A desktop test strip cutter

The desktop inspection strip cutting machine with three-axis linkage utilizes aluminum suction cups and ball screw transmission to achieve automated tape cutting, solving the problems of low efficiency, insufficient precision and cumbersome operation of traditional cutting, and realizing efficient and accurate tape cutting.

CN224527376UActive Publication Date: 2026-07-21上海昊佰智造精密电子股份有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
上海昊佰智造精密电子股份有限公司
Filing Date
2025-08-08
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Traditional tape inspection strips are inefficient, inaccurate, and cumbersome to operate, making continuous automated cutting impossible. The tape is also not securely fixed and is prone to shifting, affecting the cutting quality.

Method used

The desktop inspection strip cutting machine adopts a three-axis linkage, using aluminum suction cups to fix the tape with negative pressure. Combined with ball screw drive and modular design, it realizes automated cutting. The cutting head is controlled by a program and supports the replacement of blades with different thicknesses.

Benefits of technology

It achieves efficient and precise tape cutting, with stable tape fixation, strong adaptability, and suitability for both small-batch and large-batch production needs, thus improving cutting quality and efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a desktop detection strip cutting machine, include: frame and locate the platform on the frame, X direction moving part, Y direction moving part, Z direction moving part, work head, the platform is used for fixing the cutting adhesive tape, X direction moving part with Z direction moving part connects, Z direction moving part with work head connects, Y direction moving part with platform connects, X direction moving part, Z direction moving part are respectively used for driving work head X direction, Z direction movement, Y direction moving part is used for driving platform Y direction movement, X direction moving part, Y direction moving part, Z direction moving part, work head are connected with external controller communication respectively. Compared with prior art, the utility model has the advantages of automation cutting, improving efficiency, adhesive tape fixing stable, improving cutting quality, modular design, strong adaptability etc.
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Description

Technical Field

[0001] This utility model relates to the field of die-cutting technology, and in particular to a desktop inspection strip cutting machine. Background Technology

[0002] Test strips for adhesive tape are used to test the stickiness of adhesive tape. The test tape needs to be cut into strips according to given test markings. Traditional manual cutting of test tape is too inefficient, necessitating a device to improve work efficiency.

[0003] Currently, in the field of tape adhesion testing, the preparation of test strips for tape adhesion mainly relies on the following two methods:

[0004] (1) Manual cutting method

[0005] Operators use utility knives or scissors to manually cut the tape to standard dimensions.

[0006] Relying on manual measurement and marking, the cutting accuracy is greatly affected by the operator's experience.

[0007] (2) Semi-automatic cutting equipment

[0008] Some laboratories use simple cutting machines, such as manual push-blade cutters or small die-cutting machines.

[0009] These devices typically only allow for cutting in one direction and cannot precisely control the cutting length and width.

[0010] The existing technology has the following drawbacks:

[0011] (1) Low cutting efficiency

[0012] Manual cutting is time-consuming, especially when preparing test strips in batches, where the speed of manual operation is limited.

[0013] Semi-automatic equipment still requires manual adjustment of the tape position and cannot achieve continuous automated cutting.

[0014] (2) Insufficient cutting precision

[0015] Manual cutting can easily lead to dimensional deviations, resulting in inconsistent test tape widths and affecting the accuracy of test data.

[0016] The positioning accuracy of the simple cutting machine is poor, and it cannot guarantee the high-precision cutting requirements of ±0.1mm.

[0017] (3) The operation is cumbersome and the consistency is poor.

[0018] Manual cutting requires repeated measurements and markings, making the process complex and prone to errors.

[0019] Even after the semi-automatic equipment cuts the tape, manual sorting is still required, which increases the workload.

[0020] (4) The tape is not securely fixed, which affects the cutting quality.

[0021] Traditional methods using double-sided tape or manual pressing to secure the tape are prone to displacement during cutting, resulting in uneven edges. The lack of a stable negative pressure adsorption system also makes the tape susceptible to warping or slippage. Utility Model Content

[0022] The purpose of this invention is to overcome the shortcomings of the existing technology by providing a desktop inspection strip cutting machine that automates cutting, improves efficiency, ensures stable tape fixation, improves cutting quality, and features a modular design for strong adaptability.

