Needle tube silicification equipment
By designing a needle silicification device including a support platform, a transfer mechanism and a silicone oil storage piece, the problem of low silicification efficiency of existing equipment is solved and efficient production of needle silicification is achieved.
Patent Information
- Application Number
- CN202420648383.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-03-29
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-03-29
AI Technical Summary
The existing syringe silicification equipment has low silicification efficiency and is difficult to adapt to the problem of large-scale syringe production.
A needle silicification device including a support platform, a transfer mechanism and a silicone oil storage piece is designed. By providing two transfer mechanisms on the horizontal slide rail, the coordination of the clamping assembly and the lifting assembly, efficient clamping and transfer of the needle tube is achieved, and the silicification efficiency is improved through the blowing mechanism.
It improves the efficiency of syringe syringe, can handle multiple syringe simultaneously, adapts to the needs of large-scale production, and solves the problem of low silication efficiency of existing equipment.
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Figure CN222872553U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of medical devices, and in particular to a needle tube silicification device. Background Art
[0002] Medical needles are commonly used medical devices and are widely used in the field of medical technology. In the process of using medical needles, it is usually necessary to insert the medical needles into the human blood vessels for injection. When the needle tip of the medical needle breaks through the human skin, a stinging sensation will be generated. In order to reduce the stinging sensation, the medical needles need to be siliconized.
[0003] At present, the siliconization processing equipment for needle tubes generally includes a machine table, a swing table, a guide rail, a pen-shaped cylinder, a silicone oil container, an oil-dipping rod, a double cylinder, a swing table cylinder, a clamping cylinder and a siliconization jig; the needle tube assembly is grasped by the clamping cylinder, and the needle tube assembly is driven by the swing table cylinder to extend into the silicone oil container to realize the siliconization of the needle tube.
[0004] However, the existing needle tube silicification equipment has a low efficiency in needle tube silicification and is difficult to adapt to large-scale needle tube production. Utility Model Content
[0005] The utility model aims to provide a needle tube silicification device to alleviate the technical problem that the needle tube silicification device in the prior art has low needle tube silicification efficiency and is difficult to adapt to large-scale needle tube production.
[0006] The utility model provides a needle tube siliconization device, comprising a material, a transfer mechanism and a silicone oil containing member arranged on a supporting platform, a joint being arranged on the top of the material, and further comprising:
[0007] The support platform is also provided with a transfer bracket and a horizontal slide rail fixed on the transfer bracket, the transfer mechanism is slidably arranged on the horizontal slide rail, the two transfer mechanisms are arranged along the extension direction of the horizontal slide rail, and the two silicone oil containers are respectively arranged on both sides of the material along the extension direction of the horizontal slide rail. The transfer mechanism includes a clamping assembly and a lifting assembly, one end of the lifting assembly is slidably arranged on the horizontal slide rail, and the other end of the lifting assembly is connected to the clamping assembly, and the clamping assembly is configured to be able to clamp the material.
[0008] Furthermore, the needle tube siliconization equipment also includes a blowing mechanism, which is connected to the clamping assembly. The blowing mechanism is provided with a blowing head, and the blowing head can extend into the joint and blow air to the material in the material.
[0009] By providing a blowing head that can be inserted into the vent hole, the top of the joint can be abutted against the blowing mechanism, thereby improving the sealing between the joint and the blowing mechanism. Furthermore, the blowing mechanism includes a blowing rod and a blowing source, a plurality of the blowing heads are evenly arranged on the blowing rod, and the blowing sources are respectively connected to one end of the blowing head away from the joint.
[0010] By arranging a plurality of blowing heads on the blowing head, a plurality of materials can be blown at the same time, and a plurality of materials can be clamped by the clamping member at the same time, so as to improve the efficiency of needle tube siliconization.
[0011] Furthermore, the blowing mechanism also includes an adjusting device, which is fixed to the supporting platform, one end of which is respectively connected to one end of the blowing head away from the joint, and the other end of which is connected to the blowing source.
[0012] The gas flow rate of the blowing head when blowing can be adjusted through the adjustment device, and then the blowing effect of the blowing head on the silicone oil can be accurately controlled, that is, to ensure that the silicone oil will not remain in the syringe and the outer wall of the syringe, and to ensure the siliconization effect when the syringe is immersed in silicone oil.
