Insertion core glue injection equipment based on inclined standing
By using a tilted, stationary ferrule injection device, and by combining a rotating placement table and a ferrule clamp, the problems of glue leakage and unevenness in the glue injection process of MT-type multi-core fiber optic ferrules have been solved, achieving uniform glue distribution and efficient operation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- EAST POINT COMM TECH CO LTD
- Filing Date
- 2026-03-26
- Publication Date
- 2026-05-12
AI Technical Summary
In the existing technology, the glue injection process of MT type multi-core fiber ferrules has problems such as glue leakage, uneven glue volume, cumbersome operation and low efficiency. In particular, it is difficult to ensure the precise tilt angle and stable state when injecting glue horizontally.
The device employs a tilted static placement ferrule injection system. By cooperating with the rotating placement table and ferrule clamp, the ferrule is tilted and placed statically. Gravity is used to optimize the glue distribution, simplify the injection process, avoid glue leakage and contamination, and ensure that the amount of glue in each fiber insertion hole is sufficient and uniform.
It effectively prevents glue leakage and contamination of the guide pin holes, ensures sufficient and uniform glue amount in each fiber threading hole, reduces the defect rate of empty glue and insufficient glue amount, simplifies the operation process, and improves efficiency.
Smart Images

Figure CN122006983A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of communication technology, and more specifically to a ferrule injection device based on tilted static placement. Background Technology
[0002] In the assembly process of multi-core fiber optic ferrules such as MT (Mechanical Transfer) type, the precise injection and distribution of adhesive into the adhesive storage area and fiber insertion hole inside the ferrule is a crucial step. Traditional processes typically involve placing the ferrule horizontally for adhesive injection, followed by using a negative pressure adhesive suction device to horizontally remove excess adhesive from the end face of the ferrule to control the amount of adhesive and form an adhesive film within the fiber insertion hole before finally inserting the optical fiber.
[0003] However, this traditional method and its equipment have significant drawbacks: First, during horizontal glue injection, glue easily leaks from the rear of the glue storage area, resulting in insufficient effective glue volume; second, the glue suction step is necessary, but the process window is narrow, and improper suction or timing control can easily draw glue into the guide pin holes on both sides, causing contamination, or leading to uneven glue volume in the fiber threading holes; third, the multi-step process of glue injection, glue suction, and fiber threading relies on manual operation and judgment, resulting in low efficiency. Although there are solutions that use simple inclined blocks to tilt the ferrule, they cannot simultaneously meet the horizontal stability required during glue injection and the precise tilt angle required during static placement. Repeated clamping and positioning are required between processes, making the operation cumbersome and the accuracy difficult to guarantee. Summary of the Invention
[0004] In view of the problems of complex processes, difficulty in controlling the amount of glue, and easy generation of empty glue in the existing technology, the purpose of this invention is to provide a glue injection device based on tilted static placement of the insert.
[0005] To address the above problems, the present invention provides the following technical solution: A tilted, stationary insert gluing device includes: a frame; A ferrule clamp includes: a clamping surface that forms an angle with a horizontal plane; clamping blocks arranged in a longitudinal and transverse array on the clamping surface, with the gap between any two adjacent clamping blocks in a row used to accommodate and limit the ferrule; and a locking strip, at least one locking strip disposed on the clamping surface for cooperating with the clamping blocks to clamp the ferrule. A rotating placement platform is provided, on which the ferrule clamp is disposed, and the rotating placement platform is used to provide the ferrule clamp with a pitch angle rotation function.
[0006] In some embodiments, the insert clamp is in the shape of a right-angled triangular plate, and the insert clamp further includes: The first right-angled surface, together with the clamping surface, forms angle β, one of the interior angles of a triangle; The second right-angled surface; the second right-angled surface is perpendicular to the first right-angled surface and forms one of the interior angles of a triangle, angle α; the second right-angled surface and the clamping surface form one of the interior angles of a triangle, angle γ; The angle α is 90°; The range of the β angle is 20° to 45°; The range of the γ angle is 45° to 70°.
