Strength detection tool for nanocrystalline film production
By designing the ring structure driven by the support frame and electric telescopic rod, the problem of resource waste in the prior art is solved, and the effect of efficient detection of nanocrystal film strength is achieved.
Patent Information
- Application Number
- CN202422287139.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-19
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-09-19
AI Technical Summary
When detecting the strength of nanocrystal films, the prior art requires multiple sets of different extrusion areas, resulting in waste of resources and the inability to efficiently detect the strength of the nanocrystal films.
A strength detection tool is designed, including a support frame, an extrusion frame, an electric telescopic rod and a pressure sensor. The main top column and annular structure are driven to change the extrusion area through the electric telescopic rod, and the extrusion area is detected by combining the pressure sensor.
It realizes efficient detection of nanocrystal film strength, reduces resource waste, and can change the extrusion area as needed, thereby improving detection efficiency.
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Figure CN223139223U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of nanocrystalline films, and particularly to a strength detection tooling for the production of nanocrystalline films. Background Art
[0002] Nanocrystals refer to using high-energy polymer spheres to package calcium, magnesium ions, bicarbonate, etc. in water to produce nanoscale crystals that are insoluble in water, thereby making the water scale-free and achieving softening. Nanocrystals solve many defects in softening technology: a variety of technologies and methods are applied to water softening, such as electromagnetic, radio frequency, chemical additive complex phosphates, ion exchange, etc. When producing nanocrystalline film products through nanocrystals, it is necessary to detect the strength of the nanocrystalline film. However, when ordinary inspection tooling is used for detection, the extrusion area cannot be changed. It is necessary to detect the strength of the nanocrystalline film under different areas by multiple groups of different extrusion areas, which requires wasting a large amount of resources. Therefore, we propose a strength detection tooling for the production of nanocrystalline films. Utility Model Content
[0003] This application provides a strength detection tooling for the production of nanocrystalline films to solve the above-mentioned problems.
[0004] This application provides a strength detection tooling for the production of nanocrystalline films, including:
[0005] A support frame, the rear end of the support frame is fixedly connected to the front end of a connecting plate, an extrusion frame is correspondingly arranged above the support frame, the upper end of the extrusion frame is fixedly connected to a support, and the middle of the upper end of the support is fixedly connected to a first electric telescopic rod;
[0006] A detection strength mechanism, the detection strength mechanism is arranged in the middle of the inner side of the support frame, a second electric telescopic rod for driving up and down displacement is arranged at the lower end of the detection strength mechanism, and a pressure sensor is fixedly embedded in the middle upper end of the detection strength mechanism;
[0007] The detection strength mechanism consists of a main top column in the middle and a plurality of rings sleeved on the outside in sequence. The diameter of the main top column is adjusted by adjusting the length of the regulating rods arranged at the lower end of the detection strength mechanism to open.
[0008] Preferably, the upper end of the transmission rod of the second electric telescopic rod is fixedly connected to a cylindrical support plate, a rectangular limiting groove is opened in the middle of the upper side of the cylindrical support plate, the regulating rods are movably inserted into the left and right sides of the rectangular limiting groove, the middle parts of the regulating rods are all inserted with regulating screws through threads, and the opposite ends of the regulating screws are all connected to the ends of the transmission rods of a double-shaft motor.
[0009] Preferably, a support plate is provided at the lower end of the circular ring. The four corners of the lower end of the support plate are fixedly connected to the upper end of the bottom plate through support rods, and rectangular openings are symmetrically formed on both sides of the support plate.
[0010] Preferably, the cylindrical support plate movably penetrates and is inserted in the middle of the support plate.
[0011] Preferably, the thread directions of the adjusting screws on the left and right sides are opposite.
[0012] Preferably, a bottom plate is fixedly connected to the lower part of the front end of the connecting plate, and the lower end of the second electric telescopic rod is fixedly connected to the upper end of the bottom plate.
[0013] Preferably, the outer side of the first electric telescopic rod is fixedly connected to the upper end of the connecting plate through a fixing plate.
[0014] Preferably, rectangular through openings are formed in the middle of both the support frame and the extrusion frame.