[0013] Furthermore, the blowing mechanism also includes a buffer component, two ends of which are respectively connected to the blowing rod and the clamping component, and a buffer member is arranged on the buffer component, and the buffer member reduces the vibration of the blowing rod.
[0014] By arranging the buffer component between the blowing rod and the clamping component, the buffer component will shrink when being squeezed, absorb the impact energy during docking, and reduce the damage to the material caused by excessive impact force when the blowing head descends.
[0015] Furthermore, the clamping assembly includes two relatively arranged clamping members and a first driving member, wherein the first driving member is respectively connected to the two clamping members and drives the two clamping members to move closer to and away from each other, and the clamping members are provided with clamping grooves, which are used to clamp the joint.
[0016] By arranging two clamping parts at the bottom of the transfer mechanism, the transfer mechanism can clamp the material quickly and stably and transfer it to the silicone oil containing part, so as to improve the efficiency of the needle tube siliconization mechanism in clamping and transferring the material.
[0017] Further, the lifting assembly includes a second driving member, a first mounting plate and a first lifting rod;
[0018] The first mounting plate is slidably connected to the horizontal slide rail, the first lifting rod is slidably arranged on the first mounting plate along the vertical direction, the second driving member is fixed to the first mounting plate, the driving end of the second driving member is connected to one end of the first lifting rod, and drives the first lifting rod to move along the vertical direction;
[0019] The clamping assembly also includes a second mounting plate, the second mounting plate is connected to the first lifting rod, the first driving member is fixed to the second mounting plate, and the output end of the first driving member is respectively connected to the two clamping members to drive the two clamping members to move closer to or away from each other.
[0020] The first lifting rod and the clamping assembly are driven to move in the vertical direction by the second driving member to drive the clamping assembly to rise and fall, thereby lifting the clamped material from the supporting platform to facilitate the subsequent horizontal movement of the material and avoid collision between the material and other components on the material collection position.
[0021] Furthermore, the needle tube silicification equipment also includes a third driving member, which is arranged on the lifting assembly along the vertical direction. The driving end of the third driving member is connected to the blowing mechanism and drives the blowing mechanism to move along the vertical direction.
[0022] By driving the blowing mechanism to rise and fall through the third driving member, the blowing mechanism can be docked with the material to blow air into the needle tube in the material, so that the gas can pass into the needle tube in the material and blow through the outer wall of the needle tube to avoid silicone oil being retained in the needle tube and causing clogging of the needle tube, and the residual silicone oil on the outer wall of the needle tube can be blown off to prevent it from flowing into the needle tube and causing clogging of the needle tube.
[0023] Furthermore, the needle tube silicification equipment also includes a silicone oil container support frame, the support platform is symmetrically provided with two through holes, the silicone oil container support frame is arranged below the through holes, and the silicone oil container is fixed to the silicone oil container support frame.
[0024] By setting a through hole on the supporting platform, the silicone oil container support frame and the silicone oil container can be set under the supporting platform, thereby increasing the lifting space of the material, ensuring that the blowing mechanism has enough blowing time to blow the silicone oil on the outer wall of the needle tube off and drop it into the silicone oil container, avoiding the residual silicone oil on the outer wall of the needle tube from flowing into the needle tube, and at the same time avoiding the silicone oil from falling on the supporting platform and causing pollution.
[0025] Furthermore, the needle tube siliconization equipment also includes a baffle assembly, which is arranged at the bottom of the supporting platform, and the baffle assembly is configured to selectively cover the silicone oil container.
[0026] The baffle is extended above the silicone oil container to shield the silicone oil container, so as to prevent external dust or debris from falling into the silicone oil container and causing pollution.
[0027] Beneficial effects:
[0028] The needle tube siliconization mechanism provided by the utility model comprises a supporting platform, a transfer bracket arranged on the supporting platform, and a horizontal slide rail fixed on the transfer bracket, the transfer mechanism is slidably arranged on the horizontal slide rail, the two transfer mechanisms are arranged along the extension direction of the horizontal slide rail, the two silicone oil holding parts are respectively arranged on both sides of the material along the extension direction of the horizontal slide rail, the transfer mechanism comprises a clamping assembly and a lifting assembly, one end of the lifting assembly is slidably arranged on the horizontal slide rail, the other end of the lifting assembly is connected to the clamping assembly, and the clamping assembly is configured to clamp the material; by arranging two transfer mechanisms on the horizontal slide rail and moving in the horizontal direction, one transfer mechanism can drive the material to extend into the silicone oil holding part for siliconization, while the other transfer mechanism clamps the material through the clamping assembly and the lifting assembly, thereby ensuring that the two groups of needle tubes are siliconized or transferred at the same time, so as to improve the efficiency of siliconization of the needle tubes between units, solve the technical problems of low efficiency of siliconization of needle tubes and difficulty in adapting to large-scale needle tube production in the prior art, and improve the production efficiency of siliconization of needle tubes. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] In order to more clearly illustrate the specific implementation methods of the utility model or the technical solutions in the prior art, the drawings required for use in the specific implementation methods or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are some implementation methods of the utility model. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative work.