[0007] In some embodiments, the tilted, stationary insert gluing device further includes: A first linear motor, mounted on the frame, is used to provide movement in a first direction for the rotary placement stage and the insert clamp, wherein the rotary placement stage is mounted on the first linear motor.
[0008] In some embodiments, the tilted, stationary insert gluing device further includes: Injection molding components; Support columns are respectively installed on the two side walls of the frame; The second linear motor is mounted above the work platform of the frame via a support column. The dispensing assembly is mounted on the second linear motor, which provides the dispensing assembly with a second-direction movement function.
[0009] In some embodiments, the rotating placement platform includes a lead screw motor, an arc-shaped guide rail base, and a movable top surface. The output shaft of the lead screw motor is disposed on one end of the movable top surface, and the movable top surface is slidably connected to the arc-shaped guide rail base. The movable top surface is provided with a threaded hole for installing the insert clamp.
[0010] In some embodiments, the side of the arc-shaped guide rail is provided with an arc scale, the range of which is -45° to 45°, and a marking scale for indicating the arc scale is provided at the middle of the side of the movable top surface.
[0011] In some embodiments, the rack is further provided with a VAG interface, a power switch, a power interface, a manual dispensing button, a reset button, an emergency stop button, and a start button.
[0012] In some embodiments, the bottom of the frame is also provided with several support legs.
[0013] In some embodiments, the ferrule clamp further includes a mounting base disposed on the first right-angled surface.
[0014] In some embodiments, a mounting plate is provided between the first linear motor and the rotary placement stage.
[0015] The beneficial effects of this invention are as follows: By cooperating with the rotating placement stage and the ferrule clamp, it can adapt to ferrule clamps with various tilt angles for horizontal glue injection. After glue injection, the ferrule clamp is removed and placed on a horizontal workbench. Due to its own structure, the angle is tilted. The tilted static state utilizes gravity to naturally optimize the glue distribution. Under the action of gravity, the glue will gather on the lower side of the glue storage area, effectively preventing backward leakage and ensuring that there is sufficient glue in the glue storage area. This effectively prevents glue leakage and contamination of the guide pin hole. Under the action of gravity, the glue can penetrate more evenly into each fiber insertion hole. When inserting the fiber, the optical fiber is inserted from the top of the channel, which helps the optical fiber in each channel to be fully wrapped by the glue, fundamentally reducing the defect rate of empty glue, insufficient glue amount, etc. At the same time, it simplifies the process and eliminates the traditional glue suction step and its special equipment. Attached Figure Description
[0016] Figure 1 This is a process flow diagram of a method for injecting adhesive into an inclined, stationary ferrule fiber according to another embodiment of the present invention. Figure 2 This is a perspective view of a tilted, stationary insert gluing device according to the present invention; Figure 3 This is a perspective view of a tilted, stationary insert gluing device according to the present invention (with hidden insert clamps). Figure 4 This is a perspective view of another angle of the present invention, which describes a tilted, stationary insert gluing device. Figure 5 This is a perspective view of the rotating placement platform of the present invention; Figure 6 This is a perspective view of the insert clamp of the present invention; Figure 7 This is a left view of the insert clamp of the present invention; Figure 8 This is a perspective view of the insert of the present invention.
[0017] Figure label: Rack 100, VAG interface 110, power switch 120, power interface 130, manual dispensing button 140, reset button 150, emergency stop button 160, start button 170, support legs 180; 200, clamping surface 210, clamping block 220, MT ferrule 230, glue storage area 231, fiber optic hole 232, glue injection window 233, inlet end 234, retaining strip 240, first right-angled surface 250, second right-angled surface 260, Rotary placement stage 300, lead screw motor 310, arc-shaped guide rail seat 320, movable top surface 330, threaded hole 340, arc scale 350, marking scale 360; First linear motor 400; 500 injection molding components; Support column 600; Second linear motor 700; Mounting bracket 800; Mounting plate 900. Detailed Implementation
[0018] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.
