 conveying shaft is movably mounted inside and in front of the No. 1 conveying shaft, a vacuum adsorption platform is fixedly mounted inside and near the front of the conveyor frame, a reverse copper thickness measuring mechanism is fixedly mounted on the lower end of one side of the vacuum adsorption platform, a positioning clapper mechanism is fixedly mounted on the lower middle part of the conveyor frame, and a No. 1 transmission synchronous belt pressure wheel is movably mounted on the surface of one side of the conveyor frame and located on the top. The transmission gear is mounted on a link mechanism, and the transmission gear is mounted on a link mechanism, and the transmission gear is mounted on a link mechanism, and the transmission gear is mounted on a link mechanism, and the transmission gear is mounted on a link mechanism, and the transmission gear is mounted on a link mechanism.
[0007] Preferably, the pressure plate mechanism includes an L-shaped mounting plate No. 1, a cylinder No. 1, a downward pressure mounting plate, a downward pressure plate and a spring rod No. 1, the front surface of the L-shaped mounting plate No. 1 is fixedly mounted with the cylinder No. 1, the telescopic end of the cylinder No. 1 is fixedly mounted with the downward pressure mounting plate, a spring rod No. 1 is fixedly embedded inside the downward pressure mounting plate and near the four corners, and the telescopic end of the spring rod No. 1 is fixed to the downward pressure plate.
[0008] Preferably, the front copper thickness measuring mechanism includes a No. 2 L-shaped mounting plate, a No. 2 cylinder, a connecting plate, a linear slide rail, a bolt limit block, a height bolt, a No. 2 spring rod, a slide seat and a No. 1 copper thickness measuring instrument. The front surface of the No. 2 L-shaped mounting plate is fixedly mounted with the No. 2 cylinder, the telescopic end of the No. 2 cylinder is fixedly mounted with the connecting plate, the front surface of the connecting plate and the upper portion thereof are fixedly mounted with a bolt limit block, the upper surface of the bolt limit block is movably mounted with height bolts, the front surface of the connecting plate and near both sides are fixedly mounted with a linear slide rail, the lower surface of the height bolt and located below the bolt limit block are fixedly mounted with the No. 2 spring rod, the telescopic end of the No. 2 spring rod is fixedly mounted with a slide seat, the front surface of the slide seat is fixedly mounted with the No. 1 copper thickness measuring instrument, and the slide seat is clamped on the linear slide rail.
[0009] Preferably, the reverse side copper thickness measuring mechanism includes a mounting block, a No. 3 cylinder, a support plate, a No. 3 spring rod, a vertical plate and a No. 2 copper thickness measuring instrument. The mounting block is fixedly mounted on the front surface of the No. 3 cylinder, the telescopic end of the No. 3 cylinder is fixedly mounted with the support plate, the No. 3 spring rod is fixedly mounted on the lower surface of the support plate and near both sides, the vertical plate is fixedly mounted on the telescopic end of the No. 3 spring rod and located above the support plate, and the No. 2 copper thickness measuring instrument is fixedly mounted on the front surface of the vertical plate.
[0010] Preferably, the surfaces of the transfer conveyor shaft, the No. 1 conveyor shaft and the No. 2 conveyor shaft are all fixedly sleeved with conveyor wheels, the surfaces of the No. 1 conveyor shaft and the No. 2 conveyor shaft are fixedly sleeved with rollers near both ends, the surface of the transfer conveyor shaft is fixedly sleeved with a transfer pulley at the other end, and the surface of the No. 1 roller shaft is also fixedly sleeved with a transfer pulley at one end.
[0011] Preferably, there are several No. 1 conveyor shafts and No. 2 conveyor shafts, and several No. 1 conveyor shafts and No. 2 conveyor shafts are alternately distributed inside the conveying frame. There are several conveying wheels of the No. 1 conveyor shaft and No. 2 conveyor shaft, and the conveying wheels of the No. 1 conveyor shaft and No. 2 conveyor shaft are also alternately distributed.
