Discharging structure of pipe nondestructive testing equipment

By designing the unloading structure of the pipe non-destructive testing equipment, and utilizing the fixed frame, conveying rollers, and collection device, the automatic classification of qualified and unqualified pipes is realized, solving the problem of low accuracy of manual classification and improving the accuracy and ease of operation of post-test classification.

CN223560646UActive Publication Date: 2025-11-18CANGXIN NONDESTRUCTIVE TESTING EQUIP SUZHOU CO LTD
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Patent Information

Application Number
CN202423324221.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2025-11-18
Estimated Expiration
2034-12-31

AI Technical Summary

Technical Problem

In existing technologies, the accuracy of manual classification after steel pipe inspection is low, and qualified and unqualified pipes are easily mixed up.

Method used

Design a material feeding structure for a non-destructive testing device for pipes. The device uses a fixed frame, conveying rollers, a transfer mechanism, and a collection device. By adjusting the mechanism and switching block, qualified and unqualified pipes are collected into different collection areas, reducing errors caused by manual sorting.

Benefits of technology

It improved the accuracy of post-inspection classification, reduced pipe damage from impacts, and simplified subsequent operations.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a discharging structure of pipe nondestructive testing equipment, the discharging structure of the pipe nondestructive testing equipment comprises a fixing frame, a first supporting block, a conveying roller and a transfer mechanism, the first supporting block is arranged on the fixing frame, and the conveying roller is rotatably arranged on the first supporting block; the transfer mechanism is arranged on the fixing frame; the device further comprises a collecting device, the collecting device comprises a collecting frame, a second supporting block, an entering block, a switching block and an adjusting mechanism, the collecting frame is arranged on one side of the fixing frame, the second supporting block is arranged on the collecting frame, and the second supporting block divides the collecting frame into two collecting areas. The multiple inlet blocks are arranged at the feeding end of the collecting frame and correspond to one collecting area. The number of the switching blocks is multiple, the multiple switching blocks are arranged on the second supporting block through the adjusting mechanism, and the pipes on the entering block can enter the multiple switching blocks. The method and the device have the effect of improving the classification accuracy after detection.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of blanking structure, and in particular to a blanking structure of pipe nondestructive testing equipment. BACKGROUND

[0002] Nondestructive testing refers to the method of checking and testing the structure, state, type, quantity, shape, nature, position, size and distribution of the internal and surface of the test piece by means of equipment and materials on the premise of not damaging the internal of the checking mechanical material and not damaging the internal organization of the detected object, and utilizing the changes of heat, sound, light, electricity, magnetism and other reactions caused by the structure defects of the tested workpiece.

[0003] In the prior art, after the nondestructive testing of cylindrical metal materials such as steel pipes, the tested pipes are often manually carried, and the tested pipes need to be classified according to the testing quality during manual carrying.

[0004] However, no mark is formed on the pipe after testing, and the manual classification is prone to error, so that the unqualified pipes are mixed in the qualified pipes, and therefore the accuracy of manual classification and collection is relatively low. CONTENT OF THE INVENTION

[0005] In order to improve the accuracy of classification after testing, the present application provides a blanking structure of pipe nondestructive testing equipment.

[0006] The blanking structure of pipe nondestructive testing equipment provided by the present application adopts the following technical scheme:

[0007] A blanking structure of pipe nondestructive testing equipment, comprising a fixing frame, a first supporting block, a conveying roller and a transfer mechanism, the first supporting block is arranged on the fixing frame, and the conveying roller is rotatably arranged on the first supporting block; the transfer mechanism is arranged on the fixing frame; further comprising a collecting device, the collecting device comprises a collecting frame, a second supporting block, an entering block, a switching block and an adjusting mechanism, the collecting frame is arranged on one side of the fixing frame, the second supporting block is arranged on the collecting frame, and the second supporting block divides the collecting frame into two collecting areas; a plurality of entering blocks are arranged, and the plurality of entering blocks are arranged at the feeding end of the collecting frame and correspond to one of the collecting areas; a plurality of switching blocks are arranged, and the plurality of switching blocks are arranged on the second supporting block through the adjusting mechanism, and the pipes on the entering blocks can enter the plurality of switching blocks.