[0023] The objective of this utility model can be achieved through the following technical solutions:

[0024] This utility model provides a desktop inspection strip cutting machine, including: a frame and a platform disposed on the frame, an X-axis motion component, a Y-axis motion component, a Z-axis motion component, and a working head;

[0025] The platform is used to hold the cut tape in place;

[0026] The X-axis motion component is connected to the Z-axis motion component, the Z-axis motion component is connected to the working head, and the Y-axis motion component is connected to the platform;

[0027] The X-axis motion component and the Z-axis motion component are used to drive the working head to move in the X and Z directions, respectively, and the Y-axis motion component is used to drive the platform to move in the Y direction.

[0028] The X-axis motion component, Y-axis motion component, Z-axis motion component, and working head are all connected to an external controller for communication.

[0029] Furthermore, the platform includes an aluminum suction cup and a cutting felt, with the cutting felt disposed on the aluminum suction cup. The aluminum suction cup is used to adhere and fix the tape to be cut, and the cutting felt is used to support the tape to be cut.

[0030] Furthermore, the surface of the aluminum suction cup is provided with uniformly distributed suction holes for fixing the cut tape by negative pressure.

[0031] Furthermore, the X-axis motion component includes a first stepper motor, a first lead screw, and a first optical axis. The first stepper motor is fixed on the frame, the first lead screw is coaxially connected to the output shaft of the first stepper motor, and the first optical axis is arranged parallel to the first optical lead screw. The Z-axis motion component is slidably connected to the X-axis motion component through the first lead screw and the first optical axis.

[0032] Furthermore, the Y-axis motion component includes a second stepper motor, a second lead screw, and a second optical axis. The second lead screw is coaxially connected to the output shaft of the second stepper motor, and the second optical axis is arranged parallel to the second lead screw. The platform is slidably connected to the Y-axis motion component through the second lead screw and the second optical axis.

[0033] Furthermore, the Z-axis motion component includes a third stepper motor, a third lead screw, and a third optical axis. The third lead screw is coaxially connected to the output shaft of the third stepper motor, and the third optical axis is arranged parallel to the third optical lead screw. The working head is slidably connected to the Z-axis motion component through the third lead screw and the third optical axis.

[0034] Furthermore, the working head includes a cutting head and a cutting holder.

[0035] Furthermore, the cutting head is detachable to accommodate cutting blades of different thicknesses.

[0036] Furthermore, the lead screws of the X-axis motion component, Y-axis motion component, and Z-axis motion component are all ball screws to improve transmission accuracy.

[0037] Furthermore, the frame adopts an aluminum alloy frame structure, and reinforcing ribs are provided in key stress-bearing areas to improve overall rigidity.

[0038] In use, the tape to be cut is mounted on the cutting felt and secured by an aluminum suction cup. The movement of the working head is controlled by X, Y, and Z-axis motion components, and the cutting head cuts the tape. The cutting path of the cutting head is controlled by a preset program in the controller.

[0039] Compared with the prior art, the present invention has the following advantages:

[0040] (1) Automated cutting improves efficiency. Continuous cutting can be achieved through three-axis linkage automatic control, and unattended batch operations can be achieved through programmed motion control.

[0041] (2) Stable tape fixation improves cutting quality. The aluminum suction cup uses negative pressure to solve the problem of easy displacement of traditional double-sided tape, ensuring that the tape does not warp or slide during the cutting process. The cutting felt buffer layer protects the adhesiveness of the back of the tape from damage and avoids the indentation or contamination caused by traditional metal tabletops.

[0042] (3) Modular design with strong adaptability. The cutter head is replaceable, supports different thickness blades, and the stroke is adjustable. The X / Y axis stroke can be customized according to the tape width to meet the needs of small batches in the laboratory and large batches in the production line. Attached Figure Description

[0043] Figure 1 This is a schematic diagram of a desktop inspection strip cutting machine.

