Horizontal conveying device for aluminum electrolytic capacitor feeding
By installing a material return component in the aluminum electrolytic capacitor feeding device, the problem of material blockage caused by inverted capacitors was solved, realizing automated recycling and directional conveying, and improving feeding efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-26
- Publication Date
- 2026-03-24
AI Technical Summary
In existing aluminum electrolytic capacitor feeding devices, inverting the capacitors during the conveying process can easily cause material blockage, and the recycling process increases labor intensity and affects feeding efficiency.
A return material component is installed at the outlet of the inverted capacitor, including a dual-station alternating receiving mechanism and a return material guiding assembly, to realize the automatic recycling and reorientation of the inverted capacitor to the vibratory feeder.
It reduced labor intensity, improved automation, ensured efficient feeding of capacitors, and avoided material blockage.
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Figure CN224030028U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to capacitor production equipment technical field especially relates to aluminum electrolytic capacitor feed's flat sending device. BACKGROUND
[0002] Aluminum electrolytic capacitor feed's flat sending device is a kind of equipment for the directional conveying capacitor on automatic production line, its core function is to arrange the disordered capacitor in order and send to the specified station smoothly, including vibration tray and flat sending track.Vibration tray's discharge port is located in the upper end middle part position, and capacitor can be poured into discharge port by artificial, and the upper end height of discharge port is generally higher than the setting of flat sending track, vibration tray carries out directional arrangement, and capacitor moves on spiral track and gradually separates by the high-frequency micro-amplitude vibration of vibration tray, and the capacitor is removed by the baffle, gap or photoelectric sensor on track according to the shape characteristics (such as cylindrical, pin direction), to ensure that only the capacitor in correct direction enters flat sending track;Flat sending track transmission carries out smooth transmission, and vibration tray discharge port is connected with flat sending track (usually linear track).
[0003] The conveying mode of aluminum electrolytic capacitor feed flat sending device is that capacitor orientation is arranged by vibration tray first, and then capacitor in vibration tray is pushed into flat sending device.Although most capacitors can be arranged neatly by vibration tray, some capacitors may be inverted and pushed into flat sending track, which may cause capacitor to be blocked in flat sending device and cause material blocking.
[0004] In the prior art, the publication number CN206947187U discloses an aluminum electrolytic capacitor equipment feed flat sending anti-blocking device.The device includes a vibrating base, a flat sending track on the vibrating base, two parallel track bottom plates, a strip-shaped track movable baffle on each track bottom plate, a bottom opening on one track bottom plate, a side opening on the track movable baffle corresponding to the bottom opening, and a capacitor outlet formed by the bottom opening and the side opening.The inverted capacitor will fall out of the capacitor outlet when it enters the discharge opening under the vibration of the vibrating base, which can effectively prevent the inverted capacitor from continuing to feed and avoid flat sending blocking.However, the capacitors discharged from the inverted capacitor outlet are only collected in a collecting barrel, and then the collected capacitors need to be poured into the vibration tray manually, which increases the labor intensity and affects the efficiency of capacitor feeding and flat sending to some extent. UTILITY MODEL CONTENTS
[0005] The utility model discloses a flat sending device of aluminium electrolytic capacitor feeding aims at the prior art's insufficient, to solve the technical problem in background art.
[0006] The utility model provides the following technical scheme:
[0007] The utility model discloses a flat sending device of aluminium electrolytic capacitor feeding, including the vibration disc main part, the vibration disc main part includes the discharge port, the discharge port position of vibration disc main part is provided with flat sending track main part, the feed end side bottom of flat sending track main part is provided with the inverted capacitor discharge port, still includes the back material part, the back material part includes the double position alternate material receiving mechanism for recycling the capacitor discharged from the inverted capacitor discharge port and the back material guide assembly for conveying the capacitor to the discharge port, the double position alternate material receiving mechanism includes the first position recovery bin and the second position recovery bin of alternate with inverted capacitor discharge port and is connected with the rectangular frame front and rear two inner walls through the double position switching assembly, and the first position recovery bin, second position recovery bin are symmetrically arranged on the movable seat.
