Assembling equipment for oil absorption cotton of electronic atomizer

By designing an automated assembly equipment for absorbing cotton in electronic atomizers, and utilizing clamping components and pneumatic grippers to achieve automated assembly of the absorbing cotton and atomizing core components, the problem of low efficiency in manual assembly is solved, and production efficiency and assembly quality are improved.

CN224219528UActive Publication Date: 2026-05-12ZHUHAI QISI INTELLIGENT MFG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHUHAI QISI INTELLIGENT MFG CO LTD
Filing Date
2025-05-27
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

The existing assembly of oil-absorbing cotton mainly relies on manual operation, resulting in long assembly time and low efficiency.

Method used

An assembly device for oil-absorbing cotton in an electronic atomizer was designed, including a feeding mechanism, a cotton cutting mechanism, a material conveying mechanism, a clamping mechanism, and a transfer mechanism. The oil-absorbing cotton and atomizing core components are automatically assembled through an automated production line, and the clamping components and pneumatic grippers are used to achieve precise positioning and installation of the oil-absorbing cotton.

Benefits of technology

The automated assembly of oil-absorbing cotton has been achieved, reducing labor costs, improving production efficiency, ensuring the consistency and stability of assembly quality, and reducing product defect rate.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to assembling equipment for oil absorption cotton of an electronic atomizer. The assembling equipment comprises a feeding mechanism, a cotton cutting mechanism, a material conveying mechanism, a clamping mechanism and a transferring mechanism. The feeding mechanism comprises a feeding disc, and the feeding mechanism is used for conveying the feeding disc loaded with oil absorption cotton to a feeding station from an initial station; the cotton cutting mechanism is used for processing a notch in the oil absorption cotton; the material conveying mechanism is used for conveying a material carrier loaded with an atomizing core assembly to the assembling station; the clamping mechanism is located at the assembling station and comprises a first clamping assembly and a second clamping assembly, the first clamping assembly is used for clamping the atomization core glass fiber tube, and the second clamping assembly is used for clamping atomization core cotton; the transferring mechanism is used for transferring the oil absorption cotton from the feeding station to the cotton cutting mechanism through the pneumatic clamping jaw, transferring the oil absorption cotton from the cotton cutting mechanism to the assembling station and assembling the oil absorption cotton on the atomization core assembly. According to the assembling equipment, the assembling efficiency of the oil absorption cotton can be improved.
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Description

Technical Field

[0001] This application relates to the field of electronic atomizer manufacturing technology, and in particular to an assembly device for oil-absorbing cotton in electronic atomizers. Background Technology

[0002] An electronic atomizer is a device that uses heat to act on an aerosol-generating product, thereby producing an aerosol for the user to inhale. Electronic atomizers typically use absorbent cotton to absorb the aerosol matrix, facilitating atomization and the generation of the desired aerosol.

[0003] However, the assembly of existing oil-absorbing cotton is generally done manually, which results in long assembly time and low efficiency. Utility Model Content

[0004] Therefore, it is necessary to provide an assembly device for oil-absorbing cotton in electronic atomizers that can improve the assembly efficiency of oil-absorbing cotton, in order to address the above problems.

[0005] An assembly apparatus for absorbing oil from an electronic atomizer, the assembly apparatus comprising:

[0006] A feeding mechanism, comprising a feeding tray, the feeding mechanism being at least used to transport the feeding tray loaded with oil-absorbing cotton from the initial station to the feeding position;

[0007] A cotton cutting mechanism, which is at least used to process cuts in the oil-absorbing cotton;

[0008] A material conveying mechanism having an assembly station, the material conveying mechanism being at least used to convey a material carrier loaded with an atomizing core assembly to the assembly station, the atomizing core assembly including an atomizing core fiberglass tube and an atomizing core cotton, the atomizing core fiberglass tube and the atomizing core cotton being coaxially arranged and the atomizing core cotton being sleeved on at least a portion of the outer surface of the atomizing core fiberglass tube;

[0009] A clamping mechanism is disposed on the material conveying mechanism and located at the assembly station. The clamping mechanism includes a first clamping component and a second clamping component. The first clamping component is used at least for clamping the atomizing core fiberglass tube, and the first clamping component has a first clamping position for clamping the atomizing core fiberglass tube and a first separation position for releasing and moving away from the atomizing core fiberglass tube. The second clamping component is used at least for clamping the atomizing core cotton, and the second clamping component has a second clamping position for clamping the atomizing core cotton and a second separation position for releasing and moving away from the atomizing core cotton.

[0010] The transfer mechanism has multiple pneumatic grippers, and the transfer mechanism is at least used to transfer the oil-absorbing cotton from the feeding mechanism to the cotton cutting mechanism via the pneumatic grippers, and to transfer the oil-absorbing cotton from the cotton cutting mechanism to the assembly station and assemble the oil-absorbing cotton onto the atomizing core assembly;

[0011] When the oil-absorbing cotton is assembled onto the atomizing core assembly, the oil-absorbing cotton has a first mounting position that is sleeved on a portion of the atomizing core fiberglass tube, a second mounting position that is sleeved on a portion of the atomizing core cotton, and a third mounting position that contacts the material carrier; when the oil-absorbing cotton is in the first mounting position, the first clamping assembly switches from the first clamping position to the first separation position, and when the oil-absorbing cotton is in the second mounting position, the second clamping assembly switches from the second clamping position to the second separation position.

[0012] Further, the first clamping component includes:

[0013] The first support frame includes two first support frames, both of which are disposed on the material conveying mechanism and are spaced apart along the first direction.

[0014] The first clamping part and the second clamping part are disposed between the two first support frames and can reciprocate along the second direction;

[0015] A first driving component is disposed on the first support frame and drivenly connected to the first clamping part and the second clamping part respectively, so as to drive the first clamping part and the second clamping part to move closer to each other along the second direction so that the first clamping component is in the first clamping position, or drive the first clamping part and the second clamping part to move away from each other along the second direction so that the first clamping component is in the first separation position.

[0016] Furthermore, the first clamping part includes a first clamping plate, and the second clamping part includes a second clamping plate. Both the first clamping plate and the second clamping plate extend along the first direction and are spaced apart along the second direction. The first clamping plate has a plurality of first clamping segments spaced apart along the first direction, and each first clamping segment has a first clamping groove. The second clamping plate has a plurality of second clamping segments spaced apart along the first direction, and each second clamping segment has a second clamping groove. The plurality of first clamping segments and the plurality of second clamping segments are arranged in a one-to-one correspondence.

[0017] The first driving component includes a first driving member and a second driving member. The first driving member and the second driving member are respectively located on two first support frames. The first driving member is driven to the first clamping plate to drive the first clamping plate to reciprocate along the second direction. The second driving member is driven to the second clamping plate to drive the second clamping plate to reciprocate along the second direction.