[0015] The above technical solutions provided by the embodiments of the present application have the following advantages compared with the prior art:
[0016] In the structure provided by the embodiment of the present application, the second electric telescopic rod will drive the cylindrical support plate and the main jacking column to move upward, so as to jack up the nanocrystalline film from the lower end, and the pressure sensor can detect the extrusion force when the main jacking column jacks up the nanocrystalline film until it is broken, so as to detect the strength of the nanocrystalline film;
[0017] And when it is necessary to change the area of the upper end of the main jacking column, start the double-shaft motor to drive the adjusting screw to rotate forward and backward, so that the adjusting rod moves relatively or oppositely. When the adjusting rod moves outward, the length of the outer extension of the adjusting rod is increased. When the cylindrical support plate moves upward, it can drive a plurality of circular rings to move upward, so as to increase the area of the upper end of the main jacking column and change the area of the upper end of the main jacking column. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The accompanying drawings here are incorporated into the specification and form a part of this specification, showing the embodiments consistent with the present application, and are used together with the specification to explain the principles of the present application.
[0019] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, for those of ordinary skill in the art, other drawings can also be obtained based on these drawings without creative efforts.
[0020] Figure 1 It is a schematic diagram of the overall structure of the present utility model;
[0021] Figure 2 It is a schematic diagram of the overall structure of the strength detection mechanism of the present utility model;
[0022] Figure 3 This is a cross-sectional view of the detection strength mechanism of the present utility model;
[0023] Figure 4 This is a top view of the cylindrical support plate of the present utility model;
[0024] Figure 5 This is a top view of the support plate of the present utility model.
[0025] In the figure: 1. bottom plate; 2. connecting plate; 3. second electric telescopic rod; 4. support rod; 5. detection strength mechanism; 51. main top column; 52. ring; 53. cylindrical support plate; 54. rectangular limit groove; 55. adjusting rod; 56. adjusting screw; 57. double-shaft motor; 58. support plate; 59. rectangular opening; 6. support frame; 7. rectangular through opening; 8. extrusion frame; 9. bracket; 10. first electric telescopic rod; 11. pressure sensor. Specific embodiments
[0026] To make the objectives, technical solutions, and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are some but not all of the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the scope of protection of the present application.
[0027] The various embodiments of the present application may exist in the form of a range. It should be understood that the description in the form of a range is only for convenience and brevity and should not be construed as a rigid limitation on the scope of the present application. Therefore, it should be considered that the range description has specifically disclosed all possible sub-ranges and individual values within that range. For example, it should be considered that the range description from 1 to 6 has specifically disclosed sub-ranges such as from 1 to 3, from 1 to 4, from 1 to 5, from 2 to 4, from 2 to 6, from 3 to 6, etc., and individual numbers within that range, such as 1, 2, 3, 4, 5, and 6, regardless of the range. Additionally, whenever a numerical range is indicated in the present application, it means including any cited number (fraction or integer) within the indicated range. Unless otherwise specifically stated, all kinds of raw materials, reagents, instruments, and equipment used in the present application can be obtained through market purchases or can be prepared using existing equipment.
[0028] In this application, unless otherwise specified, the orientation terms such as "upper" and "lower" specifically refer to the drawing directions in the attached drawings. Additionally, in this application, terms such as "including" and "comprising" mean "including but not limited to". In this application, relative terms such as "first" and "second" are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. In this application, "and / or" describes the associated relationship of associated objects and indicates that three relationships can exist. For example, A and / or B can represent: A exists alone, A and B exist simultaneously, or B exists alone. Where A and B can be singular or plural. In this application, "at least one" means one or more, and "multiple" means two or more. "At least one kind", "at least one of the following (items)" or similar expressions refer to any combination of these items, including any combination of single items or plural items. For example, "at least one of a, b, or c", or, "at least one of a, b, and c" can both represent: a, b, c, a - b (i.e., a and b), a - c, b - c, or a - b - c, where a, b, and c can be single or multiple respectively.
