Machining original point detection tool
By incorporating anti-collision components and a magnet base into the machining origin detection tool, the problem of tool collision damage with the tool setter is solved, achieving higher safety and equipment durability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- EVERITE (SUZHOU) MECHANICAL PROD CO LTD
- Filing Date
- 2025-04-29
- Publication Date
- 2026-05-26
AI Technical Summary
During operation, machining origin detection tools are prone to collisions between the cutting tool and the tool setter due to operational errors, resulting in damage. Existing technologies lack effective anti-collision protection measures.
A machining origin detection tool was designed, comprising a base, a cleaning component, a receiver base, a magnet base, an anti-collision component, and a transmitter base. The anti-collision component utilizes springs and double-sided adhesive to provide cushioning and anti-collision protection, while the magnet base is used for positioning to avoid hard collisions. The position is determined by the adsorption of an iron block with the magnet base.
It effectively prevents damage to cutting tools and tool setters from hard impacts, improves operational safety and equipment lifespan, and reduces the risk of damage caused by operational errors.
Smart Images

Figure CN224274725U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of machining origin detection tools, specifically a machining origin detection tool. Background Technology
[0002] Machining origin detection tools are specifically designed for detecting the machining origin. Examples include laser tool setters. Laser tool setters use laser or optical principles to measure the tool length and diameter, and determine the relative position between the tool and the workpiece, thus establishing the machining origin. They are suitable for origin positioning in three-dimensional space (XYZ axes), improving the accuracy of tool compensation and reducing machining errors. However, during operation, machining origin detection tools are prone to errors, causing the tool to collide with the tool setter, potentially damaging the probe or tool. Therefore, we propose a machining origin detection tool. Utility Model Content
[0003] The present invention aims to solve the problems existing in the prior art or related technologies.
[0004] Therefore, the technical solution adopted by this utility model is as follows: a processing origin detection tool, including a base, a cleaning component, a receiving end seat, a magnet seat, an anti-collision component, and a transmitting end seat. The cleaning component is arranged on the base, the receiving end seat is arranged at the top of the base, an iron block is arranged at the bottom of the receiving end seat, the magnet seat is arranged at the top of the base, a positioning groove is opened on the left side of the magnet seat, the anti-collision component includes a right fixing plate connected to the base by screws, a spring arranged on the left side of the right fixing plate, a left fixing plate arranged on the left side of the spring, and double-sided adhesive glued to the left side of the left fixing plate, and the transmitting end seat is arranged at the top of the base.
[0005] Preferably, the base has a plurality of mounting holes.
[0006] Preferably, the cleaning assembly includes a fixed base disposed at the front end of the base, an air head rotatably connected to the fixed base, a stud disposed on the right side of the air head, an adjustment knob threadedly connected to the stud, and an air tube disposed at the bottom of the air head.
[0007] Preferably, a laser receiver is disposed inside the receiver base, and a groove is provided on the right side of the receiver base.
[0008] Preferably, there are two magnet bases and two anti-collision components, and the two magnet bases are symmetrically distributed.
[0009] Preferably, a laser emitter is disposed inside the transmitter base, and the transmitter base and the receiver base are arranged symmetrically.
[0010] By adopting the above technical solution, the beneficial effects achieved by this utility model are as follows: The spring of the anti-collision component in this utility model provides a certain buffering effect to the left fixed plate. When the receiving end seat and the tool have a slight impact, the anti-collision component can play a role in preventing the impact. At the same time, when the receiving end seat and the tool have a heavy impact, since the left fixed plate is bonded to the receiving end seat with double-sided adhesive, the huge pulling force can separate the double-sided adhesive from the left fixed plate or the receiving end seat. Similarly, the transmitting end seat can also be protected from impact, achieving a good anti-collision effect and avoiding damage to the tool or tool setter due to operational errors. At the same time, the iron blocks at the bottom of the receiving end seat and the transmitting end seat can be attracted to the magnet seat and positioned by the positioning groove to determine the position of the receiving end seat and avoid the anti-collision component affecting the fixation of the receiving end seat or the transmitting end seat. Attached Figure Description
[0011] Figure 1 This is a schematic diagram of the structure of this utility model;
[0012] Figure 2 This utility model Figure 1 A schematic diagram showing the separation of the receiving terminal and the magnet base;
[0013] Figure 3 This utility model Figure 1 A schematic diagram of the structure of the anti-collision component.
[0014] Figure label:
[0015] 100. Base; 101. Mounting hole;
[0016] 200. Cleaning components; 201. Mounting base; 202. Air nozzle; 203. Stud; 204. Adjustment knob; 205. Air tube;
[0017] 300. Receiver base; 301. Iron block; 302. Groove;
[0018] 400. Magnet base; 401. Positioning groove;
[0019] 500. Anti-collision component; 501. Right fixing plate; 502. Spring; 503. Left fixing plate; 504. Double-sided adhesive;
[0020] 600. Launcher mount. Detailed Implementation
[0021] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings. It should be noted that, unless otherwise specified, the embodiments and features of the present utility model can be combined with each other.
[0022] The following describes some embodiments of this utility model with reference to the accompanying drawings, providing a machining origin detection tool.
[0023] Example 1:
[0024] Reference Figure 1-3 This is the first embodiment of the present invention. This embodiment provides a processing origin detection tool, including a base 100, a cleaning component 200, a receiver 300, a magnet 400, an anti-collision component 500, and a transmitter 600.
[0025] Specifically, the base 100 has several mounting holes 101. During use, screws can be passed through the mounting holes 101 to fix the base 100 to the processing table.
