Ultra-thin nanocrystalline strip detection equipment convenient to use

Through the ultra-thin nanocrystalline strip detection equipment that integrates the detection mechanism and adjusts the tensioning mechanism, the complex and time-consuming problems of traditional detection methods are solved, and efficient and accurate multiple performance detection is achieved.

CN223138643UActive Publication Date: 2025-07-22FOSHAN HUAXIN MICROCRYSTALLINE METAL CO LTD
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Patent Information

Application Number
CN202422489057.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-07-22
Estimated Expiration
2034-10-15

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Abstract

The utility model discloses ultra-thin nanocrystalline strip detection equipment convenient to use, which comprises a bottom plate and a nanocrystalline strip body, and further comprises a detection mechanism which comprises a top plate, a track is fixed at the bottom of the top plate, a plurality of sliding plates are connected to the bottom of the track in a sliding manner, second mounting plates are arranged at the bottoms of the sliding plates, and the second mounting plates are arranged on the bottom of the top plate. An electric telescopic rod is fixed to the bottom of the second mounting plate, and a smoothness detector, a thickness detector and a surface quality detector are arranged at the bottom of the electric telescopic rod. And the adjusting mechanism is arranged at the top of the bottom plate. The ultrathin nanocrystalline strip detection equipment convenient to use has the technical effects that detection data of a nanocrystalline strip body are more comprehensive, diversified detection requirements are met, various performance indexes of the nanocrystalline strip body are accurately evaluated, and the convenience and efficiency of detection work are greatly improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of nanocrystalline ribbon detection, in particular to a convenient-to-use detection device for ultra-thin nanocrystalline ribbons. Background Technique

[0002] Nanocrystalline ribbon, also known as nanocrystalline soft magnetic alloy ribbon, is a kind of iron-based soft magnetic alloy material with nanoscale grain size. Its grain size is usually in the range of 10 - 20 nanometers. This fine structure endows nanocrystalline ribbons with a series of excellent properties and application potentials. Nanocrystalline ribbons are mainly composed of elements such as iron, silicon, boron, and a small amount of copper, niobium, etc. These elements form amorphous alloy thin ribbons through rapid solidification technology, and then through appropriate heat treatment processes, nanoscale grains are induced to obtain a nanocrystalline structure.

[0003] With the rapid development of nanotechnology, ultra-thin nanocrystalline ribbons, as a new type of material with excellent physical, chemical, and mechanical properties, show great application potentials in many fields such as electronics, semiconductors, aerospace, new energy, and biomedicine. However, due to its extremely thin thickness and complex surface structure, the requirements for detection technology are extremely high. Traditional detection methods often have complex detection instruments, many processes, long detection time, and low detection efficiency. Content of the Utility Model

[0004] The utility model discloses a convenient-to-use detection device for ultra-thin nanocrystalline ribbons, aiming to solve the technical problems that traditional detection methods often have complex detection instruments, many processes, long detection time, and low detection efficiency.

[0005] To achieve the above purpose, the utility model adopts the following technical scheme:

[0006] A convenient-to-use detection device for ultra-thin nanocrystalline ribbons, including a bottom plate and a nanocrystalline ribbon body, further including:

[0007] A detection mechanism, including a top plate, a track is fixed to the bottom of the top plate, a plurality of sliding plates are slidably connected to the bottom of the track, a second mounting plate is arranged at the bottom of the sliding plate, an electric telescopic rod is fixed to the bottom of the second mounting plate, and a smoothness detector, a thickness detector, and a surface quality detector are respectively arranged at the bottom of the electric telescopic rod;

[0008] An adjustment mechanism, arranged on the top of the bottom plate;

[0009] A tensioning mechanism, arranged on the top of the bottom plate and located on the left and right sides of the adjustment mechanism.

[0010] In this solution, two smoothness detectors are provided, which respectively detect the middle part and the part near the edge of the nanocrystalline ribbon body, record the detection results respectively, make the detection data of the nanocrystalline ribbon body more comprehensive, can flexibly configure different detection modules according to actual needs, meet diversified detection requirements, the device has a high integration degree, can detect multiple data of the nanocrystalline ribbon body simultaneously, accurately evaluate various performance indicators of the nanocrystalline ribbon body, and has the characteristics of fast, accurate and easy to maintain, greatly improving the convenience and efficiency of the detection work.

[0011] In a preferred solution, the adjusting mechanism includes two second support plates fixed to the top of the bottom plate. A first mounting plate is fixed to the tops of the two second support plates. A first mounting roller is rotatably connected between the two first mounting plates. First rotating shafts are respectively arranged at the left and right ends of the first mounting roller. A fixed disk is arranged at one end of the first rotating shaft. A threaded hole is opened on the outer wall of one side of the fixed disk. A fixing knob is arranged in the threaded hole. An installation frame is arranged on the outer wall of one side of the first mounting plate. A through hole is opened on the outer wall of one side of the installation frame. The fixed disk is arranged between the installation frame and the first mounting plate, and the fixing knob is arranged on the outer wall of the installation frame away from the fixed disk.