[0029] As Figures 1 - 5 shown, an embodiment of the present application provides a strength detection tooling for the production of nanocrystalline films, including:
[0030] A support frame 6, the rear end of the support frame 6 is fixedly connected to the front end of the connecting plate 2, an extrusion frame 8 is correspondingly arranged above the support frame 6, the upper end of the extrusion frame 8 is fixedly connected to a support 9, and the middle part of the upper end of the support 9 is fixedly connected to a first electric telescopic rod 10;
[0031] A strength detection mechanism 5, the strength detection mechanism 5 is arranged in the middle of the inner side of the support frame 6, a second electric telescopic rod 3 for driving up and down displacement is arranged at the lower end of the strength detection mechanism 5, and a pressure sensor 11 is fixedly embedded in the upper middle part of the strength detection mechanism 5;
[0032] The strength detection mechanism 5 is composed of a main top column 51 in the middle and a plurality of rings 52 sleeved in sequence on the outside. The diameter of the main top column 51 is adjusted by the length of the adjusting rod 55 arranged at the lower end of the strength detection mechanism 5.
[0033] As Figure 3As shown in the figure: A cylindrical support plate 53 is fixedly connected to the upper end of the transmission rod of the second electric telescopic rod 3. A rectangular limiting groove 54 is formed in the middle of the upper side of the cylindrical support plate 53. Adjusting rods 55 are movably inserted into the left and right sides of the rectangular limiting groove 54. The middle parts of the adjusting rods 55 are inserted with adjusting screws 56 through threads. The opposite ends of the adjusting screws 56 are connected to the ends of the transmission rods of a double-shaft motor 57.
[0034] Specifically: The double-shaft motor 57 uses an existing motor on the market. The double-shaft motor 57 drives the adjusting screw 56 to rotate forward and backward, thereby driving the adjusting rod 55 to displace relatively or in the opposite direction.
[0035] As Figure 5 shown in the figure: A support plate 58 is provided at the lower end of the ring 52. The four corners of the lower end of the support plate 58 are fixedly connected to the upper end of the bottom plate 1 through support rods 4. Rectangular openings 59 are symmetrically formed on both sides of the support plate 58.
[0036] Specifically: The rectangular opening 59 is the space for the displacement of the adjusting rod 55. When the adjusting rod 55 extends outwards, it can lift a plurality of rings 52, thereby changing the area of the upper end of the main jacking column 51.
[0037] As Figure 3 shown in the figure: The cylindrical support plate 53 is movably inserted through the middle of the support plate 58.
[0038] Specifically: The cylindrical support plate 53 can move up and down, thereby driving the main jacking column 51 or the outer ring 52 to move downwards.
[0039] As Figure 3 shown in the figure: The thread directions of the adjusting screws 56 on the left and right sides are opposite.
[0040] Specifically: The rotation of the adjusting screw 56 can make the adjusting rod 55 displace relatively or in the opposite direction.
[0041] As Figure 1 shown in the figure: A bottom plate 1 is fixedly connected to the lower front end of the connecting plate 2. The lower end of the second electric telescopic rod 3 is fixedly connected to the upper end of the bottom plate 1.
[0042] Specifically: The second electric telescopic rod 3 uses an existing telescopic rod on the market. The second electric telescopic rod 3 drives the cylindrical support plate 53 to move up and down.
[0043] As Figure 1 shown in the figure: The outer side of the first electric telescopic rod 10 is fixedly connected to the upper end of the connecting plate 2 through a fixing plate.
[0044] Specifically: The first electric telescopic rod 10 uses an existing telescopic rod on the market. The first electric telescopic rod 10 drives the bracket 9 and the extrusion frame 8 to move up and down.
[0045] AsFigure 1 As shown: rectangular openings 7 are provided in the middle of the support frame 6 and the extrusion frame 8.
[0046] Specifically: the rectangular opening 7 is the space for the up and down displacement of the detection strength mechanism 5.
