Detection device for inorganic non-metallic materials

By introducing a limit structure into the detection device for inorganic non-metallic materials, and using electric push rods, push components and reset components to accurately locate the refractory material, the problem of insufficient limit in the existing device is solved, and uniform heating of the refractory material and the accuracy of the detection results are achieved.

CN223205412UActive Publication Date: 2025-08-08英格瓷(天津)新材料技术有限公司
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Patent Information

Application Number
CN202421381305.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-18
Publication Date
2025-08-08
Estimated Expiration
2034-06-18

AI Technical Summary

Technical Problem

The existing detection devices for inorganic non-metallic materials are difficult to limit the refractory during placement, and cannot guarantee that they are located at the center of the heating equipment and temperature sensors, resulting in errors in the detection results.

Method used

A detection device for inorganic non-metallic materials is designed, including a limit structure, which can achieve reasonable limits of refractory materials through electric push rods, pushing components and reset components, ensuring that it is located at the center of the heating equipment and temperature sensors, and is accurately adjusted and fixed by using a servo motor and telescopic spring.

Benefits of technology

The uniform heating of the refractory material is achieved, the error of the detection result is reduced, and the accuracy and efficiency of the detection are improved.

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    Figure CN223205412U_ABST
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Abstract

The utility model discloses a detection device for inorganic non-metallic materials, and belongs to the field of inorganic non-metallic material detection. The detection device for the inorganic non-metallic material comprises a detection box, heating equipment which is fixedly arranged at the top of the detection box and is communicated with the interior of the detection box, a controller arranged on one side of the detection box, and a display screen arranged on the controller, the detection device comprises a detection box, a sealing door hinged to the detection box, a placement plate longitudinally moving in the detection box, and a limiting structure arranged on the placement plate and used for limiting a refractory material, the limiting structure comprises an electric push rod which is fixedly arranged at the bottom end of the interior of the detection box and used for driving the placement plate to move, the detection device for the inorganic non-metallic material is provided with the limiting structure, and a refractory material is reasonably limited by utilizing a pushing assembly and a resetting assembly, so that the refractory material is conveniently placed in the center; and the refractory material is heated more uniformly.
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Description

Technical Field

[0001] The utility model relates to the field of inorganic non-metallic material detection, in particular to a detection device for inorganic non-metallic materials. Background Art

[0002] Inorganic non-metallic materials are a general term for all materials except organic polymer materials and metal materials. During the production process of inorganic non-metallic materials, it is necessary to test the heat-resistant and heat-insulating properties of refractory materials.

[0003] A Chinese utility model patent with publication number CN215179838U discloses a detection device for inorganic non-metallic materials. This patent utilizes a placing plate to load refractory materials, and simultaneously utilizes a controller, a temperature sensor, and a heating device to achieve fast and efficient heating detection, thereby reducing the input cost of detection and improving practicality. However, this patent makes it difficult to limit the position of the refractory material during placement, and cannot ensure that the refractory material is in the center of the heating device and the temperature sensor, which can easily cause errors in the detection results.

[0004] Therefore, the present invention provides a detection device for inorganic non-metallic materials to solve the above problems. Utility Model Content

[0005] (1) Technical problems solved

[0006] The utility model provides a detection device for inorganic non-metallic materials, which aims to solve the problems raised in the background technology that the existing detection device for inorganic non-metallic materials is difficult to limit the refractory material during the placement process, cannot ensure that the refractory material is in the center of the heating equipment and the temperature sensor, and is easy to cause errors in the detection results.

[0007] (2) Technical solution

[0008] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a detection device for inorganic non-metallic materials, comprising a detection box, a heating device fixedly arranged on the top of the detection box and connected to the interior of the detection box, a controller arranged on one side of the detection box, a display screen arranged on the controller, a closed door hinged on the detection box, and a placement plate that moves longitudinally inside the detection box, the detection device also includes a limiting structure arranged on the placement plate for limiting the refractory material; when in use, the refractory material is placed conveniently by opening the closed door, and in order to avoid the problem of uneven heating caused by the refractory material not being able to ensure that it is located at the center of the heating device and the temperature sensor during the placement process, the refractory material can be limited and fixed by the limiting structure.

