Material uniformity detection probe for raw material mixing equipment

By designing an adjustable detection probe mechanism, the problem of fixed detection position in the mixing device was solved, enabling detection at any position and improving the practicality of the mixing equipment.

CN224189983UActive Publication Date: 2026-05-01山东诺迅新能源有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
山东诺迅新能源有限公司
Filing Date
2025-01-20
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

The detection probe of the existing mixing device is installed in a fixed position, which limits the detection location and makes it impractical.

Method used

The design incorporates a mechanism for independent movement and fixation in the horizontal, vertical, and longitudinal directions. Through the combination of components such as extension frame, slide rail, slide sleeve, connecting frame, longitudinal slide, slider, slide sleeve II, and vertical rod, the detection probe can be fixed at any position.

Benefits of technology

It enables arbitrary adjustment and fixation of the detection probe, improving the practicality of material uniformity detection in mixing equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of raw material mixing, in particular to a material uniformity detection probe for raw material mixing equipment, which is provided with a mechanism capable of respectively and independently moving and fixing in the transverse direction, the longitudinal direction and the vertical direction, so that the detection at any position can be realized, and the practicability is improved. Comprising a material mixing mechanism and a detection probe, and further comprises extension frames, transverse moving sliding rails, sliding sleeves, a connecting frame, longitudinal moving sliding frames, sliding blocks, second sliding sleeves, a vertical rod and a holding disc, the upper middle portions of the left side and the right side of the material mixing mechanism are connected with the middle portions of the inner ends of the extension frames correspondingly, and the front sides and the rear sides of the inner ends of the two extension frames are connected with the left ends and the right ends of the transverse moving sliding rails correspondingly; a longitudinal moving mechanism is arranged between the longitudinal moving sliding frame and the sliding block, a second sliding sleeve is arranged in the sliding block, the inner side of the second sliding sleeve is vertically connected with the outer side of the vertical rod in a sliding mode, a jacking mechanism is arranged between the sliding sleeve and the vertical rod, the bottom end of the vertical rod is connected with the top end of the holding disc, and the top end of the vertical rod is connected with the middle of the bottom end of the holding disc.
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Description

Technical Field

[0001] This utility model relates to the technical field of raw material mixing, specifically to a material uniformity detection probe for raw material mixing equipment. Background Technology

[0002] A mixing device is a device that uses mechanical force and gravity to uniformly mix two or more materials. It is widely used in various industries and daily life. A mixing device can combine multiple materials into a uniform mixture, such as mixing cement, sand, gravel and water into wet concrete.

[0003] To facilitate testing, a monitoring probe needs to be installed inside the device to detect its uniformity. For example, a liquid fertilizer fermentation tank with patent publication number CN214400298U has a detection probe, an ultrasonic level gauge, and a dispersive feeder installed inside the arc top of the fermentation tank, which extend downward from the top through the grid to a certain length.

[0004] However, due to its fixed internal installation location and limited detection range, its practicality is insufficient. Utility Model Content

[0005] (a) Technical problems to be solved

[0006] To address the shortcomings of existing technologies, this utility model provides a material uniformity detection probe for raw material mixing equipment, which is equipped with separate movable and fixed mechanisms for horizontal, vertical, and longitudinal directions, enabling detection at any position and improving practicality.

[0007] (II) Technical Solution

[0008] To achieve the above objectives, this utility model provides the following technical solution: a material uniformity detection probe for a raw material mixing equipment, comprising a mixing mechanism and a detection probe, and further comprising an extension frame, a transverse slide rail, a sliding sleeve, a connecting frame, a longitudinal slide, a slider, a second sliding sleeve, a vertical rod, and a gripping plate. The upper and middle parts of the left and right sides of the mixing mechanism are respectively connected to the middle of the inner end of a set of extension frames. The front and rear sides of the inner ends of the two sets of extension frames are respectively connected to the left and right ends of a set of transverse slide rails. The outer walls of the two sets of transverse slide rails are respectively slidably connected to the inner wall of a set of sliding sleeves. A clamping mechanism is provided between the sliding sleeve and the transverse slide rail. The top ends of the two sets of sliding sleeves are connected to the front and rear ends of the longitudinal slide via the connecting frame. The inner side of the longitudinal slide is longitudinally slidably connected to the outer side of the slider. A longitudinal movement mechanism is provided between the longitudinal slide and the slider. A second sliding sleeve is provided inside the slider. The inner side of the second sliding sleeve is vertically slidably connected to the outer side of the vertical rod. A tightening mechanism is provided between the sliding sleeve and the vertical rod. The bottom end of the vertical rod is connected to the top end of the gripping plate, and the top end of the vertical rod is connected to the middle of the bottom end of the gripping plate.