[0008] Preferably, the double-position alternate material receiving mechanism further comprises a horizontally arranged rectangular frame, a movable seat is horizontally arranged in the inner circle of the rectangular frame, the front and rear ends of the movable seat are respectively connected with the front and rear inner walls of the rectangular frame through a double-position switching assembly, and the first position recovery bin and the second position recovery bin are symmetrically arranged on the movable seat.
[0009] Preferably, the first position recovery bin comprises a first bin body, the first bin body is vertically arranged, a first push plate is arranged at the lower end of the inside of the first bin body, a first telescopic cylinder for longitudinally moving the first push plate is vertically arranged upwards on the lower end surface of the first bin body, a first material receiving hopper is arranged on one side of the first bin body close to the flat sending track main body, the first material receiving hopper is located below the inverted capacitor discharge port, a first discharge port is arranged on one side of the first bin body away from the flat sending track main body, and the first discharge port is arranged higher than the first material receiving hopper.
[0010] Preferably, the second position recovery bin comprises a second bin body, the second bin body is vertically arranged, a second push plate is arranged at the lower end of the inside of the second bin body, a second telescopic cylinder for longitudinally moving the second push plate is vertically arranged upwards on the lower end surface of the second bin body, a second material receiving hopper is arranged on one side of the second bin body close to the flat sending track main body, the second material receiving hopper is located below the inverted capacitor discharge port, a second discharge port is arranged on one side of the second bin body away from the flat sending track main body, and the second discharge port is arranged higher than the second material receiving hopper.
[0011] Preferably, the structure and size of the second work position recovery bin are same as the structure and size of the first work position recovery bin, and the first receiving hopper and the second receiving hopper are arranged side by side in contact, and the first discharge port and the second discharge port are located at the same height.
[0012] Preferably, the first receiving hopper and the second receiving hopper are arranged at an angle, and one end of the first receiving hopper and the second receiving hopper close to the inverted capacitor discharge port is a high end.
[0013] Preferably, the material recovery guide assembly comprises a guide box, first and second material inlet ports symmetrically arranged on one side of the guide box close to an upper end of the double work position alternate receiving mechanism and alternatingly communicated with the first and second discharge ports, a guide plate arranged at an angle at a lower end of the guide box, and a material recovery hopper arranged at a lower end of one side of the guide box close to the vibration disc main body and used for guiding the capacitor to the discharge port; a left front corner of the guide plate is a low end arranged at an angle, a right rear corner of the guide plate is a high end arranged at an angle, and the material recovery hopper is arranged at an angle, and one end of the material recovery hopper close to the discharge port is a low end.
[0014] Preferably, the double work position switching assembly comprises grooves arranged on front and back inner walls of the rectangular frame, the length direction of the grooves is arranged along the length direction of the rectangular frame, the lower inner wall of the groove is provided with stroke limit members connected to front and back end faces of the movable seat along the length direction of the groove, and the groove is further provided with stroke driving members used for reciprocating movement of the movable seat.
[0015] Preferably, the stroke limit members comprise slide rails connected to the grooves, a plurality of sliding blocks are adapted to the slide rails, and the front and back end faces of the movable seat are connected to the plurality of sliding blocks through connecting blocks.
[0016] Preferably, the stroke driving members comprise a linear driving mechanism fixed on the rectangular frame and a connecting plate fixed on the bottom of the first bin body and the second bin body, and the connecting plate is mounted on the linear driving mechanism.
[0017] Compared with the prior art, the utility model has the following beneficial effects:
[0018] The aluminum electrolytic capacitor feeding flat conveying device of the utility model, through setting the material recovery component near the inverted capacitor discharge port, the material recovery component comprises a double work position alternate receiving mechanism used for recovering the capacitor discharged from the inverted capacitor discharge port and a material recovery guide assembly used for conveying the capacitor to the discharge port, so that the recovered capacitor is directly conveyed into the vibration disc, the capacitor is re-arranged and conveyed, the labor intensity is reduced, the automation degree is improved, and the feeding flat conveying efficiency of the capacitor is ensured. BRIEF DESCRIPTION OF DRAWINGS
[0019] In order to more clearly illustrate the technical scheme of the embodiments of the present application, the drawings used in the embodiments will be briefly introduced as follows, and it should be understood that the following drawings only show some embodiments of the present application, and should not be regarded as limiting the scope, and for those skilled in the art, other related drawings can be obtained without creative labor on the premise of the drawings.
