Insertion forceps for optical fiber catheter stent fitting to a clip
By designing an insertion clamp for assembling fiber optic conduit supports into clamps, and utilizing a through-slot and abutment surface structure, the operational difficulties of assembling fiber optic conduit supports into clamps are solved, thereby improving assembly stability and efficiency and reducing operational fatigue.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- QIAGEN SHENZHEN CO LTD
- Filing Date
- 2025-09-04
- Publication Date
- 2026-08-04
AI Technical Summary
During the assembly of the clips, the lack of tools to assist in the assembly of the fiber optic conduit support makes the operation difficult, time-consuming and labor-intensive, especially causing severe fatigue in confined spaces.
Design an insertion clamp for assembling fiber optic conduit support into a clamp, comprising a first clamp body and a second clamp body, which are rotatably connected by a pin, providing a through groove and abutment surface structure to achieve avoidance and bidirectional positioning of the fiber optic conduit, reducing operational redundancy.
It improves the stability and efficiency of fiber optic conduit support assembly, reduces operator fatigue, optimizes clamp assembly and rework processes, and is suitable for assembling fiber optic conduit supports in narrow spaces and small volumes.
Smart Images

Figure CN224587833U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of biological monitoring device technology, specifically to an insertion clamp for assembling a fiber optic catheter stent into a clip. Background Technology
[0002] Nucleic acid analysis gel columns (or simply clips) are the core product of fully automated DNA / RNA analysis systems. They are primarily used for the automated analysis of large molecules such as DNA or RNA with high sensitivity and high resolution, and are widely applied in key scenarios such as genetics, disease screening, DNA fingerprinting analysis, and pathogen monitoring. The production of clips follows a strict process, involving incoming material cleaning, assembly of the middle and bottom support, capillary inspection, and pressure cleaning. Finally, after passing inspection, the clips proceed to the packaging stage.
[0003] The clip has several channels, each corresponding to a fiber optic conduit bracket with an installed fiber optic conduit. During the assembly and rework of the clip, the fiber optic conduit bracket is installed within the clip's channels. However, there are no tools available to assist in this assembly, the fiber optic conduit bracket is small, and the operating space is narrow, leading to operator fatigue and making the process time-consuming and labor-intensive. Utility Model Content
[0004] This application provides an insertion clamp for assembling fiber optic conduit supports into clamps, which solves the problem that there are no tools to assist in the assembly operation of fiber optic conduit supports in the channels of clamps.
[0005] To address the aforementioned technical problems, this application provides an insertion clamp for assembling a fiber optic conduit support into a clamp, comprising a first clamp body and a second clamp body. The first clamp body has a first clamping end; the second clamp body has a second clamping end, and the second clamp body and the first clamp body are rotatably connected by a pin, allowing the first clamping end and the second clamping end to move closer and further apart. A through groove is provided at the end of the first clamping end away from the pin, for accommodating the fiber optic conduit on the fiber optic conduit support. An opening is provided on the side of the through groove away from the pin, for allowing the fiber optic conduit to enter and exit the through groove. A first opening is provided on the side of the through groove facing the second clamping end, and a second opening is provided on the side of the through groove away from the second clamping end, for allowing the fiber optic conduit to pass through. An abutment surface is provided on the side of the first clamping end facing the second clamping end, surrounding the outer periphery of the first opening, for abutting the fiber optic conduit support. The second clamping end is disposed opposite to the first opening, and an abutment surface is provided on the side of the second clamping end facing the first opening, for abutting the clamp.
[0006] In one embodiment, the first clamp body further includes a first handle end, the first handle end including a first connecting portion, and the second clamp body further includes a second handle end, the second handle end including a second connecting portion, the first connecting portion being detachably connected to the first clamping end, and the second connecting portion being detachably connected to the second clamping end.
[0007] In one embodiment, the insertion clamp for assembling the fiber optic conduit support into the clamp further includes a first threaded component and a second threaded component, wherein the first connecting portion is connected to the first clamping end via the first threaded component, and the second connecting portion is connected to the second clamping end via the second threaded component.
[0008] In one embodiment, the first clamping end near the first connecting part has a first mounting groove, the first mounting groove has a third opening on the side facing the first connecting part, at least a portion of the first connecting part can be inserted into the first mounting groove through the third opening, and the first connecting part located in the first mounting groove is connected to the groove wall of the first mounting groove by a first threaded component.