[0018] Furthermore, the second clamping component includes:

[0019] Mounting plates, including two mounting plates, both of which are disposed on the material conveying mechanism and spaced apart along the second direction;

[0020] The third clamping part and the fourth clamping part are respectively disposed on the two mounting plates and can reciprocate along the second direction. The third clamping part and the fourth clamping part can move closer to each other to put the second clamping component in the second clamping position, and move further away from each other to put the second clamping component in the second separation position.

[0021] A third driving member and a fourth driving member are respectively located on the two mounting plates. The third driving member is driven to the third clamping part to drive the third clamping part to reciprocate along the second direction. The fourth driving member is driven to the fourth clamping part to drive the fourth clamping part to reciprocate along the second direction.

[0022] Furthermore, the third clamping part has a plurality of third clamping segments spaced apart along the first direction, and the fourth clamping part has a plurality of fourth clamping segments spaced apart along the first direction. The plurality of third clamping segments and the plurality of fourth clamping segments are arranged in a one-to-one correspondence, and each of the third clamping segments and each of the fourth clamping segments extends along the second direction. Along the third direction, the distance from the third clamping segment to the bottom of the mounting plate is less than the distance from the fourth clamping segment to the bottom of the mounting plate.

[0023] Furthermore, the second clamping assembly is provided with a plurality of spreading members, which are spaced apart along a first direction. Each spreading member includes an insertion end and a spreading portion. The insertion end is located on the side of the spreading portion away from the second clamping assembly, and the cross-sectional area of ​​the insertion end gradually decreases along the direction away from the second clamping assembly, while the cross-sectional area of ​​the spreading portion remains unchanged.

[0024] Furthermore, the feeding mechanism also includes:

[0025] A second support frame has the initial working position and the loading position, and the loading tray is movably disposed on the second support frame to switch between the initial working position and the loading position;

[0026] The second driving component is disposed on the second support frame and drivenly connected to the loading tray to drive the loading tray to reciprocate along the second direction and switch between the initial working position and the loading position;

[0027] The arrival detection component includes two components, which are respectively disposed on opposite sides of the second support frame along the first direction and located at the feeding position. The arrival detection component is used at least to detect whether the feeding tray has reached the feeding position.

[0028] Furthermore, the positioning detection component includes a third driving component, a base, and multiple positioning detection elements, all of which are located on the base. The third driving component is drivenly connected to the base to drive the base to reciprocate along a third direction; and / or,

[0029] The feeding mechanism also includes a buffer component, which is disposed on the side of the second support frame away from the initial work station.

[0030] Furthermore, the cotton-cutting mechanism includes:

[0031] A third support frame, on which a housing is provided;

[0032] A rotating component is rotatably disposed within the housing and extends along a first direction. The rotating component is provided with a plurality of cutters spaced apart along the first direction, and the plurality of cutters are provided in a one-to-one correspondence with a plurality of pneumatic grippers.

[0033] A fourth driving component is disposed on the housing and drivenly connected to the rotating component to drive the rotating component to rotate around its own axis.

[0034] Furthermore, the housing includes a main body and a cover. The main body has a receiving cavity, a feed inlet, and a discharge outlet. The feed inlet and the discharge outlet are both connected to the receiving cavity. The cover covers at least a portion of the feed inlet. The receiving cavity has a first side and a second side opposite to the first side. Along the direction in which the second side is located on the first side, the distance between the bottom of the receiving cavity and the cover gradually increases. The discharge outlet is located on the second side of the receiving cavity.

[0035] The aforementioned assembly equipment for absorbing cotton in electronic atomizers allows for manual or mechanical placement of the absorbing cotton into a feeding tray. A feeding mechanism transports the tray from the initial station to the feeding position, while a material conveying mechanism transports a material carrier containing the atomizing core assembly to the assembly station. Upon arrival at the assembly station, a first clamping component switches from a first separation position to a first clamping position to clamp the atomizing core fiberglass tube, while a second clamping component switches from a second separation position to a second clamping position to clamp the atomizing core cotton. Then, multiple pneumatic grippers from a transfer mechanism simultaneously pick up multiple absorbing cotton pieces and transfer them to a cutting mechanism, which makes cuts in the absorbing cotton. Finally, the transfer mechanism transfers the absorbing cotton to the assembly station and installs it onto the atomizing core assembly. During this process, when the transfer mechanism moves the oil-absorbing cotton to the outer periphery of the atomizing core fiberglass tube and it is in the first installation position, the first clamping component switches from the first clamping position to the first separation position to allow the oil-absorbing cotton to continue moving downwards. Next, the transfer mechanism continues to move the oil-absorbing cotton downwards to install it on the outside of the atomizing core cotton. When the oil-absorbing cotton is in the second installation position, the second clamping component switches from the second clamping position to the second separation position to allow the oil-absorbing cotton to continue moving downwards. Then, the transfer mechanism continues to move the oil-absorbing cotton downwards until it reaches the third installation position, finally completing the assembly of the oil-absorbing cotton. The entire assembly process requires no manual intervention, reducing labor costs and effectively improving production efficiency. Attached Figure Description

[0036] Figure 1 This is a schematic diagram of the assembly equipment for the oil-absorbing cotton of the electronic atomizer disclosed in the embodiments of this application.

[0037] Figure 2 This is a schematic diagram of the feeding mechanism disclosed in the embodiments of this application.

[0038] Figure 3 This is a first-view structural diagram of the cotton-cutting mechanism disclosed in the embodiments of this application.

[0039] Figure 4 This is a schematic diagram of the cotton-cutting mechanism disclosed in the embodiments of this application from a second-view perspective.

[0040] Figure 5 This is a schematic diagram of the transfer mechanism disclosed in the embodiments of this application.

[0041] Figure 6 This is a schematic diagram of the material conveying mechanism and clamping mechanism disclosed in the embodiments of this application.

[0042] Figure 7 This is a side view of the clamping mechanism and positioning mechanism disclosed in the embodiments of this application.

[0043] Figure 8This is a schematic diagram of the clamping mechanism disclosed in the embodiments of this application.

[0044] Figure 9 This is a schematic diagram of the positioning mechanism disclosed in the embodiments of this application.

[0045] Figure 10 This is a schematic diagram of the positioning mechanism (with a material carrier) disclosed in the embodiments of this application.