[0044] Reference numerals: 1-Frame; 2-Platform; 3-X-axis moving part; 4-Y-axis moving part; 5-Z-axis moving part; 6-Working head; 7-Cutting felt; 8-Aluminum suction cup. Detailed Implementation

[0045] The present invention will now be described in detail with reference to the accompanying drawings and specific embodiments. Component models, material names, connection structures, control methods, algorithms, and other features not explicitly described in this technical solution are considered common technical features disclosed in the prior art.

[0046] Example 1

[0047] This embodiment provides a desktop inspection strip cutting machine, such as... Figure 1 As shown, it includes: a frame 1 and a platform 2 mounted on the frame 1, an X-axis moving component 3, a Y-axis moving component 4, a Z-axis moving component 5, and a working head 6;

[0048] The platform 2 is used to fix the cut tape;

[0049] The X-axis motion component 3 is connected to the Z-axis motion component 5, the Z-axis motion component 5 is connected to the working head 6, and the Y-axis motion component 4 is connected to the platform 2;

[0050] The X-axis motion component 3 and the Z-axis motion component 5 are used to drive the working head 6 to move in the X and Z directions, respectively, and the Y-axis motion component 4 is used to drive the platform 2 to move in the Y direction.

[0051] The X-axis motion component 3, Y-axis motion component 4, Z-axis motion component 5, and working head 6 are respectively connected to an external controller for communication.

[0052] Example 2

[0053] This embodiment provides a desktop inspection strip cutting machine, such as... Figure 1 As shown, it includes: a frame 1 and a platform 2 mounted on the frame 1, an X-axis moving component 3, a Y-axis moving component 4, a Z-axis moving component 5, and a working head 6;

[0054] The platform 2 is used to fix the cut tape;

[0055] The X-axis motion component 3 is connected to the Z-axis motion component 5, the Z-axis motion component 5 is connected to the working head 6, and the Y-axis motion component 4 is connected to the platform 2;

[0056] The X-axis motion component 3 and the Z-axis motion component 5 are used to drive the working head 6 to move in the X and Z directions, respectively, and the Y-axis motion component 4 is used to drive the platform 2 to move in the Y direction.

[0057] The X-axis motion component 3, Y-axis motion component 4, Z-axis motion component 5, and working head 6 are respectively connected to an external controller for communication.

[0058] In a specific embodiment, the platform 2 includes an aluminum suction cup 8 and a cutting felt 7, with the cutting felt 7 disposed on the aluminum suction cup 8. The aluminum suction cup 8 is used to adsorb and fix the tape to be cut, and the cutting felt 7 is used to support the tape to be cut.

[0059] In a specific embodiment, the surface of the aluminum suction cup 8 is provided with uniformly distributed suction holes for fixing the cut tape by negative pressure.

[0060] In a specific embodiment, the X-axis motion component 3 includes a first stepper motor, a first lead screw, and a first optical axis. The first stepper motor is fixed on the frame 1, the first lead screw is coaxially connected to the output shaft of the first stepper motor, and the first optical axis is arranged parallel to the first optical lead screw. The Z-axis motion component 5 is slidably connected to the X-axis motion component 3 through the first lead screw and the first optical axis.

[0061] In a specific embodiment, the Y-axis motion component 4 includes a second stepper motor, a second lead screw, and a second optical axis. The second lead screw is coaxially connected to the output shaft of the second stepper motor, and the second optical axis is arranged parallel to the second lead screw. The platform 2 is slidably connected to the Y-axis motion component 4 through the second lead screw and the second optical axis.

[0062] In a specific embodiment, the Z-axis motion component 5 includes a third stepper motor, a third lead screw, and a third optical axis. The third lead screw is coaxially connected to the output shaft of the third stepper motor, and the third optical axis is arranged parallel to the third optical lead screw. The working head 6 is slidably connected to the Z-axis motion component 5 through the third lead screw and the third optical axis.

[0063] In a specific embodiment, the working head 6 includes a cutting head and a cutting holder.

[0064] In a specific embodiment, the cutting head is detachable to accommodate cutting blades of different thicknesses.

[0065] In a specific implementation, the lead screws of the X-axis motion component 3, the Y-axis motion component 4, and the Z-axis motion component 5 are all ball screws to improve transmission accuracy.