[0020] Figure 1 It is a top view schematic diagram of the present application.
[0021] Figure 2 It is a schematic diagram of the material return component structure of the present application.
[0022] Figure 3 It is a schematic diagram of the double-station alternating material receiving mechanism structure of the present application.
[0023] Figure 4 It is a schematic diagram of the first-station recycling bin structure of the present application.
[0024] Figure 5 It is a schematic diagram of the material return guiding assembly structure of the present application. Figure 4
[0025] Figure 6 It is a schematic diagram of the material return guiding assembly structure of the present application.
[0026] In the figure: 1, vibration disc main body; 2, discharging port; 3, flat conveying track main body; 4, inverted capacitor discharge port; 5, material return component; 6, double-station alternating material receiving mechanism; 61, rectangular frame; 62, movable seat; 63, double-station switching assembly; 631, groove; 632, stroke limiting assembly; 633, connecting block; 634, connecting plate; 64, first-station recycling bin; 641, first bin body; 642, first push plate; 643, first telescopic cylinder; 644, first material receiving hopper; 645, first discharging port; 65, second-station recycling bin; 7, material return guiding assembly; 71, material guiding box; 72, first material inlet; 73, second material inlet; 74, material guiding plate; 75, material return hopper. DETAILED DESCRIPTION
[0027] In order to make the purpose, technical scheme and advantages of the embodiments of the present application more clear, the technical scheme in the embodiments of the present application will be described clearly and completely in combination with the drawings in the embodiments of the present application, and obviously, the described embodiments are only some of the embodiments of the present application, but not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0028] The following detailed description of the embodiments of the application provided in the accompanying drawings is not intended to limit the scope of the application claimed, but merely represents the selected embodiments of the application. Based on the embodiments of the application, all other embodiments obtained by those of ordinary skill in the art without creative labor fall within the scope of the application.
[0029] The utility model provides a flat sending device of aluminium electrolytic capacitor feeding, reference Figures 1-6 , including vibration disc main part 1, vibration disc main part 1 includes discharge port 2, the discharge port position of vibration disc main part 1 is provided with flat track main body 3, the feed end side bottom of flat track main body 3 is provided with inverted capacitor discharge port 4, still including back material part 5, back material part 5 includes the double-station alternate material receiving mechanism 6 for recycling capacitor discharged from inverted capacitor discharge port 4 and the back material guide assembly 7 for conveying capacitor to discharge port 2, the double-station alternate material receiving mechanism 6 includes the first station recovery bin 64 and the second station recovery bin 65 of alternate and inverted capacitor discharge port 4 connection, the first station recovery bin 64, the second station recovery bin 65 alternate to the inside conveying capacitor of back material guide assembly 7. The utility model discloses a back material part 5 is set up near inverted capacitor discharge port 4, back material part 5 includes the double-station alternate material receiving mechanism 6 for recycling capacitor discharged from inverted capacitor discharge port 4 and the back material guide assembly 7 for conveying capacitor to discharge port 2, to realize the direct conveying of recycled capacitor to vibration disc main part 1, make capacitor reorienting arrangement and conveying, reduce the labor intensity, improve the degree of automation, guarantee capacitor's feeding flat sending efficiency.
[0030] The setting position of the inverted capacitor discharge outlet 4 has been disclosed by the aluminum electrolytic capacitor equipment feeding flat conveying anti-blocking device with publication number CN206947187U. That is, the flat conveying track includes two parallel track bottom plates, and a strip-shaped track movable baffle is vertically arranged on each track bottom plate. One of the track bottom plates is provided with a bottom opening, and the track movable baffle on the track bottom plate is provided with a side opening corresponding to the bottom opening. The bottom opening and the side opening form a discharge opening (i.e., the inverted capacitor discharge outlet 4 of the device) for the inverted capacitor. Therefore, when the inverted capacitor enters the discharge opening position under the vibration of the vibration base, the inverted capacitor is not clamped by the two track movable baffles from the side, and the inverted capacitor will fall out of the discharge opening formed by the bottom opening and the side opening. Under normal circumstances, the capacitor enters the flat conveying track in an upright state from the feeding end, is limited by the two track movable baffles, and vibrates and moves in the direction of the discharge end without being affected by the discharge opening. The inverted capacitor loses the limitation of one of the track movable baffles and falls out of the flat conveying track from the discharge opening formed by the bottom opening and the side opening. The specific structure and size of the discharge opening are the prior art, and will not be described here.