[0046] Icon labels:

[0047] 10. Feeding mechanism; 101. Initial station; 102. Feeding position; 11. Feeding tray; 12. Second support frame; 13. Second drive component; 14. Arrival detection component; 141. Third drive component; 142. Base; 143. Arrival detection component; 15. Buffer component;

[0048] 20. Cotton cutting mechanism; 21. Third support frame; 22. Box body; 221. Main body; 222. Cover; 223. Receiving cavity; 2231. First side; 2232. Second side; 224. Feed inlet; 225. Discharge outlet; 23. Rotating component; 24. Cutter; 25. Fourth drive component;

[0049] 30. Material conveying mechanism; 31. Fourth support frame; 32. Fifth drive component; 321. Drive component; 322. Rotating shaft; 323. Transmission belt; 324. Second transmission wheel set; 33. Horizontal conveying assembly; 331. Horizontal support plate; 332. Conveyor belt; 333. First transmission wheel set;

[0050] 40. Clamping mechanism; 41. First clamping assembly; 411. First support frame; 412. First clamping part; 4121. First clamping plate; 413. Second clamping part; 4131. Second clamping plate; 414. First driving component; 4141. First driving member; 4142. Second driving member; 415. First clamping section; 416. Second clamping section; 417. First clamping groove; 418. Second clamping groove; 42. Second clamping assembly; 421. Mounting plate; 422. Third clamping part; 4221. Third clamping section; 423. Fourth clamping part; 4231. Fourth clamping section; 424. Third driving member; 425. Fourth driving member;

[0051] 50. Transfer mechanism; 51. Pneumatic gripper; 52. Robotic arm; 60. Oil-absorbing cotton; 70. Material carrier; 71. Positioning hole; 80. Spreading component; 81. Insertion end; 82. Spreading part; 90. Positioning mechanism; 91. Fifth support frame; 92. Stop assembly; 921. Stop component; 922. First drive cylinder; 923. Top stop; 93. Lifting assembly; 931. Lifting plate; 932. Second drive cylinder; 933. Positioning column; 94. Bearing plate. Detailed Implementation

[0052] To make the above-mentioned objectives, features, and advantages of this application more apparent and understandable, the specific embodiments of this application are described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a thorough understanding of this application. However, this application can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this application. Therefore, this application is not limited to the specific embodiments disclosed below.

[0053] In the description of this application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "outer periphery", 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 application 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 application.

[0054] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0055] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; 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; they can refer to the internal communication of two components or the interaction between two components, unless otherwise expressly limited. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.

[0056] In this application, unless otherwise expressly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0057] It should be noted that when an element is referred to as being "fixed to" or "set on" another element, it can be directly on the other element or there may be an intervening element. When an element is considered to be "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "upper," "lower," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.

[0058] As mentioned in the background section, existing electronic atomizers typically use absorbent cotton to adsorb the aerosol matrix, facilitating atomization and the generation of the desired aerosol. However, the assembly of existing absorbent cotton is generally done manually, resulting in long assembly times and low efficiency. To address this, the inventors of this application have designed a novel assembly device for absorbent cotton in electronic atomizers. This assembly device improves the assembly efficiency of the absorbent cotton, and the following detailed description of the assembly device, in conjunction with the accompanying drawings, will be provided.

[0059] It should be noted that "first direction" in this application refers to the attached... Figure 1 The direction indicated by the letter X; "second direction" refers to the attached... Figure 1 The direction indicated by the letter Y; "third direction" refers to the attached... Figure 1 The direction indicated by the letter Z.

[0060] See Figures 1 to 10 As shown in the embodiments of this application, an assembly device for oil-absorbing cotton for electronic atomizers is provided, hereinafter referred to as the assembly device. The assembly device includes a feeding mechanism 10, a cotton cutting mechanism 20, a material conveying mechanism 30, a clamping mechanism 40, and a transfer mechanism 50.

[0061] Specifically, the feeding mechanism 10 includes a feeding tray 11, which is at least used to transport the feeding tray 11 loaded with oil-absorbing cotton 60 from the initial station 101 to the feeding station 102; the cotton cutting mechanism 20 is at least used to process cuts on the oil-absorbing cotton 60; the material conveying mechanism 30 has an assembly station, which is at least used to transport the material carrier 70 loaded with atomizing core assembly (not shown in the figure) to the assembly station, the atomizing core assembly including atomizing core fiberglass tube and atomizing core cotton. The atomizing core fiberglass tube and the atomizing core cotton are coaxially arranged, with the atomizing core cotton covering at least a portion of the outer surface of the atomizing core fiberglass tube. A clamping mechanism 40 is disposed on the material conveying mechanism 30 and located at the assembly station. The clamping mechanism 40 includes a first clamping component 41 and a second clamping component 42. The first clamping component 41 is at least used to clamp the atomizing core fiberglass tube, and has a first clamping position for clamping the atomizing core fiberglass tube and a first separation position for releasing and moving away from the atomizing core fiberglass tube. The second clamping assembly 42 is at least used to clamp the atomizing core cotton, and the second clamping assembly 42 has a second clamping position for clamping the atomizing core cotton and a second separation position for releasing and moving away from the atomizing core cotton; the transfer mechanism 50 has a plurality of pneumatic grippers 51, and the transfer mechanism 50 is at least used to transfer the oil-absorbing cotton 60 from the loading position 102 to the cotton cutting mechanism 20 by means of the pneumatic grippers 51, and to transfer the oil-absorbing cotton 60 from the cotton cutting mechanism 20 to the assembly station and assemble the oil-absorbing cotton 60 onto the atomizing core assembly; wherein When the oil-absorbing cotton 60 is assembled on the atomizing core assembly, the oil-absorbing cotton 60 has a first installation position that is sleeved on part of the atomizing core fiberglass tube, a second installation position that is sleeved on part of the atomizing core cotton, and a third installation position that is in contact with the material carrier 70. When the oil-absorbing cotton 60 is in the first installation position, the first clamping assembly 41 switches from the first clamping position to the first separation position. When the oil-absorbing cotton 60 is in the second installation position, the second clamping assembly 42 switches from the second clamping position to the second separation position.

[0062] In this embodiment, when actually using the assembly equipment, the oil-absorbing cotton 60 can be placed in the feeding tray 11 manually or mechanically, and the feeding mechanism 10 can then transport the feeding tray 11 from the initial station 101 to the feeding station 102. Simultaneously, the material conveying mechanism 30 transports the material carrier 70 loaded with the atomizing core assembly to the assembly station. When the material carrier 70 arrives at the assembly station, the first clamping component 41 switches from the first separation position to the first clamping position to clamp the atomizing core fiberglass tube, while the second clamping component 42 switches from the second separation position to the second clamping position to clamp the atomizing core cotton. Then, the multiple pneumatic grippers 51 of the transfer mechanism 50 simultaneously grip multiple oil-absorbing cotton 60s and transfer them to the cotton-cutting mechanism 20, where the cotton-cutting mechanism 20 makes cuts in the oil-absorbing cotton 60s. Subsequently, the transfer mechanism 50 transfers the oil-absorbing cotton 60s to the assembly station and installs them onto the atomizing core assembly. During this process, when the transfer mechanism 50 moves the oil-absorbing cotton 60 to the outer periphery of the atomizing core fiberglass tube and it is in the first installation position, the first clamping component 41 switches from the first clamping position to the first separation position to allow the oil-absorbing cotton 60 to continue moving downwards. Then, the transfer mechanism 50 continues to move the oil-absorbing cotton 60 downwards to install it on the outside of the atomizing core cotton. When the oil-absorbing cotton 60 is in the second installation position, the second clamping component 42 switches from the second clamping position to the second separation position to allow the oil-absorbing cotton 60 to continue moving downwards. Next, the transfer mechanism 50 continues to move the oil-absorbing cotton 60 downwards until it is in the third installation position, finally completing the assembly of the oil-absorbing cotton 60. The entire assembly process requires no manual intervention, reducing labor costs and effectively improving production efficiency.

