Titanium sponge particle size distribution automatic detection device

By designing an automatic detection device for sponge titanium particle size distribution, the combination of dry vibrator and standard screen can realize automatic screening and weighing of sponge titanium, which solves the problem of time-consuming, labor-intensive and insufficient accuracy in the prior art, and improves the accuracy and fairness of screening.

CN222952164UActive Publication Date: 2025-06-06CHAOYANG JINDA TITANIUM IND CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202421630213.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-11
Publication Date
2025-06-06
Estimated Expiration
2034-07-11

AI Technical Summary

Technical Problem

Existing sponge titanium manufacturers rely on manual operations in particle size screening, which leads to time-consuming and laborious operation and has an impact on accuracy.

Method used

An automatic detection device for sponge titanium particle size distribution is designed, including a base plate, a dry vibrator and a standard screen. Through the combination of a dry vibrator and a standard screen, automatic screening and weighing of sponge titanium is realized.

Benefits of technology

The device reduces human intervention through automated processes, improves the accuracy and fairness of particle size screening, and is simple in structure and low in cost, which is suitable for widespread promotion.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222952164U_ABST
    Figure CN222952164U_ABST
Patent Text Reader

Abstract

The utility model discloses a titanium sponge particle size distribution automatic detection device, which comprises a bottom plate, a dry-type vibration machine and standard sieves, the dry-type vibration machine is fixed on the upper end face of the bottom plate, the standard sieves are placed on the dry-type vibration machine, the standard sieve on the uppermost side is contacted with a pressing plate, a vertical plate is vertically fixed on the left side of the bottom plate, and the vertical plate is fixed on the right side of the bottom plate. Supporting plates are fixed to the sides, close to the dry type vibration machine, of the vertical plates at equal intervals, electronic scales are fixed to the supporting plates, and collecting boxes are installed on the electronic scales. According to the automatic detection device for the particle size distribution of the sponge titanium, the transformed standard sieve is mounted above the dry type vibration machine, the sponge titanium with various particle sizes can automatically flow out conveniently by pulling out the baffle, and the sponge titanium with different particle sizes can be automatically weighed, so that human intervention is reduced, and the accuracy and fairness of particle size screening are improved; and the device is simple in overall structure, has the characteristics of low manufacturing cost and simplicity in operation, and is suitable for wide popularization.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of titanium sponge production, in particular to an automatic detection device for titanium sponge particle size distribution. Background Art

[0002] It is known that domestic and foreign titanium sponge manufacturers are paying more and more attention to the particle size distribution of the whole batch of titanium sponge. Currently, titanium sponge manufacturers mostly use manual particle size screening or vibrating screen for screening, and weigh each item after screening. The overall operation is time-consuming and labor-intensive, and during the operation, too much human intervention has a certain impact on the accuracy of particle size screening. Therefore, in view of the above problems, an automatic detection device for titanium sponge particle size distribution is designed to better meet the actual use needs. Utility Model Content

[0003] The utility model aims to provide an automatic detection device for particle size distribution of titanium sponge to solve the problems raised in the above background technology.

[0004] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: an automatic detection device for the particle size distribution of sponge titanium, comprising a base plate, a dry vibrator and a standard sieve, wherein a dry vibrator is fixed to the upper surface of the base plate, a standard sieve is placed on the dry vibrator, and the uppermost standard sieve is in contact with a pressing plate, a vertical plate is vertically fixed to the left side of the base plate, a support plate is fixed at equal intervals on the side of the vertical plate close to the dry vibrator, an electronic scale is fixed on the support plate, and a collection box is installed on the electronic scale.

[0005] Preferably, a threaded rod is vertically fixed to the upper end surface of the dry vibrator, and the threaded rod is symmetrically distributed front to back about the center line of the dry vibrator. Through the action of the threaded rod, a basic guarantee can be provided for the positioning, installation and guidance of the standard screen.

[0006] Preferably, ear plates are fixed symmetrically on the front and back of the standard sieve, and the ear plates are slidably connected to the threaded rods. A discharge port made of iron material is arranged on the left side of the standard sieve, and a guide trough fixed on the standard sieve is arranged on the side of the discharge port. The sliding connection between the ear plates and the threaded rods can facilitate the installation of the standard sieve, and the discharge port and the guide trough can facilitate the outflow of the screened titanium sponge.

[0007] Preferably, the standard sieves can be nested and stacked for assembly, and the mesh size of the standard sieves gradually decreases from top to bottom on the dry vibrating machine, and there are no mesh holes on the bottom surface of the lowest standard sieve. By limiting the hole diameter of the bottom surface of the standard sieve, a basic guarantee can be provided for the screening of sponge titanium particles.

