Hardness detection device for titanium alloy processing

By designing a titanium alloy hardness detection device including clamping components, lifting components and flip components, the problem of being unable to fix titanium alloys of different sizes and heights in the prior art and distinguishing the qualifications of titanium alloys is solved, and more efficient detection and automated distinction is achieved.

CN223037656UActive Publication Date: 2025-06-27SHANGHAI YIFANTAI TECH
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202421645793.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-12
Publication Date
2025-06-27
Estimated Expiration
2034-07-12

AI Technical Summary

Technical Problem

The existing hardness detection device for processing titanium alloys cannot perform fixed inspections on titanium alloys of different sizes and heights, and it is impossible to distinguish whether the collected titanium alloys are qualified, resulting in low detection efficiency and increased labor.

Method used

A hardness detection device including clamping assembly, lifting assembly, transverse notches, vertical notches and flip assembly is designed through which titanium alloys of different lengths and heights can be fixed and detected, and the qualified and unqualified titanium alloys are distinguished by a collection box.

Benefits of technology

Fixed detection of titanium alloys of different sizes and heights is achieved, improving the accuracy and efficiency of the detection, and reducing labor demand through an automated distinction process.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223037656U_ABST
    Figure CN223037656U_ABST
Patent Text Reader

Abstract

The utility model discloses a hardness detection device for titanium alloy processing, which belongs to the technical field of hardness detection devices, and comprises a base, a support frame is arranged on the surface of the upper end of the base, a clamping component is arranged in the upper end of the support frame, transverse notches are formed in two sides of the upper end of the support frame, and the clamping component is arranged in the transverse notches. The transverse notch is in sliding connection with a first T-shaped block; titanium alloys with different lengths can be clamped through the clamping assembly, the titanium alloys with different heights can be detected by the detection body through the lifting assembly, and the requirements of workers are met. A worker can drive the detection body to move transversely or vertically through the transverse notch and the vertical notch, so that different places on titanium alloy can be detected, titanium alloy meeting the hardness requirement and not meeting the hardness requirement can be distinguished and concentrated through the overturning assembly and the collection boxes arranged on the two sides of the base, the working efficiency is improved, and the labor intensity of workers is reduced. And the labor cost is reduced.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model belongs to the technical field of hardness detection devices, and particularly relates to a hardness detection device for titanium alloy processing. Background Technique

[0002] If the hardness of the titanium alloy is unqualified, it will lead to a shortened service life of the titanium alloy parts, easy damage, and economic losses. Therefore, it is necessary to detect the hardness of the titanium alloy during processing.

[0003] In the prior art, there is a hardness detection device for titanium alloy processing with the patent publication number CN218496594U. In the above patent, the titanium alloy parts to be detected are placed on the tray. The first electric push rod is started to adjust the titanium alloy parts to a suitable height. The second electric push rod is started, and the clamping block fixes the titanium alloy parts to prevent the titanium alloy parts from shaking during hardness detection. The walking mechanism and the rotating mechanism can adjust the hardness detection position of the titanium alloy parts. The oil cylinder is started to drive the probe to contact the titanium alloy parts, and multi-position hardness detection is carried out on the titanium alloy parts to improve the accuracy of the hardness detection results of the titanium alloy parts. However, there are still the following deficiencies in actual use: Starting from reality, when the device detects the titanium alloy, it cannot fix and detect titanium alloys of different sizes and different heights, which cannot meet the needs of the staff. At the same time, the device does not distinguish when collecting the detected titanium alloys, and it is necessary for personnel to manually distinguish the qualified titanium alloys and the unqualified titanium alloys for the second time, which increases the labor force and reduces the detection efficiency.

[0004] Therefore, a hardness detection device for titanium alloy processing is needed to solve the problems in the prior art that it is impossible to detect titanium alloys of different sizes and different heights and impossible to distinguish and collect qualified and unqualified titanium alloys. Content of the Utility Model

[0005] The purpose of the utility model is to provide a hardness detection device for titanium alloy processing to solve the problems put forward in the above background technique.

[0006] To achieve the above purpose, the utility model provides the following technical solution: A hardness detection device for titanium alloy processing, including a base, a support frame is arranged on the upper end surface of the base, a clamping assembly is arranged inside the upper end of the support frame, transverse notches are opened on both sides of the upper end of the support frame, a first T-shaped block is slidably connected to the transverse notches, a lifting assembly is arranged on the upper end surface of the first T-shaped block, a flipping assembly is arranged at one end of the support frame, fixing plates are fixedly connected to the peripheral surfaces of the upper end of the base, and collecting boxes are arranged on both sides of the upper end of the base.

