Semi-automatic electronic cable tape laminating jig

Through the semi-automatic electronic connection line tape fitting jig, the tape is automatically positioned using a negative pressure plate and a rotating cover, which solves the tedious problem of manual tape packaging and improves the convenience and stability of tape packaging.

CN116238953BActive Publication Date: 2025-09-26KUSN WCON ELECTRONICS
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Patent Information

Application Number
CN202211297314.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-21
Publication Date
2025-09-26
Estimated Expiration
2042-10-21

AI Technical Summary

Technical Problem

In the prior art, manually wrapping tape onto electronic connecting wires is a cumbersome and inconvenient process, making it difficult to improve stability and efficiency.

Method used

A semi-automatic electronic connection line tape laminating jig is used, which uses a negative pressure plate and a rotating cover to absorb and position the tape. The tape laminating process is automatically controlled by a drive component and a logic controller, and the end positioning structure and abutment block are combined to achieve stable positioning and packaging.

Benefits of technology

The convenience of tape packaging on electronic connecting lines is improved, the use of tape is saved, and the packaging stability and operating efficiency are improved.

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Abstract

The present application relates to the field of product packaging, and in particular to a semi-automatic electronic connection line adhesive tape laminating jig, which comprises a base plate, a negative pressure plate provided on the base plate, a first plate cavity provided in the negative pressure plate, a first negative pressure hole provided on the negative pressure plate, and a negative pressure source connected to the first plate cavity; a first driving and rotating source provided on one side of the base plate and positioned on the negative pressure plate, and a rotating cover plate connected to the first driving and rotating source; and a wire end positioning seat provided on the base plate and at one end close to the negative pressure plate for embedding the end of an electronic connection line. The present application has the effect of facilitating the packaging convenience of wrapping adhesive tape on electronic connection lines.
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Description

Technical Field

[0001] The present application relates to the field of product packaging, and in particular to a semi-automatic electronic connecting wire tape laminating jig. Background Art

[0002] Connect the electronic wires in a row (refer to Figure 1 ) After the production is completed, tape is often wrapped around the outer wall of the row of electronic wires to protect the electronic connecting wires.

[0003] Currently, electronic connecting wires are often wrapped with tape manually, specifically: first, manually place a rectangular tape on the table with the sticky side of the tape facing up, the width of the tape used here is slightly larger than twice the width of the electronic connecting wire, and the length is slightly smaller than the length of the electronic connecting wire; then, manually place the length direction of the electronic connecting wire parallel to the length direction of the tape, and then manually place the electronic connecting wire in the middle position of the top wall of the tape; then, manually flip the tapes on both sides of the electronic connecting wire over the top of the electronic connecting wire in turn, and adhere them to the upper surface of the electronic connecting wire in turn, and the side edge of one side of the tape is attached to the upper surface of the side edge of the other side of the tape; in this way, the electronic wire can be manually wrapped with tape.

[0004] In the process of implementing the present application, it was found that the above technology has at least the following problems: before placing the electronic connecting wire on the tape, it is necessary to manually align the length direction of the electronic connecting wire with the length direction of the tape to be parallel, and then manually stick the electronic connecting wire to the tape; it is further necessary to manually control the electronic connecting wire that has been stuck on the tape, and then reverse the tape located on both sides of the electronic wire in turn and stick it on the top wall of the electronic connecting wire. Each time the tape is stuck on the top wall of the electronic connecting wire, it is necessary to manually press the tape stuck on the top wall of the electronic connecting wire to improve the stability of the sticking; it can be seen that the process of manually wrapping the tape on the electronic connecting wire is both difficult and cumbersome, and the convenience of packaging needs to be improved urgently. Summary of the Invention

[0005] In order to facilitate improving the packaging convenience of wrapping tape on electronic connecting wires, the present application provides a semi-automatic electronic connecting wire tape laminating jig.

[0006] The semi-automatic electronic connecting wire tape laminating jig provided in this application adopts the following technical solution:

[0007] A semi-automatic electronic connection line tape laminating jig includes a base plate, a negative pressure plate is provided on the base plate, a first plate cavity is opened in the negative pressure plate, a first negative pressure hole is opened on the negative pressure plate and is connected to a negative pressure source connected to the first plate cavity; a first driving rotation source is provided on the base plate and on one side of the negative pressure plate, and a rotating cover is connected to the first driving rotation source; a wire end positioning seat is provided on the base plate and at one end close to the negative pressure plate for the end of the electronic connection line to be embedded.

