Ceramic ferrule assembling machine

By designing the inserting and feeding components of the ceramic ferrule assembly machine, and utilizing the combination of buffer channels and misalignment channels, the problem of inaccurate manual inserting was solved, and efficient assembly of ceramic ferrule auxiliary materials was achieved.

CN224158014UActive Publication Date: 2026-04-24SUZHOU SANHUAN TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SUZHOU SANHUAN TECH CO LTD
Filing Date
2025-05-21
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

In existing technologies, it is difficult to accurately insert auxiliary materials into the inner hole of ceramic ferrules by hand, resulting in low assembly efficiency of ceramic ferrule auxiliary materials.

Method used

A ceramic insert assembly machine was designed, including an insert assembly and a feed assembly. Through the cooperation of a buffer channel, a staggered channel and an opening and closing component, the auxiliary material is accurately inserted into the inner hole of the ceramic insert. Insert limiting component and auxiliary material limiting component are used to ensure that only one material falls at a time. The movement of the staggered base is used to realize the rapid assembly of multiple pairs of ceramic inserts.

Benefits of technology

This technology enables precise insertion of auxiliary materials into the inner hole of the ceramic ferrule, thereby improving the efficiency of ceramic ferrule auxiliary material assembly.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of ceramic ferrule preparation and processing, and discloses a ceramic ferrule assembling machine which is characterized in that a first cache channel and a second cache channel which are sequentially arranged along a second direction are arranged in a cache base, and both the first cache channel and the second cache channel extend along a first direction; the first opening and closing piece is mounted on the cache base; the second opening and closing piece is mounted on the cache base; a staggered separation channel extending in the first direction is arranged in the staggered separation base, and the staggered separation base can move back and forth in the second direction, so that an inlet of the staggered separation channel corresponds to an outlet of the first cache channel or an outlet of the second cache channel; the third opening and closing piece is mounted on the staggered separation base; the material distribution assembly is connected with an outlet of the staggered channel; wherein the first direction is perpendicular to the second direction. According to the ceramic ferrule assembling machine provided by the utility model, auxiliary materials can be accurately inserted into inner holes of a pair of ceramic ferrules, and the assembling efficiency of the auxiliary materials of the ceramic ferrules is improved.
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Description

Technical Field

[0001] This utility model relates to the field of ceramic ferrule preparation and processing technology, and in particular to a ceramic ferrule assembly machine. Background Technology

[0002] Ceramic ferrules have a deep V-shaped inner hole. After machining the inner hole, the outer circle of the ceramic ferrule needs to be ground. Generally, multiple ceramic ferrules are strung together with steel wire before grinding the outer circle. To ensure the coaxiality of the outer circle after grinding, two ceramic ferrules with opposite inner hole orientations need to be assembled together using auxiliary materials.

[0003] In existing technology, the two ends of the auxiliary material are manually inserted into the inner holes of the two ceramic ferrules using tweezers, and then placed into the fabric plate after assembly. However, the outer diameter of the auxiliary material is generally 1mm, while the inner diameter of the ceramic ferrule is slightly larger than the outer diameter of the auxiliary material by 0.01mm-0.03mm. It is difficult to accurately insert the auxiliary material into the inner hole of the ceramic ferrule manually, resulting in low assembly efficiency. Utility Model Content

[0004] The purpose of this invention is to provide a ceramic ferrule assembly machine, in which auxiliary materials can be accurately inserted into the inner holes of a pair of ceramic ferrules, thereby improving the efficiency of ceramic ferrule auxiliary material assembly.

[0005] To achieve the above objectives, this utility model provides a ceramic ferrule assembly machine, comprising:

[0006] An insert assembly, comprising: a buffer base, a first opening / closing element, a second opening / closing element, a staggered base, and a third opening / closing element;

[0007] The buffer base is provided with a first buffer channel and a second buffer channel arranged sequentially along the second direction. Both the first buffer channel and the second buffer channel extend along the first direction. The inlet of the first buffer channel is used to insert multiple pairs of ceramic inserts with opposite inner hole orientations. The inlet of the second buffer channel is used to insert multiple auxiliary materials.

[0008] The first opening / closing component is installed on the buffer base, and the first opening / closing component is used to open and close the outlet of the first buffer channel;

[0009] The second opening / closing element is installed on the buffer base, and the second opening / closing element is used to open and close the outlet of the second buffer channel;

[0010] The misaligned base is provided with a misaligned channel extending in a first direction. The misaligned base can move back and forth in a second direction so that the inlet of the misaligned channel corresponds to the outlet of the first buffer channel or the outlet of the second buffer channel.