[0063] Further, see Figures 6 to 8 As shown, the first clamping assembly 41 in this embodiment includes a first support frame 411, a first clamping part 412, a second clamping part 413, and a first driving component 414. The first support frame 411 comprises two parts, both disposed on the material conveying mechanism 30 and spaced apart along a first direction. The first clamping part 412 and the second clamping part 413 are disposed between the two first support frames 411 and can reciprocate along a second direction. The first driving component 414 is disposed on the first support frame 411 and is drivenly connected to the first clamping part 412 and the second clamping part 413 respectively, to drive the first clamping part 412 and the second clamping part 413 to move closer together along the second direction, thereby placing the first clamping assembly 41 in a first clamping position, or to drive the first clamping part 412 and the second clamping part 413 to move further apart along the second direction, thereby placing the first clamping assembly 41 in a first separation position.

[0064] Specifically, the first support frame 411 provides stable support for the first clamping part 412 and the second clamping part 413, ensuring structural stability during clamping and reducing the impact of vibration on the clamping accuracy of the atomizing core fiberglass tube. The first clamping part 412 and the second clamping part 413 can reciprocate along the second direction, and work with the first drive component 414 to achieve precise opening and closing control. The clamping force and position can be flexibly adjusted according to the size requirements of different specifications of atomizing core fiberglass tubes, adapting to various product processes. This modular design makes component disassembly and maintenance convenient. When switching to different products, the clamping components can be quickly adjusted or replaced, effectively shortening equipment debugging time and improving production efficiency. At the same time, the first drive component 414 realizes automated clamping and releasing actions, which significantly improves the consistency and stability of the clamping process compared with manual operation, reduces the product defect rate caused by human factors, and ensures the reliability of assembly quality.

[0065] In other words, in this embodiment, the first driving component 414 can drive the first clamping part 412 and the second clamping part 413 to move closer or further apart in the second direction, thereby facilitating the clamping of the atomizing core glass fiber tube and the assembly of the oil-absorbing cotton 60.

[0066] Further, see Figures 6 to 8 As shown, in this embodiment, the first clamping part 412 includes a first clamping plate 4121, and the second clamping part 413 includes a second clamping plate 4131. Both the first clamping plate 4121 and the second clamping plate 4131 extend along a first direction and are spaced apart along a second direction. The first clamping plate 4121 has a plurality of first clamping segments 415 spaced apart along the first direction, and each first clamping segment 415 has a first clamping groove 417. The second clamping plate 4131 has a plurality of second clamping segments 416 spaced apart along the first direction, and each second clamping segment 416 has a second clamping groove. The device includes a holding groove 418, and a plurality of first clamping segments 415 and a plurality of second clamping segments 416 are arranged in a one-to-one correspondence. The first driving component 414 includes a first driving member 4141 and a second driving member 4142, which are respectively located on two first support frames 411. The first driving member 4141 is driven to a first clamping plate 4121 to drive the first clamping plate 4121 to reciprocate along a second direction, and the second driving member 4142 is driven to a second clamping plate 4131 to drive the second clamping plate 4131 to reciprocate along the second direction. Exemplarily, in this embodiment, the first driving member 4141 and the second driving member 4142 include a driving cylinder.

[0067] Specifically, the arrangement of multiple first clamping sections 415 and multiple second clamping sections 416 allows for the simultaneous clamping of multiple atomizing core fiberglass tubes, facilitating the simultaneous assembly of multiple oil-absorbing cotton 60s onto these tubes. Furthermore, each first clamping groove 417 and each second clamping groove 418 ensures full contact with each atomizing core fiberglass tube, enhancing the stability of the wrapping and effectively preventing displacement or shaking during assembly, thus ensuring precise assembly of the oil-absorbing cotton 60 and the fiberglass tube. The first driving component 4141 and... The independent drive design of the second drive component 4142 enables more flexible and precise opening and closing control of the first clamping plate 4121 and the second clamping plate 4131. The clamping force can be precisely adjusted according to the material and diameter differences of the fiberglass tube, ensuring stable clamping while avoiding damage to the fiberglass tube due to excessive pressure. This combination of split drive and multi-point clamping significantly improves the versatility, reliability and production efficiency of the clamping components, reduces the product defect rate, and provides a strong guarantee for the efficient and high-quality assembly of the oil-absorbing cotton 60.

[0068] In other words, in this embodiment, the first clamping plate 4121 and the second clamping plate 4131 are driven to move closer to each other along the second direction by the first driving member 4141 and the second driving member 4142, respectively, so that the first clamping section 415 and the second clamping section 416 move closer to each other to achieve clamping of the atomizing core glass fiber tube, effectively preventing the atomizing core glass fiber tube from shaking during the assembly process.

[0069] Further, see Figures 6 to 8 As shown, the second clamping assembly 42 in this embodiment includes a mounting plate 421, a third clamping part 422, a fourth clamping part 423, a third driving member 424, and a fourth driving member 425. The device includes two mounting plates 421, both of which are disposed on the material conveying mechanism 30 and spaced apart along the second direction. A third clamping part 422 and a fourth clamping part 423 are respectively disposed on the two mounting plates 421 and can reciprocate along the second direction. The third clamping part 422 and the fourth clamping part 423 can move closer to each other to place the second clamping assembly 42 in a second clamping position, and move further apart to place the second clamping assembly 42 in a second separated position. A third driving member 424 and a fourth driving member 425 are respectively located on the two mounting plates 421. The third driving member 424 is drivenly connected to the third clamping part 422 to drive the third clamping part 422 to reciprocate along the second direction, and the fourth driving member 425 is drivenly connected to the fourth clamping part 423 to drive the fourth clamping part 423 to reciprocate along the second direction. Exemplarily, in this embodiment, the third driving member 424 and the fourth driving member 425 include driving cylinders.

[0070] Specifically, the mounting plate 421 provides a stable mounting base for the third clamping part 422 and the fourth clamping part 423, reducing shaking during the clamping process and ensuring the accuracy of clamping the atomizing core. The independent drive of the third clamping part 422 and the fourth clamping part 423, which can reciprocate along the second direction, gives the second clamping assembly 42 a strong adjustment capability, so that the second clamping assembly 42 can flexibly adjust the clamping position and force according to the atomizing core of different sizes and materials, avoiding deformation or damage to the core due to improper clamping, and ensuring product quality.

[0071] In other words, in this embodiment, the third clamping part 422 and the fourth clamping part 423 are driven to move closer to each other along the second direction by the third driving member 424 and the fourth driving member 425 to achieve clamping and fixing of the atomizing core cotton, effectively preventing the atomizing core cotton from shaking during the assembly process.