[0008] By adopting the above technical solution, after the negative pressure source is started, the first plate cavity is in a negative pressure environment, and then the tape is spread flat on the negative pressure plate and the rotating cover. At this time, the negative pressure plate can position the tape by adsorption, and then one end of the electronic wire is embedded in the wire end positioning seat for positioning, and then the electronic wire is laid on the top wall of the tape, and then the first driving source is controlled to drive the rotating cover until the tape on the rotating cover is attached to the top wall of the electronic wire. In this way, there is no need to manually control the tape, and the electronic wire can be placed directly on the tape after the tape is placed; and the wire end positioning seat facilitates improving the stability of the electronic wire when it is placed on the tape, without manually controlling the stability of the electronic wire when it is placed; and there is no need to manually drive the rotation of the cover. The above technical means facilitate improving the packaging convenience of packaging the tape on the electronic connecting wire.

[0009] In a specific possible implementation scheme, a second plate cavity is provided in the rotating cover plate, a second negative pressure hole communicating with the second plate cavity is provided on the rotating cover plate, and the negative pressure source is also communicated with the second plate cavity in the rotating cover plate.

[0010] By adopting the above technical solution, the second negative pressure hole on the rotating cover plate can also be placed in a negative pressure environment by starting the negative pressure source, so that the rotating cover plate can also absorb and control the tape by means of negative pressure, thereby further improving the stability of the tape positioned in a flat state.

[0011] In a specific possible implementation manner, the rotating cover is provided with an abutment strip for abutting against the adhesive tape packaging the electronic connection wire.

[0012] By adopting the above technical solution, by making the adhesive tape abut against the abutting strip, it is convenient to quickly determine the placement position of the adhesive tape, and it is also convenient to further position the adhesive tape placed on the rotating cover.

[0013] In a specific embodiment, the length direction of the side wall of the abutting strip for abutting against the adhesive tape is parallel to the central axis of the rotation shaft of the first driving rotation source.

[0014] By adopting the above technical solution, the bent part of the top wall of the tape can be adhered to the edge of the electronic connecting wire, so as to increase the packaging sealing of the tape on the edge of the electronic connecting wire, and also save the use of tape and avoid waste of tape.

[0015] In a specific possible implementation scheme, the wire end positioning seat is provided with an embedding groove for embedding the end of the electronic connection wire, and the groove wall of the embedding groove is provided with a positioning notch for embedding a preset positioning protrusion on the end of the electronic connection wire.

[0016] By adopting the above technical solution, the positioning protrusion on one end of the electronic connecting wire is embedded in the positioning recess, so as to facilitate improving the positioning stability of the end of the electronic connecting wire embedded in the embedding groove.

[0017] In a specific feasible implementation scheme, a first strip hole is opened on the bottom plate, a first sliding block and a second sliding block are provided on the bottom plate, the first sliding block is provided with a first connecting piece passing through the first strip hole, the second sliding block is provided with a second connecting piece passing through the first strip hole, and the bottom plate is also provided with a phase-to-phase driving component connected to both the first sliding block and the second sliding block, the phase-to-phase driving component is used to drive the first sliding block and the second sliding block to move toward each other; the first sliding block and the second sliding block are both connected to the negative pressure plate and the first driving source.

[0018] By adopting the above technical solution, the first sliding block and the second sliding block can be moved toward each other through the opposite driving components, so that the distance between the first slider and the second slider can be adjusted, and the distance between the negative pressure plate on the first slider and the negative pressure plate on the second slider can be adjusted, which makes it easy to adapt to electronic wires of different widths.

[0019] In a specific possible implementation scheme, the opposite driving assembly includes a first sliding limit seat connected to the base plate, and a second sliding limit seat parallel to the first sliding limit seat; the first sliding limit seat is slidingly connected to a first rack connected to the first connecting member, and the second sliding limit seat is slidingly connected to a second rack connected to the second connecting member; a second driving source is provided on the base plate, and the second driving source is connected to a gear that meshes with both the first rack and the second rack.