[0011] The third opening and closing element is installed on the misaligned base, and the third opening and closing element is used to open and close the outlet of the misaligned channel;

[0012] A fabric assembly connected to the outlet of the staggered channel;

[0013] Wherein, the first direction and the second direction are perpendicular to each other.

[0014] Preferably, the cache base contains the first cache channel symmetrically arranged on both sides of the second cache channel in the second direction;

[0015] The misaligned base is provided with two misaligned channels extending along a first direction. The two misaligned channels are arranged sequentially along a second direction. The distance between the two misaligned channels is the same as the distance between the first buffer channel and the second buffer channel.

[0016] Preferably, it further includes:

[0017] A ferrule limiting member is installed on the buffer base. The ferrule limiting member is located in the first direction of the outlet of the first buffer channel and extends into the first buffer channel. The distance between the ferrule limiting member and the outlet of the first buffer channel is greater than the length of one ceramic ferrule and less than the length of two ceramic ferrules. The ferrule limiting member is used to limit the ceramic ferrule in the first buffer channel in the second direction.

[0018] Preferably, the insert limiting component is a telescopic cylinder, the telescopic end of the telescopic cylinder can extend and retract along the second direction, and the distance between the telescopic end and the outlet of the first buffer channel in the first direction is greater than the length of one ceramic insert and less than the length of two ceramic inserts.

[0019] Preferably, the first opening and closing element is a telescopic cylinder, and the telescopic end of the telescopic cylinder can extend and retract along a second direction.

[0020] Preferably, the fabric assembly includes a fabric plate, the fabric plate having a fabric channel extending in a first direction, the fabric channel extending upward to the top surface of the fabric plate, and the inlet of the fabric channel connecting to the outlet of the staggered channel.

[0021] Preferably, the fabric plate has multiple fabric channels extending along a first direction, the multiple fabric channels are arranged sequentially along a second direction, the fabric plate can move along the second direction, and the outlet of the staggered channel is connected to the inlet of one of the fabric channels.

[0022] Preferably, the first buffer channel is sequentially connected to a core feeding tube, a commutator, a core feeding tube, and a core vibratory feeder.

[0023] Preferably, the second buffer channel is sequentially connected to an auxiliary material feeding pipe and an auxiliary material vibrating plate.

[0024] Preferably, it further includes:

[0025] The frame platform includes multiple inserting components, which are sequentially arranged on the frame platform along a second direction. The fabric spreading component is also arranged on the frame platform and connected to the outlet of the staggered channel of the multiple inserting components.

[0026] Compared with the prior art, the ceramic ferrule assembly machine of this utility model has the following advantages:

[0027] Multiple pairs of ceramic inserts with opposite inner hole orientations are sequentially placed into the first buffer channel, and multiple auxiliary materials are sequentially placed into the second buffer channel. The outlets of the first and second buffer channels correspond to the inlet of the misaligned channel in sequence. The opening and closing actions of the first, second, and third opening and closing components enable the auxiliary materials to be accurately inserted into the inner holes of the ceramic inserts with upward-facing inner holes, and then assembled and collected with the ceramic inserts with downward-facing inner holes in the fabric assembly.

[0028] The ceramic ferrule assembly machine of this application allows auxiliary materials to be precisely inserted into the inner holes of a pair of ceramic ferrules, enabling rapid assembly of auxiliary materials for multiple pairs of ceramic ferrules and improving assembly efficiency. Attached Figure Description

[0029] Figure 1 This is a schematic diagram of the structure of the ceramic ferrule assembly machine described in this embodiment of the utility model;

[0030] Figure 2 This is a partially enlarged cross-sectional view of the insert assembly described in this embodiment of the utility model;

[0031] Figure 3 This is a partially enlarged cross-sectional view of another state of the insert assembly described in this embodiment of the present invention;

[0032] Figure 4 This is a partially enlarged cross-sectional view of another state of the insert assembly described in this embodiment of the present invention;

[0033] Figure 5 This is a schematic diagram of the structure of a ceramic ferrule assembly machine according to another embodiment of the present invention;

[0034] In the diagram, 1. Insertion assembly; 2. Fabric assembly; 21. Fabric plate; 211. Fabric channel; 22. Motor; 3. Buffer base; 31. First buffer channel; 32. Second buffer channel; 4. First opening / closing element; 5. Second opening / closing element; 6. Misalignment base; 61. Misalignment channel; 7. Third opening / closing element; 8. Ceramic insert; 9. Auxiliary material; 10. Insert limiting element; 11. Combined material tube; 12. Insert feeding tube; 13. Commutator; 14. Insert feeding tube; 15. Insert vibratory feeder; 16. Auxiliary material feeding tube; 17. Auxiliary material vibratory feeder; 18. Frame platform; 19. Touch screen. Detailed Implementation

[0035] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are used to illustrate this utility model, but are not intended to limit its scope.