[0066] In a specific embodiment, the frame 1 adopts an aluminum alloy frame structure, and reinforcing ribs are provided in key stress-bearing parts to improve overall rigidity.

[0067] In use, the tape to be cut is mounted on the cutting felt 7 and secured by the aluminum suction cup 8. The movement of the working head is controlled by the X, Y, and Z axis motion components, and the tape is cut by the cutting blade. The cutting path of the cutting blade is controlled by a preset program in the controller.

[0068] Components not described in detail in this embodiment are all existing components that can be purchased through public channels.

[0069] The above description of the embodiments is provided to enable those skilled in the art to understand and use the utility model. It will be apparent to those skilled in the art that various modifications can be easily made to these embodiments, and the general principles described herein can be applied to other embodiments without inventive effort. Therefore, the present utility model is not limited to the above embodiments, and any improvements and modifications made by those skilled in the art based on the disclosure of the present utility model without departing from its scope should be within the protection scope of the present utility model.

Claims

1. A desktop inspection strip cutting machine, characterized in that, include: The frame (1) and the platform (2) mounted on the frame (1), the X-axis moving component (3), the Y-axis moving component (4), the Z-axis moving component (5), and the working head (6); The platform (2) is used to fix the cut tape; The X-axis motion component (3) is connected to the Z-axis motion component (5), the Z-axis motion component (5) is connected to the working head (6), and the Y-axis motion component (4) is connected to the platform (2). The X-axis motion component (3) and Z-axis motion component (5) are used to drive the working head (6) to move in the X and Z directions, respectively, and the Y-axis motion component (4) is used to drive the platform (2) to move in the Y direction; The X-axis motion component (3), Y-axis motion component (4), Z-axis motion component (5), and working head (6) are respectively connected to an external controller for communication.

2. The desktop inspection strip cutting machine according to claim 1, characterized in that, The platform (2) includes an aluminum suction cup (8) and a cutting felt (7), the cutting felt (7) being disposed on the aluminum suction cup (8).

3. A desktop inspection strip cutting machine according to claim 2, characterized in that, The aluminum suction cup (8) has uniformly distributed suction holes on its surface, which are used to fix the cut tape by negative pressure.

4. A desktop inspection strip cutting machine according to claim 1, characterized in that, The X-axis motion component (3) includes a first stepper motor, a first lead screw and a first optical axis. The first stepper motor is fixed on the frame (1). The first lead screw is coaxially connected to the output shaft of the first stepper motor. The first optical axis is arranged parallel to the first optical lead screw. The Z-axis motion component (5) is slidably connected to the X-axis motion component (3) through the first lead screw and the first optical axis.

5. A desktop inspection strip cutting machine according to claim 1, characterized in that, The Y-axis motion component (4) includes a second stepper motor, a second lead screw, and a second optical axis. The second lead screw is coaxially connected to the output shaft of the second stepper motor, and the second optical axis is arranged parallel to the second optical lead screw. The platform (2) is slidably connected to the Y-axis motion component (4) through the second lead screw and the second optical axis.

6. A desktop inspection strip cutting machine according to claim 1, characterized in that, The Z-axis motion component (5) includes a third stepper motor, a third lead screw, and a third optical axis. The third lead screw is coaxially connected to the output shaft of the third stepper motor, and the third optical axis is arranged parallel to the third lead screw. The working head (6) is slidably connected to the Z-axis motion component (5) through the third lead screw and the third optical axis.

7. A desktop inspection strip cutting machine according to claim 1, characterized in that, The working head (6) includes a cutting head and a cutting holder.

8. A desktop inspection strip cutting machine according to claim 7, characterized in that, The cutting head is detachable to accommodate cutting blades of different thicknesses.

9. A desktop inspection strip cutting machine according to claim 1, characterized in that, The lead screws of the X-axis motion component (3), Y-axis motion component (4), and Z-axis motion component (5) are all ball screws to improve transmission accuracy.

10. A desktop inspection strip cutting machine according to claim 1, characterized in that, The frame (1) adopts an aluminum alloy frame structure.