[0009] The second clamping end has a second mounting groove at one end near the second connecting part. The second mounting groove has a fourth opening on the side facing the second connecting part. At least a portion of the second connecting part can be inserted into the second mounting groove through the fourth opening. The second connecting part located in the second mounting groove is connected to the groove wall of the second mounting groove by a second threaded component.
[0010] In one embodiment, the through slot is configured as a U-shaped slot.
[0011] In one embodiment, the first clamp body further includes a first handle end, the first handle end further includes a first hand grip portion, the second clamp body further includes a second handle end, the second handle end further includes a second hand grip portion, the first hand grip portion and the second hand grip portion are located on one side of the pin, the first clamping end and the second clamping end are located on the other side of the pin, when the first hand grip portion and the second hand grip portion are relatively close, the first clamping end and the second clamping end are relatively close, when the first hand grip portion and the second hand grip portion are relatively far apart, the first clamping end and the second clamping end are relatively far apart.
[0012] In one embodiment, the first handle end further includes a first assembly part, and the second handle end further includes a second assembly part. The two ends of the first assembly part are respectively connected to the first hand-held part and the first clamping end; the two ends of the second assembly part are respectively connected to the second hand-held part and the second clamping end; the first assembly part and the second assembly part are stacked, the first assembly part is provided with a first assembly hole, the second assembly part is provided with a second assembly hole, the axis of the first assembly hole coincides with the axis of the second assembly hole, and the pin is assembled in the first assembly hole and the second assembly hole.
[0013] In one embodiment, the insertion clamp for assembling the fiber optic conduit support into the clamp further includes a first flexible sleeve and a second flexible sleeve, the first flexible sleeve being fitted onto a first hand grip and the second flexible sleeve being fitted onto a second hand grip.
[0014] In one embodiment, anti-slip protrusions are provided on the first hand grip and the second hand grip.
[0015] In one embodiment, both the first clamp body and the second clamp body are made of steel, and the surfaces of both the first clamp body and the second clamp body are plated with chromium metal.
[0016] The insertion clamp of this application for assembling fiber optic conduit supports into clamps allows for flexible adjustment of the angles of the first clamp body and the second clamp body during actual assembly. After the operator completes the initial rough assembly of the fiber optic conduit support (i.e., manually placing the fiber optic conduit support with the fiber optic conduit at the channel opening above the channel), the rotating connection structure between the first and second clamp bodies allows the operator to position the first clamping end above the top surface of the fiber optic conduit support. Simultaneously, the fiber optic conduit passes through the slot into the through slot, which provides space for the fiber optic conduit to pass through through the first and second openings. The through slot avoids the fiber optic conduit from being deformed or damaged during assembly. Furthermore, the abutting surface of the second clamping end abuts against the channel opening below the channel. When the clamp is tightened, the first clamping end moves closer to the second clamping end, and the abutting surface abuts against the top surface of the fiber optic conduit support, smoothly pushing the fiber optic conduit support into the channel. After the fiber optic conduit support is pushed into the channel, the second clamping end abuts against the bottom surface of the fiber optic conduit support below the channel, achieving bidirectional positioning of the fiber optic conduit support and effectively preventing the fiber optic conduit support from shifting or falling off during assembly. This insertion clamp significantly improves the stability and efficiency of fiber optic conduit support assembly through its obstacle avoidance design, pushing structure for fiber optic conduit supports, and bidirectional limiting function for fiber optic conduit supports. It reduces redundant actions of operators and lowers operator fatigue. It is especially suitable for assembly scenarios with narrow operating spaces and small fiber optic conduit supports, and significantly optimizes the process flow of clamp assembly and rework. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of a state of an insertion clamp for assembling a fiber optic conduit support into a clip, according to an embodiment of this application.
[0018] Figure 2 This is a schematic diagram of another state of the insertion clamp for assembling a fiber optic conduit support into a clip, according to an embodiment of this application.
[0019] Figure 3 An exploded view of an insertion clamp for assembling a fiber optic conduit support into a clip, according to an embodiment of this application;
[0020] Figure 4 A diagram showing the state of an insertion clamp for assembling a fiber optic conduit support into a clip, according to an embodiment of this application, during use.