[0031] Reference Figure 4 , Figure 5 The double-station alternating material receiving mechanism 6 further includes a horizontally arranged rectangular frame 61, and a movable seat 62 is horizontally arranged in the inner circle of the rectangular frame 61. The front and rear ends of the movable seat 62 are connected to the front and rear inner walls of the rectangular frame 61 through a double-station switching assembly 63, and the first-station recovery bin 64 and the second-station recovery bin 65 are symmetrically arranged on the movable seat 62. The length direction of the rectangular frame 61 is arranged along the length direction of the flat conveying track main body 3, the movable seat 62 can move left and right in the rectangular frame 61, and when the movable seat 62 is located at the left end of the inner circle of the rectangular frame 61, the second-station recovery bin 65 is used to recover the capacitor that slides out of the inverted capacitor discharge outlet 4, as shown in FIG. 6B. When the movable seat 62 is located at the right end of the inner circle of the rectangular frame 61, the first-station recovery bin 64 is used to recover the capacitor that slides out of the inverted capacitor discharge outlet 4. Figure 2
[0032] Reference Figure 4 , Figure 5 The first station recycling bin 64 comprises a first bin body 641 vertically arranged, the inner lower end of the first bin body 641 is provided with a first push plate 642, the lower end surface of the first bin body 641 is vertically upwardly provided with a first telescopic cylinder 643 for moving the first push plate 642 up and down, the side of the first bin body 641 close to the flat track main body 3 is provided with a first receiving hopper 644, the first receiving hopper 644 is located below the inverted capacitor discharge port 4, the side of the first bin body 641 away from the flat track main body 3 is provided with a first discharge port 645, and the first discharge port 645 is higher than the first receiving hopper 644. The outer side surface of the first push plate 642 is in contact with the inner wall of the first bin body 641. The upper end surface of the first push plate 642 is an inclined surface, one end of the upper end surface of the first push plate 642 close to the first receiving hopper 644 is a high end, and the other end of the upper end surface of the first push plate 642 close to the first discharge port 645 is a low end, and the high end of the first push plate 642 is vertically upwardly provided with a surrounding plate. The upper end surface of the first push plate 642 is further provided with a buffer rubber layer. When the movable seat 62 is located at the right end of the inner circle of the rectangular frame 61, the first station recycling bin 64 is used to recycle the capacitors sliding out of the inverted capacitor discharge port 4 (at this time, the second station recycling bin is used to deliver the recycled capacitors to the inside of the guide box 71), the capacitors enter the inside of the first bin body 641 through the first receiving hopper 644 and fall into the inclined surface area of the first push plate 642, and the number of collected capacitors is suggested to be not more than the highest position of the surrounding plate. After the collection is completed, the movable seat 62 moves left, the first discharge port 645 is communicated with the first feeding port 72, then the first push plate 642 is pushed upward to the first discharge port 645 through the elongation of the first telescopic cylinder 643, so that the capacitors in the first bin body 641 slide into the guide box 71 through the first discharge port 645 and the first feeding port 72, and are delivered to the discharge port 2 position through the guide plate 74 and the return hopper 75.
[0033] Reference Figure 3The second station recovery bin 65 is identical in structure and size to the first station recovery bin 64. The second station recovery bin 65 comprises a vertically arranged second bin body, the inner lower end of the second bin body is provided with a second push plate, the lower end face of the second bin body is vertically upwardly provided with a second telescopic cylinder for moving the second push plate up and down, the side face of the second bin body close to the flat track main body 3 is provided with a second receiving hopper, the second receiving hopper is located below the inverted capacitor discharge port 4, the side face of the second bin body away from the flat track main body 3 is provided with a second discharge port, and the second discharge port is higher than the second receiving hopper. The outer side face of the second push plate is in contact with the inner wall of the second bin body. The high end position of the second push plate is also vertically upwardly provided with a second surrounding plate. The upper end face of the second push plate is also provided with a buffer rubber layer. When the movable seat 62 is located at the left end of the inner circle of the rectangular frame 61, the second station recovery bin is used to recover the capacitor sliding out of the inverted capacitor discharge port 4 (at this time, the first station recovery bin is used to deliver the recovered capacitor to the inside of the guide box 71), the capacitor enters the inside of the second bin body through the second receiving hopper and falls into the inclined area of the second push plate. After the collection is completed, the right movement of the movable seat 62 (at this time, the first station recovery bin starts to recover the capacitor) is realized, the second discharge port and the second inlet 73 are communicated, the second push plate is pushed to the second discharge port through the elongation of the second telescopic cylinder, so that the capacitor in the inside of the second bin body slides into the guide box 71 through the second discharge port and the second inlet 73, and is delivered to the discharge port 2 position through the guide plate 74 and the return hopper 75.
