Flaw detection device for fused bricks

By combining the lifting assembly and the clamping assembly, the problem of the electric fused brick flaw detection device needing to adjust its position during detection is solved, the effect of all-round detection is achieved, and the flexibility and efficiency of the device are improved.

CN223413270UActive Publication Date: 2025-10-03ZHENGZHOU DEZHONG CORUNDUM MATERIAL CO LTD
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Patent Information

Application Number
CN202422801412.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-15
Publication Date
2025-10-03
Estimated Expiration
2034-11-15

AI Technical Summary

Technical Problem

When using the existing electric fused brick flaw detection device, it is necessary to adjust the position of the brick body to perform all-round detection, which makes it inconvenient to use.

Method used

A flaw detection device is designed, which includes a lifting component, a clamping component and an adjustment component. Through an adjustable clamping and fixing method, the brick body is suspended in the air for all-round inspection according to the actual size and shape of the fused brick.

Benefits of technology

It realizes all-round flaw detection of fused bricks, enhances the flexibility and practical value of the device, and improves detection efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of quality detection of electrically-fused bricks, in particular to a flaw detection device for electrically-fused bricks, which comprises a lifting component, a clamping component, a fixing component, an adjusting component and a flaw detection component, a lifting assembly is arranged on the upper surface of the base, a first clamping assembly is arranged on one side of the upper surface of the lifting assembly, fixing assemblies are arranged on one side of the first clamping assembly, the number of the fixing assemblies is two, second clamping assemblies are arranged on one sides of the fixing assemblies, an electric smelting brick is arranged between the two second clamping assemblies, and the electric smelting brick is arranged above the lifting assembly. A first adjusting assembly is arranged on the upper surface of the base, a second adjusting assembly is arranged on one side of the first adjusting assembly, and a flaw detection assembly is arranged at one end of the second adjusting assembly; according to the utility model, the electrically-fused brick is clamped and fixed on the device in an adjustable clamping and fixing manner according to the actual size of the electrically-fused brick, and only the two ends of the electrically-fused brick are fixed, so that the electrically-fused brick is suspended, the omnibearing flaw detection on the electrically-fused brick is ensured, and the practical value of the device is enhanced.
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Description

Technical Field

[0001] The utility model relates to the technical field of quality detection of fused bricks, in particular to a flaw detection device for fused bricks. Background Art

[0002] Fused bricks, also known as fused refractory materials, are a type of refractory material made by melting raw materials at high temperatures in an electric arc furnace or resistance furnace, then casting and solidifying them through casting. Due to the high density and low porosity of fused bricks, flaw detection is required during the production of fused bricks.

[0003] At present, the utility model patent with patent number CN208801310U discloses a zirconium corundum electric fused brick quality inspection workbench, which is provided with a supporting circular table, on which a rotating circular table is rotatably installed, a clamping table is fixedly provided on one side of the supporting circular table, and the clamping table is connected to an inclined loading device on the side away from the supporting circular table, and a discharge table is provided at a position corresponding to the clamping table on the supporting circular table, and the discharge table is connected to an inclined feeding device on the side away from the supporting circular table, and clamping tools are equidistantly provided on the edge of the rotating circular table, and the clamping tool includes two supporting bases, and a rotating rod is rotatably installed between the two supporting bases. When in use, after the electric fused brick is placed on the quality inspection table, its bottom surface serves as a supporting surface, which is often not directly accessible for quality inspection, making it inconvenient to use and having poor flexibility.

[0004] Therefore, in view of the fact that it is inconvenient to adjust the detection surface of the existing electric fused brick flaw detection device, a flaw detection device for electric fused bricks can be designed. Through an adjustable clamping and fixing method, the electric fused bricks can be clamped and fixed to the device according to their actual size, so that the electric fused bricks can be placed in the air to ensure all-round flaw detection of the electric fused bricks. Utility Model Content

[0005] In order to overcome the problem that most fused brick flaw detection devices often require the brick body to be placed directly on the inspection table when in use, and the placement of the fused brick needs to be adjusted before the flaw detection operation is carried out at another position, which is inconvenient to use.