[0012] Preferably, the engaging sleeves on the conveying power synchronous wheel, the power tensioning wheel and the conveying transmission synchronous wheel are provided with a transmission synchronous belt, the No. 1 transmission synchronous belt pressure wheel is in contact with the transmission synchronous belt, the transfer pulley of the roller shaft and the transfer pulley of the transfer conveying shaft are provided with a power transfer flat belt, and the No. 2 transmission synchronous belt pressure wheel is in contact with the power transfer flat belt.
[0013] Preferably, the positioning clapper mechanism includes a support frame, a guide rod, a positioning clapper, a belt motor, a No. 1 pulley, a No. 2 pulley, a splint and a belt, the guide rod is fixedly installed inside the support frame near the front and rear, the surface of the guide rod is provided with a positioning clapper near the two ends, the lower surface of one end of the positioning clapper is fixedly installed, the lower surface of one end of the support frame and located in the front is fixed with a belt motor, the inner upper surface of the support frame and located in front of one end is movably installed with No. 1 pulley, the lower surface of the other end of the support frame and located in the front is movably installed with No. 2 pulley, a belt is sleeved between the No. 1 pulley and the No. 2 pulley, the output end of the belt motor is fixed to the No. 1 pulley, and the lower end of the splint is fixedly installed on the belt.
[0014] Preferably, the upper end of the positioning clapper extends above the No. 1 conveyor shaft and the No. 2 conveyor shaft, and a conveyor shaft pressure strip is fixedly installed on the upper surface of the conveyor frame. The No. 1 transmission synchronous belt pressure wheel is movably installed on the surface of one side of the conveyor shaft pressure strip on one side of the conveyor frame, and the No. 2 transmission synchronous belt pressure wheel is movably installed on the surface of one side of the conveyor shaft pressure strip on the other side of the conveyor frame.
[0015] Compared with the prior art, the present invention has the following beneficial effects:
[0016] In the present invention, by disassembling the conveyor shaft pressure strip, the No. 1 conveyor shaft, the No. 2 conveyor shaft and the transfer conveyor shaft can be conveniently inspected and repaired, and the conveyor wheels of the No. 1 conveyor shaft and the No. 2 conveyor shaft are staggered, and the positioning plate of the positioning plate mechanism is combined to avoid the plate jamming phenomenon during the conveying process. When the transmission synchronous belt is running, the No. 1 transmission synchronous belt pressure wheel can make the transmission synchronous belt and the transmission synchronous wheel tightly engage, thereby avoiding the transmission synchronous belt from slipping, thus ensuring the smooth, accurate and fast conveying of the plate. When the plate is conveyed to the position of the vacuum adsorption table, the vacuum adsorption table is externally connected After the vacuum pump is turned on, the plate moved to the vacuum adsorption table can be adsorbed. When the No. 1 copper thickness gauge and the No. 2 copper thickness gauge are used to test the upper and lower surfaces of the plate, the probes of the No. 1 copper thickness gauge and the No. 2 copper thickness gauge are prevented from being damaged due to the jamming of the No. 2 cylinder and the No. 3 cylinder. After the test, the vacuum adsorption table is broken. At this time, the No. 1 roller shaft, the No. 2 roller shaft and the transfer conveyor shaft can operate synchronously under the action of the transmission synchronous belt and the power transfer flat belt, thereby ensuring that the plate is transported in a straight line when it continues to be transported from the vacuum adsorption table without large deflection. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is an overall structural diagram of an automated copper thickness testing device of the present invention;
[0018] Figure 2 This is a partial disassembly diagram of an automated copper thickness testing device according to the present invention;
[0019] Figure 3 This is a structural diagram of a pressing plate mechanism of an automated copper thickness testing device of the present invention;
[0020] Figure 4 This is a structural diagram of the front copper thickness measuring mechanism of an automated copper thickness testing device of the present invention;
[0021] Figure 5 This is a structural diagram of the reverse copper thickness measuring mechanism of an automated copper thickness testing device of the present invention;
[0022] Figure 6 This is a schematic diagram of the installation of a transfer conveying shaft and a conveying transmission synchronous wheel of an automated copper thickness testing device of the present invention;
[0023] Figure 7 This is a schematic diagram of a partially disassembled side of an automated copper thickness testing device according to the present invention;
[0024] Figure 8 The present invention is an automatic copper thickness testing device Figure 7 Enlarged view of point A in the middle;
[0025] Figure 9 This is a schematic diagram of the partial disassembly of the other side of an automated copper thickness testing device of the present invention;
[0026] Figure 10 The present invention is an automatic copper thickness testing device Figure 9 Enlarged view of point B in the middle.