[0012] Adopting the above solution, according to the data to be detected, set different numbers of detection modules. Correspondingly, the distance between the two first mounting rollers can be adjusted left and right to facilitate the detection. Move the position of the first mounting roller left and right, rotate the fixing knob and cooperate with the fixed disk to clamp the installation frame, thereby fixing the position of the first mounting roller. The two first mounting rollers are horizontally placed, making the nanocrystalline ribbon body wound around the outer wall of the first mounting roller flatter and facilitating the detection.

[0013] In a preferred solution, the tensioning mechanism includes first support plates symmetrically distributed on the top of the bottom plate. A second mounting roller is arranged on the outer wall of one side of the first support plate. Second rotating shafts are respectively arranged at the left and right ends of the second mounting roller. A second slider is arranged at one end of the second rotating shaft. A rectangular hole is opened on the outer wall of one side of the first support plate. The second slider is slidably connected to the rectangular hole. A circular hole is opened on the top of the second slider. A sliding rod is inserted into the circular hole. The top of the sliding rod is fixed with a first slider. The first slider is slidably connected to the rectangular hole. A adjusting screw rod is rotatably connected to the top of the first slider. A threaded hole is opened on the top of the first support plate. The adjusting screw rod is adapted to the threaded hole. A spring is sleeved on the circumferential outer wall of the sliding rod. The spring is located between the second slider and the first slider.

[0014] Adopting the above scheme, rotate the adjusting screw rod to drive the first slider to move up and down, press the second slider downward through the spring, so that the second mounting roller presses the nanocrystalline ribbon body downward, and the nanocrystalline ribbon body is stretched and straightened, thereby improving the detection accuracy of the nanocrystalline ribbon body and ensuring the stability and reliability of the detection results.

[0015] As can be seen from the above, a convenient-to-use ultra-thin nanocrystalline ribbon detection device includes a bottom plate and a nanocrystalline ribbon body, and further includes:

[0016] A detection mechanism, including a top plate, a track is fixed to the bottom of the top plate, a plurality of sliding plates are slidably connected to the bottom of the track, a second mounting plate is arranged at the bottom of the sliding plate, and an electric telescopic rod is fixed to the bottom of the second mounting plate. A smoothness detector, a thickness detector and a surface quality detector are respectively arranged at the bottom of the electric telescopic rod;

[0017] An adjusting mechanism is arranged on the top of the bottom plate;

[0018] A tensioning mechanism is arranged on the top of the bottom plate and is located on the left and right sides of the adjusting mechanism. The convenient-to-use ultra-thin nanocrystalline ribbon detection device provided by the present invention has the technical effects of making the detection data of the nanocrystalline ribbon body more comprehensive, meeting diverse detection requirements, accurately evaluating various performance indicators of the nanocrystalline ribbon body, and greatly improving the convenience and efficiency of the detection work. Description of the Drawings

[0019] Figure 1 It is a schematic diagram of the overall structure of a convenient-to-use ultra-thin nanocrystalline ribbon detection device proposed by the present invention.

[0020] Figure 2 It is a schematic diagram of the detection mechanism structure of a convenient-to-use ultra-thin nanocrystalline ribbon detection device proposed by the present invention.

[0021] Figure 3 It is a schematic diagram of the adjusting mechanism structure of a convenient-to-use ultra-thin nanocrystalline ribbon detection device proposed by the present invention.

[0022] Figure 4 It is a schematic diagram of the tensioning mechanism structure of a convenient-to-use ultra-thin nanocrystalline ribbon detection device proposed by the present invention.

[0023] In the accompanying drawings: 1. Top plate; 2. Track; 3. Nanocrystalline ribbon body; 4. Nanocrystalline ribbon roll; 5. First support plate; 6. Second support plate; 7. Third support plate; 8. Take-up roller; 9. First mounting plate; 10. Slide plate; 11. Surface quality detector; 12. Thickness detector; 13. Smoothness detector; 14. Electric telescopic rod; 15. Second mounting plate; 16. First mounting roller; 17. Fixed knob; 18. Fixed disk; 19. Mounting frame; 20. Adjusting screw; 21. First slider; 22. Second slider; 23. Slide bar; 24. Second mounting roller. Detailed implementation

[0024] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments.

[0025] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention.

[0026] A convenient-to-use ultra-thin nanocrystalline ribbon detection device disclosed by the present invention is mainly applied to scenarios where traditional detection methods often have complex detection instruments, many processes, long detection time, and low detection efficiency.