[0036] In the description of this utility model, it should be understood that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this utility model based on the specific circumstances.

[0037] In the description of this utility model, it should be understood that the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance. Furthermore, the terms "upper," "lower," "left," "right," "front," "rear," "top," "bottom," "inner," "outer," "middle," "vertical," "horizontal," "lateral," "longitudinal," "X-axis direction," "Y-axis direction," and "Z-axis direction," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Moreover, some of the above terms, in addition to indicating orientation or positional relationship, may also be used to indicate other meanings; for example, the term "upper" may in some cases be used to indicate a certain dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in this application according to the specific circumstances.

[0038] like Figure 1-4 As shown, a ceramic insert assembly machine according to an embodiment of the present invention includes: insert assembly 1 and fabric assembly 2;

[0039] The insert assembly 1 includes: a buffer base 3, a first opening and closing element 4, a second opening and closing element 5, a misalignment base 6, and a third opening and closing element 7;

[0040] The buffer base 3 has a first buffer channel 31 and a second buffer channel 32 arranged sequentially along the second direction Y. Both the first buffer channel 31 and the second buffer channel 32 extend along the first direction X. The inlet of the first buffer channel 31 is used to insert multiple pairs of ceramic inserts 8 with opposite inner hole orientations, and the inlet of the second buffer channel 32 is used to insert multiple auxiliary materials 9. A first opening and closing member 4 is installed on the buffer base 3 and is used to open and close the outlet of the first buffer channel 31. A second opening and closing member 5 is installed on the buffer base 3 and is used to open and close the outlet of the second buffer channel 32. The staggered base 6 has a staggered channel 61 extending along the first direction X. The staggered base 6 can move back and forth along the second direction Y so that the inlet of the staggered channel 61 corresponds to the outlet of the first buffer channel 31 or the outlet of the second buffer channel 32. A third opening and closing member 7 is installed on the staggered base 6 and is used to open and close the outlet of the staggered channel 61.

[0041] Fabric assembly 2 is connected to the outlet of misaligned channel 61;

[0042] Among them, the first direction X and the second direction Y are perpendicular to each other.

[0043] It should be noted that, in the initial state, the first opening / closing element 4 is driven to close the outlet of the first buffer channel 31, and the second opening / closing element 5 is driven to close the outlet of the second buffer channel 32. Multiple pairs of ceramic ferrules 8 with opposite inner hole orientations are placed into the inlet of the first buffer channel 31 and arranged sequentially within the first buffer channel 31. Multiple auxiliary materials 9 are placed into the inlet of the second buffer channel 32 and arranged sequentially within the second buffer channel 32.

[0044] When starting work, such as Figure 2 As shown, step one: drive the third opening and closing member 7 to close the outlet of the misaligned channel 61, drive the misaligned base 6 to move along the second direction Y to the position corresponding to the inlet of the misaligned channel 61 and the outlet of the first buffer channel 31, drive the first opening and closing member 4 to control the opening and closing of the outlet of the first buffer channel 31, so that a ceramic ferrule 8 with the inner hole facing upward can fall from the outlet of the first buffer channel 31 into the misaligned channel 61.

[0045] like Figure 3 As shown, step two: drive the misalignment base 6 to move along the second direction Y to the position corresponding to the inlet of the misalignment channel 61 and the outlet of the second buffer channel 32, drive the second opening and closing member 5 to control the opening and closing of the outlet of the second buffer channel 32, so that an auxiliary material 9 can fall from the outlet of the second buffer channel 32 into the misalignment channel 61.

[0046] The first end of the falling auxiliary material 9 is inserted into the upward-facing inner hole of the ceramic insert 8 in the misaligned channel 61. Then, the third opening and closing member 7 is driven to open the misaligned channel 61, and the ceramic insert 8 with the auxiliary material 9 inserted can fall from the outlet of the misaligned channel 61 to the fabric assembly 2.