[0007] It should be noted that in the solution, one side of the fixed plate is fixedly connected with a connecting rod, the connecting rod is slidably connected with a push plate, cylinders are arranged on both sides of the upper end of the base, the output end of the cylinder is fixedly connected with one side surface of the push plate, and one side surface of the push plate is fixedly connected with one side surface of the collection box.

[0008] Furthermore, it is worth noting that the lifting assembly includes a fixed frame, one end surface of the fixed frame is fixedly connected with one end surface of the first T-shaped block, a first motor is fixedly connected to the upper end surface of the fixed frame, a first screw rod is rotatably connected inside the fixed frame, one end of the first screw rod is fixedly connected with the output end of the first motor, a first sliding rod is fixedly connected inside the fixed frame, the first sliding rod is slidably connected with a lifting plate, and the lifting plate is threadedly connected with the first screw rod.

[0009] Even further, it should be noted that a vertical notch is formed on the surface of the lifting plate, a second T-shaped block is slidably connected to the vertical notch, and a detection body is arranged at the lower end of the second T-shaped block.

[0010] As a preferred embodiment, a rotating rod is rotatably connected inside the support frame, the clamping assembly includes a support table, one end surface of the support table is fixedly connected with one end surface of the rotating rod, first notches are formed on both sides of the upper end surface of the support table, and clamping plates are slidably connected to both ends of the first notches.

[0011] As a preferred embodiment, a second motor is fixedly connected to one end surface of the support table, a second sliding rod is fixedly connected to the inner side of the bottom of the support table, a bidirectional screw rod is rotatably connected to the inner side of the bottom of the support table, one end surface of the bidirectional screw rod is fixedly connected with the output end of the second motor, the bidirectional screw rod is threadedly connected with the lower end of the clamping plate, and the lower end of the clamping plate is slidably connected with the second sliding rod.

[0012] As a preferred embodiment, the flipping assembly includes a gear and an installation groove, one side surface of the gear is fixedly connected with the extended part of the rotating rod, the installation groove is fixedly connected to one end surface of the support frame, a third motor is fixedly connected to one side surface of the installation groove, a third sliding rod is fixedly connected inside the installation groove, a second screw rod is rotatably connected inside the installation groove, one end surface of the second screw rod is fixedly connected with the output end of the third motor, the second screw rod is threadedly connected with a rack, the rack is slidably connected with the third sliding rod, and the rack is meshed with the gear.

[0013] Compared with the prior art, a hardness detection device for titanium alloy processing provided by the present utility model has at least the following beneficial effects:

[0014] (1) The clamping component can clamp titanium alloys of different lengths, and the lifting component can enable the detection body to detect titanium alloys at different heights, meeting the needs of the staff.

[0015] (2) Through the horizontal notch and the vertical notch, the staff can drive the detection body to move horizontally or vertically, so that different parts of the titanium alloy can be detected. By means of the flipping component and the collection boxes arranged on both sides of the base, the titanium alloys that meet the hardness requirements and those that do not meet the hardness requirements can be distinguished and concentrated, improving the work efficiency and reducing the labor cost. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is a front structural schematic diagram of the present utility model;

[0017] Figure 2 is a top structural schematic diagram of the present utility model;

[0018] Figure 3 is a structural schematic diagram of the flipping component of the present utility model;

[0019] Figure 4 is a bottom structural schematic diagram of the support platform of the present utility model.

[0020] In the figure: 100, base; 101, fixing plate; 102, connecting rod; 103, push plate; 104, cylinder; 105, collection box; 106, support frame; 107, horizontal notch; 108, first T-shaped block; 109, rotating rod; 200, lifting component; 201, fixing frame; 202, first motor; 203, first screw rod; 204, first sliding rod; 205, lifting plate; 206, vertical notch; 207, second T-shaped block; 208, detection body; 300, clamping component; 301, support platform; 302, first notch; 303, clamping plate; 304, second motor; 305, second sliding rod; 306, bidirectional screw rod; 400, flipping component; 401, gear; 402, installation groove; 403, third motor; 404, third sliding rod; 405, second screw rod; 406, rack. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0021] The following further describes the present utility model in conjunction with embodiments.

[0022] Please refer to Figures 1-4, the utility model provides a hardness detection device for titanium alloy processing, including: a base 100, a support frame 106 is arranged on the upper surface of the base 100, a clamping assembly 300 is arranged inside the upper end of the support frame 106, transverse notches 107 are opened on both sides of the upper end of the support frame 106, a first T-shaped block 108 is slidably connected to the transverse notches 107, a lifting assembly 200 is arranged on the upper surface of the first T-shaped block 108, a flipping assembly 400 is arranged at one end of the support frame 106, fixing plates 101 are fixedly connected to the peripheral surfaces of the upper end of the base 100, and collecting boxes 105 are arranged on both sides of the upper end of the base 100. The two collecting boxes 105 are driven to move by a cylinder 104, so as to separately collect titanium alloys that meet the hardness requirements and those that do not meet the hardness requirements.

