Integrated assembly type tool setting gauge
The tool setting device with an integrated assembly design solves the problem of easy structural breakage of modular tool setting devices under external force, achieving higher safety and stability, and improving tool setting accuracy and efficiency.
Patent Information
- Application Number
- CN202423053792.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-11
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2034-12-11
AI Technical Summary
Existing modular tool setting devices are prone to breakage due to external forces during use, affecting the safety and stability of the device.
The device adopts an integrated assembly design, which protects the entire structure inside the device through the main shell, the overall back cover and the integrated panel cover, ensuring the stability and safety of the structure.
This improves the safety and stability of the tool setter, reduces structural damage and inaccurate positioning caused by external forces, and enhances the accuracy and efficiency of the tool setting process.
Smart Images

Figure CN223684997U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to photoelectric type tool setting instrument technical field, concretely is a kind of integrated assembly type tool setting instrument. BACKGROUND
[0002] Tool setting instrument is commonly used for positioning the datum of parts before machining in numerical control machine tool, and the production use frequency is higher. With the development of technology, similar automatic tool setting auxiliary instrument also appears, which greatly promotes the rapid development of the entire processing industry chain.
[0003] According to the authorized announcement number CN 217596610 U, a combined tool setting instrument is disclosed, which belongs to the field of photoelectric tool setting instruments. The combined tool setting instrument includes a transmitter and a receiver. The transmitter includes a transmitter housing. A sealing ring liner is installed inside the battery compartment on the inner side of the battery cover. A battery sealing ring is sleeved on the outer side of the sealing ring liner. A laser emission unit is installed inside the transmitter housing. A sealing element is installed on the side wall of the laser emission unit. A glass ring is installed on one side of the transmitter housing. A transmitter sealing ring is installed inside the transmitter front cover. The receiver includes a bottom box. A receiver sealing cover is installed on one side of the transmitter. A glass locking cover is installed inside the receiver sealing cover. A glass sheet is installed inside the glass locking cover. By adding sealing mechanisms inside the transmitter and the receiver of the tool setting instrument, the sealing performance of the transmitter and the receiver is improved, and the emission and reception of light are improved.
[0004] The prior art is a combined structure, which is prone to breaking the combined relationship due to external forces during use, which cannot guarantee the safety of the device. Therefore, there is a need for an integrated assembly type tool setting instrument. UTILITY MODEL CONTENTS
[0005] The utility model aims at providing an integrated assembly type tool setting instrument. All structures are protected inside the device by the shell main body, the integrated plate cover and the overall rear cover, which keeps the device as a whole and improves the safety of the device to solve the technical problems mentioned in the background art.
[0006] To achieve the above-mentioned purpose, the utility model provides the following technical scheme: an integrated assembly type tool setting instrument, which includes a shell main body. A plastic frame wire is connected and installed inside the shell main body. A circular circuit is installed on the rear side of the plastic frame wire. An inner groove is formed on the front end of the plastic frame wire. A positioning seat is fixedly installed inside the inner groove. A six-bead disc is plug-in installed on the front end of the plastic frame wire. A tripod combination is connected and installed inside the six-bead disc. The tripod combination is inserted into the inner groove, and the middle part of the tripod combination is plug-in installed into the positioning seat. An integrated plate cover is connected and installed on the opening at the front end of the shell main body. The tripod combination penetrates through the center of the integrated plate cover and extends out.
[0007] Preferably, the plastic frame wire outer arc is provided with a clamping groove, the plastic frame wire end is provided with two groups of receiving grooves, a group of through holes is formed in the receiving groove, and a positioning rod is fixedly installed at the end of the receiving groove.
[0008] Preferably, the plastic frame wire end is provided with three groups of insertion grooves, and the insertion grooves divide the plastic frame wire end into three equal end faces, a limiting groove is formed in each end face, and a group of insertion rods is fixedly installed in the middle of each end face.
[0009] Preferably, a group of probes is inserted into each through hole, and the positioning rod is inserted into a group of limiting control holes.
[0010] Preferably, the six-bead disc end is provided with three groups of positioning insertion holes with equal arc, the insertion rods are inserted into the positioning insertion holes, and each group of support rods of the tripod assembly is inserted into the insertion grooves.