[0021] Figure 5 for Figure 4 A magnified view of a portion of the image.
[0022] Reference numerals: First clamp body 10, first clamping end 11, through groove 111, slot 112, first opening 113, second opening 114, abutting surface 115, first mounting groove 116, third opening 1161, first connecting part 121, first hand-held part 122, first assembly part 123, second clamp body 20, second clamping end 21, abutting surface 211, second mounting groove 212, fourth opening 2121, second connecting part 221, second hand-held part 222, second assembly part 223, pin 30, clamp 40, cross arm 41, channel 411, fiber optic conduit support 50, fiber optic conduit 60, first threaded part 70, second threaded part 80. Detailed Implementation
[0023] The present application will now be described in further detail with reference to the accompanying drawings and specific embodiments. Similar elements in different embodiments are referred to by related similar element reference numerals. In the following embodiments, many details are described to facilitate a better understanding of the present application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by other elements, materials, or methods. In some cases, certain operations related to the present application are not shown or described in the specification. This is to avoid obscuring the core parts of the present application with excessive description. For those skilled in the art, detailed description of these related operations is not necessary; they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.
[0024] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments, and the operational steps involved in each embodiment can also be rearranged or adjusted in a manner that is obvious to those skilled in the art. Therefore, the specification and drawings are only for clearly describing a particular embodiment and do not imply that they represent the necessary components and / or order.
[0025] The serial numbers assigned to components in this document, such as "first" and "second," are used only to distinguish the described objects and have no sequential or technical meaning. The terms "connection" and "linkage" used in this application, unless otherwise specified, include both direct and indirect connections (linkages).
[0026] The terms "parallel" and "perpendicular," etc., are specific to the current technological level, not absolute mathematical definitions. Slight deviations are permissible; approximations of parallelism or perpendicularity are acceptable. For example, "A and B are parallel" means that A and B are parallel or approximately parallel, with an angle between A and B between 0° and 10°. Similarly, "A and B are perpendicular" means that A and B are perpendicular or approximately perpendicular, with an angle between A and B between 80° and 100°. The directional terms used in the embodiments of this application, such as "upper," "inner," "outer," and "side," are merely for reference to the accompanying drawings. Therefore, the directional terms used are for better and clearer explanation and understanding of the embodiments of this application, and do not indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the embodiments of this application.
[0027] Please refer to Figure 1 and Figure 2 As shown, this application provides an insertion clamp (hereinafter referred to as insertion clamp) for assembling an optical fiber conduit support into a clip. The insertion clamp includes a first clamp body 10 and a second clamp body 20.
[0028] The first clamp body 10 has a first clamping end 11, and the second clamp body 20 has a second clamping end 21. Specifically, one end of the first clamp body 10 along its length is the first clamping end 11, and one end of the second clamp body 20 along its length is the second clamping end 21. The second clamp body 20 is rotatably connected to the first clamp body 10 by a pin 30, so that the first clamping end 11 and the second clamping end 21 can move closer and further apart.
[0029] like Figure 1 and Figure 2 As shown, the end of the first clamping end 11 furthest from the pin 30 is provided with a through groove 111, such as... Figure 4 and Figure 5 As shown, when the insertion clamp is used, the through slot 111 is used to accommodate the fiber optic conduit 60 on the fiber optic conduit support 50. The fiber optic conduit support 50 is used to install the fiber optic conduit 60. After the fiber optic conduit support 50 and the fiber optic conduit 60 are assembled, a portion of the fiber optic conduit 60 is exposed above the fiber optic conduit support 50. In this application, the fiber optic conduit support 50 being assembled into the clip 40 refers to the fiber optic conduit support 50 with the fiber optic conduit 60 being assembled into the clip 40.
[0030] like Figure 1 , Figure 2 and Figure 5As shown, the through groove 111 has a slot 112 on the side away from the pin 30. The slot 112 is used for the fiber optic conduit 60 to enter and exit the through groove 111. The through groove 111 has a first opening 113 on the side facing the second clamping end 21, and a second opening 114 on the side facing away from the second clamping end 21. The first opening 113 and the second opening 114 are used for the fiber optic conduit 60 to pass through. That is, the through groove 111 penetrates the first clamping end 11 in the direction facing the second clamping end 21. Figure 5 As shown, by setting the first opening 113 and the second opening 114, when the insertion clamp is used, the fiber optic conduit 60 can enter the through groove 111 through the slot 112. When a part of the fiber optic conduit 60 is set in the through groove 111, the fiber optic conduit 60 below the part of the structure extends out of the through groove 111 from the first opening 113, and the fiber optic conduit 60 above the part of the structure extends out of the through groove 111 from the second opening 114. Thus, the fiber optic conduit 60 can pass through the through groove 111, so that the through groove 111 can act as a clearance groove to avoid the fiber optic conduit 60 above the fiber optic conduit support 50.