[0027] Figure 11 This is a structural diagram of the positioning clapper mechanism of an automated copper thickness testing device of the present invention.
[0028] In the figure: 1. Conveyor rack; 101. Conveyor shaft pressure strip; 2. Horizontal plate; 3. Pressing plate mechanism; 301. No. 1 L-shaped mounting plate; 302. No. 1 cylinder; 303. Lower pressing mounting plate; 304. Lower pressing plate; 305. No. 1 spring rod; 4. Front copper thickness measuring mechanism; 401. No. 2 L-shaped mounting plate; 402. No. 2 cylinder; 403. Connecting plate; 404. Bolt limit block; 405. Equal height bolt; 406. Linear guide rail; 407. Slide seat; 408. No. 2 spring rod; 409. No. 1 copper thickness measuring instrument; 5. Vacuum adsorption table; 6. Reverse copper thickness measuring mechanism; 601. No. 3 cylinder; 602. Mounting block; 603. Support plate; 604. No. 2 copper thickness measuring instrument; 605. No. 3 spring rod ;606, vertical plate; 7, positioning clapper mechanism; 701, support frame; 702, guide rod; 703, belt motor; 704, No. 1 pulley; 705, No. 2 pulley; 706, belt; 707, positioning clapper; 708, clamping plate; 8, No. 1 transmission timing belt tensioning pulley; 9, hanger; 10, transfer conveyor shaft; 1001, conveyor wheel; 1002, transfer pulley; 11, conveying transmission synchronous wheel; 12, conveying power synchronous wheel; 13, power tensioning pulley; 14, No. 1 roller shaft; 15, No. 2 transmission timing belt tensioning pulley; 16, power transfer flat belt; 17, No. 1 conveyor shaft; 18, No. 2 conveyor shaft; 19, No. 2 roller shaft; 20, driving motor; 21, transmission timing belt. DETAILED DESCRIPTION
[0029] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.