[0019] 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 one or more of that feature. In the description of this invention, "a plurality of" means two or more, unless otherwise explicitly specified.
[0020] For ease of description of the first, second, and third directions in the embodiments of this application, the first direction is the left-right direction in the figures, the second direction is the front-back direction in the figures, and the third direction is the up-down direction in the figures. The x-axis arrow direction is referred to as the "right" direction, the y-axis arrow direction as the "up" direction, and the z-axis arrow direction as the "back" direction, but these are not the sole limitations in the actual application of this application.
[0021] like Figure 1 , Figure 6 or Figure 7 As shown, this embodiment provides a method for injecting adhesive into an inclined static ferrule fiber, which includes S1: providing a ferrule clamp 200, the ferrule clamp 200 having a clamping surface 210 that forms an inclined angle with the horizontal plane, and fixing the MT ferrule 230 in a fixing structure on the clamping surface 210; like Figures 2 to 5 As shown, S2: A rotating platform 300 is provided, and the insert clamp 200 is detachably mounted on the movable top surface 330 of the rotating platform 300. The angle of the movable top surface 330 of the rotating platform 300 is adjusted so that the clamping surface 210 on the insert clamp 200 is parallel to the horizontal plane. like Figures 2 to 5 or Figure 8 As shown, S3: Inject glue into the glue storage area 231 inside the glue injection window 233 at the top of the MT ferrule 230; S4: After the glue is applied, reset the angle of the moving top surface 330 of the rotating placement table 300 so that the clamping surface 210 on the insert clamp 200 is in an inclined state with respect to the horizontal plane. like Figures 2 to 5 or Figure 8 As shown, S5: The ferrule clamp 200 with the MT ferrule 230 fixed is removed from the rotary placement table 300 and placed separately on the horizontal working surface. At this time, the clamping surface 210 of the ferrule clamp 200 is in an inclined state with the horizontal surface, so that the glue enters the multiple fiber holes 232 from the glue storage area 231 of the MT ferrule 230. S6: After the preset set time has elapsed in the tilted state, the glue is submerged in the opening of the fiber optic hole 232 and remains in the hole. Multiple optical fibers are then inserted into the fiber optic hole 232 from the end face of the MT ferrule 230.
[0022] like Figure 5 , Figure 6 or Figure 7 As shown, the rotating placement stage 300 of the present invention includes a movable top surface 330 capable of relative rotational movement, and a core clamp 200 disposed on the movable top surface 330.
[0023] like Figure 6 or Figure 7 As shown, the ferrule clamp 200 is an integrally formed right-angled triangular plate, which can be made of aluminum, iron, or carbon fiber. Its three interior angles are: ∠α = 90° (right angle), ∠β = 35° (preferred), and ∠γ = 55° (preferred). The side sandwiched between ∠α and ∠β forms the first right-angled surface 250 (bottom surface), and the side sandwiched between ∠α and ∠γ forms the second right-angled surface 260. The inclined surface of the ferrule clamp 200 is the clamping surface 210. Multiple clamping blocks 220 are fixed to the clamping surface 210 via an integrated structure. The clamping blocks 220 are arranged equidistantly, and the gaps between adjacent clamping blocks 220 are used to accommodate and clamp one MT ferrule 230. Figure 2 , Figure 6 or Figure 7 As shown, this embodiment provides a tilted, stationary insert glue injection device, which includes a frame 100; The ferrule clamp 200 includes: a clamping surface 210, which forms an angle with the horizontal plane; clamping blocks 220, in which multiple clamping blocks 220 are arranged in a longitudinal and transverse array on the clamping surface 210, and the gap between any two adjacent clamping blocks 220 is used to accommodate and limit the MT ferrule 230; and a locking strip 240, at least one locking strip 240 is provided on the clamping surface 210 for cooperating with the clamping blocks 220 to clamp the MT ferrule 230. A rotating platform 300 is provided, and a core clamp 200 is mounted on the rotating platform 300. The rotating platform 300 is used to provide the core clamp 200 with a pitch angle rotation function.