[0030] Figure 1 A schematic diagram of the overall structure of the needle tube silicification device provided in an embodiment of the utility model;
[0031] Figure 2 A schematic diagram of the structure of the transfer mechanism and the blowing mechanism in the needle tube siliconization device provided in an embodiment of the utility model;
[0032] Figure 3 A schematic diagram of the overall structure of a support platform in a needle tube silicification device provided in an embodiment of the utility model;
[0033] Figure 4 A schematic diagram of the structure of materials in a needle tube siliconization device provided in an embodiment of the utility model.
[0034] icon:
[0035] 100, support platform; 120, transfer bracket; 130, horizontal slide rail; 140, through hole;
[0036] 200. Transferring agency;
[0037] 210, clamping assembly; 211, clamping member; 2111, clamping groove; 212, first driving member; 213, second mounting plate;
[0038] 220, lifting assembly; 221, second driving member; 222, first mounting plate; 223, first lifting rod;
[0039] 230, a third driving member;
[0040] 300. Silicone oil containing part; 310. Silicone oil containing part supporting frame;
[0041] 400, material; 410 connector;
[0042] 500, blowing mechanism; 510, blowing head; 520, blowing rod; 530, adjusting device; 540, buffer assembly;
[0043] 600. Baffle assembly. DETAILED DESCRIPTION
[0044] The technical solution of the utility model will be described clearly and completely below in conjunction with the accompanying drawings. Obviously, the described embodiments are part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments of the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0045] The present invention is further described in detail below through specific embodiments in conjunction with the accompanying drawings.
[0046] like Figures 1 to 4 As shown, the utility model provides a needle tube siliconization device, including a material 400, a transfer mechanism 200 and a silicone oil container 300 arranged on a support platform 100, a joint 410 is arranged on the top of the material 400, and also includes: the support platform 100 is also provided with a transfer bracket 120 and a horizontal slide rail 130 fixed on the transfer bracket 120, the transfer mechanism 200 is slidably arranged on the horizontal slide rail 130, the two transfer mechanisms 200 are arranged along the extension direction of the horizontal slide rail 130, the two silicone oil containers 300 are respectively arranged on both sides of the material 400 along the extension direction of the horizontal slide rail 130, the transfer mechanism 200 includes a clamping assembly 210 and a lifting assembly 220, one end of the lifting assembly 220 is slidably arranged on the horizontal slide rail 130, and the other end of the lifting assembly 220 is connected to the clamping assembly 210, and the clamping assembly 210 is configured to be able to clamp the material 400.
[0047] That is, the needle tube siliconization equipment provided by the utility model, by arranging two transfer mechanisms 200 on the horizontal slide rail 130 and moving in the horizontal direction, can make one transfer mechanism 200 drive the needle tube to extend into the silicone oil holding part 300 for siliconization by driving the material 400, while the other transfer mechanism 200 clamps the material 400 through the clamping component 210 and the lifting component 220, thereby ensuring that the two groups of needle tubes are siliconized or transferred at the same time, so as to improve the efficiency of siliconization of the needle tubes between units, solve the technical problems of low efficiency of needle tube siliconization in the prior art and difficulty in adapting to large-scale needle tube production, and improve the production efficiency of needle tube siliconization.