[0020] By adopting the above technical solution, the gear is driven by the second driving source, thereby driving the first rack and the second rack to simultaneously drive the first slider and the second slider to move toward each other, without manually adjusting the distance between the first slider and the second slider, thereby improving the speed and automation level of adjusting the distance between the first slider and the second slider.

[0021] In a specific feasible implementation scheme, a second strip hole is provided on the bottom plate, and a first abutment block and a second abutment block for jointly abutting the end of the electronic connection line are provided on the bottom plate; the first abutment block is connected to a third connecting piece passing through the second strip hole, and the second abutment block is connected to a fourth connecting piece passing through the second strip hole; the bottom plate is provided with a first telescopic piece connected to the third connecting piece, and a second telescopic piece connected to the fourth connecting piece.

[0022] By adopting the above technical solution, the first telescopic member and the second telescopic member are used to easily drive the first abutment block and the second abutment block to move, so that the first abutment block and the second abutment block abut against the end of the electronic connecting wire away from the wire end positioning seat, which facilitates the positioning and fixing of the two ends of the electronic connecting wire placed on the tape in cooperation with the wire end positioning seat, thereby improving the stability of the process of operating the tape to wrap the electronic connecting wire.

[0023] In a specific embodiment, the first abutment block and / or the second abutment block is provided with a pressure sensor for abutting the end of the electronic wire; a logic controller is provided on the base plate that is communicatively connected to the pressure sensor, and the logic controller is electrically connected to the first drive source.

[0024] By adopting the above technical solution, the pressure sensor can easily sense whether the first abutment block and the second abutment block are abutting one end of the electronic connection line, and transmit the sensed pressure data to the logic controller, so that after the logic controller knows that the electronic connection line is abutted, it can control the first drive source to flip the rotating cover plate, so that the tape on the rotating cover plate covers the top wall of the electronic connection line.

[0025] In summary, this application includes at least one of the following beneficial technical effects:

[0026] 1. It is convenient to improve the packaging convenience of wrapping the tape on the electronic connecting wire;

[0027] 2. It is easy to save the use of tape and avoid waste of tape;

[0028] 3. Improved the stability of the process of wrapping the electronic connection wire with tape. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figure 1 It is a structural diagram of the electronic connecting wire in the embodiment of the present application.

[0030] Figure 2 This is a structural diagram of a semi-automatic electronic connecting wire tape bonding jig in an embodiment of the present application.

[0031] Figure 3This is a structural schematic diagram of a semi-automatic electronic connecting wire tape bonding jig from another perspective in an embodiment of the present application.

[0032] Figure 4 It is a structural schematic diagram of the base in an embodiment of the present application.

[0033] Figure 5 yes Figure 3 Enlarged view of part A.

[0034] Figure 6 It is a structural diagram used to reflect the positional relationship between the negative pressure plate and the base in the embodiment of the present application.

[0035] Figure 7 It is a cross-sectional view used to illustrate the structure of the tape adsorption and positioning component in an embodiment of the present application.

[0036] Figure 8 Figure 7 Magnified view of part B.

[0037] Figure 9 It is a structural diagram used to reflect the positional relationship between the tape and the negative pressure plate in the embodiment of the present application.

[0038] Figure 10 It is a structural diagram used to reflect the positional relationship between the first reverse cover structure and the second reverse cover structure in the embodiment of the present application.

[0039] Figure 11 It is a cross-sectional view used to illustrate the connection relationship between the first slider, the second slider and the negative pressure plate in the embodiment of the present application.

[0040] Figure 12 yes Figure 11 Magnified view of part C.

[0041] Figure 13 It is a structural diagram used to reflect the connection relationship between the bottom plate and the first abutting block and the second abutting block in the embodiment of the present application.

[0042] Figure 14 It is a structural diagram used to illustrate the connection relationship between the base plate and the first telescopic member and the second telescopic member in the embodiment of the present application.