[0030] like Figure 1-11The automatic copper thickness testing equipment shown in the figure includes a conveyor frame 1, a horizontal plate 2 and a pressing plate mechanism 3. The upper surface of the conveyor frame 1 is fixedly installed with a horizontal plate 2, and the upper surface of the horizontal plate 2 and the front thereof are fixedly installed with a pressing plate mechanism 3. The upper surface of the horizontal plate 2 and the side of the pressing plate mechanism 3 are fixedly installed with a front copper thickness measuring mechanism 4. A No. 1 conveying shaft 17 is movably installed inside the conveyor frame 1 and at the rear thereof. A No. 2 conveying shaft 18 is movably installed inside the conveyor frame 1 and in front of the No. 1 conveying shaft 1. A vacuum adsorption platform 5 is fixedly installed inside the conveyor frame 1 and near the front thereof. A reverse copper thickness measuring mechanism 6 is fixedly installed at the lower end of one side of the vacuum adsorption platform 5. A positioning clapper mechanism 7 is fixedly installed at the lower middle part of the conveyor frame 1. A No. 1 transmission synchronous belt pressure wheel 8 is movably installed on the surface of one side of the conveyor frame 1 and at the top thereof. A hanger 9 is fixedly installed at the lower front end of the conveyor frame 1. A driving motor 20 is fixedly mounted on the upper surface of one end of 9, and a conveying power synchronous wheel 12 is fixedly mounted on the output end of the driving motor 20. A power tensioning wheel 13 is movably mounted on the surface of one end of the hanger 9 and on both sides above. A No. 1 roller shaft 14 is movably mounted between the conveying frame 2 and one side of the vacuum adsorption table 5, and a No. 2 roller shaft 19 is movably mounted between the conveying frame 1 and the other side of the vacuum adsorption table 5. A transfer conveying shaft 10 is movably mounted inside the conveying frame 1 and in front of the vacuum adsorption table 5. The surfaces of the No. 1 conveying shaft 17, the No. 2 conveying shaft 18, the No. 2 roller shaft 19 and the transfer conveying shaft 10 and at one end are all fixedly sleeved with a conveying transmission synchronous wheel 11. The No. 2 transmission synchronous belt pressure wheel 15 is movably mounted on the surface of the other side of the conveying frame and near the front. After the vacuum adsorption table 5 is externally connected to a vacuum pump, the plate moved onto the vacuum adsorption table 5 can be adsorbed.
[0031] The pressing plate mechanism 3 includes an L-shaped mounting plate 301, a cylinder 302, a pressing mounting plate 303, a pressing plate 304 and a spring rod 305. The front surface of the L-shaped mounting plate 301 is fixedly mounted with the cylinder 302. The telescopic end of the cylinder 302 is fixedly mounted with the pressing mounting plate 303. The interior of the pressing mounting plate 303 and near the four corners are fixedly embedded with the spring rod 305. The telescopic end of the spring rod 305 is fixed to the pressing plate 304. The front copper thickness measuring mechanism 4 includes an L-shaped mounting plate 401, a cylinder 402, a connecting plate 403, a linear slide rail 406, a bolt limit block 404, an equal height bolt 405, a spring rod 408, a slide seat 407 and a copper plate. Thickness measuring instrument 409, No. 2 cylinder 402 is fixedly installed on the front surface of No. 2 L-shaped mounting plate 401, and the telescopic end of No. 2 cylinder 402 is fixedly installed with connecting plate 403, and the front surface of connecting plate 403 and the upper part are fixedly installed with bolt limit block 404, and the upper surface of bolt limit block 404 is movably installed with equal height bolt 405, and the front surface of connecting plate 403 and the two sides are fixedly installed with linear slide rail 406, and the lower surface of equal height bolt 405 and the lower part of bolt limit block 404 are fixedly installed with No. 2 spring rod 408, and the telescopic end of No. 2 spring rod 408 is fixedly installed with slide 407, and the front surface of slide 407 is fixedly installed with No. 1 copper thickness measuring instrument 409, and slide 407 is clamped. On the linear slide 