[0008] Through the above technical scheme, the pipe material after detection will enter the conveying roller of the fixing frame; when the pipe material is qualified, the transfer mechanism transfers the pipe material on the conveying roller into the entering block, and then rolls along the entering block to the switching block, and then enters one of the collecting areas along the switching block; when the pipe material is unqualified, the adjusting mechanism is started, the adjusting mechanism drives the switching block to move, so that the switching block rotates, so that the pipe material transferred into the entering block will not enter the switching block and directly enter the other collecting area; therefore, the collecting device arranged can collect the qualified and unqualified pipe materials into different collecting areas, reduces manual classification, and thus improves the accuracy of classification after detection.

[0009] Optionally, the adjusting mechanism comprises an adjusting shaft, an adjusting block and a first rotating assembly, the adjusting shaft is rotationally arranged on the second supporting block; the adjusting block is arranged on the adjusting shaft and connected with the switching block; and the first rotating assembly is arranged on the second supporting block and connected with the adjusting shaft.

[0010] Through the above technical scheme, the first rotating assembly is started, the first rotating assembly drives the adjusting shaft to rotate, and the adjusting block on the adjusting shaft drives the switching block to move.

[0011] Optionally, the first rotating assembly comprises an adjusting cylinder, a first driving block and a second driving block, the cylinder body of the adjusting cylinder is hingedly connected to the second supporting block; the first driving block is arranged on the piston rod of the adjusting cylinder; and one end of the second driving block is rotationally arranged on the first driving block and the other end is fixedly connected with the adjusting shaft.

[0012] Through the above technical scheme, the adjusting cylinder is started, the piston rod of the adjusting cylinder drives the first driving block to rotate, the first driving block drives the second driving block to move, and the second driving block drives the adjusting shaft to rotate.

[0013] Optionally, the adjusting block comprises a first connecting block, a second connecting block, a third driving block, a first connecting bolt and a second connecting bolt, the third driving block is arranged on the first connecting block, a driving groove for clamping the third driving block is arranged on the adjusting shaft; the switching block abuts against the first connecting block, the first connecting bolt is threadedly connected with the first connecting block through the switching block; the second connecting block abuts against the first connecting block and the adjusting shaft; and the second connecting bolt is threadedly connected with the first connecting block through the second connecting block.

[0014] By adopting the technical scheme, the first connecting block is first abutted against the adjusting shaft, and the third driving block is clamped with the driving groove on the adjusting shaft; then the second connecting block is abutted against the adjusting shaft and the first connecting block; then the second connecting bolt is screwed through the second connecting block and the first connecting block; then the switching block is abutted against the first connecting block, and then the first connecting bolt is screwed through the switching block and the first connecting block.

[0015] Optionally, the collecting frame comprises a support frame and support assemblies, the support frame is arranged on one side of the fixed frame, and each of the support assemblies comprises two third support blocks, the two third support blocks are arranged on the support frame, and the second support block is arranged on the fixed frame between the two third support blocks.

[0016] By adopting the technical scheme, the collecting area formed by the second support block and the third support block can better limit the pipe materials and reduce the pipe materials from being mixed together.

[0017] Optionally, the collecting frame is provided with a supporting mechanism, the supporting mechanism comprises a supporting belt, a first fixing assembly and a second fixing assembly, the first fixing assembly is arranged on the second support block and connected with the supporting belt, and the second fixing assembly is arranged on the third support block and connected with the supporting belt.

[0018] By adopting the technical scheme, the supporting belt is fixed on the third support block and the second support block through the first fixing assembly and the second fixing assembly, when the pipe materials fall into the collecting area, the supporting belt can support the pipe materials, so that the pipe materials are prevented from colliding with the support frame and being damaged, and the pipe materials in the collecting area are convenient for subsequent operators to transfer.