[0009] In order to achieve reasonable limiting, the limiting structure includes an electric push rod fixedly arranged at the bottom end of the detection box for driving the placement plate to move, a pushing assembly arranged on the top of the placement plate for adjusting the horizontal position of the refractory material, and a reset assembly fixedly arranged on the detection box and located on one side of the pushing assembly for resetting the refractory material during the placement process; first, by opening the electric push rod, the electric push rod drives the placement plate to move downward, so that the refractory material can be pushed onto the placement plate from the closed door, and then the reset assembly and the pushing assembly are used to reset the refractory material, and then the electric push rod is used to drive the placement plate and the refractory material to move upward, so that the refractory material is close to the heating equipment, which is convenient for more uniform and stable heating, thereby realizing the entire limit detection process.

[0010] Preferably, in order to achieve reasonable left and right limit pushing; the pushing assembly includes two slide grooves symmetrically opened on the placement plate, sliders slidingly arranged in the two slide grooves, limit plates fixedly arranged on the top of the two sliders, threaded rods rotatably connected in the two slide grooves and horizontally passing through the two sliders, and servo motors respectively fixedly arranged on both sides of the placement plate and fixedly connected to one end of the two threaded rods, the sliders are screwed to the threaded rods; after the refractory material is placed on the placement plate, the threaded rods are driven by the servo motor to rotate, and then the sliders are driven to move in the slide groove. Since the threads of the threaded rods on both sides of the placement plate are opposite, the two limit plates can be driven to move in opposite directions, driving the limit plates toward one end of the refractory material at the center, thereby achieving limit fixation of the refractory material, and thus facilitating the limitation of the left and right sides of the refractory material.

[0011] Preferably, in order to achieve front and rear limiting of the refractory material; the reset assembly includes a telescopic rod fixedly arranged in the detection box on the side away from the closed door, a telescopic spring sleeved on the telescopic rod and a push plate fixedly arranged on the telescopic rod on the side close to the two limit plates, and the two ends of the telescopic spring are fixedly connected to the push plate and the telescopic rod respectively; the refractory material can be moved on the placement plate by manually pushing it to move to the push plate, and when it moves too much, the refractory material is released, and the telescopic spring on the back of the push plate drives the telescopic rod to reset, so that the refractory material is located on the temperature sensor at the center of the placement plate, thereby facilitating the limited placement of the refractory material.

[0012] Preferably, in order to make the temperature detection more standardized and avoid heat loss, a positive magnetic block is fixedly provided on the closed door, and a negative magnetic block that is magnetically attracted to the positive magnetic block is fixedly provided on the detection box; after placement, the closed door can be rotated and closed so that the positive magnetic block at the bottom is adsorbed and fixed to the negative magnetic block on the detection box, thereby fixing the closed door and reducing heat loss.

[0013] Preferably, in order to achieve systematic detection, a temperature sensor in contact with the refractory material is provided on the top of the placement plate, and the temperature sensor is connected to the input end of the controller; after heating, the temperature sensor transmits the temperature of the refractory material to the storage module inside the controller for recording, and displays it on the display screen, and compares it with the threshold value in the storage module. When the temperature is higher than the set value, it means that the refractory material is unqualified, otherwise, it is qualified, until the entire working sequence is completed.

[0014] Preferably, in order to achieve rapid control of the heating device, a control button is provided on the controller, and the controller is electrically connected to the heating device; when in use, the switch of the heating device can be controlled by utilizing the control button on the surface of the controller.

[0015] (3) Beneficial effects

[0016] The inorganic non-metallic material detection device realizes reasonable positioning of the refractory material by setting a limiting structure and utilizing a pushing component and a resetting component, so as to facilitate positioning the refractory material at the center and make the refractory material heated more evenly. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 This is a schematic diagram of the three-dimensional structure of a detection device for inorganic non-metallic materials;

[0018] Figure 2 It is a schematic diagram of the structure of part of a detection device for inorganic non-metallic materials;

[0019] Figure 3 This is a partial structural diagram of a detection device for inorganic non-metallic materials;

[0020] Figure 4 This is a schematic diagram of a limit structure of a detection device for inorganic non-metallic materials;

[0021] Figure 5 This is a flow chart of a detection device for inorganic non-metallic materials.