[0048] Specifically, in this embodiment, the material 400 is in the shape of an inverted truncated cone as a whole, and the needle tube to be siliconized is fixed in the material 400. The bottom of the material 400 is provided with an opening, and the top of the material 400 is provided with a cylindrical joint 410 to facilitate the movement of the material 400. In this embodiment, the material 400 is transported from other production lines to the support platform 100 by a carrier and a slide rail. The support platform 100 can be configured as a rectangular flat plate and arranged in the horizontal direction. The transfer bracket 120 includes four cylindrical support columns and a rectangular frame, the support columns are bolted to the support platform 100, and the rectangular frame is bolted to the support columns. The horizontal slide rail 130 is configured as a linear guide rail and is bolted to the rectangular frame in the horizontal direction. In this embodiment, two horizontal slide rails 130 are provided, and the two have the same length and are arranged parallel to each other. A slider is provided on the horizontal slide rail 130, and the transfer mechanism 200 is connected to the slider by bolts to slide along the horizontal slide rail 130. A stepper motor and a ball screw are provided at one end of the horizontal slide rail 130, and the sliding is connected to the ball screw transmission. Thus, the ball screw can be driven to rotate by the rotation of the driving motor, thereby driving the slider and the moving mechanism to move in the horizontal direction. In the present embodiment, two transfer mechanisms 200 are provided, and both transfer mechanisms 200 are connected to the stepper motor and the ball screw. Thus, it can be ensured that the two transfer mechanisms 200 can slide synchronously. On both sides of the material 400, two silicone oil holding parts 300 are respectively provided, and the distance between the two silicone oil holding parts 300 is twice the distance between the two transfer mechanisms 200. The two silicone oil holding parts 300 and the two transfer mechanisms 200 are arranged along the same horizontal direction, and the two silicone oil holding parts 300 are symmetrically arranged on both sides of the material 400. The transfer mechanism 200 includes a clamping assembly 210 and a lifting assembly 220. The lifting assembly 220 can drive the clamping assembly 210 to move in the vertical direction, thereby clamping the material 400 to take the material or driving the material 400 to extend into the silicone oil holding part 300 for siliconization. The two transfer mechanisms 200 can respectively and simultaneously execute the processes of clamping the material 400 to take the material and driving the material 400 to extend into the silicone oil holding part 300 for siliconization, thereby improving the siliconization efficiency of the needle tube.
[0049] Furthermore, the lifting assembly 220 includes a second driving member 221, a first mounting plate 222 and a first lifting rod 223; the first mounting plate 222 is slidably connected to the horizontal slide rail 130, the first lifting rod 223 is slidably arranged on the first mounting plate 222 along the vertical direction, the second driving member 221 is fixed to the first mounting plate 222, the driving end of the second driving member 221 is connected to one end of the first lifting rod 223, and drives the first lifting rod 223 to move along the vertical direction.
[0050] Specifically, the first mounting plate 222 is connected to the slider on the horizontal slide rail 130 by bolts. Four through holes 140 arranged in a rectangular shape are arranged around the first mounting plate 222. Four first lifting rods 223 are respectively arranged in one through hole 140 and slide in the through hole 140 in the vertical direction. The bottom of the first lifting rod 223 is connected to the clamping assembly 210. The second driving member 221 is set as a cylinder, which is fixed to the top of the first mounting plate 222 by bolts, and its output end is connected to the clamping assembly 210. In this way, the first lifting rod 223 and the clamping assembly 210 can be driven to move in the vertical direction by the second driving member 221 to drive the clamping assembly 210 to move up and down, and then the clamped material 400 is lifted from the support platform 100, so as to facilitate the subsequent horizontal movement of the material 400 and avoid the collision of the material 400 with other components on the material extraction position.
[0051] Furthermore, the clamping assembly 210 includes a second mounting plate 213, two relatively arranged clamping members 211 and a first driving member 212. The first driving member 212 is respectively connected to the two clamping members 211 and drives the two clamping members 211 to move closer to and away from each other. The clamping member 211 is provided with a clamping groove 2111, and the clamping groove 2111 is used to clamp the joint 410.
[0052] Specifically, the second mounting plate 213 is specifically configured as a rectangular stainless steel plate, and the top thereof is connected to the bottom of the first lifting rod 223 by bolts. The first driving member 212 is fixed to the bottom of the second mounting plate 213 by bolts. In this embodiment, the first driving member 212 can be configured as a clamping cylinder. In other embodiments of the present application, the first driving member 212 can also be configured as a driving member such as a lead screw nut or an electromagnetic relay assembly that can bring the two driving ends close to each other. The two clamping members 211 are arranged relatively to each other, and are respectively fixed to the two driving ends of the clamping cylinder. Driven by the first driving member 212, they approach or move away from each other in the horizontal direction, thereby clamping or releasing the joint 410 at the top of the material 400. In order to ensure that the two clamping members 211 can move stably, in this embodiment, two first driving members 212 are provided, which are respectively connected to the two ends of the clamping member 211. Therefore, by setting two clamping members 211 at the bottom of the transfer mechanism 200, the transfer mechanism 200 can quickly and stably clamp the material 400 and transfer it to the silicone oil container 300, so as to improve the efficiency of the needle tube siliconization mechanism in clamping and transferring the material 400 and the material.
