Ceramic capacitor arrangement device
By combining a lifting hopper and a swing conveyor mechanism with a height limiting and clamping mechanism, the problem of the inflexible switching of existing ceramic capacitor arrangement devices is solved, realizing the automated arrangement of single-layer and multi-layer ceramic capacitors and reducing equipment investment costs.
Patent Information
- Application Number
- CN202511513349.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-22
- Publication Date
- 2025-12-05
AI Technical Summary
Existing ceramic capacitor array devices can only arrange one or more layers, and cannot be flexibly switched, which means that equipment needs to be replaced when producing different numbers of layers for different products, increasing equipment investment costs.
A ceramic capacitor arranging device was designed, comprising a lifting hopper mechanism, a first conveying mechanism, a swinging conveying mechanism, a height limiting mechanism, and an arranging mechanism. The lifting drive mechanism adjusts the height of the hopper, the swinging drive mechanism adjusts the swing of the conveyor belt, and combined with the height limiting cylinder and clamping mechanism, the automated arranging of single-layer and multi-layer products is realized.
It enables flexible arrangement of single-layer and multi-layer ceramic capacitors, reduces equipment replacement frequency, saves equipment investment costs for manufacturing enterprises, and automates product arrangement.
Smart Images

Figure CN121063178A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of ceramic capacitor production equipment, and particularly relates to a ceramic capacitor arrangement device. BACKGROUND
[0002] A ceramic capacitor is a capacitor with ceramic as dielectric material, which is widely used in various electronic instruments. In the production process of the ceramic capacitor, an arrangement process of products is involved, that is, the products need to be arranged on a carrier such as a nickel mesh or a ceramic plate in a single-layer or multi-layer form, and then the arranged whole-plate material is sent into a furnace for sintering and forming. The existing ceramic capacitor arrangement device can only arrange single-layer products or multi-layer products, and different devices need to be replaced when producing ceramic capacitors with different product layers, which increases the equipment investment cost of production enterprises. SUMMARY
[0003] The present application relates to the technical field of ceramic capacitor production equipment, and particularly relates to a ceramic capacitor arrangement device.
[0004] To solve the above technical problems, the present application provides a ceramic capacitor arrangement device, which comprises a lifting hopper mechanism, a first conveying mechanism, a swing conveying mechanism, a height limiting mechanism and an arrangement mechanism. The lifting hopper mechanism comprises a first gantry, a lifting driving mechanism arranged on the first gantry, a hopper driven by the lifting driving mechanism, and a vibration motor arranged on the hopper. The first conveying mechanism comprises a first transmission mechanism arranged on the first gantry and a first conveying belt, and the first transmission mechanism is used to drive the first conveying belt to operate. The swing conveying mechanism comprises a base, a second gantry arranged on the base, an X-axis sliding plate slidingly connected to the second gantry in the X-axis direction, a swing driving mechanism arranged on the second gantry and used to drive the X-axis sliding plate to swing back and forth, a second transmission mechanism arranged on the X-axis sliding plate, and a second conveying belt, and the second transmission mechanism is used to drive the second conveying belt to operate. The height limiting mechanism comprises a support arranged on one side of the second transmission mechanism, a height limiting cylinder arranged on the support, and a height limiting baffle driven by the height limiting cylinder. The arrangement mechanism comprises a Y-axis linear driving device, a Y-axis sliding plate driven by the Y-axis linear driving device, a clamping mechanism, and a plurality of load carrying assemblies arranged side by side on the Y-axis sliding plate. The load carrying assembly comprises a lifting cylinder arranged on the Y-axis sliding plate, a weighing sensor driven by the lifting cylinder, and a supporting plate connected to the weighing sensor. The clamping mechanism comprises a gas claw arranged on the Y-axis sliding plate, and two oppositely arranged clamping plates. The clamping plate comprises a side plate and a top plate connected to the top of the side plate, and the two clamping plates are respectively mounted on the two clamping jaws of the gas claw.