[0031] like Figure 1 , 2 As shown in Figures 4 and 5, the first clamping end 11 has an abutment surface 115 on the side facing the second clamping end 21. The abutment surface 115 surrounds the outer periphery of the first opening 113 and is used to abut against the fiber optic conduit support 50. Specifically, the abutment surface 115 is used to abut against the top surface of the fiber optic conduit support 50. Preferably, the width of the slot 112 of the through groove 111 is slightly larger than the diameter of the fiber optic conduit 60, while the width of the abutment surface 115 is approximately the width of the fiber optic conduit support 50, so that when the fiber optic conduit 60 is located in the through groove 111, the abutment surface 115 can abut against the top surface of the fiber optic conduit support 50.
[0032] The second clamping end 21 is disposed opposite to the first opening 113, specifically, as follows: Figure 1 As shown, when the first clamping end 11 and the second clamping end 21 are arranged parallel to each other (when their angle is approximately 0°), the second clamping end 21 is arranged opposite to the first opening 113. The side of the second clamping end 21 facing the first opening 113 has an abutment surface 211, which is used to abut against the clip 40. Specifically, as shown... Figure 4 and Figure 5 As shown, the card holder 40 has a horizontal arm 41, and a plurality of channels 411 are provided on the horizontal arm 41, which penetrate the horizontal arm 41 along the thickness direction of the horizontal arm 41. The channels 411 have openings at the top and bottom. The abutting surface 211 is used to abut the bottom surface of the horizontal arm 41 of the card holder 40, and the abutting surface 211 covers the openings of the channels 411 below.
[0033] like Figure 4 and Figure 5As shown, in the actual assembly process, the insertion clamp for assembling the fiber optic conduit support into the clamp of this application, when the operator completes the rough assembly of the fiber optic conduit support 50: that is, manually places the fiber optic conduit support 50 with the fiber optic conduit 60 into the channel opening above the channel 411 of the clamp 40 (e.g., Figure 4 (As shown in the position of the fiber optic conduit support 50), the fiber optic conduit 60 protrudes from the top of the fiber optic conduit support 50; with the help of the rotating connection structure between the first clamp body 10 and the second clamp body 20, the operator can flexibly adjust the angle between the two to make a certain angle between the first clamp body 10 and the second clamp body 20. Then, the first clamping end 11 is set above the top surface of the fiber optic conduit support 50, and the fiber optic conduit 60 enters the through groove 111 through the slot 112. The through groove 111 provides space for the fiber optic conduit 60 to pass through through the first opening 113 and the second opening 114. The through groove 111 avoids the fiber optic conduit 60, so as to prevent the fiber optic conduit 60 from being deformed or damaged by force during the assembly process; at the same time, the abutting surface 211 of the second clamping end 21 abuts against the bottom surface of the cross arm 41 of the clamp 40, and the abutting surface 211 covers the channel opening below the channel 411 to be assembled.
[0034] When the clamping forceps are tightened, the first clamping end 11 moves closer to the second clamping end 21, and the contact surface 115 abuts against the top surface of the fiber optic conduit support 50, smoothly pushing the fiber optic conduit support 50 into the channel 411. After the fiber optic conduit support 50 is pushed into the channel 411, the second clamping end 21 can abut against the bottom surface of the fiber optic conduit support 50 below the channel 411, achieving bidirectional positioning of the fiber optic conduit support 50. There is a certain friction between the channel 411 and the fiber optic conduit support 50, so that the fiber optic conduit support 50 can be stably held in the channel 411. By using the insertion forceps of this application to install the fiber optic conduit support 50 on the clamp 40, the displacement or falling of the fiber optic conduit support 50 during the assembly process is effectively avoided. This insertion clamp significantly improves the stability and efficiency of fiber optic conduit support 50 assembly through its avoidance design for fiber optic conduit 60, its pushing structure for fiber optic conduit support 50, and its bidirectional limiting function for fiber optic conduit support 50. It reduces redundant actions of operators and reduces operator fatigue. It is especially suitable for assembly scenarios with narrow operating space and small fiber optic conduit support 50, and significantly optimizes the process flow of clamp 40 assembly and rework.