[0009] Preferably, the tightening mechanism includes a tightening sleeve, a tightening screw, and a tightening handle. The upper middle part of the front side of the sliding sleeve is connected to the inner side of the tightening sleeve. The inner wall of the tightening sleeve is screwed to the outer wall of the tightening screw. The front side of the tightening screw is connected to the middle part of the rear side of the tightening handle.

[0010] Preferably, the longitudinal movement mechanism includes a constraint frame, a threaded rod, a screw pan, and an internal threaded frame. The outer right end of the longitudinal movement slide is connected to the inner end of the constraint frame. The threaded rod is longitudinally rotatably connected to the middle of the constraint frame. The front side of the threaded rod is connected to the middle of the rear side of the screw pan. The right side of the slide block is connected to the left side of the internal threaded frame. The inner wall of the internal threaded frame is screwed to the outer wall of the threaded rod.

[0011] Preferably, it also includes a corrugated sheath, wherein the outer sides of the threaded rods on the front and rear sides of the internal threaded frame are respectively connected to the inner ends of a set of corrugated sheaths.

[0012] Preferably, the clamping mechanism includes a clamping sleeve, a clamping rod, a spring, and a pull plate. The middle part of the outer side of each set of sleeves is connected to the inner side of a set of clamping sleeves. The inner wall of the clamping sleeve is slidably connected to the outer wall of the clamping rod. The outer end of the clamping rod is connected to the middle part of the inner end of the pull plate. A spring is connected between the outer side of the clamping sleeve at the outer end of the sleeve and the outer side of the inner end of the pull plate.

[0013] Preferably, it also includes brushes, with the inner ends of a set of brushes respectively connected to the left and right sides of the sliding sleeve.

[0014] (III) Beneficial Effects

[0015] Compared with the prior art, this utility model provides a material uniformity detection probe for raw material mixing equipment, which has the following beneficial effects:

[0016] The mixing mechanism and the main body of the structure are connected by an extension frame. During testing, the slider is forced by the longitudinal movement mechanism, causing it to slide to the corresponding longitudinal position under the constraint of the longitudinal slide frame. Then, it slides laterally under the constraint of the transverse slide rail by two sets of sliding sleeves, moving to the corresponding transverse position. It is then fixed with the assistance of the clamping mechanism. Finally, the vertical rod is slid vertically under the constraint of the sliding sleeve by the grip plate, moving the mixing mechanism to the corresponding height position. It is then fixed by the top clamping mechanism, thereby allowing the material at that position to be tested. The structure is equipped with separate mechanisms for transverse, longitudinal, and vertical movement and fixing, enabling testing at any position and improving practicality. Attached Figure Description

[0017] Figure 1 This is an axial view illustrating the structure of this utility model.

[0018] Figure 2 This utility model Figure 1 The right view;

[0019] Figure 3 This utility model Figure 2 Front view of section A;

[0020] Figure 4 This utility model Figure 1 The top view.

[0021] The following are labels in the attached diagram: 1. Mixing mechanism; 2. Detection probe; 3. Extension frame; 4. Transverse slide rail; 5. Sliding sleeve; 6. Connecting frame; 7. Longitudinal slide; 8. Sliding block; 9. Sliding sleeve II; 10. Vertical rod; 11. Handle; 12. Tightening screw sleeve; 13. Tightening screw; 14. Tightening handle; 15. Constraint frame; 16. Threaded rod; 17. Tightening disc; 18. Internal thread frame; 19. Corrugated sleeve; 20. Clamping sliding sleeve; 21. Clamping sliding rod; 22. Spring; 23. Pull plate; 24. Brush. Detailed Implementation