[0005] Preferably, the lifting driving mechanism comprises a lifting plate, support rods connected to the four sides of the top of the lifting plate, two support plates, a first servo motor arranged on the first gantry and connected to the lifting plate through a lead screw, a guide sleeve connected to the support rod arranged on the first gantry, the support plate is fixedly connected between the top ends of the adjacent two support rods, and the two sides of the hopper are symmetrically provided with ear plates, one of which is hinged to one of the support plates, and the other is supported on the other support plate, and a quick clamp is arranged on the support plate for pressing the ear plate against the support plate.
[0006] Preferably, the first transmission mechanism comprises a first transmission bracket fixedly connected to the first gantry, a first driving shaft and a first driven shaft rotatably connected to the two sides of the first transmission bracket respectively, and a second servo motor arranged on one side of the first transmission bracket and drivingly connected to the first driving shaft, and the first conveying belt is connected between the first driving shaft and the first driven shaft; the second transmission mechanism comprises a second transmission bracket fixedly connected to the X-axis sliding plate, a second driving shaft and a second driven shaft rotatably connected to the two sides of the second transmission bracket respectively, a third servo motor arranged on one side of the second transmission bracket and drivingly connected to the second driving shaft, and a support fixedly connected to the second transmission bracket.
[0007] Preferably, two first side material blocking plates fixedly connected to the first transmission bracket are symmetrically arranged on the first conveying belt, and a first guide block is connected between the two first side material blocking plates, and a first guide inclined surface is arranged on the first guide block; two second side material blocking plates fixedly connected to the second transmission bracket are symmetrically arranged on the second conveying belt, a second guide block is connected between the two second side material blocking plates, and a second guide inclined surface is arranged on the second guide block.
[0008] Preferably, the top of the first gantry is provided with a powder scraping mechanism, the powder scraping mechanism comprises a receiving groove fixedly connected to the top of the first gantry, a powder storage drawer movably arranged on the receiving groove and matched with the receiving groove, a scraper fixedly connected to the top of the first gantry and located above the powder storage drawer, and a scraper plate detachably connected to the scraper and abutting against the surface of the first conveying belt; a material blocking mechanism is arranged on one side of the support, and the material blocking mechanism comprises a rotary air cylinder arranged on one side of the support, a rotating shaft drivingly connected to the rotary air cylinder, and a material blocking plate detachably connected to the rotating shaft.
[0009] Preferably, the first conveying belt and the second conveying belt are steel belts.
[0010] Preferably, the swinging driving mechanism comprises a fourth servo motor arranged on the second gantry, an eccentric wheel connected to the output shaft of the fourth servo motor, and a connecting rod, one end of the connecting rod is hinged to the eccentric wheel, and the other end of the connecting rod is hinged to the X-axis sliding plate.
[0011] Preferably, the swing conveying mechanism further comprises a guide wheel mechanism, the guide wheel mechanism comprising a vertical seat, a rotating seat arranged on the top of the vertical seat, and a roller rotatably connected to the rotating seat, the bottom of the second transmission bracket being supported on the roller.