[0047] like Figure 4 As shown, step three: drive the misaligned base 6 to move along the second direction Y to the position corresponding to the inlet of the misaligned channel 61 and the outlet of the first buffer channel 31, drive the first opening and closing member 4 to control the opening and closing of the outlet of the first buffer channel 31, so that a ceramic ferrule 8 with its inner hole facing down can fall from the outlet of the first buffer channel 31 into the misaligned channel 61.

[0048] The ceramic ferrule 8 with its inner hole facing downwards falls down through the staggered channel 61 from its outlet into the fabric assembly 2. The second end of the auxiliary material 9 is inserted into the inner hole of the ceramic ferrule 8, completing the auxiliary material assembly of a pair of ceramic ferrules 8. Step one is repeated to complete the auxiliary material assembly of multiple pairs of ceramic ferrules 8 until there are no ceramic ferrules 8 in the first buffer channel 31.

[0049] The ceramic ferrule assembly machine of this application allows the auxiliary material 9 to be precisely inserted into the inner hole of a pair of ceramic ferrules 8, enabling rapid assembly of auxiliary materials for multiple pairs of ceramic ferrules 8 and improving assembly efficiency.

[0050] The diameters of the first buffer channel 31 and the misalignment channel 61 match the diameter of the ceramic insert 8, and the diameter of the second buffer channel 32 matches the diameter of the auxiliary material 9.

[0051] In this embodiment, the misaligned base 6 is mounted on a misaligned cylinder that can move back and forth along the second direction Y, so as to realize the back and forth movement along the second direction Y.

[0052] like Figure 1-4 As shown, in this embodiment, further, within the cache base 3, along the second direction Y, first cache channels 31 are symmetrically arranged on both sides of the second cache channel 32;

[0053] The misaligned base 6 is provided with two misaligned channels 61 extending along the first direction X. The two misaligned channels 61 are arranged sequentially along the second direction Y. The distance between the two misaligned channels 61 is the same as the distance between the first buffer channel 31 and the second buffer channel 32.

[0054] It should be noted that, within the buffer base 3, along the second direction Y, first buffer channels 31 are symmetrically arranged on both sides of the second buffer channel 32, which can increase the number of ceramic ferrules 8 that can be placed into the two first buffer channels 31.

[0055] For example: Figure 3As shown, a ceramic ferrule 8 with its inner hole facing upwards is lowered into the left-side misaligned channel 61 via the first buffer channel 31 on the left. During step two, the misaligned base 6 moves along the second direction Y to a position corresponding to the inlet of the left-side misaligned channel 61 and the outlet of the second buffer channel 32. The auxiliary material 9 of the second buffer channel 32 can then fall into the left-side misaligned channel 61 and be inserted into the inner hole of the ceramic ferrule 8 with its inner hole facing upwards. Simultaneously, the inlet of the right-side misaligned channel 61 corresponds to the outlet of the right-side first buffer channel 31, allowing a ceramic ferrule 8 with its inner hole facing upwards to fall into the right-side misaligned channel 61.

[0056] like Figure 4 As shown, the misaligned base 6 moves along the second direction Y to the position corresponding to the inlet of the misaligned channel 61 on the left and the outlet of the first buffer channel 31 on the left. At the same time, the inlet of the misaligned channel 61 on the right and the outlet of the second buffer channel 32 correspond. The auxiliary material 9 in the second buffer channel 32 can fall into the misaligned channel 61 on the right and be inserted into the inner hole of the ceramic insert 8 with the inner hole facing upward.

[0057] By using the second buffer channel 32, the misaligned base 6, and the two first buffer channels 31 and two misaligned channels 61 in an alternating feeding method, the time for assembling auxiliary materials for multiple pairs of ceramic ferrules 8 can be shortened, thereby improving the efficiency of ceramic ferrule auxiliary material assembly.

[0058] like Figure 1-4 As shown, in this embodiment, it further includes:

[0059] A ferrule limiting member 10 is installed on the buffer base 3. The ferrule limiting member 10 is located in the first direction X at the outlet of the first buffer channel 31 and passes into the first buffer channel 31. The distance between the ferrule limiting member 10 and the outlet of the first buffer channel 31 is greater than the length of one ceramic ferrule 8 and less than the length of two ceramic ferrules 8. The ferrule limiting member 10 is used to limit the ceramic ferrules 8 in the first buffer channel 31 in the second direction Y.