[0027] Refer to Figure 1 and Figure 2 , a convenient-to-use ultra-thin nanocrystalline ribbon detection device, including a bottom plate and a nanocrystalline ribbon body 3, further including:

[0028] A detection mechanism, including a top plate 1, a track 2 is fixed to the bottom of the top plate 1, a plurality of slide plates 10 are slidably connected to the bottom of the track 2, a second mounting plate 15 is arranged at the bottom of the slide plate 10, an electric telescopic rod 14 is fixed to the bottom of the second mounting plate 15, and a smoothness detector 13, a thickness detector 12, and a surface quality detector 11 are respectively arranged at the bottom of the electric telescopic rod 14;

[0029] An adjustment mechanism, arranged on the top of the bottom plate;

[0030] A tensioning mechanism, arranged on the top of the bottom plate and located on the left and right sides of the adjustment mechanism.

[0031] Specifically, the surface quality detector 11 is an optical detector, the thickness detector 12 is a high-precision thickness gauge, and a surface smoothness detector head is provided inside the smoothness detector 13 to measure the surface quality, thickness, and smoothness of the nanocrystalline ribbon body 3 respectively. Among them, two smoothness detectors 13 are provided to detect the middle part and the part near the edge of the nanocrystalline ribbon body 3 respectively, and the detection results are recorded respectively, making the detection data of the nanocrystalline ribbon body 3 more comprehensive. Different detection modules can be flexibly configured according to actual needs to meet diverse detection requirements. This device has a high integration level and can detect multiple data of the nanocrystalline ribbon body 3 simultaneously to accurately evaluate various performance indicators of the nanocrystalline ribbon body 3.

[0032] Refer to Figure 1 , in a preferred embodiment, symmetrically distributed fourth support plates are provided on the top of the bottom plate. A unwinding roller and a winding roller 8 are respectively provided on the outer wall of one side of the fourth support plates. A nanocrystalline ribbon roll 4 is provided on the circumferential outer wall of the unwinding roller, and the nanocrystalline ribbon body 3 is wound around the circumferential outer wall of the winding roller 8. Symmetrically distributed third support plates 7 are provided on the top outer wall of the bottom plate, and the top plate 1 is fixed to the top of the third support plates 7.

[0033] Refer to Figure 1 and Figure 3 , in a preferred embodiment, the adjusting mechanism includes two second support plates 6 fixed to the top of the bottom plate. A first mounting plate 9 is fixed to the top of the two second support plates 6. A first mounting roller 16 is rotatably connected between the two first mounting plates 9. First rotating shafts are respectively provided at the left and right ends of the first mounting roller 16. A fixing disk 18 is provided at one end of the first rotating shaft. A threaded hole is opened on the outer wall of one side of the fixing disk 18, and a fixing knob 17 is provided in the threaded hole. An installation frame 19 is provided on the outer wall of one side of the first mounting plate 9. A through hole is opened on the outer wall of one side of the installation frame 19. The fixing disk 18 is arranged between the installation frame 19 and the first mounting plate 9, and the fixing knob 17 is arranged on the outer wall of the installation frame 19 away from the fixing disk 18.

[0034] Specifically, according to the data to be detected, different numbers of detection modules are set. Correspondingly, the distance between the two first mounting rollers 16 can be adjusted left and right to facilitate the detection. The position of the first mounting roller 16 is moved left and right, and the fixing knob 17 is rotated to cooperate with the fixing disk 18 to clamp the installation frame 19, thereby fixing the position of the first mounting roller 16. The two first mounting rollers 16 are placed horizontally.

[0035] Refer to Figure 1 and Figure 4, in a preferred embodiment, the tensioning mechanism includes first support plates 5 symmetrically disposed on the top of the base plate. A second mounting roller 24 is provided on an outer wall of one side of the first support plate 5. Second rotating shafts are respectively provided at the left and right ends of the second mounting roller 24. A second slider 22 is provided at one end of the second rotating shaft. A rectangular hole is formed in an outer wall of one side of the first support plate 5. The second slider 22 is slidably connected to the rectangular hole. A circular hole is formed in the top of the second slider 22. A slide bar 23 is inserted into the circular hole. A first slider 21 is fixed to the top of the slide bar 23. The first slider 21 is slidably connected to the rectangular hole. A regulating screw 20 is rotatably connected to the top of the first slider 21. A threaded hole is formed in the top of the first support plate 5. The regulating screw 20 is adapted to the threaded hole. A spring is sleeved on the circumferential outer wall of the slide bar 23. The spring is located between the second slider 22 and the first slider 21.

[0036] Specifically, rotate the regulating screw 20 to drive the first slider 21 to move up and down. Press the second slider 22 downward through the spring, so that the second mounting roller 24 presses the nanocrystalline ribbon body 3 downward. The nanocrystalline ribbon body 3 is stretched and straightened, thereby improving the detection accuracy of the nanocrystalline ribbon body 3.