[0011] Preferably, a sealing element is attached to the front end of the six-bead disc, and the integrated plate cover is attached to the surface of the sealing element and is clamped into the opening at the front end of the shell body.
[0012] Preferably, the shell body rear side is fixedly provided with an integral rear cover, a wire-stripping stainless steel clamp is installed at the end of the integral rear cover, a cable is inserted into the wire-stripping stainless steel clamp, the cable is electrically connected to the circular circuit, and a wire locking cap is threadedly installed on the outside of the wire-stripping stainless steel clamp.
[0013] Compared with the prior art, the utility model has the advantages that:
[0014] The plastic frame wire is clamped with the shell body, the internal structure of the shell body is limited, the positioning rod installed at the top end of the plastic frame wire limits the circular circuit, the circular circuit is more stable in receiving external signals in cooperation with the shell body, the insertion grooves formed in the lower part of the plastic frame wire cooperate with the positioning seat installed in the plastic frame wire, the six-bead disc and the tripod assembly can be stably placed at the front end of the shell body, the front end of the shell body is locked by the sealing element and the integrated plate cover, the internal structure of the shell body is more stable and firm, the problem that the device cannot be used due to external force during use is avoided, and the overall use safety of the device is greatly improved. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 It is a structural schematic diagram of the utility model;
[0016] Figure 2 It is a sectional view of the overall structure of the utility model;
[0017] Figure 3The utility model discloses a circular circuit mounting structure split schematic view.
[0018] Figure 4 The utility model discloses a plastic wired front end structure schematic view of stand.
[0019] Figure 5 The utility model discloses a plastic wired end structure schematic view of stand.
[0020] Figure 6 The utility model discloses a tripod assembly mounting structure schematic view.
[0021] Figure 7 The utility model discloses a sealing piece mounting structure schematic view.
[0022] Figure 8 The utility model discloses a threading stainless steel clamp whole structure schematic view.
[0023] In the drawing: 1, shell main part, 2, plastic wired stand, 3, clamping groove, 4, storage groove, 5, through -hole, 6, positioning rod, 7, insertion slot, 8, inner groove, 9, positioning seat, 10, limiting groove, 11, plug rod, 12, circular circuit, 13, probe, 14, six pearl disc, 15, tripod assembly, 16, elastic sheet, 17, positioning jack, 18, sealing piece, 19, integral plate cover, 20, whole rear cover, 21, wire locking cap, 22, threading stainless steel clamp, 23, cable. DETAILED DESCRIPTION
[0024] The technical scheme in the embodiments of the utility model will be apparently and completely described in combination with the drawings in the embodiments of the utility model, and obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the person skilled in the art without creative work belong to the range of protection of the utility model.
[0025] The utility model provides: a kind of integrated assembly type tool setting gauge, as shown in Figures 1-8 As shown, shell main part 1 is internally clamped and installed with plastic wired stand 2, circular circuit 12 is installed at the rear side of plastic wired stand 2, inner groove 8 is opened at the front end of plastic wired stand 2, positioning seat 9 is fixedly installed in inner groove 8, six pearl disc 14 is inserted and installed at the front end of plastic wired stand 2, tripod assembly 15 is clamped and installed in six pearl disc 14, tripod assembly 15 is clamped into inner groove 8, and tripod assembly 15 is inserted into the inner insertion of positioning seat 9, integral plate cover 19 is clamped and installed at the opening of shell main part 1, and tripod assembly 15 is penetrated and extended from the center of integral plate cover 19.
[0026] The shell body 1 provides solid protection and support for the entire tool setting gauge, ensuring the stability and safety of the internal structure. The design of the shell body 1 can withstand external forces and vibrations, ensuring the accuracy of the tool setting process.
[0027] The fixed installation of the positioning seat 9 in the inner groove 8, combined with the plug-in installation of the tripod assembly 15, ensures the precise positioning of the tool. This design reduces errors caused by inaccurate positioning, improving the accuracy of tool setting.