[0035] In one embodiment, such as Figure 3As shown, the first clamp body 10 also includes a first handle end, which includes a first connecting portion 121. The second clamp body 20 also includes a second handle end, which includes a second connecting portion 221. The first connecting portion 121 is detachably connected to the first clamping end 11, and the second connecting portion 221 is detachably connected to the second clamping end 21. By setting the detachable connection between the connecting portion and the clamping end, when there are differences in the channel specifications of the clamp 40 and the size of the fiber optic conduit support, the operator can quickly replace the clamping end with a clamping end that is compatible with different specifications by detaching the clamping end from the connecting portion. For example, if the diameter of the fiber optic conduit 60 increases, the first clamping end 11 with a larger through groove 111 can be replaced.
[0036] This detachable design eliminates the need to replace the entire clamp body; simply replacing the gripping ends meets the needs of different assembly scenarios. This not only reduces the cost of using the tool but also lessens the burden on operators who would otherwise have to carry multiple clamps. Furthermore, when the gripping ends wear down due to prolonged use, the damaged ends can be replaced individually, improving the tool's durability.
[0037] In one embodiment, the insertion clamp for assembling the fiber optic conduit support into the clamp further includes a first threaded member 70 and a second threaded member 80. The first connecting portion 121 is connected to the first clamping end 11 via the first threaded member 70, and the second connecting portion 221 is connected to the second clamping end 21 via the second threaded member 80. The threaded connection structure provides a stable and convenient way to assemble and disassemble the clamping end and the handle end, ensuring that the clamping end and the connecting portion remain reliably fixed during assembly operations, preventing loosening due to external forces, and ensuring the stability of the assembly process. In other embodiments, the connecting portion and the clamping end may also employ other detachable connection methods.
[0038] In one embodiment, the first clamping end 11 has a first mounting groove 116 at one end near the first connecting portion 121. The first mounting groove 116 has a third opening 1161 on the side facing the first connecting portion 121. At least a portion of the first connecting portion 121 can be inserted into the first mounting groove 116 through the third opening 1161. The first connecting portion 121 located in the first mounting groove 116 is connected to the groove wall of the first mounting groove 116 by a first threaded member 70.
[0039] The second clamping end 21 has a second mounting groove 212 near the second connecting part 221. The second mounting groove 212 has a fourth opening 2121 on the side facing the second connecting part 221. At least a portion of the second connecting part 221 can be inserted into the second mounting groove 212 through the fourth opening 2121. The second connecting part 221 located in the second mounting groove 212 is connected to the groove wall of the second mounting groove 212 by a second threaded component 80. That is, each connecting part and each mounting groove has a threaded hole on its groove wall, which is used to connect with the corresponding threaded component. The groove wall of the mounting groove can form a circumferential limit on the connecting part, preventing relative rotation or offset between the clamping end and the connecting part during disassembly and assembly, ensuring that the first threaded component 70 and the second threaded component 80 can be accurately aligned with the threaded hole, reducing the assembly difficulty. The opening design of the mounting groove provides a guide for the connecting part to be inserted into the mounting groove. During installation, the operator can quickly complete the initial assembly of the connecting part and the mounting groove without precise alignment, and then fix it by tightening the threaded component.
[0040] In one embodiment, the through groove 111 is configured as a U-shaped groove. The arc-shaped bottom of the U-shaped groove can form a close contact with the cylindrical outer contour of the fiber optic conduit 60. Compared with other shapes of grooves, it can reduce the gap between the groove and the fiber optic conduit 60, and make it easier to form circumferential restraint on the fiber optic conduit 60 during assembly operations, thereby making it easier to protect the fiber optic conduit 60 and prevent the fiber optic conduit 60 from wear, deformation or breakage.