[0023] One side of the fixing plate 101 is fixedly connected with a connecting rod 102, a push plate 103 is slidably connected to the connecting rod 102, cylinders 104 are arranged on both sides of the upper end of the base 100, the output end of the cylinder 104 is fixedly connected with one side surface of the push plate 103, and one side surface of the push plate 103 is fixedly connected with one side surface of the collecting box 105. The staff can move the first T-shaped block 108 to drive the fixed frame 201 to move horizontally along the transverse notch 107.

[0024] The lifting assembly 200 includes a fixed frame 201, one end surface of the fixed frame 201 is fixedly connected with one end surface of the first T-shaped block 108, a first motor 202 is fixedly connected to the upper surface of the fixed frame 201, a first screw rod 203 is rotatably connected inside the fixed frame 201, one end of the first screw rod 203 is fixedly connected with the output end of the first motor 202, a first sliding rod 204 is fixedly connected inside the fixed frame 201, a lifting plate 205 is slidably connected to the first sliding rod 204, and the lifting plate 205 is threadedly connected with the first screw rod 203. Turn on the switch of the first motor 202, and drive the first screw rod 203 to rotate through the output end of the first motor 202, so as to drive the lifting plate 205 to slide on the first sliding rod 204.

[0025] Vertical notches 206 are opened on the surface of the lifting plate 205, a second T-shaped block 207 is slidably connected to the vertical notches 206, and a detection body 208 is arranged at the lower end of the second T-shaped block 207. The staff can move the second T-shaped block 207 to make the detection body 208 move vertically on the vertical notch 206.

[0026] A rotating rod 109 is rotatably connected inside the support frame 106. The clamping assembly 300 includes a support platform 301. One end surface of the support platform 301 is fixedly connected to one end surface of the rotating rod 109. First notches 302 are formed on both upper side surfaces of the support platform 301, and clamping plates 303 are slidably connected to both ends of the first notches 302.

[0027] One end surface of the support platform 301 is fixedly connected to a second motor 304. A second sliding rod 305 is fixedly connected to the inner bottom of the support platform 301. A bidirectional screw 306 is rotatably connected to the inner bottom of the support platform 301. One end surface of the bidirectional screw 306 is fixedly connected to the output end of the second motor 304. The bidirectional screw 306 is threadedly connected to the lower ends of the clamping plates 303, and the lower ends of the clamping plates 303 are slidably connected to the second sliding rod 305. When the switch of the second motor 304 is turned on, the output end of the second motor 304 drives the bidirectional screw 306 to rotate, thereby driving the clamping plates 303 to approach each other on the second sliding rod 305.

[0028] The flipping assembly 400 includes a gear 401 and an installation groove 402. One side surface of the gear 401 is fixedly connected to the extended portion of the rotating rod 109. The installation groove 402 is fixedly connected to one end surface of the support frame 106. A third motor 403 is fixedly connected to one side surface of the installation groove 402. A third sliding rod 404 is fixedly connected to the inside of the installation groove 402. A second screw 405 is rotatably connected to the inside of the installation groove 402. One end surface of the second screw 405 is fixedly connected to the output end of the third motor 403. The second screw 405 is threadedly connected to a rack 406. The rack 406 is slidably connected to the third sliding rod 404, and the rack 406 meshes with the gear 401. When the switch of the third motor 403 is turned on, the output end of the third motor 403 drives the second screw 405 to rotate, thereby driving the rack 406 to move on the third sliding rod 404. The movement of the rack 406 drives the gear 401 to rotate. The gear 401 drives the rotating rod 109 to rotate, and the rotating rod 109 drives the support platform 301 to flip.