[0024] like Figure 2 , Figure 6 or Figure 7 As shown, in this embodiment, the frame 100 includes a working platform for providing a frame for the device. The clamping surface 210 of the ferrule clamp 200 forms a 35° angle with the horizontal plane. Four rows and twenty columns of clamping blocks 220 are provided on the clamping surface 210. A gap is formed between adjacent clamping blocks 220 to accommodate and position the MT ferrule 230. A locking strip 240 is provided at the bottom of each row of clamping blocks 220 to support the bottom of the MT ferrule 230 and prevent the MT ferrule 230 from sliding down. The rotating stage 300 is a high-precision optical electric pitch stage, model YXGA45 stepper motor. Driven by a stepper motor, it can rotate the ferrule clamp 200 at a pitch angle of -45° to 45°. When the electric rotating stage rotates to a certain angle (preferably 35° in this embodiment), the clamping surface 210 of the ferrule clamp 200 is parallel to the horizontal plane, which is beneficial for horizontal glue application and facilitates operation and control. At this time, if... Figure 8 As shown, the glue injection window 233 on the top of the MT insert 230 faces upwards, and horizontal glue injection makes it easy for the needle to be aligned with the glue injection window 233.
[0025] After applying the adhesive, rotate the ferrule clamp 200 from the horizontal direction to a 35° angle and hold it for more than 10 seconds to allow the adhesive to soak into the opening of the fiber optic port 232 and remain inside the port. When the optical fiber enters the fiber optic port 232, this ensures that there is sufficient adhesive at the entrance, and the cylindrical surface of the optical fiber is wetted with adhesive. During insertion, the optical fiber will carry the adhesive into the fiber optic port 232, ensuring that each optical fiber (within the fiber optic port 232) is completely wrapped with adhesive, greatly reducing the possibility of air bubbles being introduced into the port. (Assuming equal-length optical fibers, this ensures consistent adhesive application.)
[0026] The process of applying adhesive using the method of this invention is as follows: (1) Place the MT ferrules 230 to be injected one by one between the clamping blocks 220 of the ferrule clamp 200 and fix them. Install the ferrule clamp 200 onto the movable top surface 330 of the rotating placement table 300.
[0027] (2) Using a dispensing device, a measured amount of glue is injected into the glue storage area 231 inside the MT insert 230 through the glue dispensing window 233. Since the insert 230 is horizontal, the glue dispensing operation is convenient and stable.
[0028] (3) After the glue is applied, remove the entire ferrule clamp 200 (along with the multiple MT ferrules 230 on it) from the movable top surface 330 of the rotating placement table 300. Place the first right-angled surface 250 of the ferrule clamp 200 directly on the flat workbench. At this time, due to the geometry of the ferrule clamp 200 itself, its clamping surface 210 naturally forms a 35° tilt angle with the horizontal plane. The axis of the fiber hole 232 of the MT ferrule 230 also tilts accordingly.
[0029] (4) Leave it at this 35° tilt for a period of time (preferably 10 seconds). Figure 4 As shown, under the influence of gravity, the adhesive will naturally flow towards the lower side of the adhesive storage area 231 and the fiber penetration hole 232, completing the redistribution of the adhesive and its penetration into the lower end of the channel. This process replaces the traditional adhesive suction step.
[0030] (5) After the settling period, the operator can directly insert multiple optical fibers from the end face of the MT ferrule 230 into the corresponding fiber insertion holes 232 in sequence. During the insertion process, the optical fibers will naturally be immersed in the glue that has been pre-distributed at the lower end of the hole and will be fully wrapped.