[0072] Further, see Figure 7 As shown, in this embodiment, the third clamping part 422 has a plurality of third clamping segments 4221 spaced apart along the first direction, and the fourth clamping part 423 has a plurality of fourth clamping segments 4231 spaced apart along the first direction. The plurality of third clamping segments 4221 and the plurality of fourth clamping segments 4231 are arranged in a one-to-one correspondence, and each third clamping segment 4221 and each fourth clamping segment 4231 extends along the second direction. Along the third direction, the distance from the third clamping segment 4221 to the bottom of the mounting plate 421 is less than the distance from the fourth clamping segment 4231 to the bottom of the mounting plate 421.

[0073] Specifically, the one-to-one correspondence between multiple third clamping sections 4221 and multiple fourth clamping sections 4231 enables the clamping of multiple atomizing cores, preventing displacement or twisting of the atomizing cores during assembly and ensuring precise assembly of the oil-absorbing cotton 60 and the atomizing core. The height difference between the third clamping sections 4221 and the fourth clamping sections 4231 in the third direction creates a staggered wrapping effect during clamping, further enhancing the tightness of the wrapping of the atomizing core and accommodating cotton bodies of different thicknesses or stacking patterns, thus strengthening the component's compatibility with diverse product specifications.

[0074] Furthermore, in this embodiment, one of the third clamping part 422 and the mounting plate 421 is provided with a first guide rail extending in the second direction, and the other is provided with a first slider adapted to the first guide rail. Similarly, in this embodiment, one of the fourth clamping part 423 and the mounting plate 421 is provided with a second guide rail extending in the second direction, and the other is provided with a second slider adapted to the second guide rail.

[0075] Further, see Figures 6 to 8As shown, the second clamping assembly 42 in this embodiment is provided with a plurality of spreading members 80. The plurality of spreading members 80 are spaced apart along a first direction, and each spreading member 80 includes an insertion end 81 and a spreading part 82. The insertion end 81 is located on the side of the spreading part 82 away from the second clamping assembly 42, and along the direction away from the second clamping assembly 42, the cross-sectional area of ​​the insertion end 81 gradually decreases, while the cross-sectional area of ​​the spreading part 82 remains unchanged. It should be noted that in this embodiment, "along the direction away from the second clamping assembly 42" refers to the attached... Figure 7 The direction indicated by the letter O; in this embodiment, "the cross-sectional area of ​​the insertion end 81" refers to the area of ​​the cross section obtained by cutting the insertion end 81 in a direction perpendicular to the direction away from the second clamping component 42; "the cross-sectional area of ​​the spreading part 82" refers to the area of ​​the cross section obtained by cutting the spreading part 82 in a direction perpendicular to the direction away from the second clamping component 42.

[0076] Specifically, the multiple support members 80 can simultaneously open the cuts of multiple oil-absorbing cottons 60, facilitating the installation of the oil-absorbing cottons 60 onto the atomizing core assembly. The gradually decreasing cross-sectional area of ​​the insertion end 81 allows the support member 80 to easily insert into the oil-absorbing cotton 60. Combined with the support portion 82, which has a constant cross-sectional area, this effectively creates space inside the oil-absorbing cotton 60, allowing it to smoothly fit onto the atomizing core assembly, reducing assembly difficulty and improving assembly efficiency. Furthermore, the integrated design of the support member 80 and the second clamping assembly 42 simplifies the equipment structure, reduces additional auxiliary processes and equipment parts, making the entire assembly process more compact and efficient. This improves production efficiency while reducing equipment maintenance costs and the risk of failure.

[0077] Further, see Figure 5 As shown, the transfer mechanism 50 in this embodiment also includes a robotic arm 52, which has multiple pneumatic grippers 51.

[0078] Further, see Figure 2As shown, the feeding mechanism 10 in this embodiment further includes a second support frame 12, a second driving component 13, and a positioning detection component 14. The second support frame 12 has an initial working position 101 and a feeding position 102. The feeding tray 11 is movably disposed on the second support frame 12 to switch between the initial working position 101 and the feeding position 102. The second driving component 13 is disposed on the second support frame 12 and drivenly connected to the feeding tray 11 to drive the feeding tray 11 to reciprocate along a second direction, switching between the initial working position 101 and the feeding position 102. Two positioning detection components 14 are included, respectively disposed on opposite sides of the second support frame 12 along a first direction and located at the feeding position 102. The positioning detection components 14 are used at least to detect whether the feeding tray 11 has reached the feeding position 102. Exemplarily, the second driving component 13 in this embodiment includes a drive motor or a drive cylinder.

[0079] Specifically, the second support frame 12 establishes a stable path between the initial workstation 101 and the loading position 102, providing reliable guidance for the movement of the loading tray 11 and reducing loading anomalies caused by track deviation; the second drive component 13 drives the loading tray 11 to reciprocate along the second direction, and can achieve rapid and stable switching of the loading tray 11 by precisely controlling the motion parameters, which greatly improves loading efficiency and reduces labor intensity compared with manual handling; two positioning detection components 14 are symmetrically arranged on both sides of the loading position 102, and can detect in real time and accurately whether the loading tray 11 has reached the designated position using photoelectric sensing or proximity sensing technology, effectively avoiding problems such as failure to grab the oil-absorbing cotton 60 or misalignment of assembly caused by incomplete loading, and ensuring the continuity of the production process.

[0080] Further, see Figure 2 As shown, the positioning detection component 14 in this embodiment includes a third driving component 141, a base 142, and multiple positioning detection elements 143. All positioning detection elements 143 are located on the base 142. The third driving component 141 is drivenly connected to the base 142 to drive the base 142 to reciprocate along a third direction. Exemplarily, the positioning detection element 143 in this embodiment includes a photoelectric sensor, a proximity switch, a limit switch, or a visual inspection camera, etc.; the third driving component 141 in this embodiment includes a driving cylinder.

[0081] Specifically, multiple positioning detection elements 143 are centrally located on the base 142, forming a multi-point detection array. This array enables comprehensive detection of the loading tray 11 from different angles and positions, significantly improving accuracy and reliability compared to single-point detection and effectively avoiding blind spots caused by local deviations in the loading tray 11. The third drive component 141 drives the base 142 to reciprocate along a third direction, giving the positioning detection component 14 dynamic adjustment capabilities. It allows for flexible adjustment of the detection position and height according to the size and shape of different specifications of the loading tray 11, enhancing the equipment's adaptability to diverse products and enabling compatibility with various production processes without frequent hardware replacements. Simultaneously, during the material handling process of the transfer mechanism 50, the third drive component 141 drives the base 142 to move downwards along a third direction, thus preventing interference between the robotic arm 52 of the transfer mechanism 50 and the positioning detection elements 143.

[0082] Further, see Figure 2 As shown, the feeding mechanism 10 in this embodiment also includes a buffer 15, which is disposed on the side of the second support frame 12 away from the initial station 101.

[0083] Specifically, when the second drive component 13 drives the feeding tray 11 to move quickly to the feeding position 102, the buffer component 15 can effectively absorb the impact energy of the feeding tray 11, preventing it from colliding violently due to excessive inertia, thereby reducing the wear of the feeding tray 11, the second support frame 12 and other related components, and extending the service life of the equipment; at the same time, the buffer component 15 can reduce the vibration amplitude when the feeding tray 11 is in place, ensuring that the feeding tray 11 is accurately stopped at the feeding position 102, preventing the oil-absorbing cotton 60 from shifting or falling due to vibration, and ensuring that the subsequent transfer mechanism 50 can accurately grab the material.