[0006] The technical solution of the utility model is: a flaw detection device for electric fused bricks, comprising a base, a lifting assembly, a first clamping assembly, a fixing assembly, a second clamping assembly, a first adjusting assembly, a second adjusting assembly, a flaw detection assembly and an electric fused brick body; a lifting assembly is provided on the upper surface of the base, a first clamping assembly is provided on one side of the upper surface of the lifting assembly, a fixing assembly is provided on one side of the first clamping assembly, two groups of fixing assemblies are provided, a second clamping assembly is provided on one side of the fixing assembly, an electric fused brick body is provided between the two groups of second clamping assemblies, the electric fused brick body is provided above the lifting assembly, a first adjusting assembly is also provided on the upper surface of the base, a second adjusting assembly is provided on one side of the first adjusting assembly, and a flaw detection assembly is provided at one end of the second adjusting assembly.

[0007] Preferably, a lifting component is provided to place the main body of the fusion brick, and after the main body of the fusion brick is adjusted to a specified detection height, the first clamping component is used to adjust the distance between the two sets of fixing components, so that the main body of the fusion brick is clamped and fixed according to the actual length, the second clamping component is fixedly connected through the fixing component, and the second clamping component is used to further clamp and fix the main body of the fusion brick according to the actual thickness, the detection position of the flaw detection component is adjusted by the first adjusting component, and the detection height of the flaw detection component is adjusted by the second adjusting component, and the quality inspection of the main body of the fusion brick is performed through the flaw detection component, so that the fusion brick is suspended and fixed according to its actual size, ensuring the effect of all-round flaw detection of the fusion brick and enhancing the practical value of the device.

[0008] Preferably, the lifting assembly includes a support frame, a first electric telescopic rod, an inspection table and a storage slot; a support frame is provided on the upper surface of the base, and a first electric telescopic rod is also provided on the upper surface of the base, the first electric telescopic rod runs through the middle of the support frame, and an inspection table is provided at one end of the first electric telescopic rod, the inspection table is provided above the support frame, and a storage slot is provided on the upper surface of the support frame, the storage slot and the inspection table are interlocked, and an electric fused brick body is provided above the inspection table; the position of the first clamping assembly is fixed by the support frame, the height of the inspection table is adjusted by extending and retracting the first electric telescopic rod, the electric fused brick body is placed on the inspection table, and is stored in the inspection table through the storage slot.

[0009] Preferably, the first clamping assembly includes a first groove, a bidirectional adjustment screw and a first motor; a first groove is opened on one side of the upper surface of the support frame, a bidirectional adjustment screw is arranged on the inner side of the first groove, a first motor is arranged on the outer side of the support frame, and the output end of the first motor is connected to the bidirectional adjustment screw; the position of the bidirectional adjustment screw is fixed by the first groove, and the bidirectional adjustment screw is driven to rotate by the first motor, and the bidirectional adjustment screw is rotated to adjust the spacing of the fixed components, so as to preliminarily clamp the electric melting brick body according to its actual length.

[0010] Preferably, the fixing assembly includes a support rod, a fixing block and a support plate; a support rod is arranged on the outside of the two-way adjustment screw rod, and two groups of support rods are arranged. A fixing block is arranged at one end of the support rod, and a support plate is arranged on the bottom surface of the fixed block; the fixing block is connected by supporting the support rod, and the position of the second clamping assembly is fixed by the fixing block, and the two ends of the bottom surface of the electric fused brick body are supported by the support plate.

[0011] Preferably, the second clamping assembly includes a second screw rod, a second motor and a clamping plate; a second screw rod is provided on one side of the fixed block, a second motor is provided at one end of the fixed block, the output end of the second motor is connected to the second screw rod, and a clamping plate is provided on the outside of the second screw rod; the second screw rod is driven to rotate by the second motor, and the second screw rod is rotated to drive one end of the clamping plate to position, and the clamping plate and the support plate are used to clamp and fix the electric fusion brick body according to its actual thickness, thereby achieving the effect of stably clamping and fixing the electric fusion brick body.