[0026] Specifically, the cleaning component 200 is mounted on the base 100. The cleaning component 200 includes a fixed base 201 mounted at the front end of the base 100, an air head 202 rotatably connected to the fixed base 201, a stud 203 mounted on the right side of the air head 202, an adjustment knob 204 threadedly connected to the stud 203, and an air pipe 205 mounted at the bottom of the air head 202. In use, the air pipe 205 can be connected to an air supply device. After connection, the air supply device can deliver gas through the air pipe 205 to the air head 202 and blow it out. At the same time, the adjustment knob 204 can be loosened. After loosening, the air head 202 can be rotated. After rotating to a certain angle, the adjustment knob 204 can be tightened to clean the blade.
[0027] Specifically, the receiver base 300 is located at the top of the base 100, and an iron block 301 is located at the bottom of the receiver base 300. A laser receiver is located inside the receiver base 300, and a groove 302 is provided on the right side of the receiver base 300. In use, the laser receiver can receive laser light for detection, and the iron block 301 can attract the magnet base 400. The position of the receiver base 300 can be determined by the cooperation between the iron block 301 and the magnet base 400 for detection.
[0028] Specifically, the magnet base 400 is arranged at the top of the base 100. The left side of the magnet base 400 has a positioning groove 401. In use, the iron block 301 can be aligned with the positioning groove 401 of the magnet base 400 and inserted. After insertion, they attract each other, which can determine the position of the receiver base 300 and prevent the anti-collision component 500 from affecting the fixation of the receiver base 300 or the transmitter base 600.
[0029] Specifically, the anti-collision component 500 includes a right fixing plate 501 screwed to the base 100, a spring 502 arranged on the left side of the right fixing plate 501, a left fixing plate 503 arranged on the left side of the spring 502, and double-sided adhesive 504 bonded to the left side of the left fixing plate 503. In use, the spring 502 allows the left fixing plate 503 to move and acts as a buffer to prevent the receiver 300 from being damaged by hard impact. At the same time, the huge tensile force allows the double-sided adhesive 504 to separate from the left fixing plate 503 or the receiver 300, preventing the receiver 300 from being damaged after separation, so that it can be used.
[0030] It should be noted that there are two magnet bases 400 and two anti-collision components 500. The two magnet bases 400 are symmetrically distributed. In use, the two magnet bases 400 and the anti-collision components 500 can protect the receiver base 300 and the transmitter base 600 from collisions, preventing the receiver base 300 and the transmitter base 600 from being damaged by hard impacts.
[0031] Specifically, the transmitter 600 is located at the top of the base 100, and a laser emitter is installed inside the transmitter 600. The transmitter 600 and the receiver 300 are symmetrically arranged. In use, the laser emitter can emit laser light, and the symmetrically arranged transmitter 600 and receiver 300 can be used together for detection.
[0032] The working principle and usage process of this utility model are as follows: First, align the left fixing plate 503 of the anti-collision component 500 with the base 100, and then fix it with screws. After fixing, adhere the right fixing plate 501 to the double-sided adhesive 504. After adhesion, align the double-sided adhesive 504 with the groove 302 of the receiver base 300 and insert it. After adhesion, align the iron block 301 at the bottom of the receiver base 300 with the positioning groove 401 on the magnet base 400 and insert it. After insertion, the iron block 301 and the magnet base 400 attract each other, thus fixing the receiver base 300. Then, fix the receiver base 300 in the same way as described above. The receiving end holder 600 is sufficient. After fixing, the base 100 is fixed to the machining table with screws. When using it, start the tool setting program in the CNC system or enter the relevant code. Slowly move the tool between the receiving end holder 300 and the transmitting end holder 600. The tool and the contact surface of the tool setter must be kept perpendicular and make vertical downward contact with the contact surface. Then, the tool is set by the laser of the receiving end holder 300 and the transmitting end holder 600. When the tool passes through the laser beam, the light intensity at the receiving end holder 300 weakens and sends a signal to the controller to record the current machine tool position and obtain the tool size.
[0033] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.
Claims
1. A process origin detection tool characterized by, Include: Base (100); Cleaning assembly (200), arranged on the base (100); Receiving end seat (300), arranged at the top end of the base (100), the bottom of the receiving end seat (300) is provided with an iron block (301); Magnet seat (400), arranged at the top end of the base (100), the left side of the magnet seat (400) is provided with a positioning groove (401); Anti-collision assembly (500), including screwing the right fixed plate (501) on the base (100), the spring (502) arranged on the left side of the right fixed plate (501), the left fixed plate (503) arranged on the left side of the spring (502) and the double-sided adhesive tape (504) bonded on the left side of the left fixed plate (503); Transmitting end seat (600), arranged at the top end of the base (100).
2. A process origin detection tool according to claim 1, wherein, The base (100) is provided with a plurality of mounting holes (101).
3. A process origin detection tool according to claim 1, wherein, The cleaning assembly (200) includes a fixed seat (201) arranged at the front end of the base (100), a blowing head (202) rotatably connected in the fixed seat (201), a stud (203) arranged on the right side of the blowing head (202), an adjusting knob (204) threadedly connected with the stud (203), and a gas pipe (205) arranged at the bottom of the blowing head (202).
4. The process origin detection tool of claim 1, wherein, The receiving end seat (300) is provided with a laser receiver, and the right side of the receiving end seat (300) is provided with a groove (302).
5. The process origin detection tool of claim 1, wherein, The magnet seat (400) and the anti-collision assembly (500) are provided with two, and the two magnet seats (400) are symmetrically distributed.
6. A process origin detection tool according to claim 1, wherein, The transmitting end seat (600) is provided with a laser emitter, and the transmitting end seat (600) and the receiving end seat (300) are symmetrically arranged.