406, the linear slide 406 can assist the slide 407 in vertical lifting; the reverse copper thickness measuring mechanism 6 includes a mounting block 602, a No. 3 cylinder 601, a support plate 603, a No. 3 spring rod 605, a vertical plate 606 and a No. 2 copper thickness measuring instrument 604. The front surface of the No. 3 cylinder 601 is fixedly mounted with a mounting block 602, the telescopic end of the No. 3 cylinder 601 is fixedly mounted with a support plate 603, the lower surface of the support plate 603 and near both sides are fixedly mounted with a No. 3 spring rod 605, the telescopic end of the No. 3 spring rod 605 and located above the support plate 603 is fixedly mounted with a vertical plate 606, and the front surface of the vertical plate 606 is fixedly mounted with a No. 2 copper thickness measuring instrument 604; the transfer conveying shaft 10, a The surfaces of the No. 1 conveyor shaft 17 and the No. 2 conveyor shaft 18 are fixedly sleeved with conveying wheels 1001, the surfaces of the No. 1 conveyor shaft 17 and the No. 2 conveyor shaft 18 and near both ends are fixedly sleeved with rollers, the surface of the transfer conveyor shaft 10 and located at the other end is fixedly sleeved with a transfer pulley 1002, and the surface of the No. 1 roller shaft 14 and located at one end is also fixedly sleeved with a transfer pulley 1002; the number of the No. 1 conveyor shaft 17 and the No. 2 conveyor shaft 18 is several, and several No. 1 conveyor shafts 17 and No. 2 conveyor shafts 18 are alternately distributed inside the conveyor frame 1, and the number of conveying wheels 1001 of the No. 1 conveyor shaft 17 and the No. 2 conveyor shaft 18 is several, and the conveying wheels 1001 of the No. 1 conveyor shaft 17 and the No. 2 conveyor shaft 18 are also alternately distributed;The engaging sleeves on the conveying power synchronous wheel 12, the power tensioning wheel 13 and the conveying transmission synchronous wheel 11 are provided with a transmission synchronous belt 21, the No. 1 transmission synchronous belt pressure wheel 8 is in contact with the transmission synchronous belt 21, the transfer pulley 1002 of the roller shaft 14 and the transfer pulley 1002 of the transfer conveying shaft 10 are provided with a power transfer flat belt 16, the No. 2 transmission synchronous belt pressure wheel 15 is in contact with the power transfer flat belt 16, the No. 1 transmission synchronous belt pressure wheel 8 can ensure that the transmission synchronous belt 21 and the conveying transmission synchronous wheel 11 are stably engaged and do not slip; the positioning clapper mechanism 7 includes a support frame 701, a guide rod 702, a positioning clapper 707, a belt motor 703, a No. 1 pulley 704, a No. 2 pulley 705, a splint 708 and a belt 706, a guide rod 702 is fixedly installed inside the support frame 701 near the front and rear, a positioning clapper 707 is provided on the surface of the guide rod 702 near the movable sleeves at both ends, and the positioning clapper 707 A clamping plate 708 is fixedly installed on the lower surface of one end, a belt motor 703 is fixedly installed on the lower surface of one end of the support frame 701 and located in the front, a No. 1 pulley 704 is movably installed on the inner upper surface of the support frame 701 and located in the front of one end, and a No. 2 pulley 705 is movably installed on the lower surface of the other end of the support frame 701 and located in the front, a belt 706 is sleeved between the No. 1 pulley 704 and the No. 2 pulley 705, the output end of the belt motor 703 is fixed to the No. 1 pulley 704, and the lower end of the clamping plate 708 is fixed on the belt 706; the upper end of the positioning clapper extends above the No. 1 conveyor shaft 17 and the No. 2 conveyor shaft 18, a conveyor shaft pressure strip 101 is fixedly installed on the upper surface of the conveyor frame 1, the No. 1 transmission synchronous belt pressure wheel 8 is movably installed on one side surface of the conveyor shaft pressure strip 101 on one side of the conveyor frame 1, and the No. 2 transmission synchronous belt pressure wheel 15 is movably installed on one side surface of the conveyor shaft pressure strip 101 on the other side of the conveyor frame 1.