[0053] Preferably, the needle tube silicification equipment also includes a third driving member 230, which is arranged in the lifting assembly 220 along the vertical direction, and the third driving member 230 is arranged between the two clamping members 211. The driving end of the third driving member 230 is connected to the blowing mechanism 500 and drives the blowing mechanism 500 to move in the vertical direction.
[0054] Specifically, the third driving member 230 can be specifically configured as an electric push rod or a cylinder, which is fixed to the lifting assembly 220 by bolts, and can be connected to the second mounting plate 213, or can be directly fixed to the driving end of the second driving member 221, so as to be lifted and lowered together with the clamping assembly 210. The third driving member 230 is arranged between the two clamping members 211 and directly above the material 400, and the blowing mechanism 500 is fixed to the driving end of the third driving member 230. By driving the lifting and lowering of the blowing mechanism 500 by the third driving member 230, the blowing mechanism 500 can be docked with the material 400 to blow air into the needle tube in the material 400, so that the gas can pass into the needle tube in the material 400 and blow through the outer wall of the needle tube to avoid the silicone oil being retained in the needle tube and causing the needle tube to be blocked, and the residual silicone oil on the outer wall of the needle tube is blown off to prevent it from flowing into the needle tube and causing the needle tube to be blocked.
[0055] Furthermore, the connector 410 is penetrated by a vent hole, and the needle tube siliconization equipment also includes a blowing mechanism 500, which is connected to the clamping assembly 210, and the blowing mechanism 500 is provided with a blowing head 510, which can extend into the connector 410 and blow air into the material in the material 400.
[0056] Specifically, the blowing head 510 is arranged in a conical shape, and its size is slightly smaller than the vent hole, so that the blowing head 510 can be inserted into the vent hole. The blowing head 510 can be connected to an external gas source through a pipeline to pass gas into the joint 410. By arranging the blowing head 510 that can be inserted into the vent hole, the top of the joint 410 can be abutted against the blowing mechanism 500, thereby improving the sealing between the joint 410 and the blowing mechanism 500.
[0057] Furthermore, the blowing mechanism 500 includes a blowing rod 520 and a blowing source, a plurality of blowing heads 510 are evenly arranged on the blowing rod 520 , and the blowing sources are respectively connected to one end of the blowing heads 510 away from the joint 410 .
[0058] Specifically, the blowing rod 520 is in an elongated shape as a whole, and a plurality of blowing heads 510 are fixed at the bottom of the blowing rod 520 along the length direction of the blowing rod 520. A plurality of holding slots for placing the material 400 are arranged on the carrier, and the holding slots are arranged in a straight line, and the extension direction of the blowing rod 520 is the same as that of the blowing rod 520. The blowing source can be set as an air pump, which is connected to each blowing head 510 through an air pipe. Therefore, by setting a plurality of blowing heads 510 on the blowing rod 520, it is possible to blow air to a plurality of materials 400 at the same time, and at the same time, clamp a plurality of materials 400 through the clamping member 211, so as to improve the efficiency of needle siliconization.
[0059] Preferably, the blowing mechanism 500 further includes an adjusting device 530, which is fixed to the supporting platform 100, one end of the adjusting device 530 is respectively connected to one end of the blowing head 510 away from the joint 410, and the other end of the adjusting device 530 is connected to the blowing source.
[0060] Specifically, the adjustment mechanism is fixed to the support platform 100 by bolts, and a plurality of adjustment valves are arranged on the adjustment device 530, one end of each adjustment valve is connected to the air blowing head 510 through a pipeline, and the other end is connected to the air blowing source through a pipeline. Thus, the gas flow rate when the air blowing head 510 is blowing can be adjusted by the adjustment device 530, and the blowing effect of the air blowing head 510 on the silicone oil can be accurately regulated, that is, to ensure that the silicone oil does not remain in the needle tube and the outer wall of the needle tube, and to ensure the siliconization effect when the needle tube is immersed in the silicone oil.