[0041] In one embodiment, the first handle end further includes a first handheld portion 122, and the second handle end further includes a second handheld portion 222. The first handheld portion 122 and the second handheld portion 222 are located on one side of the pin 30, and the first clamping end 11 and the second clamping end 21 are located on the other side of the pin 30. When the first handheld portion 122 and the second handheld portion 222 are relatively close, the first clamping end 11 and the second clamping end 21 are relatively close; when the first handheld portion 122 and the second handheld portion 222 are relatively far apart, the first clamping end 11 and the second clamping end 21 are relatively far apart. By setting the handheld portion, with the pin 30 as the fulcrum, and the handheld portion and the clamping end located at opposite ends of the lever arm, the gripping force applied by the operator to the first handheld portion 122 and the second handheld portion 222 can be amplified and transmitted to the clamping end. When pushing the fiber optic conduit support 50 into the channel 411 of the clamp 40, sufficient pushing force can be obtained without applying excessive gripping force, thus significantly reducing the intensity of operation. This is especially suitable for long-term operations in batch assembly scenarios, effectively reducing operator hand fatigue.
[0042] In one embodiment, the first handle end further includes a first assembly portion 123, and the second handle end further includes a second assembly portion 223. The two ends of the first assembly portion 123 are respectively connected to the first hand-held portion 122 and the first clamping end 11; the two ends of the second assembly portion 223 are respectively connected to the second hand-held portion 222 and the second clamping end 21; the first assembly portion 123 and the second assembly portion 223 are stacked, the first assembly portion 123 is provided with a first assembly hole, the second assembly portion 223 is provided with a second assembly hole, the axis of the first assembly hole coincides with the axis of the second assembly hole, and the pin 30 is assembled in the first assembly hole and the second assembly hole.
[0043] The first assembly part 123 and the second assembly part 223 serve as intermediate connecting components between the hand-held part and the clamping end, providing a mounting structure for the pin 30. Specifically, one end of the first connecting part 121 is connected to the first clamping end 11, the other end of the first connecting part 121 is connected to the first assembly part 123, and the end of the first assembly part 123 away from the first connecting part 121 is connected to the first hand-held part 122; one end of the second connecting part 221 is connected to the second clamping end 21, the other end of the second connecting part 221 is connected to the second assembly part 223, and the end of the second assembly part 223 away from the second connecting part 221 is connected to the second hand-held part 222.
[0044] In one embodiment, the insertion clamp for assembling the fiber optic conduit support into the clamp further includes a first flexible sleeve (not shown) and a second flexible sleeve (not shown). The first flexible sleeve is fitted onto the first handgrip 122, and the second flexible sleeve is fitted onto the second handgrip 222. The flexible sleeves are made of flexible materials, such as silicone. The flexible sleeves have a certain degree of elasticity and softness, which can effectively cushion the pressure when the operator grips the handgrip, reduce hand fatigue, and the flexible material can also have anti-slip properties, increasing the friction between the hand and the handgrip.
[0045] In one embodiment, the first hand-held portion 122 and the second hand-held portion 222 are provided with anti-slip protrusions (not shown). The anti-slip protrusions can prevent the hand from slipping and prevent the insertion clamp from falling out of the hand, ensuring that the clamping end maintains a stable posture during the pushing of the fiber optic conduit support 50, thereby improving the success rate of assembly.
[0046] In one embodiment, both the first clamp body 10 and the second clamp body 20 are made of steel, and both surfaces of the first clamp body 10 and the second clamp body 20 are plated with chromium. Steel provides high rigidity and resistance to deformation, improving the structural strength of the insertion clamp, while chromium plating optimizes its durability. The chromium plating layer has extremely high hardness and wear resistance, reducing scratches and dents on the clamp surface. Simultaneously, the chromium plating layer exhibits excellent chemical stability, isolating the steel body from air, moisture, and impurities such as oil and dust present in the assembly environment, preventing corrosion. This is particularly suitable for scenarios requiring high cleanliness, such as medical equipment assembly, ensuring that the insertion clamp maintains structural accuracy and surface finish even after long-term use.
[0047] The above examples illustrate this application only to aid understanding and are not intended to limit its scope. Those skilled in the art to which this application pertains can make various simple deductions, modifications, or substitutions based on the ideas presented.