[0008] Preferably, a baffle is slidably connected to the discharge port, and the baffle cooperates with the discharge port to achieve a shielding effect. Through the effect of the baffle, the sponge titanium particles can be shielded and released, thereby ensuring the normal operation of the device.

[0009] Preferably, a pull plate is fixed on the baffle, and magnets are symmetrically fixed on the baffle up and down, and a magnetic attraction structure is formed between the magnet and the discharge port. Through the action of the pull plate, the baffle can be easily pulled for disassembly, and the magnetic attraction between the magnet and the discharge port can ensure the stability of the connection between the baffle and the discharge port.

[0010] Preferably, the pressure plate and the threaded rod are slidably connected, and the pressure plate and the threaded rod can be locked by a locking nut. The locking nut can be used to lock the pressure plate, thereby achieving the compression and positioning of multiple standard screens and ensuring the stability of the standard screen fixation.

[0011] Preferably, the electronic scale and the collection box are fixed by a detachable structure, and the collection box and the material guide trough are distributed in a one-to-one correspondence, and the collection box is arranged at the lower side of the material guide trough. At the same time, the collection box is made of stainless steel. The detachable structure between the electronic scale and the collection box can facilitate the collection of the weighed sponge titanium.

[0012] Compared with the prior art, the beneficial effects of the utility model are as follows: the automatic detection device for titanium sponge particle size distribution, by installing a modified standard sieve above a dry vibrator, can facilitate the automatic outflow of titanium sponges of various particle sizes by pulling out the baffle, and automatically weigh titanium sponges of different particle sizes, thereby reducing human intervention and improving the accuracy and fairness of particle size screening; the overall structure of the device is simple, with the characteristics of low manufacturing cost and simple operation, and is suitable for wide promotion. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 This is a schematic diagram of the overall three-dimensional structure of the device of the utility model;

[0014] Figure 2 For this utility model Figure 1 The enlarged structural diagram at A in the middle;

[0015] Figure 3 This is a schematic diagram of the three-dimensional structure of the standard screen and baffle of the utility model;

[0016] Figure 4 It is a schematic diagram of the vertical plate and the supporting plate of the utility model when viewed from above.

[0017] In the figure: 1, bottom plate; 2, dry vibrator; 201, threaded rod; 3, standard screen; 301, ear plate; 302, discharge port; 303, guide chute; 4, baffle; 401, pull plate; 402, magnet; 5, pressure plate; 501, locking nut; 6, vertical plate; 7, support plate; 8, electronic scale; 9, collection box. DETAILED DESCRIPTION

[0018] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0019] See also Figure 1-Figure 4 The utility model provides a technical solution: an automatic detection device for particle size distribution of sponge titanium, comprising a bottom plate 1, a dry vibrator 2 and a standard sieve 3, the dry vibrator 2 is fixed on the upper end surface of the bottom plate 1, the standard sieve 3 is placed on the dry vibrator 2, and the uppermost standard sieve 3 is in contact with a pressing plate 5, a vertical plate 6 is vertically fixed on the left side of the bottom plate 1, a support plate 7 is fixed at equal intervals on the side of the vertical plate 6 close to the dry vibrator 2, an electronic scale 8 is fixed on the support plate 7, and a collecting box 9 is installed on the electronic scale 8.

[0020] A threaded rod 201 is vertically fixed to the upper end surface of the dry vibrator 2, and the threaded rod 201 is symmetrically distributed front and back about the center line of the dry vibrator 2; the standard screens 3 can be nested and stacked for assembly, and the mesh size of the standard screens 3 gradually decreases from top to bottom on the dry vibrator 2, and there is no mesh on the bottom surface of the lowest standard screen 3; the pressing plate 5 and the threaded rod 201 are slidably connected, and the pressing plate 5 and the threaded rod 201 can be locked by a locking nut 501;

[0021] When using the titanium sponge particle size distribution automatic detection device, if Figure 1-Figure 4 As shown, multiple standard screens 3 are installed on the dry vibrating machine 2. The sliding guide effect between the ear plate 301 and the threaded rod 201 can facilitate the positioning of the standard screen 3. The mesh holes of the multiple standard screens 3 gradually decrease from top to bottom, and the bottom surface of the lowest standard screen 3 has no mesh holes. The sliding effect between the pressing plate 5 and the threaded rod 201 can realize the installation of the pressing plate 5, so that the pressing plate 5 contacts the uppermost standard screen 3. The threaded connection effect between the locking nut 501 and the threaded rod 201 can realize the compression and locking of the pressing plate 5 and the standard screen 3, thereby ensuring the stability of the standard screen 3 after installation.