[0061] Furthermore, the blowing mechanism 500 also includes a buffer assembly 540 , both ends of which are respectively connected to the blowing rod 520 and the clamping assembly 210 , and a buffer is provided on the buffer assembly 540 , which reduces the vibration of the blowing rod 520 .
[0062] Specifically, the buffer assembly 540 is configured as two circular tubes that are mutually sleeved, the circular tube at one end is connected to the clamping assembly 210 by bolts, and the circular tube at the other end is connected to the blowing rod 520 by bolts. The buffer assembly 540 is provided with a spring, and its two ends are respectively abutted with the clamping assembly 210 and the blowing rod 520. In other embodiments of the present application, connectors can also be respectively provided at the upper and lower ends of the two circular tubes, and the buffer assembly 540 can abut on the connector and be fixed on the connector. When the third driving member 230 drives the lifting and lowering of the blowing mechanism 500, so that the blowing head 510 on the blowing rod 520 extends into the joint 410 of the material 400, the blowing rod 520 and the clamping assembly 210 will squeeze the buffer assembly 540, and the buffer assembly 540 will shrink therewith to absorb the impact energy during docking, and reduce the damage to the material 400 caused by excessive impact force when the blowing head 510 descends.
[0063] Furthermore, the needle tube silicification equipment also includes a silicone oil container support frame 310 , the support platform 100 is symmetrically provided with two through holes 140 , the silicone oil container support frame 310 is arranged below the through holes 140 , and the silicone oil container 300 is fixed to the silicone oil container support frame 310 .
[0064] Specifically, the silicone oil box is arranged in a long strip shape, and its top is opened. The silicone oil holding part support frame 310 can be constructed of profiles, and a mounting groove is arranged on the top of the silicone oil holding part support frame 310, and the silicone oil box is fixed in the mounting groove. The through hole 140 can be arranged in a circular, square or long strip shape, and its size is slightly larger than that of the clamping mechanism, and is arranged above the silicone oil holding part 300. In this way, the lifting component 220 can be used to drive the clamping component 210 and the clamped material 400 to extend into the silicone oil container 300, so as to siliconize the needle tube in the material 400. By setting a through hole 140 on the support platform 100, the silicone oil container support frame 310 and the silicone oil container 300 can be set below the support platform 100, thereby increasing the lifting space between the material 400 and the material, ensuring that the blowing mechanism 500 has enough blowing time to blow the silicone oil on the outer wall of the needle tube off and drop it into the silicone oil container 300, thereby preventing the residual silicone oil on the outer wall of the needle tube from flowing into the needle tube, and at the same time preventing the silicone oil from falling on the support platform 100 and causing pollution.
[0065] Preferably, the needle tube siliconization device further comprises a baffle assembly 600 , which is disposed at the bottom of the supporting platform 100 , and the baffle assembly 600 is configured to selectively shield the silicone oil container 300 .
[0066] Specifically, the baffle assembly 600 includes a baffle and a driving device for driving the baffle to move, and the size and shape of the baffle are the same as the size and shape of the through hole 140. The driving device can be set as an electric push rod, which is arranged between the two silicone oil containers 300 in the horizontal direction and fixed to the bottom of the support platform 100 by bolts. The baffle is connected to the driving end of the electric push rod. In this way, the baffle can be pushed by the electric push rod to extend above the silicone oil container 300 to shield the silicone oil container 300 to prevent external dust or debris from falling into the silicone oil container 300 and causing pollution. In other embodiments of the present application, two baffle assemblies 600 are provided, facing the silicone oil containers 300 on both sides, respectively, to shield the silicone oil containers 300 on both sides with colloid, so as to adapt to the two transfer assemblies to simultaneously perform the operation of the process of clamping the material 400 to take the material and driving the material 400 to extend into the silicone oil container 300 for siliconization.
[0067] Finally, it should be noted that the above embodiments are only used to illustrate the technical solution of the utility model, rather than to limit it. Although the utility model has been described in detail with reference to the aforementioned embodiments, ordinary technicians in the field should understand that they can still modify the technical solutions recorded in the aforementioned embodiments, or replace some or all of the technical features therein with equivalents. However, these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the utility model.