[0012] Preferably, the first adjusting component includes a third groove, a third screw rod, a third motor and a third connecting block; a third groove is opened on one side of the upper surface of the base, a third screw rod is arranged inside the third groove, a third motor is arranged outside the base, the output end of the third motor is connected to the third screw rod, and a third connecting block is arranged outside the third screw rod; the position of the third screw rod is fixed by the third groove, the third motor is used to drive the third screw rod to rotate, the third screw rod is rotated to move the position of the third connecting block, and the third connecting block is used to connect and fix the second adjusting component.

[0013] Preferably, the second adjustment component includes a fourth electric telescopic rod, a fourth connecting block, a fifth electric telescopic rod and a fifth connecting block; a fourth electric telescopic rod is provided on the upper surface of the third connecting block, a fourth connecting block is provided at one end of the fourth electric telescopic rod, a fifth electric telescopic rod is provided on one side of the fourth connecting block, the fifth electric telescopic rod is perpendicular to the fourth electric telescopic rod, and a fifth connecting block is provided at one end of the fifth electric telescopic rod; the fourth electric telescopic rod is driven to be extended and retracted by the control device, so as to flexibly adjust the detection height of the flaw detection component, the fifth electric telescopic rod is connected and fixed by the fourth connecting block, the fifth electric telescopic rod is driven to be extended and retracted by the control device, so as to flexibly adjust the detection position of the flaw detection component, and the flaw detection component is connected and fixed by the fifth connecting block.

[0014] Preferably, the flaw detection assembly includes a first probe, a first wire, an ultrasonic flaw detector, a second probe and a second wire; a first probe is provided on the upper surface of the fifth connecting block, a first wire is provided on the outside of the first probe, an ultrasonic flaw detector is provided at one end of the first wire, the first probe and the ultrasonic flaw detector are electrically connected to each other, the ultrasonic flaw detector is provided on the upper surface of the base, a second probe is provided on the other side of the fifth connecting block, the second probe is provided on one side of the electric melting brick body, a second wire is provided on the outside of the second probe, the other end of the second wire is connected to the ultrasonic flaw detector, and the second probe and the ultrasonic flaw detector are electrically connected to each other; the outside of the electric melting brick body is scanned and detected by the first probe, the data detected by the first probe is transmitted to the ultrasonic flaw detector by using the first wire, the bottom surface of the electric melting brick body is scanned and detected by the second probe, the data detected by the second probe is transmitted to the ultrasonic flaw detector by using the second wire, and the detection results are analyzed and displayed by the ultrasonic flaw detector.

[0015] Beneficial effects of the utility model:

[0016] 1. Compared with traditional fused brick flaw detection devices, most of them use a test table to place the fused bricks to be tested, resulting in a limited detection surface of the detection probe. It is necessary to adjust the placement of the fused bricks before performing flaw detection operations at another position, which is inconvenient to use. The adjustable clamping method is used to clamp and fix the fused bricks to the device according to their actual size, and only fix the two ends of the fused bricks, so that the fused bricks are placed in the air, ensuring that the fused bricks can be fully tested and the practical value of the device is enhanced.

[0017] 2. When fixing the fused brick body, the fused brick body is placed on the inspection table, the first electric telescopic rod is extended and retracted to adjust the height of the inspection table, the inspection table is stored in the storage groove, and the first motor is used to drive the bidirectional adjustment screw in the first groove to rotate, thereby adjusting the spacing between the fixed blocks on the two sets of support rods, so that the fixed blocks clamp the two sides of the fused brick body, and the supporting plate is used to support the two ends of the bottom surface of the fused brick body. Subsequently, the second motor drives the second screw to rotate, so that the clamping plate and the supporting plate clamp the fused brick body, so that the fused brick body is placed in the air, so as to solve the problem that it is inconvenient to adjust the detection surface of most fused brick flaw detection devices and enhance the flexibility of the device.