[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0023] Example

[0024] Please see Figure 1-4A material uniformity detection probe for a raw material mixing equipment includes a mixing mechanism 1 and a detection probe 2, as well as an extension frame 3, a transverse slide rail 4, a sliding sleeve 5, a connecting frame 6, a longitudinal slide 7, a slider 8, a second sliding sleeve 9, a vertical rod 10, and a grip plate 11. The upper middle parts of the left and right sides of the mixing mechanism 1 are respectively connected to the middle of the inner end of a set of extension frames 3. The front and rear sides of the inner ends of the two sets of extension frames 3 are respectively connected to the left and right ends of a set of transverse slide rails 4. The outer walls of the two sets of transverse slide rails 4 are respectively slidably connected to the inner walls of a set of sliding sleeves 5. A clamping mechanism is provided between the sliding sleeves 5 and the transverse slide rails 4. The top ends of the two sets of sliding sleeves 5 are connected to the front and rear ends of the longitudinal slide 7 via the connecting frame 6. The inner side of the longitudinal slide 7 is longitudinally slidably connected to the outer side of the slider 8. A longitudinal movement mechanism is provided between the longitudinal slide 7 and the slider 8. The slider 8 is internally equipped with... A second sliding sleeve 9 is provided, with its inner side vertically slidingly connected to the outer side of the vertical rod 10. A clamping mechanism is provided between the second sliding sleeve 9 and the vertical rod 10. The bottom end of the vertical rod 10 is connected to the top end of the grip plate 11, and the top end of the vertical rod 10 is connected to the middle of the bottom end of the grip plate 11. The mixing mechanism 1 and the main body of this structure are connected via the extension frame 3. During testing, the longitudinal movement mechanism applies force to the slider 8, causing the slider 8 to slide to the corresponding longitudinal position under the constraint of the longitudinal movement slide frame 7. Then, it slides laterally under the constraint of the transverse movement slide rail 4 via two sets of sliding sleeves 5, moving to the corresponding transverse position. It is then fixed with the assistance of the clamping mechanism. Finally, the vertical rod 10 is vertically slid under the constraint of the second sliding sleeve 9 via the grip plate 11, causing the mixing mechanism 1 to move to the corresponding height position. It is then fixed by the clamping mechanism, thereby allowing the material at that position to be tested.

[0025] The tightening mechanism includes a tightening sleeve 12, a tightening screw 13, and a tightening handle 14. The upper-middle part of the front side of the sliding sleeve 9 is connected to the inner side of the tightening sleeve 12. The inner wall of the tightening sleeve 12 is screwed to the outer wall of the tightening screw 13. The front side of the tightening screw 13 is connected to the middle of the rear side of the tightening handle 14. By turning the tightening handle 14, the tightening screw 13 can be rotated. The tightening screw 13, after being screwed into the tightening sleeve 12, can tighten the vertical rod 10 at that position on the outside, thereby improving stability.

[0026] The longitudinal movement mechanism includes a constraint frame 15, a threaded rod 16, a screw plate 17, and an internal threaded frame 18. The outer right end of the longitudinal movement slide 7 is connected to the inner end of the constraint frame 15. The threaded rod 16 is longitudinally rotatably connected to the middle of the constraint frame 15. The front side of the threaded rod 16 is connected to the middle of the rear side of the screw plate 17. The right side of the slider 8 is connected to the left side of the internal threaded frame 18. The inner wall of the internal threaded frame 18 is screwed to the outer wall of the threaded rod 16. By screwing the screw plate 17, the threaded rod 16 can rotate under the constraint of the constraint frame 15. The threaded rod 16 is screwed to the internal threaded frame 18, allowing the slider 8 to slide longitudinally. In any position, the threaded rod 16 and the internal threaded frame 18 can be self-locked by the threads.

[0027] It also includes a corrugated sleeve 19, and the outer sides of the threaded rods 16 on the front and rear sides of the internal threaded frame 18 are respectively connected to the inner ends of a set of corrugated sleeves 19; the corrugated sleeves 19 can adapt to the longitudinal position deformation of the internal threaded frame 18, and always wrap around the outside of the threaded rods 16 for protection, thereby improving reliability.

[0028] The clamping mechanism includes a clamping sleeve 20, a clamping rod 21, a spring 22, and a pull plate 23. The outer middle part of each set of sleeves 5 is connected to the inner side of a set of clamping sleeves 20. The inner wall of the clamping sleeve 20 is slidably connected to the outer wall of the clamping rod 21. The outer end of the clamping rod 21 is connected to the middle part of the inner end of the pull plate 23. The outer side of the clamping sleeve 20 at the outer end of the sleeve 5 is connected to the outer side of the inner end of the pull plate 23 by the spring 22. By gripping the pull plate 23 outward, the elastic force of the spring 22 can be overcome, allowing the clamping rod 21 to slide outward inside the clamping sleeve 20, releasing the transverse slide rail 4 and facilitating the sliding of the sleeve 5. When released, under the elastic action of the spring 22, the clamping rod 21 can slide inward under the constraint of the clamping sleeve 20, clamping the outer side of the transverse slide rail 4 and fixing the transverse position of the sleeve 5.

