Intelligent inspection device for detection sample
By designing an intelligent inspection device, the automatic stirring, air drying and hardness detection of cement is achieved by using flipped components, air drying components and crushing components, and the problems of low cement detection efficiency and high safety risks in the existing technology are solved, the detection efficiency and safety are improved, and the cost is reduced.
Patent Information
- Application Number
- CN202421543074.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-02
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-07-02
AI Technical Summary
The existing cement testing technology has problems such as difficulty in handling, low hardening efficiency and high safety risks, resulting in low detection efficiency and increased cost.
An intelligent inspection device is designed, including flip assembly, air-drying assembly and crushing assembly. By installing components such as boxes, fan blades, crushing rods and pressure sensors, automatic stirring, air-drying and hardness detection of cement is achieved, avoiding the moving operation of cement blocks.
The device improves cement hardening speed, reduces safety risks during the inspection process, increases inspection efficiency and reduces enterprise costs.
Smart Images

Figure CN222994099U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of intelligent sample submission devices, in particular to an intelligent sample submission device for detecting samples. Background Art
[0002] Cement: A powdery hydraulic inorganic binder. After adding water and stirring, it becomes a slurry, which can harden in the air or in water and can firmly cement materials such as sand and stone together. In the process of cement production or research and development, the hardness of cement itself has always been a relatively important point, so the detection of cement hardness is an inevitable detection item.
[0003] Existing cement detections are generally made in a certain mold outside. However, since the cement blocks for detection are relatively large, handling is rather troublesome, and there are risks such as dropping. Moreover, during the production process, the cement is generally allowed to harden naturally, with extremely low efficiency, affecting subsequent detection work and also increasing the cost of the enterprise to a certain extent.
[0004] Therefore, a new intelligent sample submission device for detecting samples is proposed to solve the above problems. Content of the Utility Model
[0005] The purpose of the utility model is to provide an intelligent sample submission device for detecting samples to solve the technical problems raised in the background art.
[0006] To solve the above technical problems, the utility model is realized through the following technical solutions:
[0007] The utility model is an intelligent sample submission device for detecting samples, including a flipping assembly, and the flipping assembly includes an installation box;
[0008] A drying assembly, the drying assembly includes two right-angle brackets symmetrically installed at the upper end of the installation box. A coupling is installed between the two right-angle brackets. An installation cylinder is installed inside the coupling. A fan blade is installed on the outer surface of the installation cylinder. The fan blade is installed at one end of the coupling on the installation cylinder close to the installation box. A first gear is installed at the end of the coupling far from the installation box, and the first gear is installed outside the installation cylinder;
[0009] A crushing assembly, the crushing assembly includes a crushing rod installed inside the installation cylinder. A crushing head is installed at one end of the crushing rod close to the installation box. A sliding cylinder is installed at the end of the crushing rod far from the installation box. An installation block is installed at the end of the sliding cylinder far from the installation box. A pressure sensor is installed at one end of the installation block close to the installation block inside the sliding cylinder. One end of the pressure sensor far from the installation box is connected to one end of the installation block close to the installation box. A spring is installed at the end of the pressure sensor far from the installation block, and one end of the spring far from the installation block is connected to the end of the crushing rod far from the installation box.
[0010] Preferably, a limiting block is installed at one end of the outer ring of the crushing rod close to the crushing head, and the diameter of the limiting block is larger than the inner diameter of the installation cylinder.
[0011] Preferably, the output end of the pressure sensor is connected to the input end of an external terminal.
[0012] Preferably, an air rod is installed at one end of the mounting block away from the sliding cylinder, a cylinder is installed at one end of the air rod away from the mounting block, a first mounting plate is installed at one end of the cylinder away from the air rod, and a second mounting plate is installed at one end of the first mounting plate close to the mounting box.
[0013] Preferably, an air rod is installed at one end of the mounting block away from the sliding cylinder, a cylinder is installed at one end of the air rod away from the mounting block, a first mounting plate is installed at one end of the cylinder away from the air rod, and a second mounting plate is installed at one end of the first mounting plate close to the mounting box.
[0014] Preferably, a bearing is installed at one end of the inner side wall of the mounting box, a second transmission shaft is installed at the other end of the bearing, a material box is installed at the upper end of the second transmission shaft, a second motor is installed at one end of the outer side wall of the mounting box away from the bearing, and the end of the second motor close to the bearing is connected to the end of the second transmission shaft away from the bearing.