[0043] Explanation of reference numerals: 1. base; 11. supporting leg; 12. bottom plate; 121. first strip hole; 122. second strip hole; 2. spacing adjustment structure; 21. opposite driving assembly; 211. first sliding limit seat; 212. second sliding limit seat; 213. first rack; 214. second rack; 215. second driving source; 216. gear; 217. first connecting member; 218. first sliding block; 2181. first cavity; 219. second connecting member; 2110. second sliding block; 21101. second cavity; 3. tape adsorption and positioning assembly; 31. negative pressure source; 32. negative pressure plate; 32 1. First plate cavity; 322. First negative pressure hole; 4. First reverse cover structure; 41. First mounting bar; 42. First drive source; 43. Rotating cover; 431. Second plate cavity; 432. Second negative pressure hole; 44. Abutment bar; 5. Second reverse cover structure; 51. Second mounting bar; 6. End positioning structure; 61. Wire end positioning seat; 611. Embedded groove; 612. Positioning recess; 62. First telescopic member; 63. Second telescopic member; 64. Third connecting member; 65. First abutment block; 66. Fourth connecting member; 67. Second abutment block; 7. Logic control component; 71. Logic controller; 72. Pressure sensor. DETAILED DESCRIPTION

[0044] The following is combined with Figure 1-14 This application is described in further detail.

[0045] The embodiment of the present application discloses a semi-automatic electronic connection line tape laminating jig. Figure 2 and Figure 3 The semi-automatic electronic connection line tape bonding jig includes a base 1, a spacing adjustment structure 2 is provided on the base 1, and two sets of tape adsorption and positioning components 3 are provided on the spacing adjustment structure 2; the two sets of tape adsorption and positioning components 3 are used to jointly adsorb and position the tape placed thereon in a negative pressure manner, and the spacing adjustment structure 2 is used to adjust the distance between the two sets of tape adsorption and positioning components 3 to adapt to electronic connection lines of different widths; the spacing adjustment structure 2 is provided with a first reverse cover structure 4 corresponding to one set of tape adsorption and positioning components 3, and a second reverse cover structure corresponding to the other set of tape adsorption and positioning components 3. 5. The first reverse cover structure 4 and the second reverse cover structure 5 are used to sequentially cover the adhesive tapes placed on their respective top walls onto the top wall of the electronic connection line; an end positioning structure 6 is provided on the base 1 near the two ends of the spacing adjustment structure 2, and the end positioning structure 6 is used to position the two ends of the electronic connection line placed on the adhesive tape; the base 1 and the end positioning structure 6 are commonly connected to a logic control component 7, and the logic control component 7 is used to control the first reverse cover structure 4 and the second reverse cover structure 5 to sequentially cover the adhesive tapes on their respective top walls onto the top wall of the electronic connection line after positioning the two ends of the electronic connection line.

[0046] Reference Figure 4 The base 1 includes four supporting legs 11 arranged in a vertical direction. The top ends of the four supporting legs 11 are commonly connected to a long plate-shaped bottom plate 12. Two first strip holes 121 are provided on the bottom plate 12, both of which are perpendicular to the length direction thereof. The two first strip holes 121 are of the same length and are arranged in parallel; two second strip holes 122 are provided on the bottom plate 12 at a position where one of the first strip holes 121 is away from the other first strip hole 121. The two second strip holes 122 are of the same length and are located on the same straight line, and the second strip holes 122 are arranged parallel to the first strip holes 121.

[0047] Reference Figure 3 and Figure 5 The spacing adjustment structure 2 includes an opposing drive assembly 21 connected to the base plate 12. Specifically, the opposing drive assembly 21 includes sliding stoppers connected to the bottom wall of the base plate 12 and arranged on both sides of each first strip-shaped hole 121. The sliding stopper located on one side of the first strip-shaped hole 121 is denoted as a first sliding stopper 211, and the sliding stopper located on the other side of the first strip-shaped hole 121 is denoted as a second sliding stopper 212. A first rack 213 is slidably connected to the first sliding stopper 211, and a second rack 214 is slidably connected to the second sliding stopper 212. The length direction of the first rack 213 is parallel to the length direction of the second rack 214.