[0028] The plug-in installation of the plastic cable 2 and the six-bead disc 14, as well as the clamping design of the tripod assembly 15, makes the assembly and disassembly of the tool setting gauge quick and convenient. This modular design facilitates maintenance and replacement of parts, reducing maintenance costs and time.
[0029] The installation position and design of the circular circuit 12 ensure efficient transmission of power and signals, reducing energy loss and signal interference, improving the working efficiency and reliability of the tool setting gauge.
[0030] The clamping installation of the one-piece cover 19 at the front opening provides protection for the tripod assembly 15, while ensuring the overall aesthetics and compactness. This design also helps prevent dust and impurities from entering the tool setting gauge, protecting internal components.
[0031] The realization of these benefits is due to the careful design of the tool setting gauge structure by the designer, especially the layout and application of the shell body, positioning seat, plastic cable holder, six-bead disc, and tripod assembly. These designs not only improve the efficiency and accuracy of the tool setting process, but also enhance the stability and reliability of the device, enabling it to meet the high-precision tool setting requirements. Through the combination of these design elements, the utility model provides an efficient, accurate, and stable tool setting solution.
[0032] As a preferred, the outer arc surface of the plastic cable holder 2 is provided with a clamping groove 3, and two groups of receiving grooves 4 are provided at the end of the plastic cable holder 2. A group of through holes 5 is provided in each group of receiving grooves 4, and a positioning rod 6 is fixedly installed at the end of the receiving groove 4. A rubber bump is installed inside the shell body 1. The clamping groove 3 on the outer arc surface of the plastic cable holder 2 is fixed after being inserted into the inside of the shell body 1, making the plastic cable holder 2 more stable inside the shell body 1, ensuring the stability of each component in use. The receiving groove 4 at the end of the plastic cable holder 2 and the through hole 5 inside the receiving groove 4 limit the probe 13, allowing one end of the probe 13 to contact the circular circuit 12 and the other end of the probe 13 to contact the six-bead disc 14, ensuring the overall stability of the device in use. The positioning rod 6 installed at the end of the plastic cable holder 2 limits the circular circuit 12, ensuring that the circular circuit 12 does not shift during use, improving the stability of the device in use.
[0033] The clamping groove 3 on the outer arc surface of the plastic frame wire 2 cooperates with the rubber bump inside the shell body 1, providing a stable locking mechanism to ensure that the plastic frame wire 2 is fixed firmly inside the shell body 1 and is not easily moved. This design enhances the stability of the overall structure and ensures that the relative positions of the components remain unchanged during use.
[0034] The design of the receiving groove 4 and the through hole 5 allows the probe 13 to contact the circular circuit 12 at one end and the six-bead disc 14 at the other end, ensuring the precise position and contact of the probe 13 and improving the measurement accuracy and reliability of the tool setting gauge.
[0035] The positioning rod 6 limits the position of the circular circuit 12, preventing displacement of the circuit board due to vibration or external force during use, ensuring the stability of the circuit connection and the accuracy of the signal.
[0036] The design and fixation of the plastic frame wire 2 ensure uniform stress distribution under external force, reducing structural deformation or damage caused by local pressure concentration.
[0037] The stability of the overall structure and the precise fit between components ensure the stability and repeat positioning accuracy of the tool setting gauge under various working conditions, improving the efficiency and reliability of the equipment.
[0038] These benefits are achieved thanks to the further optimization of the tool setting gauge structure by the designer, especially the application of clamping grooves, receiving grooves, through holes and positioning rods. These designs not only improve the stability and functionality of the tool setting gauge, but also enhance the durability and reliability of the equipment, making it meet the high-precision and repeatable tool setting requirements. Through the combination of these design elements, the utility model provides an efficient, accurate and stable tool setting solution.
[0039] Furthermore, the front end of the plastic frame wire 2 is provided with three groups of insertion slots 7, and the insertion slots 7 divide the front end of the plastic frame wire 2 into three equal end faces. The front end of the plastic frame wire 2 is provided with a limiting slot 10, and each end face is fixedly installed with a group of insertion rods 11. The insertion slots 7 on the front end of the plastic frame wire 2 limit the three groups of supporting rods of the tripod assembly 15, so that the tripod assembly 15 can only maintain the corresponding use position when used inside the shell body 1. At the same time, the inner slot 8 on the front end of the plastic frame wire 2 can completely accommodate the tripod assembly 15, further ensuring the stability of the use of the tripod assembly 15.