[0031] By using a rotating placement table in conjunction with the ferrule clamp, it can accommodate ferrule clamps of various tilt angles for horizontal glue application. After glue application, the ferrule clamp is removed and placed on a horizontal workbench. Due to its own structure, the angle is tilted. The tilted static state utilizes gravity to naturally optimize the glue distribution, effectively preventing glue leakage and contamination of the guide pin hole. This ensures that the amount of glue in each fiber insertion hole is sufficient and uniform, fundamentally reducing the defect rate of empty glue and insufficient glue. At the same time, it greatly simplifies the operation process and eliminates the traditional glue suction step and its special equipment.
[0032] like Figure 8 As shown in this embodiment, it should be noted that the optical fiber enters from the inlet end 234 of the MT ferrule 230, passes through the inside of the adhesive storage area 231, enters the fiber channel (inside the fiber channel 232) from the inlet of the fiber channel 232, and finally exits from the outlet of the fiber channel 232.
[0033] like Figure 7 As shown, in this embodiment, the ferrule clamp 200 is in the shape of a right-angled triangular plate, and the ferrule clamp 200 further includes: The first right-angled surface 250 and the clamping surface 210 form one of the interior angles of a triangle, angle β. The second right-angled surface 260 is perpendicular to the first right-angled surface 250 and forms one of the interior angles of the triangle, angle α. The second right-angled surface 260 and the clamping surface 210 form one of the interior angles of the triangle, angle γ. Angle α is 90°; The range of the β angle is 20° to 45°; The range of the γ angle is 45° to 70°.
[0034] The ferrule clamp 200 is a one-piece right-angled triangular plate, which can be made of aluminum, iron, or carbon fiber. Its three interior angles are: ∠α = 90° (right angle), ∠β = 35° (preferred), and ∠γ = 55° (preferred). The side between ∠α and ∠β forms the first right-angled surface 250 (bottom surface), and the side between ∠α and ∠γ forms the second right-angled surface 260. The inclined surface of the ferrule clamp 200 is the clamping surface 210. Multiple clamping blocks 220 are fixed to the clamping surface 210 via an integrated structure. The clamping blocks 220 are arranged equidistantly, and the gaps between adjacent clamping blocks 220 are used to accommodate and clamp one MT ferrule 230.
[0035] like Figure 2 , Figure 3 and Figure 7 As shown in this embodiment, it should be noted that in the step of installing the insert clamp 200 onto the movable top surface 330 of the rotary placement stage 300, the first right-angled surface 250 (bottom surface) coincides with and contacts the movable top surface 330; in other words, the first right-angled surface 250 (bottom surface) faces downward. The installation method can be threaded connection, snap-fit connection, or magnetic connection. In a preferred embodiment, the insert clamp 200 and the rotary placement stage 300 are installed by threaded connection, and each threaded hole 340 on the movable top surface 330 is threadedly connected to each corresponding mounting hole on the first right-angled surface 250 (bottom surface) (the mounting holes in the insert clamp 200 are not shown in the figure).
[0036] like Figures 2 to 5 As shown, in this embodiment, the tilted static ferrule injection device further includes: a first linear motor 400, which is mounted on the frame 100 and is used to provide a first-direction movement function for the rotary placement stage 300 and the ferrule clamp 200. The rotary placement stage 300 is mounted on the first linear motor 400.
[0037] The first linear motor 400 is used to provide X-axis movement on the rotary placement stage 300 on the work platform during the dispensing process.
[0038] like Figures 2 to 5 As shown, in this embodiment, the glue injection device based on the tilted and stationary insert further includes: a glue injection assembly 500; Support columns 600 are respectively installed on the two side walls of the frame 100; The second linear motor 700 is mounted above the work platform of the frame 100 via a support column 600. The dispensing assembly 500 is mounted on the second linear motor 700. The second linear motor 700 is used to provide the dispensing assembly 500 with a second-direction movement function.
[0039] The dispensing assembly 500 is used to dispense adhesive into the adhesive storage area 231 in the MT insert 230. The support column 600 is used to support the second linear motor 700, which provides the dispensing assembly 500 with Y-axis movement function.