[0060] It should be noted that a ferrule limiting member 10 is installed on the buffer base 3. The ferrule limiting member 10 is located in the first direction X of the outlet of the first buffer channel 31 and passes into the first buffer channel 31. The distance between the ferrule limiting member 10 and the outlet of the first buffer channel 31 is greater than the length of one ceramic ferrule 8 and less than the length of two ceramic ferrules 8. Thus, when the outlet of the first buffer channel 31 is closed, the lowest ceramic ferrule 8 is blocked. The ferrule limiting member 10 is controlled to limit the ceramic ferrules 8 in the first buffer channel 31 in the second direction Y. The limited ceramic ferrule 8 is the ceramic ferrule 8 above the lowest ceramic ferrule 8.

[0061] Therefore, after the outlet of the first buffer channel 31 is opened, the bottom ceramic ferrule 8 can fall, while the upper ceramic ferrule 8 that should be limited cannot fall, ensuring that only one ceramic ferrule 8 can fall each time the outlet of the first buffer channel 31 is opened.

[0062] After the previous ceramic ferrule 8 falls, the outlet of the first buffer channel 31 is closed, and the ferrule limiting component 10 is controlled not to limit the ceramic ferrule 8. The ceramic ferrule 8 that was originally limited will fall to the outlet of the first buffer channel 31 and be blocked. Then the ferrule limiting component 10 is activated to limit the next ceramic ferrule 8, and so on.

[0063] In another embodiment, it also includes: an auxiliary material limiting member (not shown in the figure), which is installed on the buffer base 3. The auxiliary material limiting member is located in the first direction X of the outlet of the second buffer channel 32 and passes through the second buffer channel 32. The distance between the auxiliary material limiting member and the outlet of the second buffer channel 32 is greater than the length of one auxiliary material 9 and less than the length of two auxiliary materials 9. The auxiliary material limiting member is used to limit the auxiliary material 9 in the second buffer channel 32 in the second direction Y. Similar to the insert limiting member 10, it ensures that only one auxiliary material 9 can fall each time the outlet of the second buffer channel 32 is opened.

[0064] like Figure 1-4 As shown, in this embodiment, the insert limiting member 10 is further a telescopic cylinder. The telescopic end of the telescopic cylinder can extend and retract along the second direction Y. The distance between the telescopic end and the outlet of the first buffer channel 31 in the first direction is greater than the length of one ceramic insert 8 and less than the length of two ceramic inserts 8.

[0065] It should be noted that the distance between the telescopic end of the ferrule limiting member 10 and the outlet of the first buffer channel 31 in the first direction is greater than the length of one ceramic ferrule 8 and less than the length of two ceramic ferrules 8. When the telescopic end extends, it extends into the first buffer channel 31 and abuts against the ceramic ferrule 8 inside the first buffer channel 31, thus limiting the ceramic ferrule 8. The ceramic ferrule 8 that abuts is the ceramic ferrule 8 above the lowest ceramic ferrule 8 inside the first buffer channel 31.

[0066] When the telescopic end of the ferrule limiting member 10 retracts, the telescopic end exits the first buffer channel 31, so that the ceramic ferrule 8 will not be limited and can fall freely.

[0067] In another embodiment, the ferrule limiting member 10 is a clamping cylinder. The clamping head of the clamping cylinder is inserted into the first buffer channel 31. The distance between the clamping head and the outlet of the first buffer channel 31 in the first direction X is greater than the length of one ceramic ferrule 8 and less than the length of two ceramic ferrules 8. When the clamping head closes, it clamps and limits the ceramic ferrule 8 in the first buffer channel 31 in the second direction Y.

[0068] It should be noted that the insert limiting component 10 is a clamping cylinder. When the clamping head of the clamping cylinder closes, the clamping head clamps the ceramic insert 8 and limits its position. When the clamping head of the clamping cylinder opens, the clamping head releases the ceramic insert 8 and does not limit its position.

[0069] The distance between the clamping head and the outlet of the first buffer channel 31 in the first direction X is greater than the length of one ceramic ferrule 8 but less than the length of two ceramic ferrules 8. Therefore, when the outlet of the first buffer channel 31 is closed, the lowest ceramic ferrule 8 is blocked, and the clamping head of the control clamping cylinder closes, limiting the ceramic ferrule 8 in the first buffer channel 31 in the second direction Y. Therefore, after the outlet of the first buffer channel 31 is opened, the lowest ceramic ferrule 8 can fall, while the upper ceramic ferrule 8 that is limited cannot fall.