[0018] 3. During the inspection operation, the fourth electric telescopic rod is driven to extend and retract by the control device, so as to flexibly adjust the inspection height of the flaw detection component. The fifth electric telescopic rod is connected and fixed by the fourth connecting block. The fifth electric telescopic rod is driven to extend and retract by the control device, so as to flexibly adjust the inspection position of the flaw detection component. The positions of the first probe and the second probe are fixed by the fifth connecting block, so as to flexibly adjust the inspection position of the inspection probe. The position of the third screw rod is fixed by the third groove. The third motor is used to drive the third screw rod to rotate. The rotation of the third screw rod drives the position of the third connecting block to move, so as to flexibly adjust the flaw detection inspection position of the inspection probe. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 Shown is a schematic diagram of the three-dimensional structure of a flaw detection device for fused bricks according to the present invention;

[0020] Figure 2 Shown is a schematic diagram of the three-dimensional structure of the lifting assembly of a flaw detection device for fused bricks of the present invention;

[0021] Figure 3 Shown is a schematic diagram of the three-dimensional structure of a clamping assembly of a flaw detection device for fused bricks according to the present invention;

[0022] Figure 4 Shown is a schematic diagram of the three-dimensional structure of the first adjustment component of a flaw detection device for fused bricks of the present invention;

[0023] Figure 5 Shown is a schematic diagram of the three-dimensional structure of the second adjustment component of an electric fused brick flaw detection device of the present invention.

[0024] Explanation of reference numerals: 1. base; 2. lifting assembly; 3. first clamping assembly; 4. fixing assembly; 5. second clamping assembly; 6. first adjustment assembly; 7. second adjustment assembly; 8. flaw detection assembly; 9. electric fusion brick body; 201. support frame; 202. first electric telescopic rod; 203. inspection table; 204. storage slot; 301. first groove; 302. two-way adjustment screw rod; 303. first motor; 401. support rod; 402. fixing block; 4 03, support plate; 501, second screw rod; 502, second motor; 503, clamping plate; 601, third groove; 602, third screw rod; 603, third motor; 604, third connecting block; 701, fourth electric telescopic rod; 702, fourth connecting block; 703, fifth electric telescopic rod; 704, fifth connecting block; 801, first probe; 802, first wire; 803, ultrasonic flaw detector; 804, second probe; 805, second wire. DETAILED DESCRIPTION

[0025] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0026] See also Figure 1The utility model provides an embodiment: a flaw detection device for an electric fused brick, comprising a base 1, a lifting component 2, a first clamping component 3, a fixing component 4, a second clamping component 5, a first adjusting component 6, a second adjusting component 7, a flaw detection component 8 and an electric fused brick body 9; a lifting component 2 is provided on the upper surface of the base 1, a first clamping component 3 is provided on one side of the upper surface of the lifting component 2, a fixing component 4 is provided on one side of the first clamping component 3, two groups of fixing components 4 are provided, a second clamping component 5 is provided on one side of the fixing component 4, an electric fused brick body 9 is provided between the two groups of second clamping components 5, and the electric fused brick body 9 is provided above the lifting component 2, a first adjusting component 6 is also provided on the upper surface of the base 1, a second adjusting component 7 is provided on one side of the first adjusting component 6, and a flaw detection component 8 is provided at one end of the second adjusting component 7.

[0027] See also Figure 2-Figure 3 In this embodiment, the lifting assembly 2 includes a support frame 201, a first electric telescopic rod 202, a detection platform 203 and a storage groove 204; the support frame 201 is provided on the upper surface of the base 1, and the first electric telescopic rod 202 is also provided on the upper surface of the base 1. The first electric telescopic rod 202 runs through the middle of the support frame 201, and a detection platform 203 is provided at one end of the first electric telescopic rod 202. The detection platform 203 is arranged above the support frame 201, and a storage groove 204 is opened on the upper surface of the support frame 201. The storage groove 204 and the detection platform 203 are interlocked with each other. An electric fused brick body 9 is provided above the detection platform 203. The position of the first clamping assembly 3 is fixed by the support frame 201, and the height of the detection platform 203 is adjusted by telescoping the first electric telescopic rod 202. The fused brick body 9 is placed on the inspection table 203 and is received into the inspection table 203 through the storage groove 204; the first clamping assembly 3 includes a first groove 301, a bidirectional adjustment screw rod 302 and a first motor 303; a first groove 301 is opened on one side of the upper surface of the support frame 201, and a bidirectional adjustment screw rod 302 is arranged inside the first groove 301. A first motor 303 is arranged outside the support frame 201, and the output end of the first motor 303 is connected to the bidirectional adjustment screw rod 302. The position of the bidirectional adjustment screw rod 302 is fixed by the first groove 301, and the bidirectional adjustment screw rod 302 is driven to rotate by the first motor 303. The bidirectional adjustment screw rod 302 is rotated to adjust the spacing of the fixing assembly 4, thereby preliminarily clamping the fused brick body 9 according to its actual length;