[0084] Furthermore, in this embodiment, one of the second support frame 12 and the feeding tray 11 is provided with a third guide rail extending along the second direction, and the other of the two is provided with a third slider adapted to the third guide rail.

[0085] Further, see Figures 3 to 4 As shown, the cotton cutting mechanism 20 in this embodiment includes a third support frame 21, a rotating member 23, and a fourth driving component 25. The third support frame 21 is equipped with a housing 22; the rotating member 23 is rotatably disposed within the housing 22 and extends along a first direction, and the rotating member 23 is provided with multiple cutters 24 spaced apart along the first direction, with each cutter 24 corresponding to a multiple pneumatic gripper 51; the fourth driving component 25 is disposed on the housing 22 and drivenly connected to the rotating member 23 to drive the rotating member 23 to rotate around its own axis. Exemplarily, the fourth driving component 25 in this embodiment includes a drive motor; the rotating member 23 includes a rotating shaft; the output shaft of the drive motor is connected to the rotating shaft via a coupling.

[0086] Specifically, the housing 22 provides a stable protective and support environment for the rotating component 23 and the cutter 24, which can effectively prevent the flying of debris generated during the cotton cutting process, ensure the safe operation of the equipment, and prevent external debris from entering and affecting the cutting accuracy. The rotating component 23 extends along the first direction and is provided with multiple spaced cutters 24, which can correspond one-to-one with the pneumatic grippers 51 of the transfer mechanism 50 to realize multi-station synchronous cotton cutting, which greatly improves the single processing efficiency. The fourth drive component 25 drives the rotating component 23 to rotate around its own axis, so that the cutter 24 cuts in a circular motion. Compared with straight cutting, it can reduce tool wear, improve the flatness and consistency of the cutting surface, and ensure the stable quality of the cut of the oil-absorbing cotton 60.

[0087] Further, see Figure 4 As shown, the box 22 in this embodiment includes a main body 221 and a cover 222. The main body 221 has a accommodating cavity 223, a feed inlet 224 and a discharge outlet 225. The feed inlet 224 and the discharge outlet 225 are both connected to the accommodating cavity 223. The cover 222 covers at least part of the feed inlet 224. The accommodating cavity 223 has a first side 2231 and a second side 2232 opposite to the first side 2231. Along the direction in which the second side 2232 is set on the first side 2231, the distance between the bottom of the accommodating cavity 223 and the cover 222 gradually increases. The discharge outlet 225 is located on the second side 2232 of the accommodating cavity 223.

[0088] Specifically, the main body 221 provides installation space for the rotating component 23 and the cutter 24; the cover 222 effectively prevents debris from splashing during the cotton cutting process, and the cover 222 covers at least part of the feed inlet 224, thus facilitating the transfer mechanism 50 to transfer the oil-absorbing cotton 60 to the cutter 24 for cutting. Meanwhile, the bottom of the receiving cavity 223 and the cover 222 are designed with a gradually increasing distance, allowing gravity to automatically guide debris generated during the cotton cutting process towards the discharge outlet 225, reducing the risk of accumulation and blockage. The location of the discharge outlet 225 on the second side 2232 of the receiving cavity 223 works synergistically with the inclined cavity to further optimize the debris discharge efficiency.

[0089] Further, see Figure 6 As shown, the material conveying mechanism 30 in this embodiment includes a fourth support frame 31. The fourth support frame 31 is provided with a fifth driving component 32 and two horizontal conveying components 33 spaced apart along the second direction. The fifth driving component 32 is driven to connect with the two horizontal conveying components 33 to convey the material carrier 70 to the assembly station.

[0090] Specifically, in this embodiment, the material carrier 70 loaded with the atomizing core assembly is placed on the horizontal conveying assembly 33, and the fifth driving component 32 drives the two horizontal conveying assemblies 33 to operate so as to smoothly transport the material carrier 70 to the assembly station.

[0091] Specifically, see Figure 6 As shown, the horizontal conveying assembly 33 in this embodiment includes a horizontal support plate 331, a conveyor belt 332, and a first transmission wheel set 333. The fifth driving component 32 includes a driving member 321, a rotating shaft 322, a transmission belt 323, and a second transmission wheel set 324. The horizontal support plate 331 and the first transmission wheel set 333 are both mounted on the fourth support frame 31, and the horizontal support plate 331 extends along a first direction. The conveyor belt 332 is wrapped around the outer circumferential surface of the first transmission wheel set 333, and at least a portion of the conveyor belt 332 is located on the horizontal support plate 331. The rotating shaft 322 is connected to the two horizontal conveying assemblies 33. The transmission belt 323 is wrapped around the outer circumferential surface of the second transmission wheel set 324. The driving member 321 is connected to the rotating shaft 322 through the second transmission wheel set 324 to drive the rotating shaft 322 to rotate.

[0092] Specifically, in this embodiment, the driving component 321 drives the second transmission wheel set 324 to rotate, which in turn drives the rotating shaft 322 to rotate, thereby achieving synchronous movement of the two horizontal conveying components 33. At this time, the conveyor belt 332 rotates around the first transmission wheel set 333 to drive the material carrier 70 to transport on the horizontal conveying components 33. The overall structure is simple, realizing continuous and automated conveying of the material carrier 70, and providing a stable material supply for the assembly of the oil-absorbing cotton 60.

[0093] It is understood that in this embodiment, the horizontal support plate 331 provides a stable bearing plane for the conveyor belt 332 and the material carrier 70, so that the material carrier 70 remains stable when it is conveyed on the conveyor belt 332, avoiding tilting or falling due to lack of support; while the large contact area between the conveyor belt 332 and the material carrier 70 ensures smooth transmission and can effectively reduce the vibration and impact of the material carrier 70 during the conveying process.

[0094] Further, see Figure 6 , Figures 9 to 10As shown, the assembly equipment in this embodiment also includes a positioning mechanism 90, which is disposed at the assembly station. The positioning mechanism 90 includes a fifth support frame 91, a bearing plate 94, a stop assembly 92, and a lifting assembly 93. The fifth support frame 91 is disposed on the material conveying mechanism 30, the bearing plate 94 is disposed on the fifth support frame 91, the stop assembly 92 is disposed on the bearing plate 94 and can reciprocate along a third direction, and the stop assembly 92 is at least used to block the material carrier 70 when it arrives at the assembly station. The lifting assembly 93 is disposed on the bearing plate 94 and can reciprocate along a third direction, and the lifting assembly 93 is used to lift the material carrier 70 so that it disengages from the material conveying mechanism 30.