[0019] Optionally, the third support block is provided with a first through hole through which the supporting belt passes, the second fixing assembly comprises a first fixing block, a fixing screw rod, fixing nuts and a fixing ring, the first fixing block is arranged on the third support block, and a second through hole is arranged in the first fixing block; one end of the fixing screw rod passes through the second through hole, the fixing nuts are provided in two, the fixing nuts are both in threaded connection with the fixing screw rod, and the fixing nuts are respectively abutted against two sides of the first fixing block; the fixing ring is arranged on the fixing screw rod, and the supporting belt passes through the fixing ring.

[0020] By adopting the technical scheme, one fixing nut is first threadedly connected on the fixed screw rod, then the end of the fixed screw rod away from the fixing ring is passed through the second through hole on the first fixing block, then another fixing nut is threadedly connected on the fixed screw rod passed through the second through hole, and the two fixing nuts are respectively abutted against the two ends of the first fixing block, so that the fixed screw rod is fixed on the first fixing block, and the position of the fixed screw rod on the first fixing block can be adjusted as required, then one end of the supporting belt is first passed through the first through hole on the third supporting block, then passes around the fixing ring, and then passes through the first through hole on the third supporting block, and finally the two ends of the supporting belt are connected with the second supporting block through the first fixing assembly.

[0021] Optionally, the first fixing assembly comprises a second fixing block and a fixing bolt, the second fixing block is arranged on the second supporting block, and the fixing bolt is arranged on the second fixing block and connected with the supporting belt.

[0022] By adopting the technical scheme, the end portions of the two ends of the supporting belt are placed on the second fixing block, and then the fixing bolt is used to fix the supporting belt on the second fixing block, and the first fixing assembly has a simple structure and is convenient to operate.

[0023] Optionally, the third supporting block is provided with an anti-abrasion block, and the supporting belt abuts against the anti-abrasion block.

[0024] By adopting the technical scheme, the anti-abrasion block can reduce the abrasion of the supporting belt by reducing the direct abutment of the supporting belt against the side wall of the end portion of the first through hole.

[0025] Optionally, the transfer mechanism comprises a rotating shaft, a first transfer block, a second transfer block, a third transfer block and a second rotating assembly, the rotating shaft is rotationally arranged on the fixing frame, the first transfer block is arranged on the rotating shaft, the second transfer block is arranged on the first transfer block, the third transfer block is arranged on the second transfer block, and the second rotating assembly is arranged on the fixing frame and connected with the rotating shaft.

[0026] By adopting the technical scheme, the second rotating assembly is started, the second rotating assembly drives the rotating shaft to rotate, the rotating shaft drives the first transfer block to rotate, the second transfer block on the first transfer block drives the third transfer block to move, and the end of the third transfer block close to the second transfer block drives the pipe to move, so that the pipe is transferred from the conveying roller to the entering block.

[0027] In summary, the present application has at least one of the following beneficial technical effects:

[0028] 1. The collecting device can collect qualified and unqualified pipes into different collection areas, reduce manual classification, and improve the accuracy of classification after detection.

[0029] 2. The supporting mechanism can reduce the damage of the pipe to the support frame, and facilitate the subsequent operator to transfer the pipe in the collection area. BRIEF DESCRIPTION OF DRAWINGS

[0030] Figure 1 FIG. 1 is a structural schematic diagram of a pipe nondestructive testing equipment according to an embodiment of the present application;

[0031] Figure 2 FIG. 2 is a structural schematic diagram of a transfer mechanism according to an embodiment of the present application;

[0032] Figure 3 FIG. 3 is a structural schematic diagram of an adjusting mechanism according to an embodiment of the present application;

[0033] Figure 4 FIG. 4 is an enlarged view of A in FIG. 3; Figure 3

[0034] Figure 5 FIG. 5 is a structural schematic diagram of an adjusting block according to an embodiment of the present application;

[0035] Figure 6 FIG. 6 is a structural schematic diagram of a second fixing group according to an embodiment of the present application;