[0015] Compared with the prior art, the advantages of the present utility model are as follows:
[0016] For this intelligent sample submission device for inspection, through the provided crushing assembly, air-drying assembly and flipping assembly, cement can be directly poured into the material box for stirring. After sufficient stirring, the fan blades are started to accelerate the hardening process of the liquid cement at this time, and after air-drying, the hardness of the cement is directly detected by the central crushing head. This device does not need to move the cement blocks, has high safety, and a relatively fast hardening speed, greatly increasing the work efficiency.
[0017] Of course, when implementing any product of the present utility model, it is not necessarily required to achieve all the above-mentioned advantages simultaneously. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the drawings required for describing the embodiments will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present utility model, and for those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0019] Figure 1 It is the installation configuration diagram of the present utility model;
[0020] Figure 2Structural diagram of the crushing component of the present utility model;
[0021] Figure 3 Cross-sectional view structural diagram of the crushing rod and the sliding cylinder of the present utility model;
[0022] Figure 4 Structural diagram of the air-drying component of the present utility model;
[0023] Figure 5 Structural diagram of the flipping component of the present utility model.
[0024] In the attached drawings, the list of components represented by each reference numeral is as follows:
[0025] 100, crushing component; 110, crushing rod; 111, crushing head; 112, limiting block; 120, sliding cylinder; 121, pressure sensor; 122, spring; 130, mounting block; 140, air rod; 150, cylinder; 160, first mounting plate; 170, second mounting plate; 200, air-drying component; 210, first gear; 220, mounting cylinder; 230, fan blade; 240, coupling; 250, right-angle bracket; 260, second gear; 270, first transmission shaft; 280, first motor; 300, flipping component; 310, mounting box; 320, bearing; 330, second transmission shaft; 340, second motor; 350, material box. Detailed implementation manners
[0026] In the following, only some exemplary embodiments are simply described. As those skilled in the art can recognize, the described embodiments can be modified in various different ways without departing from the spirit or scope of the embodiments of the present utility model. Therefore, the drawings and the description are considered to be exemplary in nature rather than restrictive.
[0027] In the description of the embodiments of the present utility model, it should be understood that the orientation or positional relationship indicated by terms such as "length", "vertical", "horizontal", "top", "bottom", etc. is based on the orientation or positional relationship shown in the attached drawings, and is only for the convenience of describing the embodiments of the present utility model 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 embodiments of the present utility model.
[0028] In order to better understand the purpose, structure and function of the present utility model, the intelligent sample submission device for detecting samples of the present utility model will be further described in detail below with reference to the attached drawings.
[0029] Please refer to Figures 1-5As shown in the figure, the present embodiment is an intelligent sample submission device for detecting samples, including an air-drying component 200. The air-drying component 200 includes two right-angle brackets 250 symmetrically installed at the upper end of the installation box 310. A coupling 240 is installed between the two right-angle brackets 250. An installation cylinder 220 is installed inside the coupling 240. A fan blade 230 is installed on the outer surface of the installation cylinder 220. The fan blade 230 is installed at one end of the coupling 240 on the installation cylinder 220 close to the installation box 310. A first gear 210 is installed at the end of the coupling 240 away from the installation box 310. The first gear 210 is installed outside the installation cylinder 220; a crushing component 100. The crushing component 100 includes a crushing rod 110 installed inside the installation cylinder 220. A crushing head 111 is installed at one end of the crushing rod 110 close to the installation box 310. A sliding cylinder 120 is installed at the end of the crushing rod 110 away from the installation box 310. An installation block 130 is installed at the end of the sliding cylinder 120 away from the installation box 310. A pressure sensor 121 is installed at one end of the installation block 130 close to the installation block 130 inside the sliding cylinder 120. One end of the pressure sensor 121 away from the installation box 310 is connected to one end of the installation block 130 close to the installation box 310. A spring 122 is installed at the end of the pressure sensor 121 away from the installation block 130. One end of the spring 122 away from the installation block 130 is connected to the end of the crushing rod 110 away from the installation box 310. A limiting block 112 is installed at one end of the outer circle of the crushing rod 110 close to the crushing head 111. The diameter of the limiting block 112 is larger than the inner diameter of the installation cylinder 220. The output end of the pressure sensor 121 is connected to the input end of an external terminal. An air rod 140 is installed at the end of the installation block 130 away from the