[0012] The beneficial effects of the present application are as follows: the ceramic capacitor arrangement device provided by the present application is initially in an open state, after a piece of nickel mesh is placed on each supporting plate, the two clamping plates are tightened by the air claw, the two sides of the nickel mesh are clamped and limited by the side plates of the two clamping plates, then the supporting plates are lifted by the lifting air cylinder, the two side edges of the nickel mesh will be clamped between the top plate and the edge of the supporting plate, so that the edge of the nickel mesh is prevented from floating up. The height of the hopper can be adjusted by the lifting driving mechanism, so as to adjust the distance between the output end of the hopper and the surface of the first conveying belt, thereby adjusting the output amount of the product. The product is poured into the hopper, and the product in the hopper falls on the first conveying belt under the driving of the vibration motor. The first conveying belt and the second conveying belt are driven to rotate by the first transmission mechanism and the second transmission mechanism respectively. The product on the first conveying belt will flow into the second conveying belt under the driving of the first conveying belt. The distance between the height-limiting baffle and the surface of the second conveying belt can be adjusted by the height-limiting cylinder according to the required number of layers of the product, so as to realize the passing of single-layer product or product of other specified layers. When single-layer product needs to be arranged, the swing driving mechanism does not work. When the product on the second conveying belt flows through the height-limiting baffle, the product will pass through the gap between the height-limiting baffle and the second conveying belt in the form of single-layer spreading and be output from the output end of the second conveying belt. The product output from the second conveying belt will be arranged on the nickel mesh in the form of single layer through the Y-axis linear driving device driving the Y-axis sliding plate to move. When multi-layer product needs to be arranged, the X-axis sliding plate is reciprocatingly swung by the swing driving mechanism. The second conveying belt will swing back and forth along the X-axis direction in the process of rotation. The product on the second conveying belt will be spread flat under the action of inertia. When the product on the second conveying belt flows through the height-limiting baffle, the product will pass through the gap between the height-limiting baffle and the second conveying belt in the form of spreading of the specified number of layers and be output from the output end of the second conveying belt. The product output from the second conveying belt will be arranged on the nickel mesh in the form of the specified number of layers through the Y-axis linear driving device driving the Y-axis sliding plate to move. The device has the functions of single-layer arrangement and multi-layer arrangement, is flexible and variable in use, can save the production enterprise equipment investment cost, and realizes the automation of product arrangement. BRIEF DESCRIPTION OF DRAWINGS
[0013] Figure 1 The schematic diagram of the shape structure of the present application is illustrated.
[0014] Figure 2 The sectional view of the present application in the Y-axis direction is illustrated.
[0015] Figure 3 The sectional view of the present application in the X-axis direction is illustrated.
[0016] Figure 4 The structural schematic diagram of the swing conveying mechanism of the present application is illustrated.
[0017] Figure 5 The structural schematic diagram of the arrangement mechanism of the present application is illustrated.
[0018] Figure 6 The structural schematic diagram of the middle A part of the present application is illustrated. Figure 2
[0019] BRIEF DESCRIPTION OF DRAWINGS: lifting hopper mechanism 1, first gantry 10, lifting driving mechanism 11, lifting plate 110, support rod 111, support plate 112, first servo motor 113, guide sleeve 114, hopper 12, ear plate 120, vibration motor 13, quick clamp 14, first conveying mechanism 2, first transmission mechanism 20, first transmission bracket 200, first driving shaft 201, first driven shaft 202, second servo motor 203, first side material blocking plate 210, first guide block 211, first guide slope 211a, first conveying belt 21, swing conveying mechanism 3, base 30, second gantry 31, X-axis sliding plate 32, swing driving mechanism 33, fourth servo motor 330, eccentric wheel 331, connecting rod 332, second transmission mechanism 34, second transmission bracket 340, second driving shaft 341, second driven shaft 342, third servo motor 343, second conveying belt 35, second side material blocking plate 350, second guide block 351, second guide slope 351a, guide wheel mechanism 36, vertical seat 360, rotating seat 361, roller 362, height limiting mechanism 4, bracket 40, height limiting cylinder 41, height limiting baffle 42, arrangement mechanism 5, Y-axis linear driving device 50, Y-axis sliding plate 51, material carrying assembly 52, lifting cylinder 520, weighing sensor 521, supporting plate 522, air gripper 53, clamping plate 54, side plate 540, top plate 541, powder scraping mechanism 6, storage groove 60, powder storage drawer 61, scraping handle 62, scraping plate 63, material blocking mechanism 7, rotating cylinder 70, rotating shaft 71, material blocking plate 72. DETAILED DESCRIPTION
[0020] In order to make the objects, technical solutions and advantages of the embodiments of the present disclosure clearer, the technical solutions of the embodiments of the present disclosure will be described clearly and completely below with reference to the drawings of the embodiments of the present disclosure. Obviously, the described embodiments are part of the embodiments of the present disclosure, rather than all the embodiments of the present disclosure.
[0021] Based on the described embodiments of the present disclosure, all other embodiments obtained by those of ordinary skill in the art without creative labor fall within the scope of protection of the present disclosure.
[0022] REFERENCE Figures 1-6 .