[0034] Reference Figures 3-5 The structure and size of the second station recovery bin 65 are identical to those of the first station recovery bin 64, and the first receiving hopper 644 and the second receiving hopper are arranged side by side, and the first discharge port 645 and the second discharge port are located at the same height.
[0035] Reference Figures 3-5 The first receiving hopper 644 and the second receiving hopper are arranged at an angle, and the high end of the first receiving hopper 644 and the second receiving hopper close to the inverted capacitor discharge port 4 is the high end. It is convenient for the capacitor to slide into the first bin body or the second bin body through the first receiving hopper 644 or the second receiving hopper.
[0036] Reference Figure 1 , Figure 2 , Figure 4 , Figure 6The return material guide assembly 7 comprises a guide box 71 which is symmetrically arranged on the upper end of one side of the double-position alternate material receiving mechanism 6, and a first inlet 72 and a second inlet 73 which are alternately communicated with the first outlet 645 and the second outlet 646, and a guide plate 74 which is arranged on the lower end of the inside of the guide box 71, and a return hopper 75 which is arranged on the lower end of one side of the vibration disc main body 1 and is used for returning the capacitors to the discharge port 2.
[0037] Reference Figures 4-6 The double-position switching assembly 63 comprises grooves 631 which are arranged on the front and back inner walls of the rectangular frame 61, the length direction of the grooves 631 is arranged along the length direction of the rectangular frame 61, the lower inner wall of the groove 631 is provided with stroke limiters 632 which are connected with the front and back end faces of the movable seat 62 along the length direction of the groove 631, and the inside of the groove 631 is further provided with stroke driving members which are used for reciprocating the movable seat 62. The stroke limiters 632 comprise slide rails which are connected with the lower inner wall of the groove 631, and a plurality of sliding blocks which are adapted to the slide rails, and the front and back end faces of the movable seat 62 are connected with the sliding blocks through connecting blocks 633.
[0038] In the description of the present application, it should be explained that the terms "comprise", "contain" or any other variant thereof are intended to cover the non-exclusive inclusion, so that the process, method, article or device which comprises a series of elements not only includes those elements, but also includes other elements which are not explicitly listed, or includes the elements which are inherent to such process, method, article or device.
[0039] Further, in the description of the present application, the terms "upper", "lower", "front", "back", "left", "right", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present application.
[0040] On the other hand, it should be noted that unless otherwise explicitly specified and limited, the terms "provided", "mounted", "connected", "linked" should be broadly understood, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be rotatably connected, or it can be indirectly connected through an intermediate medium, or it can be connected inside two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0041] The above is only a preferred embodiment of the present application, but the protection scope of the present application is not limited thereto, and any person skilled in the art can make equivalent replacement or change according to the technical scheme and inventive concept of the present application within the technical range disclosed by the present application, which should be covered within the protection scope of the present application.
Claims
1. An aluminum electrolytic capacitor feeding and conveying device, comprising a vibrating disc main body (1), the vibrating disc main body (1) comprising a discharging port (2), a feeding and conveying track main body (3) being arranged at the discharging port position of the vibrating disc main body (1), an inverted capacitor discharging port (4) being arranged at the bottom of the feeding end side surface of the feeding and conveying track main body (3), characterized in that: The device also comprises a return material component (5) which comprises a double-position alternate receiving mechanism (6) for recovering the inverted capacitors discharged from the inverted capacitor discharge outlet (4) and a return material guide assembly (7) for conveying the capacitors to the discharge port (2), the double-position alternate receiving mechanism (6) comprises a first-position recovery bin (64) and a second-position recovery bin (65) which are alternately connected to the inverted capacitor discharge outlet (4), and the first-position recovery bin (64) and the second-position recovery bin (65) alternately convey the capacitors to the inside of the return material guide assembly (7).