[0032] It should be noted that the present invention is an automated copper thickness testing equipment. When in use, the driving motor 20 drives the conveying power synchronous wheel 12 to rotate, and the conveying power synchronous wheel 12 uses the meshing state of the transmission synchronous belt 21 and the conveying transmission synchronous wheel 11 to drive the No. 1 conveying shaft 17, the transfer conveying shaft 10 and the No. 2 roller shaft 19 to operate synchronously, so that the plate can be conveyed smoothly. When the No. 1 conveying shaft 17, the No. 2 conveying shaft 18 and the transfer conveying shaft 10 need to be repaired, the No. 1 conveying shaft 17, the No. 2 conveying shaft 18 and the transfer conveying shaft 10 can be repaired by removing the conveying shaft pressure strip 101. The No. 2 conveyor shaft 18, the No. 1 roller shaft 14, the No. 2 roller shaft 19 and the transfer conveyor shaft 10 are repaired. When the belt motor 703 is started, it drives the No. 1 pulley 704 to rotate. The rotating No. 1 pulley 704 uses the belt to drive the No. 2 pulley 705 to rotate, which can drive the positioning clappers 707 to move closer and farther away from each other, thereby calibrating and positioning the sheet. Then the No. 1 cylinder 302 of the pressing plate mechanism 3 pushes the lower pressing plate 304 to press the sheet onto the vacuum adsorption table 5. At this time, the vacuum adsorption table 5 generates an adsorption force on the sheet under the action of the external vacuum pump, and the No. 2 cylinder 4 02 prompts the probe of No. 1 copper thickness gauge 409 to contact with the upper surface of the plate. At this time, the telescopic end of No. 2 cylinder 402 continues to extend, and No. 1 copper thickness gauge 409 will squeeze the telescopic end of No. 2 spring rod 408 toward the inside of No. 2 spring rod 408, so that the probe of No. 1 copper thickness gauge 409 remains in contact with the upper surface of the plate, and the probe will not be damaged due to the jamming of No. 2 cylinder 402. Similarly, after No. 3 cylinder 601 prompts the probe of No. 2 copper thickness gauge 604 to contact with the lower surface of the plate, the telescopic end of No. 3 spring rod 605 will be squeezed Into the interior of the No. 3 spring rod 605, so as to avoid damage to the probe due to the jamming of the No. 3 cylinder 601. After the measurement, the vacuum adsorption table 5 breaks the vacuum, and the No. 2 roller shaft 19 and the transfer conveyor shaft 10 are driven to rotate by the transmission synchronous belt 21. The transfer conveyor shaft 10 uses the power transfer flat belt 16 and the transfer pulley 1002 to drive the No. 1 roller shaft 14 to rotate, so that the No. 1 roller shaft 14 on one side of the vacuum adsorption table 5 and the No. 2 roller shaft 19 on the other side can rotate at the same time and convey the plate, ensuring that the plate is conveyed in a straight line without large deflection.
[0033] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. An automated copper thickness testing device, characterized in that: The invention comprises a conveying frame (1), a transverse plate (2) and a pressing plate mechanism (3), wherein the upper surface of the conveying frame (1) is fixedly mounted with a transverse plate (2), the upper surface of the transverse plate (2) and located in the front thereof is fixedly mounted with a pressing plate mechanism (3), the upper surface of the transverse plate (2) and located on one side of the pressing plate mechanism (3) is fixedly mounted with a front copper thickness measuring mechanism (4), the interior of the conveying frame (1) and located at the rear thereof is movably mounted with a No. 1 conveying shaft (17), the interior of the conveying frame (1) and located in front of the No. 1 conveying shaft (18) is movably mounted with a No. 2 conveying shaft (18), the interior of the conveying frame (1) and located in front of the No. 1 conveying shaft (1) is fixedly mounted with a vacuum adsorption platform (5), the lower end of one side of the vacuum adsorption platform (5) is fixedly mounted with a reverse copper thickness measuring mechanism (6), the lower middle part of the conveying frame (1) is fixedly mounted with a positioning clapping mechanism (7), the surface of one side of the conveying frame (1) and located on the top thereof is movably mounted with a No. 1 transmission synchronous belt pressure wheel (8), the front ... upper middle part of the conveying frame (1) is fixedly mounted with a positioning clapping mechanism (7), the upper middle part of the conveying frame (1) is fixedly mounted with a No. 1 transmission synchronous belt pressure wheel (8), the front of the conveying frame (1) is fixedly mounted with a positioning clapping mechanism (7), the upper middle part of the conveying frame (1) is fixedly mounted with a A hanger (9) is fixedly installed below the end, a driving motor (20) is fixedly installed on the upper surface of one end of the hanger (9), and a conveying power synchronous wheel (12) is fixedly installed on the output end of the driving motor (20), and a power tensioning wheel (13) is movably installed on the surface of one end of the hanger (9) and on both sides above. A No. 1 roller shaft (14) is movably installed between the conveying frame (2) and one side of the vacuum adsorption platform (5), and a No. 2 roller shaft (19) is movably installed between the conveying frame (1) and the other side of the vacuum adsorption platform (5). A transfer conveying shaft (10) is movably installed inside the conveying frame (1) and in front of the vacuum adsorption platform (5). The surfaces of the No. 1 conveying shaft (17), the No. 2 conveying shaft (18), the No. 2 roller shaft (19) and the transfer conveying shaft (10) and at one end are all fixedly sleeved with a conveying transmission synchronous wheel (11), and a No. 2 transmission synchronous belt pressure wheel (15) is movably installed on the other side surface of the conveying frame and near the front.