[0023] The application provides a ceramic capacitor arrangement device, which comprises a lifting hopper mechanism 1, a first conveying mechanism 2, a swinging conveying mechanism 3, a height limiting mechanism 4 and an arrangement mechanism 5. The lifting hopper mechanism 1 comprises a first gantry 10, a lifting driving mechanism 11 arranged on the first gantry 10, a hopper 12 in driving connection with the lifting driving mechanism 11, and a vibration motor 13 arranged on the hopper 12. The first conveying mechanism 2 comprises a first transmission mechanism 20 arranged on the first gantry 10 and a first conveying belt 21, and the first transmission mechanism 20 is used for driving the first conveying belt 21 to operate. The swinging conveying mechanism 3 comprises a base 30, a second gantry 31 arranged on the base 30, an X-axis sliding plate 32 in sliding connection with the second gantry 31 along an X-axis direction, a swinging driving mechanism 33 arranged on the second gantry 31 and used for driving the X-axis sliding plate 32 to swing back and forth, a second transmission mechanism 34 arranged on the X-axis sliding plate 32, and a second conveying belt 35, and the second transmission mechanism 34 is used for driving the second conveying belt 35 to operate. The height limiting mechanism 4 comprises a support 40 arranged on one side of the second transmission mechanism 34, a height limiting cylinder 41 arranged on the support 40, and a height limiting baffle 42 in driving connection with the height limiting cylinder 41. The arrangement mechanism 5 comprises a Y-axis linear driving device 50, a Y-axis sliding plate 51 in driving connection with the Y-axis linear driving device 50, a clamping mechanism, and a plurality of load carrying assemblies 52 arranged on the Y-axis sliding plate 51 in parallel, wherein each load carrying assembly 52 comprises a lifting cylinder 520 arranged on the Y-axis sliding plate 51, a weighing sensor 521 in driving connection with the lifting cylinder 520, and a supporting plate 522 connected with the weighing sensor 521. The clamping mechanism comprises a gas claw 53 arranged on the Y-axis sliding plate 51, and two oppositely arranged clamping plates 54, wherein each clamping plate 54 comprises a side plate 540 and a top plate 541 connected with the top of the side plate 540, and the two clamping plates 54 are respectively arranged on two clamping claws of the gas claw 53.
[0024] The working principle is that initially, the two clamping plates 54 are in an open state, after a nickel mesh is placed on each supporting plate 522, the two clamping plates 54 are driven to be tightened by the air claw 53, the two sides of the nickel mesh are clamped and limited by the side plates 540 of the two clamping plates 54, then the supporting plate 522 is driven to be lifted by the lifting cylinder 520, the two side edges of the nickel mesh will be clamped between the top plate 541 and the edge of the supporting plate 522, so as to avoid that the side edges of the nickel mesh float up. The height of the hopper 12 can be adjusted by the lifting driving mechanism 11, so as to adjust the distance between the output end of the hopper 12 and the surface of the first conveying belt 21, thereby adjusting the output amount of the products. The products in the hopper 12 fall on the first conveying belt 21 under the driving of the vibration motor 13, the first conveying belt 21 and the second conveying belt 35 are driven to rotate by the first transmission mechanism 20 and the second transmission mechanism 34 respectively, the products on the first conveying belt 21 will flow into the second conveying belt 35 under the driving of the first conveying belt 21, according to the required product layer number, the distance between the height-limiting baffle 42 and the surface of the second conveying belt 35 is adjusted by the height-limiting cylinder 41, so as to realize the passing of single-layer products or products with other specified layer numbers. When it is required to arrange single-layer products, the swing driving mechanism 33 does not work, when the products on the second conveying belt 35 flow through the height-limiting baffle 42, the products will pass through the gap between the height-limiting baffle 42 and the second conveying belt 35 in the form of single-layer spreading and be output from the output end of the second conveying belt 35, the products output from the second conveying belt 35 will be arranged on the nickel mesh in the form of single layer through the movement of the Y-axis sliding plate 51 driven by the Y-axis linear driving device 50; when it is required to arrange multi-layer products, the X-axis sliding plate 32 is reciprocated by the swing driving mechanism 33, the second conveying belt 35 will reciprocate along the X-axis direction in the process of rotation, the products on the second conveying belt 35 will spread flat under the action of inertia, when the products on the second conveying belt 35 flow through the height-limiting baffle 42, the products will pass through the gap between the height-limiting baffle 42 and the second conveying belt 35 in the form of spreading with a specified layer number and be output from the output end of the second conveying belt 35, the products output from the second conveying belt 35 will be arranged on the nickel mesh in the form of a specified layer number through the movement of the Y-axis sliding plate 51 driven by the Y-axis linear driving device 50. The device has the functions of single-layer arrangement and multi-layer arrangement, is flexible and variable in use, can save the equipment investment cost of production enterprises and realizes the automation of product arrangement.