[0022] The standard sieve 3 is symmetrically fixed with ear plates 301 in the front and rear, and the ear plates 301 are slidably connected to the threaded rod 201. A discharge port 302 made of iron material is arranged on the left side of the standard sieve 3, and a guide trough 303 fixed to the standard sieve 3 is arranged on the side of the discharge port 302; a baffle 4 is slidably connected to the discharge port 302, and the baffle 4 cooperates with the discharge port 302 to achieve a shielding effect; a pull plate 401 is also fixed to the baffle 4, and a magnet 402 is symmetrically fixed to the baffle 4 up and down, and a magnetic attraction structure is formed between the magnet 402 and the discharge port 302; the electronic scale 8 and the collection box 9 are fixed by a detachable structure, and the collection box 9 and the guide trough 303 are distributed one by one, and the collection box 9 is arranged on the lower side of the guide trough 303, and the material of the collection box 9 is white steel;

[0023] After the device is assembled, when screening titanium sponge, Figure 1-Figure 4 As shown, the sponge titanium particles to be screened are poured into the uppermost standard sieve 3, and the dry vibrator 2 is started, the frequency is adjusted to 50HZ, and the vibration is not less than 5 minutes. At this time, the magnet 402 is adsorbed with the discharge port 302, so that the baffle 4 blocks the discharge port 302 to prevent the sponge titanium from flowing out during the vibration screening process. After the vibration screening is completed, the baffle 4 is subjected to force by pulling the pull plate 401. When the force applied to the baffle 4 is greater than the magnetic attraction force between the magnet 402 and the discharge port 302, the baffle 4 can be disassembled. At this time, the dry vibrator 2 can be started to guide the sponge titanium remaining in each layer of the standard sieve 3 outward through the discharge port 302 and the guide trough 303. The guided sponge titanium enters the collection box 9 and is collected. The sponge titanium collected in the collection box 9 can be weighed in conjunction with the electronic scale 8 to determine the proportion of sponge titanium of different particle sizes, thereby realizing the sponge titanium particle size distribution detection function. This is the working principle of the automatic detection device for sponge titanium particle size distribution.

[0024] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An automatic detection device for particle size distribution of titanium sponge, comprising a bottom plate (1), a dry vibrator (2) and a standard sieve (3), characterized in that: A dry vibrator (2) is fixed to the upper end surface of the bottom plate (1), a standard screen (3) is placed on the dry vibrator (2), and the uppermost standard screen (3) is in contact with a pressing plate (5), a vertical plate (6) is vertically fixed to the left side of the bottom plate (1), a support plate (7) is fixed at equal intervals on the side of the vertical plate (6) close to the dry vibrator (2), an electronic scale (8) is fixed on the support plate (7), and a collection box (9) is installed on the electronic scale (8).

2. The automatic detection device for titanium sponge particle size distribution according to claim 1, characterized in that: A threaded rod (201) is vertically fixed to the upper end surface of the dry vibrator (2), and the threaded rod (201) is symmetrically distributed frontward and rearward about the center line of the dry vibrator (2).

3. The automatic detection device for titanium sponge particle size distribution according to claim 2, characterized in that: The standard screen (3) is symmetrically fixed with ear plates (301) at the front and rear ends, and the ear plates (301) are slidably connected to the threaded rod (201). The standard screen (3) is provided with a discharge port (302) made of an iron material on the left side, and a material guide trough (303) fixed to the standard screen (3) is provided on the side of the discharge port (302).

4. The automatic detection device for titanium sponge particle size distribution according to claim 1, characterized in that: The standard screens (3) can be nested and stacked for assembly, and the mesh openings of the standard screens (3) gradually decrease from top to bottom on the dry vibrating machine (2), and the bottom surface of the lowest standard screen (3) has no mesh openings.

5. The automatic detection device for particle size distribution of titanium sponge according to claim 3 is characterized in that: A baffle plate (4) is slidably connected to the discharge port (302), and the baffle plate (4) cooperates with the discharge port (302) to achieve a shielding effect.

6. The automatic detection device for particle size distribution of titanium sponge according to claim 5, characterized in that: A pull plate (401) is also fixed on the baffle (4), and magnets (402) are also fixed symmetrically up and down on the baffle (4), and a magnetic attraction structure is formed between the magnets (402) and the discharge port (302).

7. The automatic detection device for titanium sponge particle size distribution according to claim 1, characterized in that: The pressing plate (5) and the threaded rod (201) are slidably connected, and the pressing plate (5) and the threaded rod (201) can be locked via a locking nut (501).

8. The automatic detection device for titanium sponge particle size distribution according to claim 1, characterized in that: The electronic scale (8) and the collection box (9) are fixed via a detachable structure, and the collection box (9) and the material guide trough (303) are distributed in a one-to-one correspondence, and the collection box (9) is arranged at the lower side of the material guide trough (303), and the material of the collection box (9) is white steel.