[0022] In the picture:

[0023] 1. Test box;

[0024] 2. Heating equipment;

[0025] 3. Controller; 31. Display screen; 32. Control buttons; 33. Temperature sensor;

[0026] 4. Limiting structure; 41. Electric push rod;

[0027] 42. Pushing assembly; 421. Limiting plate; 422. Slide; 423. Slider; 424. Threaded rod; 425. Servo motor;

[0028] 43. Reset assembly; 431. Push plate; 432. Telescopic spring; 433. Telescopic rod;

[0029] 5. Closed door; 51. Positive magnetic block; 52. Negative magnetic block;

[0030] 6. Place the board. DETAILED DESCRIPTION

[0031] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0032] The utility model provides a detection device for inorganic non-metallic materials, such as Figure 1-5 As shown, the detection device for inorganic non-metallic materials includes a detection box 1, a heating device 2 fixedly arranged on the top of the detection box 1 and connected to the interior of the detection box 1, a controller 3 arranged on one side of the detection box 1, a display screen 31 arranged on the controller 3, a closed door 5 hinged on the detection box 1, and a placement plate 6 that moves longitudinally inside the detection box 1. The detection device also includes a limiting structure 4 arranged on the placement plate 6 for limiting the refractory material. The limiting structure 4 includes an electric push rod 41 fixedly arranged at the bottom end of the interior of the detection box 1 for driving the placement plate 6 to move, a pushing component 42 arranged on the top of the placement plate 6 for adjusting the horizontal position of the refractory material, and a reset component 43 fixedly arranged on the detection box 1 and located on one side of the pushing component 42 for resetting the refractory material during the placement process.

[0033] When in use, the closed door 5 is opened to facilitate the placement of refractory materials. During the placement process, in order to avoid the refractory materials from being unable to ensure that they are located at the center of the heating equipment 2 and the temperature sensor 33, causing the problem of uneven heating, the refractory materials can be limited and fixed by the limiting structure 4. First, the electric push rod 41 is opened, and the electric push rod 41 drives the placement plate 6 to move downward, so that the refractory materials can be pushed onto the placement plate 6 from the closed door 5. At this time, the reset component 43 and the pushing component 42 are used to reset and limit the refractory materials, and then the electric push rod 41 is used to drive the placement plate 6 and the refractory materials to move upward, so that the refractory materials are close to the heating equipment 2, which facilitates more uniform and stable heating, thereby completing the entire limit detection process.

[0034] Specifically, the pushing assembly 42 includes two slide grooves 422 symmetrically opened on the placement plate 6, sliders 423 slidingly arranged in the two slide grooves 422, limit plates 421 fixedly arranged on the top of the two sliders 423, threaded rods 424 rotatably connected in the two slide grooves 422 and horizontally passing through the two sliders 423, and servo motors 425 fixedly arranged on both sides of the placement plate 6 and fixedly connected to one end of the two threaded rods 424, and the sliders 423 are screwed to the threaded rods 424; after the refractory material is placed on the placement plate 6, the servo motor 425 is driven to drive the threaded rod 424 to rotate, thereby driving the sliders 423 to move in the slide grooves 422. Since the threads of the threaded rods 424 on both sides of the placement plate 6 are opposite, the two limit plates 421 can be driven to move in opposite directions, driving the limit plates 421 toward one end of the refractory material at the center, thereby achieving the limit fixation of the refractory material, thereby facilitating the limit of the left and right sides of the refractory material.

[0035] Furthermore, the reset assembly 43 includes a telescopic rod 433 fixedly arranged in the detection box 1 on the side away from the closed door 5, a telescopic spring 432 mounted on the telescopic rod 433, and a push plate 431 fixedly arranged on the side of the telescopic rod 433 close to the two limit plates 421. The two ends of the telescopic spring 432 are fixedly connected to the push plate 431 and the telescopic rod 433 respectively; at the same time, in order to achieve the front and rear limit of the refractory material, the refractory material can be manually pushed on the placement plate 6 to move it to the push plate 431. When it moves too much, the refractory material is released, and the telescopic spring 432 on the back of the push plate 431 drives the telescopic rod 433 to reset, so that the refractory material is located on the temperature sensor 33 at the center of the placement plate 6, thereby facilitating the limited placement of the refractory material.