[0025] Based on the above embodiment, the lifting driving mechanism 11 comprises a lifting plate 110, support rods 111 connected to the four sides of the top of the lifting plate 110, two support plates 112, a first servo motor 113 arranged on the first gantry 10 and connected to the lifting plate 110 through a lead screw, a guide sleeve 114 connected to the support rod 111 arranged on the first gantry 10, the support plate 112 is fixedly connected between the top ends of the adjacent two support rods 111, the two sides of the hopper 12 are symmetrically provided with ear plates 120, one of which is hinged to one of the support plates 112, and the other is supported on the other support plate 112, and the support plate 112 is provided with a quick clamp 14 for pressing the ear plate 120 on the support plate 112. When the height of the hopper 12 needs to be adjusted, the lifting plate 110 is driven to rise by the first servo motor 113, and the support rod 111 will move along the guide sleeve 114, which will drive the hopper 12 to rise. By opening the quick clamp 14, the hopper 12 can be turned around one side of the support plate 112, which is convenient for maintaining the first conveying mechanism 2.
[0026] Based on the above embodiment, the first transmission mechanism 20 comprises a first transmission bracket 200 fixedly connected to the first gantry 10, a first driving shaft 201 and a first driven shaft 202 rotatably connected to the two sides of the first transmission bracket 200 respectively, and a second servo motor 203 arranged on one side of the first transmission bracket 200 and drivingly connected to the first driving shaft 201, and the first conveying belt 21 is connected between the first driving shaft 201 and the first driven shaft 202; the second transmission mechanism 34 comprises a second transmission bracket 340 fixedly connected to the X-axis sliding plate 32, a second driving shaft 341 and a second driven shaft 342 rotatably connected to the two sides of the second transmission bracket 340 respectively, and a third servo motor 343 arranged on one side of the second transmission bracket 340 and drivingly connected to the second driving shaft 341, and the second conveying belt 35 is connected between the second driving shaft 341 and the second driven shaft 342, and the bracket 40 is fixedly connected to the second transmission bracket 340. By driving the first driving shaft 201 to rotate through the second servo motor 203, the first conveying belt 21 can be driven to rotate; by driving the second driving shaft 341 to rotate through the third servo motor 343, the second conveying belt 35 can be driven to rotate.
[0027] Based on the above embodiment, two first side material blocking plates 210 are symmetrically arranged on the first conveying belt 21 and fixedly connected to the first transmission bracket 200, a first guide block 211 is connected between the two first side material blocking plates 210, and a first guide inclined surface 211a is arranged on the first guide block 211; two second side material blocking plates 350 are symmetrically arranged on the second conveying belt 35 and fixedly connected to the second transmission bracket 340, a second guide block 351 is connected between the two second side material blocking plates 350, and a second guide inclined surface 351a is arranged on the second guide block 351. When the product is conveyed on the first conveying belt 21, the product is conveyed between the two first side material blocking plates 210, and the product on the first conveying belt 21 will smoothly flow along the first guide inclined surface 211a to the second conveying belt 35, and when the product is conveyed on the second conveying belt 35, the product is conveyed between the two second side material blocking plates 350, and the product on the second conveying belt 35 will smoothly flow along the second guide inclined surface 351a to the nickel mesh.