2. The automated copper thickness testing device according to claim 1, characterized in that: The pressing plate mechanism (3) comprises a No. 1 L-shaped mounting plate (301), a No. 1 air cylinder (302), a pressing mounting plate (303), a pressing plate (304) and a No. 1 spring rod (305), wherein the No. 1 air cylinder (302) is fixedly mounted on the front surface of the No. 1 L-shaped mounting plate (301), the pressing mounting plate (303) is fixedly mounted on the telescopic end of the No. 1 air cylinder (302), the pressing mounting plate (303) is fixedly mounted inside the pressing mounting plate (303) and near the four corners, and the telescopic end of the No. 1 spring rod (305) is fixedly embedded with the pressing plate (304).
3. The automated copper thickness testing device according to claim 2, characterized in that: The front copper thickness measuring mechanism (4) comprises a No. 2 L-shaped mounting plate (401), a No. 2 air cylinder (402), a connecting plate (403), a linear slide rail (406), a bolt stopper (404), an equal height bolt (405), a No. 2 spring rod (408), a slide seat (407) and a No. 1 copper thickness measuring instrument (409), wherein the No. 2 air cylinder (402) is fixedly mounted on the front surface of the No. 2 L-shaped mounting plate (401), the connecting plate (403) is fixedly mounted on the telescopic end of the No. 2 air cylinder (402), and the bolt stopper is fixedly mounted on the front surface and located above the connecting plate (403). (404), the upper surface of the bolt limit block (404) is movably mounted with an equal height bolt (405), the front surface of the connecting plate (403) and near both sides are fixedly mounted with linear slide rails (406), the lower surface of the equal height bolt (405) and located below the bolt limit block (404) is fixedly mounted with a No. 2 spring rod (408), the telescopic end of the No. 2 spring rod (408) is fixedly mounted with a slide seat (407), the front surface of the slide seat (407) is fixedly mounted with a No. 1 copper thickness measuring instrument (409), and the slide seat (407) is clamped on the linear slide rail (406).
4. The automated copper thickness testing device according to claim 3, characterized in that: The reverse copper thickness measuring mechanism (6) comprises a mounting block (602), a No. 3 air cylinder (601), a support plate (603), a No. 3 spring rod (605), a vertical plate (606) and a No. 2 copper thickness measuring instrument (604), wherein the mounting block (602) is fixedly mounted on the front surface of the No. 3 air cylinder (601), the support plate (603) is fixedly mounted on the telescopic end of the No. 3 air cylinder (601), the No. 3 spring rod (605) is fixedly mounted on the lower surface of the support plate (603) and close to both sides, the vertical plate (606) is fixedly mounted on the telescopic end of the No. 3 spring rod (605) and located above the support plate (603), and the No. 2 copper thickness measuring instrument (604) is fixedly mounted on the front surface of the vertical plate (606).