2. The flat feed apparatus for feeding of aluminum electrolytic capacitors according to claim 1, characterized in that, The double-position alternate receiving mechanism (6) further comprises a horizontally arranged rectangular frame (61), and a movable seat (62) is arranged horizontally in the inner ring of the rectangular frame (61), the front and rear ends of the movable seat (62) are connected to the front and rear inner walls of the rectangular frame (61) through a double-position switching assembly (63), and the first-position recovery bin (64) and the second-position recovery bin (65) are symmetrically arranged on the movable seat (62).
3. The flat feed apparatus for feeding an aluminum electrolytic capacitor according to claim 2, wherein The first-position recovery bin (64) comprises a first bin body (641), the first bin body (641) is vertically arranged, a first push plate (642) is arranged at the lower end of the inside of the first bin body (641), a first telescopic cylinder (643) for longitudinally moving the first push plate (642) is vertically arranged upward on the lower end surface of the first bin body (641), a first receiving hopper (644) is arranged on the side of the first bin body (641) close to the flat track main body (3), the first receiving hopper (644) is located below the inverted capacitor discharge outlet (4), a first discharge port (645) is arranged on the side of the first bin body (641) away from the flat track main body (3), and the first discharge port (645) is arranged higher than the first receiving hopper (644).
4. The flat feed apparatus for feeding an aluminum electrolytic capacitor according to claim 3, wherein The second-position recovery bin (65) comprises a second bin body, the second bin body is vertically arranged, a second push plate is arranged at the lower end of the inside of the second bin body, a second telescopic cylinder for longitudinally moving the second push plate is vertically arranged upward on the lower end surface of the second bin body, a second receiving hopper is arranged on the side of the second bin body close to the flat track main body (3), the second receiving hopper is located below the inverted capacitor discharge outlet (4), a second discharge port is arranged on the side of the second bin body away from the flat track main body (3), and the second discharge port is arranged higher than the second receiving hopper.
5. The flat feed apparatus for feeding an aluminum electrolytic capacitor according to claim 4, wherein The structure and size of the second-position recovery bin (65) are the same as those of the first-position recovery bin (64), the first receiving hopper (644) and the second receiving hopper are arranged side by side, and the first discharge port (645) and the second discharge port are located at the same height.
6. The flat feed apparatus for feeding an aluminum electrolytic capacitor according to claim 5, wherein The return material guiding assembly (7) comprises a guiding box (71) symmetrically arranged on the left and right sides of the upper end of one side of the double-station alternating material receiving mechanism (6), and the first inlet (72) and the second inlet (73) are alternately communicated with the first outlet (645) and the second outlet.
7. The flat feed apparatus for feeding an aluminum electrolytic capacitor according to claim 6, wherein The left front corner of the guiding plate (74) is a low end of the inclination, and the right rear corner of the guiding plate (74) is a high end of the inclination.
8. The flat feed apparatus for feeding an aluminum electrolytic capacitor according to claim 6, wherein The return material hopper (75) is inclined at a certain angle, and one end of the return material hopper (75) close to the discharging port (2) is a low end.
9. The flat feed apparatus for feeding an aluminum electrolytic capacitor according to claim 5, wherein The first receiving hopper (644) and the second receiving hopper are inclined at a certain angle, and one end of the first receiving hopper (644) and the second receiving hopper close to the inverted capacitor discharge port (4) is a high end.
10. The flat feed apparatus for feeding an aluminum electrolytic capacitor according to claim 2, wherein The double-station switching assembly (63) comprises a groove (631) arranged on the front and rear inner walls of the rectangular frame (61), the length direction of the groove (631) is arranged along the length direction of the rectangular frame (61), the lower inner wall of the groove (631) is provided with a stroke limiting piece (632) connected with the front and rear end faces of the movable seat (62) along the length direction of the groove (631), and the groove (631) is further provided with a stroke driving piece for reciprocating movement of the movable seat (62).
Citation Information
Patent Citations
Anti -blocking is sent device in tie of aluminium electrolytic capacitor equipment feed
CN206947187U