[0037] Working principle: During use, according to the data to be detected, set different numbers of detection modules. Adjust the distance between the two first mounting rollers 16 left and right. Rotate the fixing knob 17 and cooperate with the fixing plate 18 to clamp the mounting frame 19, thereby fixing the position of the first mounting roller 16. Rotate the regulating screw 20 to drive the first slider 21 to move up and down. Press the second slider 22 downward through the spring, so that the second mounting roller 24 presses the nanocrystalline ribbon body 3 downward. The nanocrystalline ribbon body 3 is stretched and straightened. Measure the surface quality, thickness and smoothness of the nanocrystalline ribbon body 3 through the surface quality detector 11, thickness detector 12 and smoothness detector 13 respectively, and record the detection results.

[0038] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. The substitution may be the substitution of part of the structure, device, method step, or the complete technical solution. Any equivalent substitution or change made according to the technical solution of the present invention and the inventive concept of the present invention should be covered within the protection scope of the present invention.

Claims

1. An easy-to-use ultra-thin nanocrystalline strip testing device, comprising a bottom plate and a nanocrystalline strip body (3), characterized in that, It further includes: A detection mechanism, including a top plate (1), a track (2) is fixed to the bottom of the top plate (1), a plurality of sliding plates (10) are slidably connected to the bottom of the track (2), a second mounting plate (15) is arranged at the bottom of the sliding plate (10), a power telescopic rod (14) is fixed to the bottom of the second mounting plate (15), and a smoothness detector (13), a thickness detector (12) and a surface quality detector (11) are respectively arranged at the bottom of the power telescopic rod (14); An adjusting mechanism, arranged on the top of the bottom plate; A tensioning mechanism, arranged on the top of the bottom plate and located on the left and right sides of the adjusting mechanism.

2. The thin nano-crystalline strip testing device convenient for use according to claim 1, wherein, Symmetrically distributed fourth support plates are arranged on the top of the bottom plate, a unwinding roller and a winding roller (8) are respectively arranged on the outer wall of one side of the fourth support plate, a nanocrystalline ribbon roll (4) is arranged on the outer circumferential wall of the unwinding roller, and the nanocrystalline ribbon body (3) is wound around the outer circumferential wall of the winding roller (8).

3. The convenient-to-use ultra-thin nanocrystalline strip testing device according to claim 1, characterized in that The adjusting mechanism includes two second support plates (6) fixed to the top of the bottom plate, a first mounting plate (9) is fixed to the top of the two second support plates (6), a first mounting roller (16) is rotatably connected between the two first mounting plates (9), first rotating shafts are respectively arranged at the left and right ends of the first mounting roller (16), a fixed disk (18) is arranged at one end of the first rotating shaft, a threaded hole is opened on the outer wall of one side of the fixed disk (18), and a fixing knob (17) is arranged in the threaded hole.

4. The detection device for a conveniently used ultra-thin nanocrystalline strip according to claim 3, characterized in that, An installation frame (19) is arranged on the outer wall of one side of the first mounting plate (9), a through hole is opened on the outer wall of one side of the installation frame (19), the fixed disk (18) is arranged between the installation frame (19) and the first mounting plate (9), and the fixing knob (17) is arranged on the outer wall of the side of the installation frame (19) away from the fixed disk (18).

5. The detecting device for a conveniently used ultra-thin nanocrystalline strip according to claim 1, wherein The tensioning mechanism includes symmetrically distributed first support plates (5) arranged on the top of the bottom plate, a second mounting roller (24) is arranged on the outer wall of one side of the first support plate (5), second rotating shafts are respectively arranged at the left and right ends of the second mounting roller (24), and a second slider (22) is arranged at one end of the second rotating shaft.

6. The detection device for a conveniently used ultra-thin nanocrystalline strip according to claim 5, characterized in that, A rectangular hole is opened on the outer wall of one side of the first support plate (5), the second slider (22) is slidably connected in the rectangular hole, a circular hole is opened on the top of the second slider (22), a sliding rod (23) is inserted in the circular hole, a first slider (21) is fixed to the top of the sliding rod (23), the first slider (21) is slidably connected in the rectangular hole, an adjusting screw (20) is rotatably connected to the top of the first slider (21), a threaded hole is opened on the top of the first support plate (5), the adjusting screw (20) is adapted to the threaded hole, and a spring is sleeved on the outer circumferential wall of the sliding rod (23), and the spring is located between the second slider (22) and the first slider (21).

7. The detection device for a conveniently used ultra-thin nanocrystalline strip according to claim 1, characterized in that, Symmetrically distributed third support plates (7) are arranged on the outer wall of the top of the bottom plate, and the top plate (1) is fixed to the top of the third support plates (7).