sliding cylinder 120. A cylinder 150 is installed at the end of the air rod 140 away from the installation block 130. A first mounting plate 160 is installed at the end of the cylinder 150 away from the air rod 140. A second mounting plate 170 is installed at one end of the first mounting plate 160 close to the installation box 310. A first motor 280 is installed at one end of the second mounting plate 170 close to the air rod 140. A first transmission shaft 270 is installed at the end of the first motor 280 away from the second mounting plate 170. A second gear 260 is installed at the end of the first transmission shaft 270 away from the first motor 280. The second gear 260 meshes with the first gear 210. During operation, when the cement mixing is completed, directly start the first motor 280. The first motor 280 drives the second gear 260 to rotate through the first transmission shaft 270. The second gear 260 immediately drives the first gear 210 meshing with it to rotate. When the first gear 210 rotates, it drives the central installation cylinder 220 to rotate in the coupling 240. The installation cylinder 220 then drives the fan blade 230 to rotate and air-dry the cement below. When the cement is air-dried, start the cylinder 150 to push the air rod 140 downward.When the air rod 140 moves downward, it drives the sliding cylinder 120 below the mounting block 130 to move downward synchronously. When the sliding cylinder 120 moves, the crushing rod 110 inside it drives the crushing head 111 at the bottom end to move downward until it touches the cement. When the air cylinder 150 continuously pushes the air rod 140 downward, the crushing head 111 continuously applies pressure to the cement in the material box 350, and transmits the mutual force to the pressure sensor 121 through the spring 122 at the top end of the crushing rod 110. Subsequently, the pressure sensor 121 synchronously transmits the data to the external terminal, and the external terminal immediately receives this data and displays it for the staff to view. When the crushing head 111 breaks the surface of the cement, the spring 122 will instantly lose a large part of its force. Relatively, the pressure sensor 121 will also lose more force, and the data on the external terminal will also change significantly. At this time, it represents the end of the crushing experiment.
[0030] The flipping assembly 300, the flipping assembly 300 includes a mounting box 310, one end of the inner side wall of the mounting box 310 is provided with a bearing 320, the other end of the bearing 320 is provided with a second transmission shaft 330, the upper end of the second transmission shaft 330 is provided with a material box 350, one end of the outer side wall of the mounting box 310 far from the bearing 320 is provided with a second motor 340, and one end of the second motor 340 close to the bearing 320 is connected to the other end of the second transmission shaft 330 far from the bearing 320. During operation, directly pour the cement into the material box 350, then add water and stir. After stirring, directly use the upper fan blade 230 to air-dry the cement in the material box 350. And when the crushing experiment is over, directly start the second motor 340. The second motor 340 drives the second transmission shaft 330 to rotate around the bearing 320. When the second transmission shaft 330 rotates, it will also drive the material box 350 to rotate. When the material box 350 rotates 180 degrees, the cement blocks in the material box 350 will fall downward, saving the subsequent cleaning work.
[0031] Working principle: During operation, directly pour cement into the material box 350, then add water and stir. After the cement is stirred, directly start the first motor 280. The first motor 280 drives the second gear 260 to rotate through the first transmission shaft 270. The second gear 260 immediately drives the first gear 210 meshing with it to rotate. When the first gear 210 rotates, it drives the central mounting cylinder 220 to rotate in the coupling 240. The mounting cylinder 220 then drives the fan blade 230 to rotate and dry the cement below. When the cement is dried, start the cylinder 150 to push the air rod 140 downward. When the air rod 140 is pushed downward, it drives the sliding cylinder 120 below the mounting block 130 to move downward synchronously. When the sliding cylinder 120 moves, the crushing rod 110 inside drives the crushing head 111 at the bottom to move downward until it touches the cement. When the cylinder 150 continuously pushes the air rod 140 downward, the crushing head 111 continuously exerts pressure on the cement in the material box 350, and transmits the mutual force to the pressure sensor 121 through the spring 122 at the top of the crushing rod 110. Subsequently, the pressure sensor 121 synchronously transmits the data to the external terminal, and the external terminal immediately receives this data and displays it for the staff to view. When the crushing head 111 breaks the surface of the cement, the spring 122 will instantly lose a large part of its force. Correspondingly, the pressure sensor 121 will also lose more force, and the data on the external terminal will also change significantly. At this time, it represents the end of the crushing experiment. After the crushing experiment, directly start the second motor 340. The second motor 340 drives the second transmission shaft 330 to rotate around the bearing 320. When the second transmission shaft 330 rotates, it also drives the material box 350 to rotate. When the material box 350 rotates 180 degrees, the cement blocks in the material box 350 will fall downward, saving the subsequent cleaning work.