[0036] Among them, in order to make the temperature detection more standardized and avoid heat loss, a positive magnetic block 51 is fixedly provided on the closed door 5, and a negative magnetic block 52 that is magnetically attracted to the positive magnetic block 51 is fixedly provided on the detection box 1; after placement, the closed door 5 can be rotated and closed so that the positive magnetic block 51 at the bottom is adsorbed and fixed to the negative magnetic block 52 on the detection box 1, thereby fixing the closed door 5 and reducing heat loss.

[0037] Furthermore, a temperature sensor 33 in contact with the refractory material is provided on the top of the placement plate 6. The temperature sensor 33 is connected to the input end of the controller 3. A control button 32 is provided on the controller 3, and the controller 3 is electrically connected to the heating device 2. When in use, the switch of the heating device 2 can be controlled by utilizing the control button 32 on the surface of the controller 3. At the same time, after heating, the temperature sensor 33 transmits the temperature of the refractory material to the storage module inside the controller 3 for recording, and displays it through the display screen 31, and compares it with the threshold value in the storage module. When the temperature is higher than the set value, it means that the refractory material is unqualified. Otherwise, it is qualified, until the entire working sequence is completed.

[0038] It should be noted that the heating equipment belongs to the existing technology.

[0039] The above description is only a preferred specific implementation method of the present invention, but the protection scope of the present invention is not limited thereto. Any equivalent replacement or change made by any technician familiar with the field within the technical scope disclosed by the present invention according to the technical solution and the utility model concept of the present invention should be covered by the protection scope of the present invention.

Claims

1. A detection device for inorganic non-metallic materials, comprising a detection box (1), a heating device (2) fixedly arranged on the top of the detection box (1) and connected to the interior of the detection box (1), a controller (3) arranged on one side of the detection box (1), a display screen (31) arranged on the controller (3), a closed door (5) hinged on the detection box (1), and a placement plate (6) movable longitudinally inside the detection box (1); Its characteristics are: The detection device further comprises a limiting structure (4) provided on the placement plate (6) for limiting the position of the refractory material; The limiting structure (4) comprises an electric push rod (41) fixedly arranged at the bottom end of the interior of the detection box (1) for driving the placement plate (6) to move, a pushing assembly (42) arranged at the top of the placement plate (6) for adjusting the horizontal position of the refractory material, and a reset assembly (43) fixedly arranged on the detection box (1) and located on one side of the pushing assembly (42) for resetting the refractory material during the placement process.

2. The inorganic non-metallic material detection device according to claim 1, characterized in that: The pushing assembly (42) includes two chute (422) symmetrically arranged on the placement plate (6), sliders (423) respectively slidably arranged in the two chute (422), limit plates (421) respectively fixedly arranged on the tops of the two sliders (423), threaded rods (424) respectively rotatably connected in the two chute (422) and laterally passing through the two sliders (423), and servo motors (425) respectively fixedly arranged on both sides of the placement plate (6) and fixedly connected to one end of the two threaded rods (424), and the sliders (423) are screwed to the threaded rods (424).

3. The inorganic non-metallic material detection device according to claim 2, characterized in that: The reset assembly (43) comprises a telescopic rod (433) fixedly arranged in the detection box (1) on a side away from the closed door (5), a telescopic spring (432) sleeved on the telescopic rod (433), and a push plate (431) fixedly arranged on a side of the telescopic rod (433) close to the two limit plates (421), and the two ends of the telescopic spring (432) are fixedly connected to the push plate (431) and the telescopic rod (433) respectively.

4. The inorganic non-metallic material detection device according to claim 1, characterized in that: A positive magnetic block (51) is fixedly provided on the closed door (5), and a negative magnetic block (52) magnetically attracted to the positive magnetic block (51) is fixedly provided on the detection box (1).

5. The inorganic non-metallic material detection device according to claim 1, characterized in that: A temperature sensor (33) in contact with the refractory material is provided on the top of the placement plate (6), and the temperature sensor (33) is connected to the input end of the controller (3).

6. The inorganic non-metallic material detection device according to claim 1, characterized in that: The controller (3) is provided with a control button (32), and the controller (3) is electrically connected to the heating device (2).

Citation Information

Patent Citations

  • Detection device for inorganic non-metallic materials

    CN215179838U