Claims
1. A needle tube siliconization device, comprising a material (400), a transfer mechanism (200) and a silicone oil container (300) arranged on a support platform (100), a joint (410) is arranged on the top of the material (400), and a vent hole is passed through the joint (410), characterized in that: Also includes: The support platform (100) is also provided with a transfer bracket (120) and a horizontal slide rail (130) fixed on the transfer bracket (120); the transfer mechanism (200) is slidably arranged on the horizontal slide rail (130); the two transfer mechanisms (200) are arranged along the extension direction of the horizontal slide rail (130); the two silicone oil containers (300) are respectively arranged on both sides of the material (400) along the extension direction of the horizontal slide rail (130); the transfer mechanism (200) includes a clamping component (210) and a lifting component (220); one end of the lifting component (220) is slidably arranged on the horizontal slide rail (130); the other end of the lifting component (220) is connected to the clamping component (210); and the clamping component (210) is configured to be able to clamp the material (400).
2. The needle tube silicification device according to claim 1, characterized in that: The needle tube siliconization equipment also includes a blowing mechanism (500), which is connected to the clamping assembly (210). The blowing mechanism (500) is provided with a blowing head (510), and the blowing head (510) can extend into the joint (410) and blow air toward the needle tube in the material (400).
3. The needle tube silicification device according to claim 2, characterized in that: The blowing mechanism (500) comprises a blowing rod (520) and a blowing source, a plurality of the blowing heads (510) are evenly arranged on the blowing rod (520), and the blowing sources are respectively connected to one end of the blowing heads (510) away from the joint (410).
4. The needle tube silicification device according to claim 3, characterized in that: The blowing mechanism (500) further comprises an adjusting device (530), wherein the adjusting device (530) is fixed to the supporting platform (100), one end of the adjusting device (530) is respectively connected to one end of the blowing head (510) away from the joint (410), and the other end of the adjusting device (530) is connected to the blowing source.
5. The needle tube silicification device according to claim 3, characterized in that: The blowing mechanism (500) further comprises a buffer assembly (540), the two ends of which are respectively connected to the blowing rod (520) and the clamping assembly (210), and a buffer member (541) is arranged on the buffer assembly (540), and the buffer member (541) reduces the vibration to which the blowing rod (520) is subjected.
6. The needle tube silicification device according to claim 5, characterized in that: The clamping assembly (210) comprises two clamping members (211) arranged opposite to each other and a first driving member (212); the first driving member (212) is respectively connected to the two clamping members (211) and drives the two clamping members (211) to move closer to or farther from each other; the clamping member (211) is provided with a clamping groove (2111) for clamping the joint (410).
7. The needle tube silicification device according to claim 6, characterized in that: The lifting assembly (220) comprises a second driving member (221), a first mounting plate (222) and a first lifting rod (223); The first mounting plate (222) is slidably connected to the horizontal slide rail (130), the first lifting rod (223) is slidably arranged on the first mounting plate (222) along the vertical direction, the second driving member (221) is fixed to the first mounting plate (222), the driving end of the second driving member (221) is connected to one end of the first lifting rod (223), and drives the first lifting rod (223) to move along the vertical direction; The clamping assembly (210) further comprises a second mounting plate (213), wherein the second mounting plate (213) is connected to the first lifting rod (223), the first driving member (212) is fixed to the second mounting plate (213), and the output ends of the first driving member (212) are respectively connected to the two clamping members (211) to drive the two clamping members (211) to move closer to or farther from each other.
8. The needle tube silicification device according to claim 7, characterized in that: The needle tube silicification device also includes a third driving member (230), which is arranged on the lifting assembly (220) in the vertical direction. The driving end of the third driving member (230) is connected to the blowing mechanism (500) and drives the blowing mechanism (500) to move in the vertical direction.
9. The needle tube silicification device according to any one of claims 1 to 5, characterized in that: The needle tube silicification equipment also includes a silicone oil container support frame (310), the support platform (100) is symmetrically provided with two through holes (140), the silicone oil container support frame (310) is arranged below the through holes (140), and the silicone oil container (300) is fixed to the silicone oil container support frame (310).
10. The needle tube silicification device according to claim 8, characterized in that: The needle tube siliconization device further comprises a baffle assembly (600), wherein the baffle assembly (600) is disposed at the bottom of the support platform (100), and the baffle assembly (600) is configured to selectively cover the silicone oil container (300).