[0040] like Figure 5 As shown, in this embodiment, the rotating placement stage 300 includes a lead screw motor 310, an arc-shaped guide rail seat 320, and a movable top surface 330. The output shaft of the lead screw motor 310 is disposed on one end of the movable top surface 330, which is slidably connected to the arc-shaped guide rail seat 320. The movable top surface 330 is provided with a threaded hole 340 for mounting the insert clamp 200. The side of the arc-shaped guide rail seat 320 is provided with an arc scale 350, the range of which is -45° to 45°. A marking scale 360 for indicating the arc scale 350 is provided at the middle of the side of the movable top surface 330.
[0041] like Figures 2 to 5 The output end of the lead screw motor 310 shown is set on one end of the moving top surface 330, controlling the moving top surface 330 to move back and forth on the arc-shaped guide rail seat 320, and finally stop at a certain angle, preferably at -35°. At this time, the mark 360 points to the arc mark 350 corresponding to -35°, so that the clamping surface 210 on the insert clamp 200 is on the horizontal plane.
[0042] like Figure 2 As shown in this embodiment, the dispensing equipment has manual dispensing, reset, emergency stop, and start functions. In this embodiment, the frame 100 is also equipped with a VAG interface 110, a power switch 120, a power interface 130, a manual dispensing button 140, a reset button 150, an emergency stop button 160, and a start button 170.
[0043] like Figure 2 As shown, in this embodiment, the bottom of the frame 100 is also provided with several support legs 180.
[0044] like Figure 7 As shown, in this embodiment, the ferrule clamp 200 further includes a mounting base 800 disposed on the first right-angled surface 250. The mounting base 800 facilitates the mounting of the ferrule clamp 200 onto the movable top surface 330 via a threaded connection.
[0045] like Figure 2 or Figure 3 As shown, in this embodiment, a mounting plate 900 is provided between the first linear motor 400 and the rotary placement stage 300. The mounting plate 900 facilitates fixing the rotary placement stage 300 to the first linear motor 400.
[0046] like Figure 5As shown, in this embodiment, in step S1, the inclination angle formed by the clamping surface 210 of the ferrule clamp 200 and the horizontal plane ranges from 20° to 45°. In this embodiment, in step S1, the other two interior angles of the ferrule clamp 200 are 90° and 45°~70°, respectively.
[0047] The tilt angle (i.e., ∠β) of the insert clamp 200 is not limited to 35°; the beneficial effects of the present invention can be achieved within the range of 20° to 45°. If the angle is too small, the component of gravity will be insufficient, and the effect will be insignificant; if the angle is too large, the adhesive may flow to the end face too quickly. 35° has proven to be the preferred angle that balances effectiveness and operational stability.
[0048] like Figure 8 As shown, in this embodiment, in step S6, the preset settling time is used to allow the adhesive to redistribute and accumulate in the adhesive storage area 231 under the action of gravity, while allowing the adhesive to penetrate into the channel along the inclined fiber penetration hole 232.
[0049] like Figure 5 As shown, in this embodiment, in step S2, the angle adjustment range of the moving top surface 330 of the rotating placement stage 300 is -45° to 45°. The rotating placement stage 300 is an electric rotary stage, model YXGA45 stepper, which can drive the ferrule clamp 200 to rotate. When the electric rotary stage rotates to a certain angle (preferably 35° in this embodiment), the clamping surface 210 of the ferrule clamp 200 is parallel to the horizontal plane, which is beneficial for horizontal glue injection and facilitates operation and control.
[0050] like Figures 2 to 4 As shown, in this embodiment, in step S2, the connection between the insert clamp 200 and the movable top surface 330 can be any one of threaded connection, snap-fit connection, and magnetic connection. A threaded connection is preferred for the insert clamp 200 and the movable top surface 330, as it facilitates a stable connection.