Claims
1. An insertion clamp for assembling a fiber optic conduit support into a clip, characterized in that, include: A first clamp body, the first clamp body having a first clamping end; The second clamp body has a second clamping end, and the second clamp body is rotatably connected to the first clamp body by a pin so that the first clamping end and the second clamping end can move closer and further apart. The first clamping end has a through groove at the end away from the pin, which is used to accommodate the optical fiber conduit on the optical fiber conduit support; the through groove has an opening on the side away from the pin, which is used for the optical fiber conduit to enter and exit the through groove; the through groove has a first opening on the side facing the second clamping end, and a second opening on the side facing away from the second clamping end, which is used for the optical fiber conduit to pass through; the first clamping end has an abutment surface on the side facing the second clamping end, which surrounds the outer periphery of the first opening and is used to abut against the optical fiber conduit support; The second clamping end is disposed opposite to the first opening, and the side of the second clamping end facing the first opening has an abutting surface, which is used to abut the clip.
2. The insertion forceps for fitting the optical fiber conduit support assembly to the clip according to claim 1, wherein The first clamp body further includes a first handle end, the first handle end including a first connecting portion, and the second clamp body further includes a second handle end, the second handle end including a second connecting portion. The first connecting portion is detachably connected to the first clamping end, and the second connecting portion is detachably connected to the second clamping end.
3. The insertion forceps for fitting the optical fiber conduit support assembly to the clip according to claim 2, wherein It also includes a first threaded component and a second threaded component, wherein the first connecting part is connected to the first clamping end through the first threaded component, and the second connecting part is connected to the second clamping end through the second threaded component.
4. The insertion forceps for fitting the optical fiber conduit support assembly to the clip according to claim 3, wherein The first clamping end has a first mounting groove at one end near the first connecting part, and the first mounting groove has a third opening on the side facing the first connecting part. At least a portion of the first connecting part can be inserted into the first mounting groove through the third opening. The first connecting part located in the first mounting groove is connected to the groove wall of the first mounting groove through the first threaded part. The second clamping end has a second mounting groove at one end near the second connecting part. The second mounting groove has a fourth opening on the side facing the second connecting part. At least a portion of the second connecting part can be inserted into the second mounting groove through the fourth opening. The second connecting part located in the second mounting groove is connected to the groove wall of the second mounting groove through the second threaded part.
5. The insertion forceps for fitting the optical fiber conduit support assembly to the clip according to claim 1, wherein The through groove is configured as a U-shaped groove.
6. The insertion forceps for fitting the optical fiber conduit support assembly to the clip according to claim 1, wherein The first clamp body further includes a first handle end, and the first handle end further includes a first hand-held portion. The second clamp body further includes a second handle end, and the second handle end further includes a second hand-held portion. The first hand-held portion and the second hand-held portion are located on one side of the pin, and the first clamping end and the second clamping end are located on the other side of the pin. When the first hand-held portion and the second hand-held portion are relatively close, the first clamping end and the second clamping end are relatively close. When the first hand-held portion and the second hand-held portion are relatively far apart, the first clamping end and the second clamping end are relatively far apart.
7. The insertion forceps for fitting the optical fiber conduit support assembly to the clip according to claim 6, wherein The first handle end further includes a first assembly part, and the second handle end further includes a second assembly part. The two ends of the first assembly part are respectively connected to the first hand-held part and the first clamping end; the two ends of the second assembly part are respectively connected to the second hand-held part and the second clamping end; the first assembly part and the second assembly part are stacked, the first assembly part is provided with a first assembly hole, the second assembly part is provided with a second assembly hole, the axis of the first assembly hole coincides with the axis of the second assembly hole, and the pin is assembled in the first assembly hole and the second assembly hole.
8. The insertion forceps for fitting the optical fiber conduit support to the clip according to claim 6 or 7, characterized by, It also includes a first flexible sleeve and a second flexible sleeve, wherein the first flexible sleeve is fitted onto the first hand-held part and the second flexible sleeve is fitted onto the second hand-held part.
9. The insertion forceps for fitting the optical fiber conduit support to the clip according to claim 6 or 7, wherein The first and second hand grips are provided with anti-slip protrusions.
10. The insertion forceps for mounting the optical fiber conduit support assembly in a clip according to any one of claims 1 to 7, characterized in that, Both the first clamp body and the second clamp body are made of steel, and the surfaces of the first clamp body and the second clamp body are plated with chromium metal.