[0029] According to the above working process, it can be known that: the staff places the titanium alloy to be tested for hardness on the support table 301, drives the bidirectional screw 306 to rotate through the second motor 304, and the bidirectional screw 306 drives the clamping plates 303 to approach each other on the second sliding rods 305, thereby fixing the titanium alloy. Subsequently, the switch of the first motor 202 is turned on, and the output end of the first motor 202 drives the first screw 203 to rotate, driving the lifting plate 205 to move on the first sliding rod 204, so that the detection body 208 approaches the titanium alloy for detection. Through the horizontal notch 107 and the vertical notch 206, the staff can move the detection body 208 horizontally or vertically, so as to more comprehensively detect the hardness of the titanium alloy. After the detection is completed, the output end of the third motor 403 drives the second screw 405 to rotate, driving the rack 406 to move on the third sliding rod 404, thereby driving the gear 401 to rotate. The gear 401 drives the rotating rod 109 to rotate, and the rotating rod 109 drives the support table 301 to turn over, releasing the fixation of the titanium alloy, so that it falls into the collection box 105 for collection. The collection box 105 can be moved by the air cylinder 104, so as to distinguish and collect the titanium alloys that meet the hardness and those that do not meet the hardness, meeting the needs of the staff, improving the detection efficiency, and reducing the labor force.

[0030] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.

Claims

1. A hardness testing device for titanium alloy processing, comprising a base (100), characterized in that: A support frame (106) is provided on the upper end surface of the base (100), a clamping assembly (300) is provided inside the upper end of the support frame (106), transverse slots (107) are provided on both sides of the upper end of the support frame (106), a first T-shaped block (108) is slidably connected to the transverse slot (107), a lifting assembly (200) is provided on the upper end surface of the first T-shaped block (108), a flip assembly (400) is provided at one end of the support frame (106), a fixing plate (101) is fixedly connected to the surrounding surfaces of the upper end of the base (100), and a collection box (105) is provided on both sides of the upper end of the base (100).

2. A hardness testing device for titanium alloy processing according to claim 1, characterized in that: A connecting rod (102) is fixedly connected to one side of the fixed plate (101), and a push plate (103) is slidably connected to the connecting rod (102). Cylinders (104) are provided on both sides of the upper end of the base (100), and an output end of the cylinder (104) is fixedly connected to a side surface of the push plate (103), and a side surface of the push plate (103) is fixedly connected to a side surface of the collection box (105).

3. A hardness testing device for titanium alloy processing according to claim 2, characterized in that: The lifting assembly (200) comprises a fixed frame (201), one end surface of the fixed frame (201) is fixedly connected to one end surface of the first T-shaped block (108), the upper end surface of the fixed frame (201) is fixedly connected to a first motor (202), the interior of the fixed frame (201) is rotatably connected to a first screw rod (203), one end of the first screw rod (203) is fixedly connected to an output end of the first motor (202), the interior of the fixed frame (201) is fixedly connected to a first sliding rod (204), the first sliding rod (204) is slidably connected to a lifting plate (205), and the lifting plate (205) is threadedly connected to the first screw rod (203).

4. A hardness testing device for titanium alloy processing according to claim 3, characterized in that: A vertical slot (206) is provided on the surface of the lifting plate (205), and a second T-shaped block (207) is slidably connected to the vertical slot (206), and a detection body (208) is provided at the lower end of the second T-shaped block (207).

5. A hardness testing device for titanium alloy processing according to claim 4, characterized in that: The support frame (106) is internally rotatably connected to a rotating rod (109), and the clamping assembly (300) includes a support platform (301), one end surface of the support platform (301) is fixedly connected to one end surface of the rotating rod (109), and first notches (302) are provided on both side surfaces of the upper end of the support platform (301), and clamping plates (303) are slidably connected to the two ends of the first notch (302).

6. A hardness testing device for titanium alloy processing according to claim 5, characterized in that: A second motor (304) is fixedly connected to one end surface of the support platform (301), a second slide bar (305) is fixedly connected to the inner side of the bottom of the support platform (301), a bidirectional screw rod (306) is rotatably connected to the inner side of the bottom of the support platform (301), one end surface of the bidirectional screw rod (306) is fixedly connected to the output end of the second motor (304), the bidirectional screw rod (306) is threadedly connected to the lower end of the clamping plate (303), and the lower end of the clamping plate (303) is slidably connected to the second slide bar (305).

7. A hardness testing device for titanium alloy processing according to claim 6, characterized in that: The flip assembly (400) comprises a gear (401) and a mounting groove (402), one side surface of the gear (401) is fixedly connected to the protruding portion of the rotating rod (109), the mounting groove (402) is fixedly connected to one end surface of the supporting frame (106), one side surface of the mounting groove (402) is fixedly connected to a third motor (403), the interior of the mounting groove (402) is fixedly connected to a third sliding rod (404), the interior of the mounting groove (402) is rotatably connected to a second screw rod (405), one end surface of the second screw rod (405) is fixedly connected to an output end of the third motor (403), the second screw rod (405) is threadedly connected to a rack (406), the rack (406) is slidably connected to the third sliding rod (404), and the rack (406) is meshed with the gear (401).

Citation Information

Patent Citations

  • Hardness detection device for titanium alloy processing

    CN218496594U