[0048] Replay Figure 2 A second driving source 215 is fixed on the top wall of the bottom plate 12 and in the middle of each first strip hole 121. In this embodiment, the second driving source 215 is specifically a motor. The output shaft of the motor passes downward through the first strip hole 121. Figure 5 The bottom end of the motor output shaft is coaxially fixed with a gear 216 that meshes with both the first rack 213 and the second rack 214. The first rack 213 is connected to a first connecting member 217 that passes upward through the first strip hole 121. Figure 6 , the top of the first connecting member 217 is fixed with a first sliding block 218 attached to the top wall of the bottom plate 12; Figure 5 The second rack 214 is connected to a second connecting member 219 that passes upward through the first strip hole 121. Figure 6 A second sliding block 2110 attached to the top wall of the bottom plate 12 is fixed to the top of the second connecting member 219 .

[0049] In practice, the second driving source 215 can synchronously drive the first rack 213 and the second rack 214 to move toward each other, thereby driving the first sliding block 218 connected to the first rack 213 and the second sliding block 2110 connected to the second rack 214 to move toward each other.

[0050] Reference Figure 6The tape adsorption and positioning assembly 3 includes a negative pressure source 31 provided on the side wall of each first sliding block 218 away from the second sliding block 2110 on the same first strip hole 121, and a negative pressure source 31 is also provided on the side wall of each second sliding block 2110 away from the first sliding block 218 on the same first strip hole 121. In this embodiment, the negative pressure source 31 is a micro negative pressure pump.

[0051] Reference Figure 7 and Figure 8 Each first sliding block 218 is provided with a first cavity 2181 in communication with the corresponding negative pressure source 31, and each second sliding block 2110 is provided with a second cavity 21101 in communication with the corresponding negative pressure source 31. The first sliding blocks 218 on the two first strip holes 121 are both located on the same side of the bottom plate 12, and the second sliding blocks 2110 on the two first strip holes 121 are both located on the other side of the bottom plate 12; the top walls of the two first sliding blocks 218 are commonly connected to a negative pressure plate 32 with a first plate cavity 321 therein, the first plate cavity 321 in the negative pressure plate 32 connected to the first sliding block 218 is in communication with the first cavity 2181 in the two first sliding blocks 218, and a plurality of first negative pressure holes 322 in communication with the first cavity are evenly opened on the top wall of the negative pressure plate 32. The top walls of the two second sliding blocks 2110 are also commonly connected to a negative pressure plate 32 having the same structure as the above-mentioned negative pressure plate 32, and the first plate cavity 321 in the negative pressure plate 32 is connected to the second cavity 21101 in the two second sliding blocks 2110.

[0052] In implementation, refer to Figure 8 and Figure 9 By starting the negative pressure source 31 on each first sliding block 218 and each second sliding block 2110, the first cavity 2181, the second cavity 21101, and the first plate cavity 321 and the first negative pressure hole 322 of each negative pressure plate 32 can be placed in a negative pressure environment, thereby facilitating the adsorption and positioning of the tape placed on the two negative pressure plates 32.

[0053] Reference Figure 10The first reverse cover structure 4 is connected between the two first sliding blocks 218. Specifically, the first reverse cover structure 4 includes a first mounting bar 41 connected between the two first sliding blocks 218. A first driving source 42 is fixed to the middle position of the top wall of the first mounting bar 41. In this embodiment, the first driving source 42 is a dual-axis rotary electric cylinder. The two output shafts of the dual-axis rotary electric cylinder are fixed with a rotating cover plate 43, and an abutting bar 44 is fixed on the top wall of the rotating cover plate 43. The abutting bar 44 is used to contact the adhesive of the packaging electronic connection line. Belt abutment; it should be noted that the length direction of the side wall of the abutment strip 44 used to abut the tape is parallel to the rotation axis direction of the first driving source 42; the second reverse cover structure 5 is connected between the two second sliding blocks 2110, specifically, the second reverse cover structure 5 includes a second mounting strip 51 connected between the two second sliding blocks 2110, and the first driving source 42 is also fixed to the middle position of the top wall of the second mounting strip 51, and the two output shafts of the dual-axis rotary electric cylinder on the second mounting strip 51 are fixed with another rotating cover plate 43.