[0051] In this embodiment, the preset settling time in step S6 ranges from 8s to 15s. In this embodiment, the preset settling time is preferably 10 seconds, so that the glue is submerged in the opening of the fiber optic hole 232 and remains in the hole. If there are other requirements, the preset settling time can also be other times, so there are no excessive limitations.
[0052] like Figure 8 As shown, in this embodiment, in step S6, the end of the adhesive stays inside the fiber hole 232.
[0053] like Figures 2 to 4 As shown, in this embodiment, in step S2, a glue dispensing device is provided, and a rotating placement table 300 is movably disposed on the working platform of the glue dispensing device. The glue dispensing device can control the rotating placement table 300 to slide along the first direction.
[0054] like Figures 2 to 4 As shown, in this embodiment, the dispensing equipment has the functions of manual dispensing, reset, emergency stop, and start.
[0055] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application.
Claims
1. A glue-applying device for a tilted, stationary insert, characterized in that, include: frame; A ferrule clamp includes: a clamping surface that forms an angle with a horizontal plane; clamping blocks arranged in a longitudinal and transverse array on the clamping surface, with the gap between any two adjacent clamping blocks in a row used to accommodate and limit the ferrule; and a locking strip, at least one locking strip disposed on the clamping surface for cooperating with the clamping blocks to clamp the ferrule. A rotating placement platform is provided, on which the ferrule clamp is disposed, and the rotating placement platform is used to provide the ferrule clamp with a pitch angle rotation function.
2. The adhesive injection device based on tilted static placement as described in claim 1, characterized in that, The insert clamp is in the shape of a right-angled triangular plate, and the insert clamp further includes: The first right-angled surface, together with the clamping surface, forms angle β, one of the interior angles of a triangle; The second right-angled surface; the second right-angled surface is perpendicular to the first right-angled surface and forms one of the interior angles of a triangle, angle α; the second right-angled surface and the clamping surface form one of the interior angles of a triangle, angle γ; The angle α is 90°; The range of the β angle is 20° to 45°; The range of the γ angle is 45° to 70°.
3. The adhesive injection device based on tilted static placement as described in claim 1, characterized in that, The tilted, stationary insert gluing equipment also includes: A first linear motor, mounted on the frame, is used to provide movement in a first direction for the rotary placement stage and the insert clamp, wherein the rotary placement stage is mounted on the first linear motor.
4. The adhesive injection device based on tilted static placement as described in claim 1, characterized in that, The tilted, stationary insert gluing equipment also includes: Injection molding components; Support columns are respectively installed on the two side walls of the frame; The second linear motor is mounted above the work platform of the frame via a support column. The dispensing assembly is mounted on the second linear motor, which provides the dispensing assembly with a second-direction movement function.
5. The adhesive injection device based on tilted static placement as described in claim 1, characterized in that: The rotating placement platform includes a lead screw motor, an arc-shaped guide rail base, and a movable top surface. The output shaft of the lead screw motor is located at one end of the movable top surface. The movable top surface is slidably connected to the arc-shaped guide rail base. The movable top surface is provided with a threaded hole for installing the insert clamp.
6. The adhesive injection device based on tilted static placement as described in claim 5, characterized in that: The side of the arc-shaped guide rail is provided with an arc scale, the range of which is -45° to 45°, and a marking scale for indicating the arc scale is provided at the middle of the side of the movable top surface.
7. The adhesive injection device based on tilted static placement as described in claim 1, characterized in that: The rack is also equipped with a VAG interface, a power switch, a power interface, a manual dispensing button, a reset button, an emergency stop button, and a start button.
8. The adhesive injection device based on tilted static placement as described in claim 1, characterized in that: The bottom of the frame is also equipped with several support legs.
9. The adhesive injection device based on tilted static placement as described in claim 2, characterized in that: The insert clamp also includes a mounting base disposed on the first right-angled surface.
10. The adhesive injection device based on tilted static placement as described in claim 3, characterized in that: A mounting plate is provided between the first linear motor and the rotary placement table.