[0028] Based on the above embodiment, the top of the first gantry 10 is provided with a powder scraping mechanism 6, the powder scraping mechanism 6 comprises a storage groove 60 fixedly connected to the top of the first gantry 10, a powder storage drawer 61 movably arranged on the storage groove 60 and matched with the storage groove 60, a scraper 62 fixedly connected to the top of the first gantry 10 and located on the upper side of the powder storage drawer 61, and a scraping plate 63 detachably connected to the scraper 62 and abutting against the surface of the first conveying belt 21; one side of the bracket 40 is provided with a material blocking mechanism 7, the material blocking mechanism 7 comprises a rotary cylinder 70 arranged on one side of the bracket 40, a rotating shaft 71 drivingly connected with the rotary cylinder 70, and a material blocking plate 72 detachably connected to the rotating shaft 71. During the operation of the first conveying belt 21, the powder attached to the surface of the first conveying belt 21 will be scraped off by the scraping plate 63, the scraped-off powder will fall into the powder storage drawer 61, the powder storage drawer 61 can be taken out of the storage groove 60, and the powder in the powder storage drawer 61 can be treated. When it is necessary to stop the output of the product on the second conveying belt 35, the rotating shaft 71 is driven to rotate by the rotary cylinder 70, so that the material blocking plate 72 abuts against the second guide inclined surface 351a, and the product on the second guide inclined surface 351a can be intercepted.
[0029] Based on the above embodiment, the first conveying belt 21 and the second conveying belt 35 are steel belts. The surface of the steel belt is relatively smooth and has high wear resistance, which can reduce the attachment of powder on the first conveying belt 21 and the second conveying belt 35.
[0030] Based on the above embodiment, the swing driving mechanism 33 comprises a fourth servo motor 330 arranged on the second gantry 31, an eccentric wheel 331 connected to the output shaft of the fourth servo motor 330, and a connecting rod 332, one end of which is hinged to the eccentric wheel 331 and the other end of which is hinged to the X-axis sliding plate 32. By driving the eccentric wheel 331 to rotate through the fourth servo motor 330, the connecting rod 332 is driven to reciprocate, and the X-axis sliding plate 32 is driven to reciprocate along the X-axis direction, thereby driving the second conveying belt 35 to reciprocate and swing.
[0031] Based on the above embodiment, the swing conveying mechanism 3 further comprises a guide wheel mechanism 36, which comprises a vertical seat 360, a rotating seat 361 arranged on the top of the vertical seat 360, and a roller 362 rotatably connected to the rotating seat 361, and the bottom of the second transmission bracket 340 is supported on the roller 362. When the second transmission bracket 340 is swung along the X-axis direction by the swing driving mechanism 33, the roller 362 is driven to rotate, thereby playing a supporting and guiding role.
[0032] The above embodiments only describe the preferred embodiments of the present application, and do not limit the scope of the present application. Without departing from the design spirit of the present application, various modifications and improvements to the technical solutions of the present application made by ordinary engineering technicians in the art shall fall within the protection scope determined by the claims of the present application.
Claims
1. A ceramic capacitor array device, characterized by, The device comprises a lifting hopper mechanism, a first conveying mechanism, a swing conveying mechanism, a height limiting mechanism and an arrangement mechanism; the lifting hopper mechanism comprises a first gantry, a lifting driving mechanism arranged on the first gantry, a hopper in driving connection with the lifting driving mechanism, and a vibration motor arranged on the hopper; the first conveying mechanism comprises a first transmission mechanism arranged on the first gantry and a first conveying belt, the first transmission mechanism being used to drive the first conveying belt to operate; the swing conveying mechanism comprises a base, a second gantry arranged on the base, an X-axis sliding plate in sliding connection with the second gantry along an X-axis direction, a swing driving mechanism arranged on the second gantry and used to drive the X-axis sliding plate to swing back and forth, a second transmission mechanism arranged on the X-axis sliding plate, and a second conveying belt, the second transmission mechanism being used to drive the second conveying belt to operate; the height limiting mechanism comprises a support arranged on one side of the second transmission mechanism, a height limiting cylinder arranged on the support, and a height limiting baffle in driving connection with the height limiting cylinder; the arrangement mechanism comprises a Y-axis linear driving device, a Y-axis sliding plate in driving connection with the Y-axis linear driving device, a clamping mechanism, and a plurality of load carrying assemblies arranged on the Y-axis sliding plate side by side, the load carrying assembly comprising a lifting cylinder arranged on the Y-axis sliding plate, a weighing sensor in driving connection with the lifting cylinder, and a supporting plate connected to the weighing sensor, the clamping mechanism comprising a gas claw arranged on the Y-axis sliding plate and two oppositely arranged clamping plates, the clamping plate comprising a side plate and a top plate connected to the top of the side plate, and the two clamping plates being respectively mounted on two clamping jaws of the gas claw.