[0054] In practice, a single piece of tape is placed not only on the top walls of the two negative pressure plates 32, but also on the top walls of the two rotating cover plates 43; when placing the tape on the rotating cover plate 43 with the abutment strip 44, one side of the tape needs to be abutted against a side wall of the abutment strip 44 in a vertical direction close to the first sliding block 218. This not only makes it easier to place the tape in a preset position, but also makes it easier to limit the tape, thereby improving the stability of the tape when placed on the rotating cover plate 43.

[0055] Reference Figure 11 and Figure 12 Both rotating cover plates 43 are provided with a second plate cavity 431 connected to the negative pressure source 31 located below each, and each negative pressure source 31 is connected to the corresponding second plate cavity 431 through a spiral hose. The top wall of each rotating cover plate 43 is provided with a second negative pressure hole 432 connected to its respective second plate cavity 431.

[0056] During implementation, after all the negative pressure sources 31 are started, each second plate cavity 431 and the corresponding second negative pressure hole 432 are in a negative pressure environment. At this time, the two rotating cover plates 43 can adsorb the tape attached thereto, so that the tape can be further adsorbed and positioned on the basis that the two negative pressure plates 32 have already adsorbed and positioned the tape, thereby further improving the stability of the positioning tape.

[0057] Reference Figure 13The end positioning structure 6 includes a wire end positioning seat 61 fixed on the top wall of the bottom plate 12 at one end away from the second strip hole 122. The top wall of the wire end positioning seat 61 is provided with an embedding groove 611 for embedding one end of the electronic connecting wire. It should be noted that the length of the embedding groove 611 is longer than the preset electronic connecting wires of various widths. When the end of the electronic connecting wire is embedded in the embedding groove 611, both ends of the end of the electronic connecting wire in the length direction do not contact the two inner side walls in the length direction of the embedding groove 611, and the two side walls of the end of the electronic connecting wire in the width direction abut against the two inner side walls in the width direction of the embedding groove 611; a positioning recess 612 is provided in the middle position of the groove wall away from the second strip hole 122. This positioning recess 612 is used for embedding the preset positioning protrusion on the end of the electronic connecting wire.

[0058] In practice, the purpose of making the length of the embedding groove 611 longer than the preset widths of the electronic connection wires is that the ends of the electronic connection wires of various widths can be embedded in the embedding groove 611 in the wire end positioning seat 61, which facilitates the improvement of the universality of the wire end positioning seat 61, and when the end of the electronic connection wire is embedded in the embedding groove 611, the positioning protrusion of the end of the electronic connection wire is embedded in the positioning recess 612 on the wire end positioning seat 61, which facilitates the prevention of the end of the electronic connection wire that has been embedded in the embedding groove 611 from sliding along the length direction of the embedding groove 611, thereby facilitating the improvement of the positioning effect of the wire end positioning seat 61 on the end of the electronic connection wire.

[0059] Reference Figure 14 , the end positioning structure 6 also includes a first telescopic member 62 and a second telescopic member 63 fixed to the bottom wall of the bottom plate 12, the first telescopic member 62, the second telescopic member 63 and the two second strip holes 122 one-to-one correspondence, the first telescopic member 62, the second telescopic member 63 and the two second strip holes 122 have the same length direction, the two second strip holes 122 are placed between the first telescopic member 62 and the second telescopic member 63, and the first telescopic member 62 and the second telescopic member 63 can be extended or shortened toward each other. In this embodiment, the first telescopic member 62 and the second telescopic member 63 are specifically electric telescopic rods; a third connecting member 64 is fixed on one end of the first telescopic member 62 close to the second telescopic member 63, which passes upward through the corresponding second strip hole 122, combined with Figure 13 A first abutment block 65 is fixed to the top of the third connecting member 64; a fourth connecting member 66 is fixed to the end of the second telescopic member 63 close to the first telescopic member 62, which passes upward through the corresponding second strip hole 122, and a second abutment block 67 is fixed to the top of the fourth connecting member 66. The first abutment block 65 and the second abutment block 67 are used to jointly press the end of the electronic connecting wire away from the wire end positioning seat 61, thereby cooperating with the wire end positioning seat 61 to realize the positioning of the two ends of the electronic connecting wire, and then realize the positioning of the electronic connecting wire as a whole.