[0036] Figure 7 FIG. 7 is a structural schematic diagram of an adjusting mechanism according to an embodiment of the present application;

[0037] Figure 8 FIG. 8 is an enlarged view of B in FIG. 7. Figure 7

[0038] ​​11, fixed frame; 12, first support block; 13, conveying roller; 14, drive wheel; 15, drive belt; 2, transfer mechanism; 21, rotating shaft; 22, first transfer block; 23, second transfer block; 24, third transfer block; 25, second rotating assembly; 3, collecting device; 31, collecting frame; 311, support frame; 312, third support block; 32, second support block; 33, entry block; 34, switching block; 4, adjusting mechanism; 41, adjusting shaft; 411, drive groove; 42, adjusting block; 421, first connecting block; 422, second connecting block; 423, third drive block; 424, first connecting bolt; 425, second connecting bolt; 43, first rotating assembly; 431, adjusting cylinder; 432, first drive block; 433, second drive block; 434, drive sleeve; 5, supporting mechanism; 51, supporting belt; 52, first fixing assembly; 521, second fixing block; 522, fixing bolt; 53, second fixing assembly; 531, first fixing block; 532, fixing screw; 533, fixing nut; 534, fixing ring; 54, wear-resistant block; 6, adjusting mechanism; 61, adjusting block; 62, adjusting screw; 63, adjusting shaft; 64, first bevel gear; 65, second bevel gear; 66, rotating wheel. DETAILED DESCRIPTION

[0039] The following will be described in detail below with reference to the accompanying drawings. Figures 1-8 The present application is further described in detail.

[0040] The embodiment of the present application discloses a blanking structure of a pipe nondestructive testing equipment.

[0041] Embodiment 1

[0042] Reference Figure 1 A blanking structure of a pipe nondestructive testing equipment, comprising a fixed frame 11 arranged at an outlet end of the nondestructive testing equipment, a plurality of first support blocks 12 are fixed on the fixed frame 11, and a conveying roller 13 is rotatably connected to each first support block 12; and a transfer mechanism 2 is arranged on the fixed frame 11. One side of the fixed frame 11 is provided with a collecting device 3.

[0043] Reference Figure 1 And Figure 2 A driving assembly is arranged on the fixed frame 11, the driving assembly comprises a drive wheel 14, two drive wheels 14 are arranged on each conveying roller 13, one drive belt 15 is arranged on adjacent two conveying rollers 13, one end of the drive belt 15 is sleeved on one drive wheel 14 on one of the conveying rollers 13, and the other end of the drive belt 15 is sleeved on one drive wheel 14 on the adjacent conveying roller 13; and a driving motor is fixedly connected to the fixed frame 11, and an output shaft of the driving motor is connected with one of the conveying rollers 13.

[0044] The driving motor is started, the output shaft of the driving motor drives the transmission roller 13 to rotate, the driving wheel 14 on the transmission roller 13 drives the driving belt 15 to rotate, the driving belt 15 drives the driving wheel 14 on the other transmission roller 13 to rotate, and the driving wheel 14 drives the other transmission roller 13 to rotate.

[0045] With reference to Figure 1 And Figure 2 The transfer mechanism 2 comprises a rotating shaft 21 rotatably connected to the fixed frame 11, a first transfer block 22 fixedly connected to the rotating shaft 21, a second transfer block 23 integrally arranged at one end of the first transfer block 22 away from the rotating shaft 21, and a third transfer block 24 arranged at one end of the second transfer block 23 away from the first transfer block 22; when the pipe is present on the transmission roller 13, the third transfer block 24 and the end of the second transfer block 23 close to the third transfer block 24 are located below the pipe. The fixed frame 11 is provided with a second rotating assembly 25 connected with the rotating shaft 21.