[0028] The fixing assembly 4 includes a support rod 401, a fixing block 402 and a supporting plate 403; a support rod 401 is provided on the outside of the two-way adjustment screw 302, and the support rod 401 is provided with two groups. A fixing block 402 is provided at one end of the support rod 401, and a supporting plate 403 is provided on the bottom surface of the fixing block 402. The fixing block 402 is supported and connected by the support rod 401, and the position of the second clamping assembly 5 is fixed by the fixing block 402, and the two ends of the bottom surface of the electric fusion brick body 9 are supported by the supporting plate 403; the second clamping assembly 5 includes a second screw rod 501, a second motor 502 and a splint 503; a second screw rod 501 is provided on one side of the fixed block 402, a second motor 502 is provided at one end of the fixed block 402, the output end of the second motor 502 is connected to the second screw rod 501, and a splint 503 is provided on the outside of the second screw rod 501, and the second motor 502 drives the second screw rod 501 to rotate, and the second screw rod 501 is rotated to drive one end of the splint 503 to position, and the splint 503 and the support plate 403 are used to clamp and fix the electric melting brick body 9 according to its actual thickness, thereby achieving the effect of stably clamping and fixing the electric melting brick body 9.

[0029] See also Figure 4-Figure 5 In this embodiment, the first adjusting component 6 includes a third groove 601, a third screw rod 602, a third motor 603 and a third connecting block 604; a third groove 601 is opened on one side of the upper surface of the base 1, and a third screw rod 602 is arranged inside the third groove 601. A third motor 603 is arranged on the outside of the base 1, and the output end of the third motor 603 is connected to the third screw rod 602. A third connecting block 604 is arranged on the outside of the third screw rod 602. The position of the third screw rod 602 is fixed by the third groove 601, and the third motor 603 is used to drive the third screw rod 602 to rotate. Rotating the third screw rod 602 drives the third connecting block 604 to move the position, and the second adjusting component 7 is connected and fixed by the third connecting block 604; the second adjusting component 7 includes a fourth electric telescopic rod 701, a fourth connecting rod Block 702, a fifth electric telescopic rod 703 and a fifth connecting block 704; a fourth electric telescopic rod 701 is provided on the upper surface of the third connecting block 604, a fourth connecting block 702 is provided at one end of the fourth electric telescopic rod 701, a fifth electric telescopic rod 703 is provided on one side of the fourth connecting block 702, the fifth electric telescopic rod 703 is perpendicular to the fourth electric telescopic rod 701, a fifth connecting block 704 is provided at one end of the fifth electric telescopic rod 703, the fourth electric telescopic rod 701 is driven to be extended and retracted by the control device, thereby flexibly adjusting the detection height of the flaw detection component 8, the fifth electric telescopic rod 703 is connected and fixed by the fourth connecting block 702, the fifth electric telescopic rod 703 is driven to be extended and retracted by the control device, thereby flexibly adjusting the detection position of the flaw detection component 8, and the flaw detection component 8 is connected and fixed by the fifth connecting block 704;

[0030] The flaw detection assembly 8 includes a first probe 801, a first wire 802, an ultrasonic flaw detector 803, a second probe 804 and a second wire 805; the first probe 801 is provided on the upper surface of the fifth connecting block 704, the first wire 802 is provided on the outside of the first probe 801, an ultrasonic flaw detector 803 is provided at one end of the first wire 802, the first probe 801 and the ultrasonic flaw detector 803 are electrically connected to each other, the ultrasonic flaw detector 803 is provided on the upper surface of the base 1, the second probe 804 is provided on the other side of the fifth connecting block 704, the second probe 804 is provided on one side of the electric fusion brick body 9, and the second probe 804 is provided on the other side of the electric fusion brick body 9. 04 is provided with a second wire 805 on the outside, and the other end of the second wire 805 is interconnected with the ultrasonic flaw detector 803, and the second probe 804 is electrically connected to the ultrasonic flaw detector 803. The outside of the electric melting brick body 9 is scanned and detected by the first probe 801, and the data detected by the first probe 801 is transmitted to the ultrasonic flaw detector 803 by using the first wire 802. The bottom surface of the electric melting brick body 9 is scanned and detected by the second probe 804, and the data detected by the second probe 804 is transmitted to the ultrasonic flaw detector 803 by using the second wire 805. The detection results are analyzed and displayed by the ultrasonic flaw detector 803.