[0040] Furthermore, a group of probes 13 is inserted into each through hole 5, and two groups of limiting holes are provided on both sides of the circular circuit 12. The positioning rod 6 is inserted into a group of limiting control interiors, and the probes 13 inside the tripod assembly 15 can be connected in series, so that the circular circuit 12 can control the use of the device.
[0041] Remarkably, the six-bead disc 14 has three sets of positioning insertion holes 17 at the end with the same arc, and the insertion rod 11 is inserted into the positioning insertion hole 17. The tripod assembly 15 has three sets of supporting rods inserted into the insertion slot 7. The positioning insertion hole 17 at the end of the six-bead disc 14 cooperates with the insertion rod 11 installed at the front end of the plastic wire 2 to fix the use position of the six-bead disc 14, and to close the opening at the front end of the plastic wire 2, ensuring the stability and safety of the tripod assembly 15.
[0042] Specifically, the six-bead disc 14 has a sealing element 18 installed at the front end, and an integrated plate cover 19 is inserted into the opening at the front end of the housing main body 1 to seal the surface of the sealing element 18. The sealing element 18 and the integrated plate cover 19 ensure the integrity of the device during use, and limit the internal structure to prevent damage caused by external force.
[0043] The design of the insertion slot 7 and the inner slot 8 ensures the stable position of the tripod assembly 15 during use, preventing displacement caused by movement or vibration, thereby ensuring the accuracy and safety of the operation.
[0044] Each set of through holes 5 has a set of probes 13 inserted therein, which enables the probes to be accurately connected to the circular circuit 12, ensuring the accuracy of circuit control and the stability of signal transmission.
[0045] The positioning insertion hole 17 at the end of the six-bead disc 14 cooperates with the insertion rod 11 installed at the front end of the plastic wire 2 to fix the use position of the six-bead disc 14, and to close the opening at the front end of the plastic wire 2, increasing the stability and safety of use.
[0046] The use of the sealing element 18 and the integrated plate cover 19 ensures the integrity of the device during use, prevents interference from the external environment, and limits the internal structure to prevent damage caused by external force.
[0047] These benefits are achieved thanks to the designer's in-depth optimization of the tool setting instrument structure, especially the application of insertion slots, inner slots, through holes, positioning insertion holes, insertion rods, and sealing elements. These designs not only improve the stability and functionality of the tool setting instrument, but also enhance the durability and safety of the equipment, making it meet the high-precision and repetitive tool setting requirements. Through the combination of these design elements, the present utility model provides an efficient, accurate, and stable tool setting solution.
[0048] In addition, the rear side of the shell body 1 is fixedly installed with an integral rear cover 20, a wire-through stainless steel clamp 22 is installed at the end of the integral rear cover 20, a cable 23 is inserted into the wire-through stainless steel clamp 22, the cable 23 is electrically connected to the circular circuit 12, a wire locking cap 21 is threadedly installed outside the wire-through stainless steel clamp 22, the integral rear cover 20 protects the cable 23, and the wire-through stainless steel clamp 22 installed at the end of the integral rear cover 20 can stably clamp the cable 23, so that the cable 23 supplies power to the circular circuit 12, and the threadedly installed wire locking cap 21 can exert pressure on the wire-through stainless steel clamp 22, further locking the use position of the cable 23, avoiding the cable from being detached from the device, and causing safety problems to occur.
[0049] The integral rear cover 20 provides physical protection for the cable 23, preventing the cable from being mechanically damaged or worn inside the device, and ensuring the integrity of the cable and the stability of the electrical connection.
[0050] The design of the wire-through stainless steel clamp 22 can stably clamp the cable 23, preventing the cable from loosening due to vibration or movement during device use, and ensuring reliable connection of the cable with the circular circuit 12.
[0051] The wire locking cap 21 is threadedly installed, can exert pressure on the wire-through stainless steel clamp 22, further locking the use position of the cable 23, avoiding the risk of cable detachment, and ensuring the safety of the device during use.