[0070] like Figure 1-4 As shown, in this embodiment, the first opening and closing element 4 is a telescopic cylinder, and the telescopic end of the telescopic cylinder can extend and retract along the second direction Y.

[0071] It should be noted that the telescopic end of the telescopic cylinder can extend and retract along the second direction Y. When the telescopic end extends, it enters the first buffer channel 31 and closes the outlet of the first buffer channel 31. When the telescopic end retracts, it exits the first buffer channel 31 and opens the outlet of the first buffer channel 31, thereby realizing the opening and closing of the outlet of the first buffer channel 31 by the first opening and closing member 4.

[0072] In another embodiment, both the second opening / closing element 5 and the third opening / closing element 7 are telescopic cylinders.

[0073] In this embodiment, the fabric assembly 2 further includes a fabric plate 21, and the fabric plate 21 has a fabric channel 211 extending along the first direction X. The fabric channel 211 extends upward to the top surface of the fabric plate 21, and the inlet of the fabric channel 211 is connected to the outlet of the staggered channel 61.

[0074] It should be noted that the ceramic insert 8 falls from the outlet of the misaligned channel 61 to the inlet of the fabric channel 211 and enters the fabric channel 211. Multiple pairs of ceramic inserts 8 enter the fabric channel 211 extending along the first direction X. Multiple pairs of ceramic inserts 8 can be assembled in the first direction X, improving the accuracy of the auxiliary material 9 being inserted between a pair of ceramic inserts 8 with opposite inner hole orientations.

[0075] The diameter of the fabric channel 211 matches the diameter of the ceramic insert 8.

[0076] In this embodiment, the outlet of the staggered channel 61 is further connected to the inlet of the combined material tube 11, and the outlet of the combined material tube 11 is connected to the inlet of the fabric distribution channel 211. The diameter of the combined material tube 11 matches the diameter of the ceramic insert 8.

[0077] like Figure 1-4 As shown, in this embodiment, the fabric plate 21 is further provided with a plurality of fabric channels 211 extending along the first direction X, and the plurality of fabric channels 211 are arranged sequentially along the second direction Y. The fabric plate 21 can move along the second direction Y, and the outlet of the staggered channel 61 is connected to the inlet of one of the fabric channels 211.

[0078] It should be noted that the fabric plate 21 can move along the second direction Y. Preferably, the fabric plate 21 is connected to a motor 22, which drives the fabric plate 21 to move along the second direction Y. Thus, when one fabric channel 211 is full, the fabric plate 21 can be moved to connect the outlet of another fabric channel 211 in the second direction Y with the outlet of the misaligned channel 61, so that the misaligned channel 61 and the connected fabric channel 211 always correspond in the first direction X.

[0079] When all the fabric channels 211 on the fabric plate 21 are full, stop the machine and manually replace the fabric plate 21.

[0080] like Figure 1-4 As shown, in this embodiment, the first buffer channel 31 is further connected in sequence to the insert feeding tube 12, the commutator 13, the insert feeding tube 14, and the insert vibratory plate 15.

[0081] It should be noted that placing multiple ceramic ferrules 8 into the ferrule vibratory feeder 15 enables the multiple ceramic ferrules 8 to be automatically and orderly oriented and accurately transported to the ferrule feed pipe 14 through vibration, and then to the commutator 13. The commutator 13 identifies the orientation of the inner hole of the ceramic ferrule 8. When it is detected that the orientation of the inner hole of the ceramic ferrule 8 is not opposite to the orientation of the inner hole of the previous ceramic ferrule 8, the commutator 13 reverses the orientation of the ceramic ferrule 8, and adjusts the multiple ceramic ferrules 8 to be discharged into the ferrule discharge pipe 12 in an order with multiple pairs of inner hole orientations opposite, and then transported to the first buffer channel 31.

[0082] The diameters of the insert feeding tube 12 and the insert inlet tube 14 are matched with the diameter of the ceramic insert 8.

[0083] The ferrule feeding tube 12, the commutator 13, the ferrule feeding tube 14 and the ferrule vibrating plate 15 are arranged in sequence along the first direction X, so that the ceramic ferrule 8 can be smoothly transported into the first buffer channel 31 by gravity.

[0084] like Figure 1-4 As shown, in this embodiment, the second buffer channel 32 is further connected in sequence to the auxiliary material feeding pipe 16 and the auxiliary material vibrating plate 17.