[0095] Specifically, in this embodiment, the stop component 92 contacts the material carrier 70 and applies resistance, causing the material carrier 70 to stop at the accurate position of the assembly station, completing the initial positioning and ensuring that the material carrier 70 is at the appropriate starting point for subsequent operations. Then, after the stop component 92 successfully stops the material carrier 70, the lifting component 93 gradually rises, contacts the bottom of the material carrier 70 and applies an upward force, smoothly lifting the material carrier 70 to prepare for subsequent clamping and assembly operations.

[0096] Further, see Figures 9 to 10 As shown, the stop assembly 92 in this embodiment includes a stop member 921 and a first drive cylinder 922. The first drive cylinder 922 is driven to the stop member 921 to drive the stop member 921 to reciprocate along a third direction. The stop member 921 is provided with a top abutment 923. When the material carrier 70 arrives at the assembly station, the top abutment 923 abuts against the material carrier 70.

[0097] Specifically, the stop 921, as a component in contact with the material carrier 70, can block or allow the material carrier 70 to pass through its own displacement. When it is necessary to stop the material carrier 70, the stop 921 moves to a designated position, forming a physical obstacle and stopping the material carrier 70; after assembly, the stop 921 retracts, making way for the subsequent conveying of the material carrier 70.

[0098] Further, see Figures 9 to 10 As shown, the material carrier 70 in this embodiment is provided with a positioning hole 71, and the lifting assembly 93 includes a lifting plate 931 and a second driving cylinder 932. The lifting plate 931 is movably disposed directly above the support plate 94, and the lifting plate 931 has a positioning post 933 adapted to the positioning hole 71; the second driving cylinder 932 is disposed on the support plate 94 and is drivenly connected to the lifting plate 931 to drive the lifting plate 931 to reciprocate in a third direction.

[0099] Specifically, the lifting plate 931 plays a crucial role in lifting the material carrier 70. Its own lifting mechanism raises or lowers the material carrier 70, allowing it to change position on the material conveying mechanism 30. The positioning pin 933 is matched with the positioning hole 71 on the material carrier 70. During the lifting process, the positioning pin 933 inserts into the positioning hole 71, achieving precise positioning of the material carrier 70. This positioning method ensures that the material carrier 70 is in the correct position after being lifted, effectively guaranteeing the accurate clamping of the atomizing core assembly by the first clamping component 41 and the second clamping component 42.

[0100] Specifically, the working principle of the assembly equipment in this application is as follows:

[0101] First, the oil-absorbing cotton 60 is placed in the loading tray 11 manually or mechanically, and the loading tray 11 is driven to move on the second support frame 12 by the second drive component 13 to move from the initial station 101 to the loading station 102. During the movement of the loading tray 11, the base 142 is driven to move upward in a third direction by the third drive component 141, so that multiple positioning detection elements 143 can detect the positioning of the loading tray 11 and whether there is oil-absorbing cotton 60 in the loading tray 11.

[0102] Meanwhile, the material carrier 70, loaded with the atomizing core assembly, is placed on the material conveying mechanism 30 by manual or mechanical means, and then transported to the assembly station. Before the material carrier 70 reaches the assembly station, the first drive cylinder 922 drives the stop member 921 to move upward in a third direction, thereby stopping the material carrier 70 when it arrives at the assembly station. After the material carrier 70 reaches the assembly station, the second drive cylinder 932 drives the lifting plate 931 to move upward in a third direction, so that the positioning pin 933 on the lifting plate 931 is inserted into the positioning hole 71 of the material carrier 70 to fix the material carrier 70. Subsequently, the second drive cylinder 932 continues to drive the lifting plate 931 to move upward to lift the material carrier 70 so that the first clamping assembly 41 and the second clamping assembly 42 can operate. The first driving member 4141 and the second driving member 4142 respectively drive the first clamping part 412 and the second clamping part 413 to move closer to each other along the second direction to clamp the atomizing core glass fiber tube. At the same time, the third driving member 424 and the fourth driving member 425 respectively drive the third clamping part 422 and the fourth clamping part 423 to move closer to each other along the second direction to clamp the atomizing core cotton.

[0103] Next, the robotic arm 52 drives multiple pneumatic grippers 51 to move to the loading position 102, and uses the pneumatic grippers 51 to grip the oil-absorbing cotton 60 in the loading tray 11. Then, the robotic arm 52 transfers the gripped oil-absorbing cotton 60 to the cotton cutting mechanism 20 to make cuts on the oil-absorbing cotton 60. During this process, the fourth drive component 25 drives the rotating component 23 to rotate, thereby driving the cutter 24 to rotate, which in turn makes cuts on the oil-absorbing cotton 60.

[0104] Next, the robotic arm 52 moves the oil-absorbing cotton 60 to the assembly station. At this point, the robotic arm 52 first moves the oil-absorbing cotton 60 above the spreading member 80, using the spreading member 80 to spread open the cut of the oil-absorbing cotton 60. Then, the robotic arm 52 moves the oil-absorbing cotton 60 above the atomizer core assembly and installs the oil-absorbing cotton 60 onto the atomizer core assembly. During this process, when the transfer mechanism 50 moves the oil-absorbing cotton 60 to the outer periphery of the atomizer core fiberglass tube and it is in the first installation position, the first driving member 4141 and the second driving member 4142 respectively drive the first clamping part 412 and the second clamping part 413 to move away from each other in the second direction, thereby releasing the clamping of the atomizer core fiberglass tube. Subsequently, the robotic arm 52 continues to move the oil-absorbing cotton 60 downwards. When the oil-absorbing cotton 60 is in the second installation position, the third driving member 424 and the fourth driving member 425 respectively drive the third clamping part 422 and the fourth clamping part 423 to move away from each other along the second direction, thereby releasing the clamping of the atomizing core cotton. Then, the transfer mechanism 50 continues to move the oil-absorbing cotton 60 downwards until it is in the third installation position, finally realizing the assembly of the oil-absorbing cotton 60. Then, the second driving cylinder 932 drives the lifting plate 931 to move downwards along the third direction so that the material carrier 70 returns to the material conveying mechanism 30. At the same time, the first driving cylinder 922 drives the stop member 921 to move downwards along the third direction so that the material carrier 70 continues to be conveyed forward under the action of the material conveying mechanism 30, entering the next process.

[0105] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0106] The embodiments described above are merely illustrative of several implementation methods of this application, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this patent application should be determined by the appended claims.