[0032] It can be understood that the present utility model is described through some embodiments. Those skilled in the art know that without departing from the spirit and scope of the present utility model, various changes or equivalent replacements can be made to these features and embodiments. Additionally, under the teaching of the present utility model, these features and embodiments can be modified to adapt to specific situations and materials without departing from the spirit and scope of the present utility model. Therefore, the present utility model is not limited by the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of this application belong to the scope protected by the present utility model.
Claims
1. An intelligent sample delivery device, characterized in that: include: A flip assembly (300), the flip assembly (300) comprising a mounting box (310); An air-drying component (200), the air-drying component (200) comprising two right-angle brackets (250) symmetrically mounted on the upper end of an installation box (310), a coupling (240) being mounted between the two right-angle brackets (250), a mounting tube (220) being mounted inside the coupling (240), a fan blade (230) being mounted on the outer surface of the mounting tube (220), the fan blade (230) being mounted on one end of the coupling (240) close to the installation box (310) on the installation tube (220), a first gear (210) being mounted on one end of the coupling (240) away from the installation box (310), and the first gear (210) being mounted outside the installation tube (220); A crushing assembly (100), the crushing assembly (100) comprising a crushing rod (110) installed in a mounting cylinder (220), a crushing head (111) installed at one end of the crushing rod (110) close to the mounting box (310), a sliding cylinder (120) installed at one end of the crushing rod (110) away from the mounting box (310), a mounting block (130) installed at one end of the sliding cylinder (120) away from the mounting box (310), and the mounting block (130) and the sliding cylinder (120) are connected to each other. A pressure sensor (121) is installed at one end of the inner portion of the pressure sensor (121) close to the mounting block (130), and one end of the pressure sensor (121) away from the mounting box (310) is connected to one end of the mounting block (130) close to the mounting box (310). A spring (122) is installed at one end of the pressure sensor (121) away from the mounting block (130), and one end of the spring (122) away from the mounting block (130) is connected to one end of the breaker rod (110) away from the mounting box (310).
2. The intelligent sample delivery device according to claim 1, characterized in that: A limiting block (112) is installed at one end of the outer ring of the crushing rod (110) close to the crushing head (111), and the diameter of the limiting block (112) is larger than the inner ring diameter of the mounting cylinder (220).
3. The intelligent sample delivery device according to claim 1, characterized in that: The output end of the pressure sensor (121) is connected to the input end of the external terminal.
4. The intelligent sample delivery device according to claim 1, characterized in that: A gas rod (140) is installed at one end of the mounting block (130) away from the sliding cylinder (120), a gas cylinder (150) is installed at one end of the gas rod (140) away from the mounting block (130), a first mounting plate (160) is installed at one end of the cylinder (150) away from the gas rod (140), and a second mounting plate (170) is installed at one end of the first mounting plate (160) close to the mounting box (310).
5. The intelligent sample delivery device according to claim 4, characterized in that: A first motor (280) is installed at one end of the second mounting plate (170) close to the gas rod (140), a first transmission shaft (270) is installed at one end of the first motor (280) away from the second mounting plate (170), a second gear (260) is installed at one end of the first transmission shaft (270) away from the first motor (280), and the second gear (260) is meshed with the first gear (210).
6. The intelligent sample delivery device according to claim 1, characterized in that: A bearing (320) is installed at one end of the inner wall of the installation box (310), a second transmission shaft (330) is installed at the other end of the bearing (320), a material box (350) is installed at the upper end of the second transmission shaft (330), and a second motor (340) is installed at one end of the outer wall of the installation box (310) away from the bearing (320), and one end of the second motor (340) close to the bearing (320) is connected to one end of the second transmission shaft (330) away from the bearing (320).