[0085] It should be noted that placing multiple auxiliary materials 9 into the auxiliary material vibrating plate 17 can automatically and orderly arrange the multiple auxiliary materials 9 through vibration and accurately transport them to the auxiliary material feeding pipe 16, and then transport them to the second buffer channel 32.

[0086] The diameter of the auxiliary material feeding pipe 16 is matched with the diameter of the auxiliary material 9.

[0087] The auxiliary material feeding pipe 16 and the auxiliary material vibrating plate 17 are arranged in sequence along the first direction X, so that the auxiliary material 9 can be smoothly transported into the second buffer channel 32 by gravity.

[0088] like Figure 5 As shown, another embodiment of the ceramic ferrule assembly machine of this utility model further includes:

[0089] The frame platform 18 has multiple inserting components 1, which are arranged sequentially on the frame platform 18 along the second direction Y. The fabric spreading component 2 is arranged on the frame platform 18 and is connected to the outlet of the staggered channel 61 of the multiple inserting components 1.

[0090] It should be noted that by sequentially arranging multiple insert assemblies 1 along the second direction Y on the frame platform 18, more ceramic inserts 8 can be assembled simultaneously, thus improving assembly efficiency.

[0091] The fabric assembly 2 is mounted on the frame platform 18 and is connected to the outlet of the staggered channel 61 of multiple insert assemblies 1.

[0092] In this embodiment, a control component is also included, which is electrically connected to the commutator 13. The control component is connected to a touch screen 19, and the operation of the commutator 13 is controlled by operating the touch screen 19.

[0093] During operation, the equipment must be turned on first. The ceramic insert 8 and the auxiliary material 9 are manually added to the insert vibrating plate 15 and the auxiliary material vibrating plate 17 respectively. Then, click "Origin Restore" on the touch screen 19. After the origin is restored, click "Automatic Start".

[0094] In another embodiment, multiple fabric assemblies 2 are provided, and multiple fabric assemblies 2 are arranged on the frame platform 18. Each fabric assembly 2 is connected to the outlet of the staggered channel 61 of an insert assembly 1.

[0095] The working process of this utility model is as follows: In the initial state, the first opening and closing member 4 is driven to close the outlet of the first buffer channel 31, and the second opening and closing member 5 is driven to close the outlet of the second buffer channel 32. Multiple pairs of ceramic inserts 8 with opposite inner hole orientations are placed into the inlet of the first buffer channel 31 and arranged sequentially within the first buffer channel 31. Multiple auxiliary materials 9 are placed into the inlet of the second buffer channel 32 and arranged sequentially within the second buffer channel 32.

[0096] When starting work, step one: drive the third opening and closing component 7 to close the outlet of the misaligned channel 61, drive the misaligned base 6 to move along the second direction Y to the position corresponding to the inlet of the misaligned channel 61 and the outlet of the first buffer channel 31, drive the first opening and closing component 4 to control the opening and closing of the outlet of the first buffer channel 31, so that a ceramic ferrule 8 with the inner hole facing upward can fall from the outlet of the first buffer channel 31 into the misaligned channel 61.

[0097] Step 2: Drive the misalignment base 6 to move along the second direction Y to the position corresponding to the inlet of the misalignment channel 61 and the outlet of the second buffer channel 32, and drive the second opening and closing component 5 to control the opening and closing of the outlet of the second buffer channel 32, so that an auxiliary material 9 can fall from the outlet of the second buffer channel 32 into the misalignment channel 61.

[0098] The first end of the falling auxiliary material 9 is inserted into the upward-facing inner hole of the ceramic insert 8 in the misaligned channel 61. Then, the third opening and closing member 7 is driven to open the misaligned channel 61, and the ceramic insert 8 with the auxiliary material 9 inserted can fall from the outlet of the misaligned channel 61 to the fabric assembly 2.

[0099] Step 3: Drive the misalignment base 6 to move along the second direction Y to the position corresponding to the inlet of the misalignment channel 61 and the outlet of the first buffer channel 31, and drive the first opening and closing member 4 to control the opening and closing of the outlet of the first buffer channel 31, so that a ceramic ferrule 8 with its inner hole facing down can fall from the outlet of the first buffer channel 31 into the misalignment channel 61.

[0100] The ceramic ferrule 8 with its inner hole facing downwards falls down through the staggered channel 61 from its outlet into the fabric assembly 2. The second end of the auxiliary material 9 is inserted into the inner hole of the ceramic ferrule 8, completing the auxiliary material assembly of a pair of ceramic ferrules 8. Step one is repeated to complete the auxiliary material assembly of multiple pairs of ceramic ferrules 8 until there are no ceramic ferrules 8 in the first buffer channel 31.