[0060] In practice, by controlling the synchronous expansion and contraction of the first expansion member 62 and the second expansion member 63 , the distance between the first abutting block 65 and the second abutting block 67 can be adjusted, thereby facilitating abutment against the ends of electronic connection lines of different widths.

[0061] Reference Figure 13 as well as Figure 14 The logic control assembly 7 includes a logic controller 71 fixed to the bottom wall of the base plate 12. In one embodiment, the logic control assembly 7 also includes a pressure sensor 72 installed on the side wall of the first abutting block 65 near the second abutting block 67. In another embodiment, the logic control assembly 7 also includes a pressure sensor 72 installed on the side wall of the second abutting block 67 near the first abutting block 65. In other embodiments, the logic control assembly 7 also includes one pressure sensor 72 installed on the side wall of the first abutting block 65 near the second abutting block 67, and another pressure sensor 72 installed on the side wall of the second abutting block 67 near the first abutting block 65. The pressure sensors 72 in each of the above embodiments are all in communication with the logic controller 71.

[0062] It should be noted that the above-mentioned logic controller 71 is also electrically connected to each first driving source 42, each second driving source, each negative pressure source 31, the first telescopic member 62, and the second telescopic member 63 (the connection relationship belongs to the existing technology and is not shown in the figure).

[0063] During implementation, one end of the electronic connecting wire is abutted between the first abutment block 65 and the second abutment block 67. At this time, one end of the electronic connecting wire will abut against the pressure sensor 72 on the first abutment block 65, or the pressure sensor 72 on the second abutment block 67, or the pressure sensor 72 on the first abutment block 65 and the second abutment block 67. At this time, after the pressure sensor 72 senses the pressure, it immediately sends an electrical signal to the logic controller 71. This also indicates that both ends of the electronic connecting wire are in a state of completed positioning, so that the logic controller 71 can further control the two first drive sources 42 with this electrical signal to drive the corresponding rotating cover plate 43 in turn, and rotate with the rotation axis driven by the first drive source 42 as the axis, so as to facilitate the tape attached to the rotating cover plate 43 to be stuck on the top wall of the electronic connecting wire.

[0064] The implementation principle of a semi-automatic electronic connecting wire tape laminating jig in the embodiment of the present application is as follows:

[0065] Start each negative pressure source 31 through the logic controller 71, and then manually abut one side of the rectangular tape against the side of the abutment strip 44, and then stick the tape on the two negative pressure plates 32 and the top walls of the two rotating plates. At this time, the two negative pressure plates 32 and the two rotating plates all adsorb the bottom wall of the tape. It should be noted that only the top wall of the tape is sticky; then, embed the end of the electronic connecting wire with the positioning protrusion into the embedding groove 611 on the wire end positioning seat 61, and at the same time, embed the positioning protrusion on the end of the electronic connecting wire into the positioning recess 612 on the wire end positioning seat 61; then, make the bottom wall of the electronic connecting wire fit on the top wall of the tape below it; then, abut the other end of the electronic connecting wire against Between the first abutment block 65 and the second abutment block 67, the end of the electronic connection line is also abutted against the pressure sensor 72 on the first abutment block 65 and / or the second abutment block 67, so that the pressure sensor 72 sends an electrical signal to the logic controller 71 according to the pressure it feels, and then the logic controller 71 controls the first drive source 42 to drive the top wall of the corresponding rotating cover plate 43 to rotate toward the top wall of the electronic connection line in turn, and then reset; so that the tapes on the two rotating cover plates 43 are stuck on the top wall of the electronic connection line in turn, and the tape on the second rotating cover plate 43 that rotates toward the top wall of the electronic connection line is also stuck on the top wall of the tape that has been stuck on the top wall of the electronic connection line. In this way, the semi-automatic electronic connection line tape laminating jig is used to assist manual labor in wrapping the tape on the electronic connection line, thereby improving the packaging convenience of wrapping the tape on the electronic connection line.

[0066] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.