[0031] Before the inspection operation, the fused brick body 9 is placed on the inspection table 203. Then, the first electric telescopic rod 202 is extended to move the fused brick body 9 to a specified height. Then, the first motor 303 is used to drive the bidirectional adjustment screw 302 in the first groove 301 to rotate, thereby adjusting the distance between the fixed blocks 402 on the two sets of support rods 401, so that the fixed blocks 402 clamp the two sides of the fused brick body 9. The supporting plate 403 is used to support the two ends of the bottom surface of the fused brick body 9. Then, the second motor 502 drives the second screw 501 to rotate, so that the clamping plate 503 clamps the fused brick body 9. Finally, the first electric telescopic rod 202 is retracted, and the inspection table 203 is stored in the storage slot 204 on the support frame 201.

[0032] During the inspection operation, the fourth electric telescopic rod 701 is extended and retracted to adjust the first probe 801 to the bottom of the electric fusion brick body 9. Then, the fifth electric telescopic rod 703 on the fourth connecting block 702 is controlled to extend and retract, and the first probe 801 on the fifth connecting block 704 is extended into the bottom surface of the electric fusion brick body 9 and moved. At the same time, the third motor 603 is used to drive the third screw rod 602 in the third groove 601 to rotate, thereby driving the position of the third connecting block 604 to move, thereby driving the position of the first probe 801 to move, and performing a comprehensive inspection of the bottom surface of the electric fusion brick body 9, and using the first wire 802 to transmit the inspection data to the ultrasonic flaw detector 803, then, the fifth electric telescopic rod 703 is retracted to make the second probe 804 close to the outside of the electric fusion brick body 9, and the second probe 804 is used to transmit the data detected by the second probe 804 to the ultrasonic flaw detector 803, and finally, the inspection results are displayed by the ultrasonic flaw detector 803.

[0033] Through the above steps, the electric fusion brick body 9 is placed by setting the lifting component 2, and after the electric fusion brick body 9 is adjusted to the specified detection height, the first clamping component 3 is used to adjust the distance between the two groups of fixing components 4, so that the electric fusion brick body 9 is clamped and fixed according to the actual length, and the second clamping component 5 is fixedly connected through the fixing component 4. The second clamping component 5 is used to further clamp and fix the electric fusion brick body 9 according to the actual thickness, and the detection position of the flaw detection component 8 is adjusted by the first adjusting component 6. The detection height of the flaw detection component 8 is adjusted by the second adjusting component 7, and the quality inspection of the electric fusion brick body 9 is performed through the flaw detection component 8.

[0034] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the purpose of the present invention.

Claims

1. A flaw detection device for fused bricks, comprising a base (1); characterized in that: The invention also includes a lifting assembly (2), a first clamping assembly (3), a fixing assembly (4), a second clamping assembly (5), a first adjusting assembly (6), a second adjusting assembly (7), a flaw detection assembly (8) and an electric fusion brick body (9); the upper surface of the base (1) is provided with a lifting assembly (2), one side of the upper surface of the lifting assembly (2) is provided with a first clamping assembly (3), one side of the first clamping assembly (3) is provided with a fixing assembly (4), two groups of fixing assemblies (4) are provided, one side of the fixing assembly (4) is provided with a second clamping assembly (5), an electric fusion brick body (9) is provided between the two groups of second clamping assemblies (5), the electric fusion brick body (9) is provided above the lifting assembly (2), the upper surface of the base (1) is also provided with a first adjusting assembly (6), one side of the first adjusting assembly (6) is provided with a second adjusting assembly (7), and one end of the second adjusting assembly (7) is provided with a flaw detection assembly (8).