[0046] The second rotating assembly 25 is started, the second rotating assembly 25 drives the rotating shaft 21 to rotate, the rotating shaft 21 drives the first transfer block 22 to rotate, the first transfer block 22 drives the second transfer block 23 to rotate, the second transfer block 23 drives the third transfer block 24 to move, and the third transfer block 24 and the end of the second transfer block 23 close to the third transfer block 24 will drive the pipe to move, so that the pipe is transferred from the transmission roller 13 to the collecting device 3.

[0047] With reference to Figure 1 And Figure 3 The collecting device 3 comprises a collecting frame 31, the collecting frame 31 comprises a support frame 311 placed on one side of the fixed frame 11, and a plurality of support assemblies are arranged on the support frame 311, each support assembly comprises two third support blocks 312, and the two third support blocks 312 are fixed on the support frame 311. A second support block 32 is fixedly connected to the support frame 311 between the two third support blocks 312, a collecting area is formed between the second support block 32 and one of the third support blocks 312, and another collecting area is formed between the second support block 32 and the other third support block 312.

[0048] The third support block 312 close to the fixed frame 11 is the first third support block 312, the third support block 312 away from the fixed frame 11 is the second third support block 312, a collecting area for collecting unqualified pipes is formed between the first third support block 312 and the second support block 32, and a collecting area for collecting qualified pipes is formed between the second third support block 312 and the second support block 32.

[0049] The first third supporting block 312 is fixedly connected with an entering block 33, and the end of the entering block 33 away from the fixed frame 11 is communicated with a collection area for collecting unqualified pipes; the second supporting block 32 is provided with a switching block 34, and the end of the switching block 34 is communicated with a collection area for collecting qualified pipes; when the switching block 34 is in a normal state, the switching block 34 is parallel to the entering block 33, and the end of the switching block 34 away from the second supporting block 32 covers the collection area for collecting unqualified pipes, that is, when the pipes roll on the entering block 33, the pipes will roll on the switching block 34 and then roll into the collection area for collecting qualified pipes.

[0050] With reference to Figure 3 and Figure 4 The second supporting block 32 is provided with an adjusting mechanism 4, the adjusting mechanism 4 comprises an adjusting shaft 41, each second supporting block 32 is provided with a bearing seat connected with the adjusting shaft 41, one of the second supporting blocks 32 is provided with a first rotating assembly 43, the first rotating assembly 43 and the second rotating assembly 25 are the same in structure, the first rotating assembly 43 and the second rotating assembly 25 both comprise an adjusting cylinder 431, the cylinder body of the adjusting cylinder 431 of the first rotating assembly 43 is hinged on the second supporting block 32, and the cylinder body of the adjusting cylinder 431 of the second rotating assembly 25 is hinged on the fixed frame 11; the piston rod of the adjusting cylinder is connected with a first driving block 432, the first driving block 432 is provided with an avoiding slot, the avoiding slot of the first driving block 432 is rotatably connected with a second driving block 433, and the end of the second driving block 433 away from the first driving block is fixedly connected with a driving sleeve 434; the driving sleeve 434 of the first rotating assembly 43 is sleeved on the adjusting shaft 41 and fixedly connected with the adjusting shaft 41 through mounting bolts, and the driving sleeve 434 of the second rotating assembly 25 is sleeved on the rotating shaft 21 and fixedly connected with the rotating shaft 21 through mounting bolts.

[0051] The adjusting cylinder 431 is started, the piston rod of the adjusting cylinder 431 drives the first driving block 432 to rotate, the first driving block 432 drives the second driving block 433 to rotate, the second driving block 433 drives the driving sleeve 434 to rotate, and the driving sleeve 434 drives the adjusting shaft 41 to rotate.

[0052] With reference to Figure 3 and Figure 5The adjusting block 42 is provided on each switching block 34 and connected with the adjusting shaft 41. The adjusting block 42 comprises a first connecting block 421 abutting against the switching block 34. The switching block 34 is provided with a first connecting bolt 424 penetrating the switching block 34 and threadedly connected with the first connecting block 421. The first connecting block 421 is provided at an end away from the switching block 34 with a first clamping groove abutting against the adjusting shaft 41. The first connecting block 421 is fixedly connected with a third driving block 423. The adjusting shaft 41 is provided with a driving groove 411 engaged with the third driving block 423. The first connecting block 421 is provided at the end away from the switching block 34 with a second connecting block 422. The second connecting block 422 is provided with a second clamping groove abutting against the adjusting shaft 41 and abutting against the first connecting block 421. The second connecting block 422 is provided with a second connecting bolt 425 penetrating the second connecting block 422 and threadedly connected with the first connecting block 421.