[0047] Principle of use: When the device is in use, first start the first electric telescopic rod 10 to drive the support 9 and the extrusion frame 8 to move upward, then lay the nanocrystalline film on the upper end of the support frame 6, and then start the first electric telescopic rod 10 again to drive the support 9 and the extrusion frame 8 to move downward, so as to squeeze and fix the outer side of the nanocrystalline film laid on the upper end of the support frame 6. Then start the second electric telescopic rod 3, and the second electric telescopic rod 3 will drive the cylindrical support plate 53 and the main jack 51 to move upward, so as to jack up the nanocrystalline film from the lower end. And the pressure sensor 11 can detect the extrusion force when the main jack 51 jacks up the nanocrystalline film upward until it is broken, so as to detect the strength of the nanocrystalline film;
[0048] And when it is necessary to change the area of the upper end of the main jack 51, start the biaxial motor 57 to drive the adjustment screw 56 to rotate forward and backward, so that the adjustment rod 55 moves relatively or in the opposite direction. When the adjustment rod 55 moves outward, the length of the extension of the adjustment rod 55 is increased. When the cylindrical support plate 53 moves upward, it can drive a plurality of rings 52 to move upward, so as to increase the area of the upper end of the main jack 51 and change the area of the upper end of the main jack 51.
[0049] The above are only specific embodiments of the present application, enabling those skilled in the art to understand or implement the present application. Various modifications to these embodiments will be obvious to those skilled in the art. The general principles defined in the present application can be implemented in other embodiments without departing from the spirit or scope of the present application. Therefore, the present application will not be limited to these embodiments shown in the present application, but will conform to the widest scope consistent with the principles and novel features claimed in the present application.
Claims
1. An intensity detection tooling for the production of nanocrystalline films, characterized in that, Including: A support frame (6), the rear end of the support frame (6) is fixedly connected to the front end of a connecting plate (2), an extrusion frame (8) is correspondingly arranged above the support frame (6), the upper end of the extrusion frame (8) is fixedly connected to a support (9), and the middle of the upper end of the support (9) is fixedly connected to a first electric telescopic rod (10); A detection strength mechanism (5), the detection strength mechanism (5) is arranged in the middle inside the support frame (6), a second electric telescopic rod (3) for driving up and down displacement is arranged at the lower end of the detection strength mechanism (5), and a pressure sensor (11) is fixedly embedded in the upper middle of the detection strength mechanism (5); The detection strength mechanism (5) is composed of a main top column (51) in the middle and a plurality of rings (52) sleeved on the outside in sequence, and the diameter of the main top column (51) is adjusted by the length of the adjusting rod (55) arranged at the lower end of the detection strength mechanism (5) when it expands.
2. The strength detection tooling for the production of nanocrystalline films according to claim 1, wherein: The upper end of the transmission rod of the second electric telescopic rod (3) is fixedly connected to a cylindrical support plate (53), a rectangular limiting groove (54) is opened in the middle of the upper side of the cylindrical support plate (53), the adjusting rod (55) is movably inserted into the left and right sides of the rectangular limiting groove (54), the middle of the adjusting rod (55) is inserted with an adjusting screw rod (56) through threads, and the opposite ends of the adjusting screw rod (56) are connected to the ends of the transmission rods of a double-shaft motor (57).
3. The strength detection tooling for the production of nanocrystalline films according to claim 1, characterized in that: A support plate (58) is arranged at the lower end of the ring (52), the four corners of the lower end of the support plate (58) are fixedly connected to the upper end of a bottom plate (1) through support rods (4), and rectangular openings (59) are symmetrically opened on both sides of the support plate (58).
4. The strength detection tooling for the production of nanocrystalline films according to claim 2, wherein: The cylindrical support plate (53) is movably inserted through the middle of the support plate (58).
5. The strength detection tooling for the production of nanocrystalline films according to claim 2, characterized in that: The thread directions of the adjusting screw rods (56) on the left and right sides are opposite.
6. The strength detection tooling for the production of nanocrystalline films according to claim 1, wherein: The front lower part of the connecting plate (2) is fixedly connected to a bottom plate (1), and the lower end of the second electric telescopic rod (3) is fixedly connected to the upper end of the bottom plate (1).
7. The strength detection tooling for the production of nanocrystalline films according to claim 1, characterized in that: The outside of the first electric telescopic rod (10) is fixedly connected to the upper end of the connecting plate (2) through a fixing plate.
8. The strength detection tooling for the production of nanocrystalline films according to claim 1, characterized in that: Rectangular through openings (7) are opened in the middle of both the support frame (6) and the extrusion frame (8).