[0052] The electrical connection design of the cable 23 ensures smooth transmission of power and signals, reduces energy loss and signal interference, and improves the working efficiency and reliability of the tool setting gauge.
[0053] The design and layout of the integral rear cover 20, the wire-through stainless steel clamp 22, and the wire locking cap 21 ensure uniform stress distribution under external force, reducing structural deformation or damage caused by local pressure concentration.
[0054] The realization of these beneficial effects benefits from the careful design of the designer of the integral rear cover on the rear side of the shell body 1 and its related components, especially the application of the integral rear cover, the wire-through stainless steel clamp, and the wire locking cap. These designs not only improve the stability and safety of the cable, but also enhance the durability and reliability of the device, making it meet the high-precision and repetitive tool setting requirements. Through the combination of these design elements, the utility model provides an efficient, accurate, and stable tool setting solution.
[0055] Although embodiments of the utility model have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, replacements, and variations can be made to these embodiments without departing from the principles and spirits of the utility model, and the scope of the utility model is defined by the appended claims and their equivalents.
Claims
1. An integrated tool setting gauge, characterized by: Including the shell body (1), the shell body (1) inside the frame plastic wired (2) is clamped and installed, the frame plastic wired (2) rear side is installed with a circular circuit (12), the frame plastic wired (2) front end is provided with an inner groove (8), the inner groove (8) is fixedly installed with a positioning seat (9), the frame plastic wired (2) front end is inserted and installed with a six bead disc (14), the six bead disc (14) is clamped and installed with a tripod combination (15) inside, the tripod combination (15) is clamped into the inner groove (8), and the tripod combination (15) is inserted into the positioning seat (9) inside and is inserted and installed, the shell body (1) front end opening is clamped and installed with a one-piece plate cover (19), and the tripod combination (15) is penetrated and extends from the center of the one-piece plate cover (19).
2. The one-piece built-up tool setting gauge according to claim 1, characterized in that: The outer arc surface of the frame plastic wired (2) is provided with a clamping groove (3), and the frame plastic wired (2) is provided with two groups of storage grooves (4) at the end. A group of through holes (5) are formed in each group of storage grooves (4) and penetrate the frame plastic wired (2). The positioning rod (6) is fixedly installed at the end of the storage groove (4).
3. The one-piece built-up tool setting gauge according to claim 2, characterized in that: The frame plastic wired (2) is provided with three groups of insertion grooves (7) at the front end, and the insertion grooves (7) divide the front end of the frame plastic wired (2) into three equal end faces. The limiting groove (10) is formed in the front end face of the frame plastic wired (2), and a group of insertion rods (11) are fixedly installed in the middle of each group of end faces.
4. The one-piece built-up tool setting gauge according to claim 3, wherein: A group of probes (13) are inserted into each group of through holes (5), and two groups of limiting holes are formed on both sides of the circular circuit (12). The positioning rod (6) is inserted into a group of limiting control inside.
5. The one-piece built-up tool setting gauge according to claim 4, characterized in that: The six bead disc (14) is provided with three groups of positioning insertion holes (17) at the end, and the insertion rod (11) is inserted into the positioning insertion hole (17) inside. Each group of supporting rods of the tripod combination (15) is inserted into the insertion groove (7) inside.
6. The one-piece built-up tool setting gauge according to claim 5, wherein: The sealing element (18) is attached and installed at the front end of the six bead disc (14), and the one-piece plate cover (19) is clamped into the opening at the front end of the shell body (1) and attached to the surface of the sealing element (18).
7. The one-piece built-up tool setting gauge according to claim 6, characterized in that: The overall rear cover (20) is fixedly installed at the rear side of the shell body (1), the wire-stripping stainless steel clamp (22) is installed at the end of the overall rear cover (20), the cable (23) is inserted into the wire-stripping stainless steel clamp (22), the cable (23) is electrically connected with the circular circuit (12), and the wire-stripping stainless steel clamp (22) is externally threaded and installed with a wire locking cap (21).
Citation Information
Patent Citations
Combined tool setting gauge
CN217596610U