[0053] First, the first clamping groove on the first connecting block 421 abuts against the adjusting shaft 41, and the third driving block 423 is engaged with the driving groove 411 on the adjusting shaft 41. Then, the second clamping groove on the second connecting block 422 abuts against the adjusting shaft 41, and the second connecting block 422 abuts against the first connecting block 421. Next, the second connecting bolt 425 penetrates the second connecting block 422 and threadedly connects with the first connecting block 421. Then, the switching block 34 abuts against the first connecting block 421, and the first connecting bolt 424 penetrates the switching block 34 and threadedly connects with the first connecting block 421.

[0054] When the adjusting shaft 41 rotates, the adjusting shaft 41 drives the third driving block 423 to rotate, the third driving block 423 drives the first connecting block 421 to rotate, and the first connecting block 421 drives the switching block 34 to rotate.

[0055] Reference Figure 3 And Figure 6 The supporting mechanism 5 is provided on each third supporting block 312 and connected with the second supporting block 32, that is, the supporting mechanism 5 is provided in each collection area. The supporting mechanism 5 comprises a supporting belt 51. Each third supporting block 312 is provided with a first through hole for the supporting belt 51 to penetrate. Each third supporting block 312 is provided with two anti-abrasion blocks 54 located at two ends of the first through hole.

[0056] The second fixing assembly 53 is arranged on each third supporting block 312, and comprises a first fixing block 531 fixedly connected to the third supporting block 312, a second through hole is arranged in the first fixing block 531, a fixing screw rod 532 is arranged on the first fixing block 531, one end of the fixing screw rod 532 penetrates through the first through hole in the first fixing block 531, two fixing nuts 533 are threadedly connected to the fixing screw rod 532, the two fixing nuts 533 are respectively located on the two sides of the first fixing block 531, and the two fixing nuts 533 are in abutment with the first fixing block 531; and a fixing ring 534 is fixedly connected to the end of the fixing screw rod 532, which is away from the supporting frame 311.

[0057] One end of the supporting belt 51 penetrates through the first through hole in the third supporting block 312, then passes through the fixing ring 534, and then penetrates through the first through hole in the third supporting block 312 again; finally, the two ends of the supporting belt 51 are connected with the second supporting block 32.

[0058] Reference Figure 3 and Figure 6 The first fixing assembly 52 is arranged on the second supporting block 32, and comprises a second fixing block 521 fixedly connected to the second supporting block 32, a placing groove is arranged in the second fixing block 521, and the two end portions of the supporting belt 51 are located in the placing groove; a first threaded hole in communication with the placing groove is arranged in the second fixing block 521. The second fixing block 521 is provided with a fixing bolt 522, and the fixing bolt 522 is threadedly connected with the first threaded hole. When the two ends of the supporting belt 51 are located in the placing groove, the fixing bolt 522 is rotated to abut against the supporting belt 51, so that the two ends of the supporting belt 51 are fixed in the placing groove. Alternatively, the fixing ring 534 is arranged on the two ends of the supporting belt 51, and the fixing bolt 522 penetrates through the fixing ring 534 on the two ends of the supporting belt 51 to abut against the second supporting block 32.

[0059] Smooth pads are connected to the entering block 33 and the switching block 34 through bolts.