Claims

1. An assembly device for oil-absorbing cotton in an electronic atomizer, characterized in that, The assembly equipment for the oil-absorbing cotton of the electronic atomizer includes: A feeding mechanism, comprising a feeding tray, the feeding mechanism being at least used to transport the feeding tray loaded with oil-absorbing cotton from the initial station to the feeding position; A cotton cutting mechanism, which is at least used to process cuts in the oil-absorbing cotton; A material conveying mechanism having an assembly station, the material conveying mechanism being at least used to convey a material carrier loaded with an atomizing core assembly to the assembly station, the atomizing core assembly including an atomizing core fiberglass tube and an atomizing core cotton, the atomizing core fiberglass tube and the atomizing core cotton being coaxially arranged and the atomizing core cotton being sleeved on at least a portion of the outer surface of the atomizing core fiberglass tube; A clamping mechanism is disposed on the material conveying mechanism and located at the assembly station. The clamping mechanism includes a first clamping component and a second clamping component. The first clamping component is used at least for clamping the atomizing core fiberglass tube, and the first clamping component has a first clamping position for clamping the atomizing core fiberglass tube and a first separation position for releasing and moving away from the atomizing core fiberglass tube. The second clamping component is used at least for clamping the atomizing core cotton, and the second clamping component has a second clamping position for clamping the atomizing core cotton and a second separation position for releasing and moving away from the atomizing core cotton. The transfer mechanism has multiple pneumatic grippers, and the transfer mechanism is at least used to transfer the oil-absorbing cotton from the feeding mechanism to the cotton cutting mechanism via the pneumatic grippers, and to transfer the oil-absorbing cotton from the cotton cutting mechanism to the assembly station and assemble the oil-absorbing cotton onto the atomizing core assembly; When the oil-absorbing cotton is assembled onto the atomizing core assembly, the oil-absorbing cotton has a first mounting position that is sleeved on a portion of the atomizing core fiberglass tube, a second mounting position that is sleeved on a portion of the atomizing core cotton, and a third mounting position that contacts the material carrier; when the oil-absorbing cotton is in the first mounting position, the first clamping assembly switches from the first clamping position to the first separation position, and when the oil-absorbing cotton is in the second mounting position, the second clamping assembly switches from the second clamping position to the second separation position.

2. The assembly equipment for the oil-absorbing cotton of the electronic atomizer according to claim 1, characterized in that, The first clamping component includes: The first support frame includes two first support frames, both of which are disposed on the material conveying mechanism and are spaced apart along the first direction. The first clamping part and the second clamping part are disposed between the two first support frames and can reciprocate along the second direction; A first driving component is disposed on the first support frame and drivenly connected to the first clamping part and the second clamping part respectively, so as to drive the first clamping part and the second clamping part to move closer to each other along the second direction so that the first clamping component is in the first clamping position, or drive the first clamping part and the second clamping part to move away from each other along the second direction so that the first clamping component is in the first separation position.

3. The assembly equipment for the oil-absorbing cotton of the electronic atomizer according to claim 2, characterized in that, The first clamping part includes a first clamping plate, and the second clamping part includes a second clamping plate. Both the first clamping plate and the second clamping plate extend along the first direction and are spaced apart along the second direction. The first clamping plate has a plurality of first clamping segments spaced apart along the first direction, and each first clamping segment has a first clamping groove. The second clamping plate has a plurality of second clamping segments spaced apart along the first direction, and each second clamping segment has a second clamping groove. The plurality of first clamping segments and the plurality of second clamping segments are arranged in a one-to-one correspondence. The first driving component includes a first driving member and a second driving member. The first driving member and the second driving member are respectively located on two first support frames. The first driving member is driven to the first clamping plate to drive the first clamping plate to reciprocate along the second direction. The second driving member is driven to the second clamping plate to drive the second clamping plate to reciprocate along the second direction.

4. The assembly equipment for the oil-absorbing cotton of the electronic atomizer according to claim 1, characterized in that, The second clamping assembly includes: Mounting plates, including two mounting plates, both of which are disposed on the material conveying mechanism and spaced apart along the second direction; The third clamping part and the fourth clamping part are respectively disposed on the two mounting plates and can reciprocate along the second direction. The third clamping part and the fourth clamping part can move closer to each other to put the second clamping component in the second clamping position, and move further away from each other to put the second clamping component in the second separation position. A third driving member and a fourth driving member are respectively located on the two mounting plates. The third driving member is driven to the third clamping part to drive the third clamping part to reciprocate along the second direction. The fourth driving member is driven to the fourth clamping part to drive the fourth clamping part to reciprocate along the second direction.

5. The assembly equipment for the oil-absorbing cotton of the electronic atomizer according to claim 4, characterized in that, The third clamping part has a plurality of third clamping segments spaced apart along a first direction, and the fourth clamping part has a plurality of fourth clamping segments spaced apart along the first direction. The plurality of third clamping segments and the plurality of fourth clamping segments are arranged in a one-to-one correspondence, and each of the third clamping segments and each of the fourth clamping segments extends along the second direction. Along the third direction, the distance from the third clamping segment to the bottom of the mounting plate is less than the distance from the fourth clamping segment to the bottom of the mounting plate.

6. The assembly equipment for the oil-absorbing cotton of the electronic atomizer according to claim 1, characterized in that, The second clamping assembly is provided with a plurality of spreading members, which are spaced apart along a first direction. Each spreading member includes an insertion end and a spreading part. The insertion end is located on the side of the spreading part away from the second clamping assembly. Along the direction away from the second clamping assembly, the cross-sectional area of ​​the insertion end gradually decreases, while the cross-sectional area of ​​the spreading part remains unchanged.

7. The assembly equipment for the oil-absorbing cotton of the electronic atomizer according to claim 1, characterized in that, The feeding mechanism also includes: A second support frame has the initial working position and the loading position, and the loading tray is movably disposed on the second support frame to switch between the initial working position and the loading position; The second driving component is disposed on the second support frame and drivenly connected to the loading tray to drive the loading tray to reciprocate along the second direction and switch between the initial working position and the loading position; The arrival detection component includes two components, which are respectively disposed on opposite sides of the second support frame along the first direction and located at the feeding position. The arrival detection component is used at least to detect whether the feeding tray has reached the feeding position.

8. The assembly equipment for the oil-absorbing cotton of the electronic atomizer according to claim 7, characterized in that, The positioning detection component includes a third driving component, a base, and multiple positioning detection elements, all of which are located on the base. The third driving component is drivenly connected to the base to drive the base to reciprocate along a third direction; and / or... The feeding mechanism also includes a buffer component, which is disposed on the side of the second support frame away from the initial work station.

9. The assembly equipment for the oil-absorbing cotton of the electronic atomizer according to claim 1, characterized in that, The cotton cutting mechanism includes: A third support frame, on which a housing is provided; A rotating component is rotatably disposed within the housing and extends along a first direction. The rotating component is provided with a plurality of cutters spaced apart along the first direction, and the plurality of cutters are provided in a one-to-one correspondence with a plurality of pneumatic grippers. A fourth driving component is disposed on the housing and drivenly connected to the rotating component to drive the rotating component to rotate around its own axis.

10. The assembly equipment for the oil-absorbing cotton of the electronic atomizer according to claim 9, characterized in that, The housing includes a main body and a cover. The main body has a receiving cavity, a feed inlet, and a discharge outlet. The feed inlet and the discharge outlet are both connected to the receiving cavity. The cover covers at least a portion of the feed inlet. The receiving cavity has a first side and a second side opposite to the first side. Along the direction in which the second side is located on the first side, the distance between the bottom of the receiving cavity and the cover gradually increases. The discharge outlet is located on the second side of the receiving cavity.