2. A ceramic capacitor array device as defined in claim 1, wherein, The lifting driving mechanism comprises a lifting plate, support rods connected to the top of four sides of the lifting plate, two support plates, a first servo motor arranged on the first gantry and connected to the lifting plate through a lead screw, a guide sleeve connected to the support rods arranged on the first gantry, the support plates being fixedly connected between the top ends of two adjacent support rods, two side plates arranged symmetrically on two sides of the hopper, one of the side plates being hinged to one of the support plates, and the other side plate being supported on the other support plate, and a quick clamp arranged on the support plate and used to press the side plate against the support plate.
3. A ceramic capacitor array device as defined in claim 2, wherein, The first transmission mechanism comprises a first transmission support fixedly connected to the first gantry, a first driving shaft and a first driven shaft rotatably connected to two sides of the first transmission support respectively, and a second servo motor arranged on one side of the first transmission support and drivingly connected to the first driving shaft, the first conveying belt being connected between the first driving shaft and the first driven shaft; the second transmission mechanism comprises a second transmission support fixedly connected to the X-axis sliding plate, a second driving shaft and a second driven shaft rotatably connected to two sides of the second transmission support respectively, and a third servo motor arranged on one side of the second transmission support and drivingly connected to the second driving shaft, the second conveying belt being connected between the second driving shaft and the second driven shaft, and the support being fixedly connected to the second transmission support.
4. A ceramic capacitor array device as defined in claim 3, wherein, Two first side material blocking plates fixedly connected to the first transmission support are symmetrically arranged on the first conveying belt, and a first guide block is connected between the two first side material blocking plates, the first guide block being provided with a first guide inclined surface; two second side material blocking plates fixedly connected to the second transmission support are symmetrically arranged on the second conveying belt, and a second guide block is connected between the two second side material blocking plates, the second guide block being provided with a second guide inclined surface.
5. A ceramic capacitor array device as defined in claim 4, wherein, The top of the first gantry is provided with a powder scraping mechanism, the powder scraping mechanism comprising a receiving groove fixedly connected to the top of the first gantry, a powder storage drawer movably arranged on the receiving groove and matched with the receiving groove, a scraper fixedly connected to the top of the first gantry and located above the powder storage drawer, and a scraper plate detachably connected to the scraper, the scraper plate abutting against the surface of the first conveying belt; one side of the support is provided with a material blocking mechanism, the material blocking mechanism comprising a rotary cylinder arranged on one side of the support, a rotating shaft drivingly connected to the rotary cylinder, and a material blocking plate detachably connected to the rotating shaft.
6. A ceramic capacitor array device as defined in claim 5, wherein, The first conveying belt and the second conveying belt are both steel belts.
7. A ceramic capacitor array device as defined in claim 6, wherein, The swing driving mechanism comprises a fourth servo motor arranged on the second gantry, an eccentric wheel connected to the output shaft of the fourth servo motor, and a connecting rod, one end of the connecting rod being hingedly connected to the eccentric wheel, and the other end of the connecting rod being hingedly connected to the X-axis sliding plate.
8. A ceramic capacitor array device as defined in claim 7, wherein, The swing conveying mechanism further comprises a guide wheel mechanism, the guide wheel mechanism comprising a vertical seat, a rotating seat arranged on the top of the vertical seat, and a roller rotatably connected to the rotating seat, the bottom of the second transmission support being supported on the roller.