[0060] The implementation principle of the embodiment 1 of the application is as follows: the detected pipe material enters the conveying roller 13 of the fixing frame 11; when the detected pipe material is qualified, the switching block 34 is located at the collection area covering the collection of unqualified pipe materials, and the switching block 34 is parallel to the entering block 33; the adjusting cylinder 431 in the second rotating assembly 25 is started to make the pipe material on the conveying roller 13 move to the entering block 33, then roll to the switching block 34, and then roll to the collection area collecting qualified pipe materials along the switching block 34. When the detected pipe material is unqualified, the adjusting cylinder 431 in the first rotating shaft 21 assembly makes the adjusting shaft 41 drive the switching block 34 to rotate, so that the switching block 34 is no longer parallel to the entering block 33; the adjusting cylinder 431 in the second rotating assembly 25 makes the pipe material on the conveying roller 13 move to the entering block 33, and then roll to the collection area collecting unqualified pipe materials.

[0061] When the pipe material enters the collection area, it falls on the supporting belt 51. After the detection of the pipe materials in the same batch is completed, the pipe materials are taken out from the supporting belt 51.

[0062] Embodiment 2

[0063] Reference Figure 7 and Figure 8 The difference between the embodiment 2 and the embodiment 1 is that a sliding groove is formed on the support frame 311, and an adjusting mechanism 6 is arranged on the support frame 311. The adjusting mechanism 6 comprises an adjusting block 61 fixedly connected to the second support block 32 and sliding in the sliding groove, and an adjusting screw rod 62 rotatably connected in the sliding groove. The adjusting screw rod 62 passes through the adjusting block 61 and is threadedly connected with the adjusting block 61. The two ends of the adjusting screw rod 62 are both key-connected with a second bevel gear 65. The two sides of the support frame 311 are both rotatably connected with an adjusting shaft 63. The two adjusting shafts 63 correspond to the two ends of the adjusting screw rod 62 respectively. Each adjusting shaft 63 is key-connected with a first bevel gear 64 meshing with the second bevel gear 65. The adjusting shaft 63 is fixedly connected with a rotating wheel 66.

[0064] The operator rotates one of the rotating wheels 66. The rotating wheel 66 drives the adjusting shaft 63 to rotate. The first bevel gear 64 on the adjusting shaft 63 drives the second bevel gear 65 to rotate. The second bevel gear 65 drives the adjusting screw rod 62 to rotate. The adjusting screw rod 62 drives the adjusting block 61 to move. The adjusting block 61 drives the second support block 32 to move, so as to change the size of the two collection areas. Moreover, when the pipe material on the supporting belt 51 is taken out, the collection area can also be enlarged, so as to facilitate the transfer of the pipe material.

[0065] The above are the preferred embodiments of the application, which do not limit the protection scope of the application. Any equivalent changes made on the basis of the structure, shape and principle of the application should be covered by the protection scope of the application.

Claims

1. A blanking structure of a pipe nondestructive testing equipment, comprising a fixing frame (11), a first supporting block (12), a conveying roller (13) and a transfer mechanism (2), the first supporting block (12) is arranged on the fixing frame (11), the conveying roller (13) is rotatably arranged on the first supporting block (12); the transfer mechanism (2) is arranged on the fixing frame (11); characterized in that, Also include a collection device (3), the collection device (3) includes a collection frame (31), a second support block (32), an access block (33), a switching block (34) and an adjustment mechanism (4), the collection frame (31) is arranged on one side of the fixed frame (11), the second support block (32) is arranged on the collection frame (31), the second support block (32) divides the collection frame (31) into two collection areas;The access block (33) is provided with a plurality of, and a plurality of the access block (33) is arranged on the feed end of the collection frame (31) and corresponds to one of the collection areas;The switching block (34) is provided with a plurality of, and a plurality of the switching block (34) is arranged on the second support block (32) by the adjustment mechanism (4), the pipe on the access block (33) can enter a plurality of the switching block (34).

2. The blanking structure of a pipe non-destructive testing apparatus according to claim 1, wherein The adjustment mechanism (4) includes an adjustment shaft (41), an adjustment block (42) and a first rotating assembly (43), the adjustment shaft (41) is rotatably arranged on the second support block (32);The adjustment block (42) is arranged on the adjustment shaft (41) and connected with the switching block (34);The first rotating assembly (43) is arranged on the second support block (32) and connected with the adjustment shaft (41).