2. The flaw detection device for fused bricks according to claim 1, characterized in that: The lifting assembly (2) comprises a support frame (201), a first electric telescopic rod (202), a detection platform (203) and a storage groove (204); the support frame (201) is provided on the upper surface of the base (1); the first electric telescopic rod (202) is also provided on the upper surface of the base (1); the first electric telescopic rod (202) runs through the middle of the support frame (201); one end of the first electric telescopic rod (202) is provided with a detection platform (203); the detection platform (203) is provided above the support frame (201); a storage groove (204) is provided on the upper surface of the support frame (201); the storage groove (204) and the detection platform (203) are interlocked; and an electric fused brick body (9) is provided above the detection platform (203).

3. The flaw detection device for fused bricks according to claim 2, characterized in that: The first clamping assembly (3) comprises a first groove (301), a bidirectional adjustment screw rod (302) and a first motor (303); the first groove (301) is provided on one side of the upper surface of the support frame (201), the bidirectional adjustment screw rod (302) is provided inside the first groove (301), the first motor (303) is provided outside the support frame (201), and the output end of the first motor (303) is connected to the bidirectional adjustment screw rod (302).

4. The flaw detection device for fused bricks according to claim 3, characterized in that: The fixing assembly (4) comprises a support rod (401), a fixing block (402) and a supporting plate (403); a support rod (401) is arranged outside the bidirectional adjustment screw rod (302), two groups of support rods (401) are arranged, one end of the support rod (401) is arranged with a fixing block (402), and the bottom surface of the fixing block (402) is provided with a supporting plate (403).

5. The flaw detection device for fused bricks according to claim 4, characterized in that: The second clamping assembly (5) comprises a second screw rod (501), a second motor (502) and a clamping plate (503); the second screw rod (501) is provided on one side of the fixed block (402), the second motor (502) is provided on one end of the fixed block (402), the output end of the second motor (502) is connected to the second screw rod (501), and the clamping plate (503) is provided on the outside of the second screw rod (501).

6. The flaw detection device for fused bricks according to claim 4, characterized in that: The first adjustment component (6) comprises a third groove (601), a third screw rod (602), a third motor (603) and a third connecting block (604); a third groove (601) is provided on one side of the upper surface of the base (1); a third screw rod (602) is provided inside the third groove (601); a third motor (603) is provided outside the base (1); an output end of the third motor (603) is connected to the third screw rod (602); and a third connecting block (604) is provided outside the third screw rod (602).

7. The flaw detection device for fused bricks according to claim 6, characterized in that: The second adjustment assembly (7) comprises a fourth electric telescopic rod (701), a fourth connecting block (702), a fifth electric telescopic rod (703) and a fifth connecting block (704); the fourth electric telescopic rod (701) is arranged on the upper surface of the third connecting block (604); the fourth connecting block (702) is arranged at one end of the fourth electric telescopic rod (701); the fifth electric telescopic rod (703) is arranged on one side of the fourth connecting block (702); the fifth electric telescopic rod (703) is perpendicular to the fourth electric telescopic rod (701); and the fifth connecting block (704) is arranged at one end of the fifth electric telescopic rod (703).

8. The flaw detection device for fused bricks according to claim 7, characterized in that: The flaw detection assembly (8) includes a first probe (801), a first wire (802), an ultrasonic flaw detector (803), a second probe (804) and a second wire (805); the first probe (801) is arranged on the upper surface of the fifth connecting block (704), the first wire (802) is arranged outside the first probe (801), the ultrasonic flaw detector (803) is arranged at one end of the first wire (802), the first probe (801) and the ultrasonic flaw detector (803) are electrically connected to each other, the ultrasonic flaw detector (803) is arranged on the upper surface of the base (1), the second probe (804) is arranged on the other side of the fifth connecting block (704), the second probe (804) is arranged on one side of the electric fusion brick body (9), the second wire (805) is arranged outside the second probe (804), the other end of the second wire (805) is connected to the ultrasonic flaw detector (803), and the second probe (804) and the ultrasonic flaw detector (803) are electrically connected to each other.

Citation Information

Patent Citations

  • Zirconium corundum electrically fused brick quality testing workstation

    CN208801310U