Claims

1. A semi-automatic electronic cable tape laminating jig, characterized by: The invention comprises a bottom plate (12), a negative pressure plate (32) is provided on the bottom plate (12), a first plate cavity (321) is provided in the negative pressure plate (32), a first negative pressure hole (322) is provided on the negative pressure plate (32) and is communicated with the first plate cavity (321), and the negative pressure plate (32) is connected to a negative pressure source (31) communicated with the first plate cavity (321); a first driving source (42) is provided on the bottom plate (12) and is placed on one side of the negative pressure plate (32), and a rotating cover (43) is connected to the first driving source (42); a wire end positioning seat (61) for embedding the end of the electronic connecting wire is provided on the bottom plate (12) and close to one end of the negative pressure plate (32), a first strip hole (121) is provided on the bottom plate (12), and the bottom plate (12) is provided with a first driving source (42) and a rotating cover (43) is connected to the first driving source (42); a wire end positioning seat (61) for embedding the end of the electronic connecting wire is provided on the bottom plate (12) and close to the negative pressure plate (32), and a first strip hole (121) is provided on the bottom plate (12). ) is provided with a first sliding block (218) and a second sliding block (2110), the first sliding block (218) is provided with a first connecting member (217) passing through the first strip hole (121), the second sliding block (2110) is provided with a second connecting member (219) passing through the first strip hole (121), the bottom plate (12) is also provided with a facing drive component (21) connected to both the first sliding block (218) and the second sliding block (2110), the facing drive component (21) is used to drive the first sliding block (218) and the second sliding block (2110) to move towards each other; the first sliding block (218) and the second sliding block (2110) are both connected to the negative pressure plate (32) and the first driving source (42).

2. The semi-automatic electronic connecting wire tape laminating jig according to claim 1, characterized in that: A second plate cavity (431) is provided in the rotating cover plate (43), a second negative pressure hole (432) communicating with the second plate cavity (431) is provided on the rotating cover plate (43), and the negative pressure source (31) is also communicated with the second plate cavity (431) in the rotating cover plate (43).

3. The semi-automatic electronic connecting wire tape laminating jig according to claim 1, characterized in that: The rotating cover plate (43) is provided with a contact strip (44) for contacting with the adhesive tape for packaging the electronic connecting wire.

4. The semi-automatic electronic connecting wire tape laminating jig according to claim 3, characterized in that: The length direction of the side wall of the abutting strip (44) for abutting against the adhesive tape is parallel to the central axis direction of the rotation shaft of the first driving rotation source (42).

5. The semi-automatic electronic connecting wire tape laminating jig according to claim 1, characterized in that: The wire end positioning seat (61) is provided with an embedding groove (611) for embedding the end of the electronic connecting wire, and a positioning notch (612) is provided on the groove wall of the embedding groove (611). The positioning notch (612) is used for embedding a preset positioning protrusion on the end of the electronic connecting wire.

6. The semi-automatic electronic connecting wire tape laminating jig according to claim 1, characterized in that: The opposite driving assembly (21) comprises a first sliding limit seat (211) connected to the base plate (12), and a second sliding limit seat (212) parallel to the first sliding limit seat (211); the first sliding limit seat (211) is slidably connected to a first rack (213) connected to the first connecting member (217), and the second sliding limit seat (212) is slidably connected to a second rack (214) connected to the second connecting member (219); a second driving source is provided on the base plate (12), and the second driving source is connected to a gear (216) meshing with both the first rack (213) and the second rack (214).

7. The semi-automatic electronic connecting wire tape laminating jig according to claim 1, characterized in that: A second strip hole (122) is provided on the bottom plate (12), and a first abutting block (65) and a second abutting block (67) for abutting the end of the electronic connecting line are provided on the bottom plate (12); the first abutting block (65) is connected to a third connecting member (64) passing through the second strip hole (122), and the second abutting block (67) is connected to a fourth connecting member (66) passing through the second strip hole (122); the bottom plate (12) is provided with a first telescopic member (62) connected to the third connecting member (64), and a second telescopic member (63) connected to the fourth connecting member (66).

8. The semi-automatic electronic connecting wire tape laminating jig according to claim 7, characterized in that: A pressure sensor (72) for abutting against the end of the electronic connection line is provided on the first abutting block (65) and / or the second abutting block (67); a logic controller (71) is provided on the bottom plate (12) and is communicatively connected to the pressure sensor (72); and the logic controller (71) is electrically connected to the first drive source (42).

Citation Information

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