[0101] In summary, this utility model provides a ceramic ferrule assembly machine, which enables the auxiliary materials to be accurately inserted into the inner holes of a pair of ceramic ferrules, thereby improving the efficiency of ceramic ferrule auxiliary material assembly.

[0102] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and substitutions can be made without departing from the technical principles of the present utility model, and these improvements and substitutions should also be considered within the protection scope of the present utility model.

Claims

1. A ceramic ferrule assembly machine, characterized in that, include: An insert assembly, comprising: a buffer base, a first opening / closing element, a second opening / closing element, a staggered base, and a third opening / closing element; The buffer base is provided with a first buffer channel and a second buffer channel arranged sequentially along the second direction. Both the first buffer channel and the second buffer channel extend along the first direction. The inlet of the first buffer channel is used to insert multiple pairs of ceramic inserts with opposite inner hole orientations. The inlet of the second buffer channel is used to insert multiple auxiliary materials. The first opening / closing component is installed on the buffer base, and the first opening / closing component is used to open and close the outlet of the first buffer channel; The second opening / closing element is installed on the buffer base, and the second opening / closing element is used to open and close the outlet of the second buffer channel; The misaligned base is provided with a misaligned channel extending in a first direction. The misaligned base can move back and forth in a second direction so that the inlet of the misaligned channel corresponds to the outlet of the first buffer channel or the outlet of the second buffer channel. The third opening and closing element is installed on the misaligned base, and the third opening and closing element is used to open and close the outlet of the misaligned channel; A fabric assembly connected to the outlet of the staggered channel; Wherein, the first direction and the second direction are perpendicular to each other.

2. The ceramic ferrule assembly machine according to claim 1, characterized in that, The cache base contains the first cache channel symmetrically arranged on both sides of the second cache channel in the second direction; The misaligned base is provided with two misaligned channels extending along a first direction. The two misaligned channels are arranged sequentially along a second direction. The distance between the two misaligned channels is the same as the distance between the first buffer channel and the second buffer channel.

3. The ceramic ferrule assembly machine according to claim 1, characterized in that, Also includes: A ferrule limiting member is installed on the buffer base. The ferrule limiting member is located in the first direction of the outlet of the first buffer channel and extends into the first buffer channel. The distance between the ferrule limiting member and the outlet of the first buffer channel is greater than the length of one ceramic ferrule and less than the length of two ceramic ferrules. The ferrule limiting member is used to limit the ceramic ferrule in the first buffer channel in the second direction.

4. The ceramic ferrule assembly machine according to claim 3, characterized in that, The insert limiting component is a telescopic cylinder. The telescopic end of the telescopic cylinder can extend and retract along the second direction. The distance between the telescopic end and the outlet of the first buffer channel in the first direction is greater than the length of one ceramic insert and less than the length of two ceramic inserts.

5. The ceramic ferrule assembly machine according to claim 1, characterized in that, The first opening and closing component is a telescopic cylinder, and the telescopic end of the telescopic cylinder can extend and retract in a second direction.

6. The ceramic ferrule assembly machine according to claim 1, characterized in that, The fabric assembly includes a fabric plate, and the fabric plate has a fabric channel extending in a first direction. The fabric channel extends upward to the top surface of the fabric plate, and the inlet of the fabric channel is connected to the outlet of the staggered channel.

7. The ceramic ferrule assembly machine according to claim 6, characterized in that, The fabric plate has multiple fabric channels extending along a first direction, and the multiple fabric channels are arranged sequentially along a second direction. The fabric plate can move along the second direction, and the outlet of the staggered channel is connected to the inlet of one of the fabric channels.

8. The ceramic ferrule assembly machine according to claim 1, characterized in that, The first buffer channel is sequentially connected to the insert feeding tube, the commutator, the insert feeding tube, and the insert vibratory plate.

9. The ceramic ferrule assembly machine according to claim 1, characterized in that, The second buffer channel is connected in sequence to the auxiliary material feeding pipe and the auxiliary material vibrating plate.

10. The ceramic ferrule assembly machine according to claim 1, characterized in that, Also includes: The frame platform includes multiple inserting components, which are sequentially arranged on the frame platform along a second direction. The fabric spreading component is also arranged on the frame platform and connected to the outlet of the staggered channel of the multiple inserting components.