3. The blanking structure of a pipe non-destructive testing apparatus according to claim 2, wherein The first rotating assembly (43) includes an adjustment cylinder (431), a first drive block (432) and a second drive block (433), the cylinder body of the adjustment cylinder (431) is hinged on the second support block (32);The first drive block (432) is arranged on the piston rod of the adjustment cylinder (431);One end of the second drive block (433) is rotatably arranged on the first drive block (432) and the other end is fixedly connected with the adjustment shaft (41).

4. The blanking structure of a pipe non-destructive testing apparatus according to claim 2, wherein The adjustment block (42) includes a first connecting block (421), a second connecting block (422), a third drive block (423), a first connecting bolt (424) and a second connecting bolt (425), the third drive block (423) is arranged on the first connecting block (421), the adjustment shaft (41) is provided with a drive groove (411) matched with the third drive block (423);The switching block (34) abuts against the first connecting block (421), the first connecting bolt (424) is threadedly connected with the first connecting block (421) through the switching block (34);The second connecting block (422) abuts against the first connecting block (421) and the adjustment shaft (41);The second connecting bolt (425) is threadedly connected with the first connecting block (421) through the second connecting block (422).

5. The blanking structure of a pipe non-destructive testing apparatus according to claim 1, wherein The collecting frame (31) comprises a support frame (311) and support assemblies, the support frame (311) is arranged on one side of the fixed frame (11), and each of the support assemblies is provided with two third support blocks (312) which are arranged on the support frame (311).

6. The blanking structure of a pipe non-destructive testing apparatus according to claim 5, wherein The collecting frame (31) is provided with a supporting mechanism (5), and the supporting mechanism (5) comprises a supporting belt (51), a first fixing assembly (52) and a second fixing assembly (53), the first fixing assembly (52) is arranged on the second support block (32) and connected with the supporting belt (51), and the second fixing assembly (53) is arranged on the third support block (312) and connected with the supporting belt (51).

7. The blanking structure of a pipe non-destructive testing apparatus according to claim 6, wherein The third support block (312) is provided with a first through hole through which the supporting belt (51) passes, and the second fixing assembly (53) comprises a first fixing block (531), a fixing screw rod (532), fixing nuts (533) and a fixing ring (534), the first fixing block (531) is arranged on the third support block (312), and a second through hole is formed in the first fixing block (531); one end of the fixing screw rod (532) passes through the second through hole, the fixing nuts (533) are provided in two, the fixing nuts (533) are in threaded connection with the fixing screw rod (532), and the fixing nuts (533) are respectively abutted against the two sides of the first fixing block (531); the fixing ring (534) is arranged on the fixing screw rod (532), and the supporting belt (51) passes through the fixing ring (534).

8. The blanking structure of a pipe non-destructive testing apparatus according to claim 7, wherein The first fixing assembly (52) comprises a second fixing block (521) and a fixing bolt (522), the second fixing block (521) is arranged on the second support block (32), and the fixing bolt (522) is arranged on the second fixing block (521) and connected with the supporting belt (51).

9. The blanking structure of a pipe non-destructive testing apparatus according to claim 6, wherein The third support block (312) is provided with an anti-abrasion block (54), and the supporting belt (51) abuts against the anti-abrasion block (54).

10. The blanking structure of a pipe non-destructive testing apparatus according to claim 1, wherein The transferring mechanism (2) comprises a rotating shaft (21), a first transferring block (22), a second transferring block (23), a third transferring block (24) and a second rotating assembly (25), the rotating shaft (21) is rotatably arranged on the fixed frame (11), the first transferring block (22) is arranged on the rotating shaft (21), the second transferring block (23) is arranged on the first transferring block (22), the third transferring block (24) is arranged on the second transferring block (23), and the second rotating assembly (25) is arranged on the fixed frame (11) and connected with the rotating shaft (21).