5. The automated copper thickness testing device according to claim 4, characterized in that: The surfaces of the transfer conveyor shaft (10), the No. 1 conveyor shaft (17) and the No. 2 conveyor shaft (18) are all fixedly sleeved with conveyor wheels (1001); the surfaces of the No. 1 conveyor shaft (17) and the No. 2 conveyor shaft (18) are fixedly sleeved with rollers near both ends; the surface of the transfer conveyor shaft (10) is fixedly sleeved with a transfer pulley (1002) at the other end; the surface of the No. 1 roller shaft (14) is also fixedly sleeved with a transfer pulley (1002) at one end.
6. The automated copper thickness testing device according to claim 5, characterized in that: The number of the No. 1 conveying shaft (17) and the No. 2 conveying shaft (18) is several, and the No. 1 conveying shaft (17) and the No. 2 conveying shaft (18) are alternately distributed inside the conveying frame (1). The number of the No. 1 conveying shaft (17) and the No. 2 conveying shaft (18) is several, and the No. 1 conveying shaft (17) and the No. 2 conveying shaft (18) conveying wheels (1001) are also alternately distributed.
7. The automated copper thickness testing device according to claim 6, characterized in that: The transmission power synchronous wheel (12), the power tension wheel (13) and the transmission transmission synchronous wheel (11) are provided with a transmission synchronous belt (21) on the meshing sleeve, the transmission synchronous belt pressure wheel (8) is in contact with the transmission synchronous belt (21), the transfer pulley (1002) of the roller shaft (14) and the transfer pulley (1002) of the transfer conveying shaft (10) are provided with a power transfer flat belt (16), and the transmission synchronous belt pressure wheel (15) is in contact with the power transfer flat belt (16).
8. The automated copper thickness testing device according to claim 7, characterized in that: The positioning clapper mechanism (7) comprises a support frame (701), a guide rod (702), a positioning clapper (707), a belt motor (703), a first pulley (704), a second pulley (705), a clamping plate (708) and a belt (706), wherein the guide rod (702) is fixedly installed inside the support frame (701) and near the front and rear, and the positioning clapper (707) is provided on the surface of the guide rod (702) and near the movable sleeves at both ends, and the clamping plate (708) is fixedly installed on the lower surface of one end of the positioning clapper (707), and the support frame (701) is fixedly installed with the guide rod (702) and the clamping plate (708) at the lower surface of one end of the positioning clapper (707). ) is fixedly mounted on the lower surface of one end and located in front thereof, a belt motor (703) is movably mounted on the inner upper surface of the support frame (701) and located in front thereof, a No. 1 pulley (704) is movably mounted on the lower surface of the other end of the support frame (701) and located in front thereof, a No. 2 pulley (705) is movably mounted, a belt (706) is sleeved between the No. 1 pulley (704) and the No. 2 pulley (705), an output end of the belt motor (703) is fixed to the No. 1 pulley (704), and the lower end of the splint (708) is fixedly mounted on the belt (706).
9. The automated copper thickness testing device according to claim 8, characterized in that: The upper end of the positioning clapper extends above the No. 1 conveyor shaft (17) and the No. 2 conveyor shaft (18), and a conveyor shaft pressure strip (101) is fixedly mounted on the upper surface of the conveyor frame (1). The No. 1 transmission synchronous belt pressure wheel (8) is movably mounted on the surface of one side of the conveyor shaft pressure strip (101) on one side of the conveyor frame (1), and the No. 2 transmission synchronous belt pressure wheel (15) is movably mounted on the surface of one side of the conveyor shaft pressure strip (101) on the other side of the conveyor frame (1).
Citation Information
Patent Citations
Intelligent monitoring aging machine for capacitor
CN113979115A
Copper thickness testing machine
CN210089655U