[0029] It also includes a brush 24, and the inner ends of a set of brushes 24 are connected to the left and right sides of the sliding sleeve 5 respectively; the brushes 24 can be used to slide the sliding sleeve 5 to wipe away the dust on the outside of the transverse slide rail 4, so that the sliding is smooth and the convenience is improved.

[0030] In summary, a material uniformity detection probe for a raw material mixing equipment connects the mixing mechanism 1 and the main body of the structure via an extension frame 3. During testing, turning the screw plate 17 allows the threaded rod 16 to rotate under the constraint of the constraint frame 15. The threaded rod 16 is screwed into the internal threaded frame 18, allowing the internal threaded frame 18 to slide longitudinally along the slider 8. At any position, the threaded rod 16 and the internal threaded frame 18 can be self-locked by the threads. Then, by pulling the pull tab 23 outwards, the spring force of the spring 22 is overcome, causing the locking slide rod 21 to slide outwards inside the locking sleeve 20, releasing the transverse slide rail 4 and facilitating the sliding of the sleeve 5. After releasing 25, the locking slide rod 21 is held in place by the elastic action of the spring 22. Under the constraint of the clamping sleeve 20, the sliding sleeve 5 slides inward and acts on the outside of the transverse slide rail 4 to clamp it, thus fixing the transverse position of the sleeve 5. Finally, the vertical rod 10 is held by the grip plate 11 and slid vertically under the constraint of the sleeve 29, so that the mixing mechanism 1 is moved to the corresponding height position. By turning the tightening handle 14, the tightening screw 13 can be rotated. The tightening screw 13 is screwed into the tightening sleeve 12 and can act inward to tighten the outside of the vertical rod 10 at that position, thereby detecting the material at that position. In addition, the corrugated sleeve 19 can adapt to the longitudinal position deformation of the internal thread frame 18 and always wrap around the outside of the threaded rod 16 for protection. The brush 24 can wipe the dust off the outside of the transverse slide rail 4 by sliding the sleeve 5, so that the sliding is smooth and the convenience is improved.

[0031] The mixing mechanism 1 and the detection probe 2 are commercially available devices known to those skilled in the art. We are simply using them here without making any structural or functional improvements, and we will not elaborate further on them here.

[0032] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A material uniformity detection probe for a raw material mixing apparatus, comprising a mixing mechanism (1) and a detection probe (2), characterized in that, It also includes an extension frame (3), a transverse slide rail (4), a sliding sleeve (5), a connecting frame (6), a longitudinal slide rail (7), a slider (8), a second sliding sleeve (9), a vertical rod (10), and a grip plate (11). The upper middle part of the left and right sides of the mixing mechanism (1) is connected to the middle of the inner end of a set of extension frames (3), and the front and rear sides of the inner ends of the two sets of extension frames (3) are connected to the left and right ends of a set of transverse slide rails (4), respectively. The outer walls of the two sets of transverse slide rails (4) are slidably connected to the inner walls of a set of sliding sleeves (5), and a clamping mechanism is provided between the sliding sleeve (5) and the transverse slide rail (4). The top of the sliding sleeve (5) is connected to the front and rear ends of the longitudinal sliding frame (7) via the connecting frame (6). The inner side of the longitudinal sliding frame (7) is longitudinally slidably connected to the outer side of the slider (8). A longitudinal movement mechanism is provided between the longitudinal sliding frame (7) and the slider (8). A second sliding sleeve (9) is provided inside the slider (8). The inner side of the second sliding sleeve (9) is vertically slidably connected to the outer side of the vertical rod (10). A clamping mechanism is provided between the second sliding sleeve (9) and the vertical rod (10). The bottom end of the vertical rod (10) is connected to the top end of the grip plate (11). The top end of the vertical rod (10) is connected to the middle of the bottom end of the grip plate (11).

2. The material uniformity detection probe for a raw material mixing apparatus according to claim 1, characterized by: The tightening mechanism includes a tightening sleeve (12), a tightening screw (13), and a tightening handle (14). The upper front part of the sliding sleeve (9) is connected to the inner side of the tightening sleeve (12). The inner wall of the tightening sleeve (12) is screwed to the outer wall of the tightening screw (13). The front side of the tightening screw (13) is connected to the middle rear side of the tightening handle (14).

3. The material uniformity detection probe for a raw material mixing equipment according to claim 1, characterized in that: The longitudinal movement mechanism includes a constraint frame (15), a threaded rod (16), a screw pan (17), and an internal threaded frame (18). The outer right end of the longitudinal slide (7) is connected to the inner end of the constraint frame (15). The threaded rod (16) is longitudinally rotatably connected to the middle of the constraint frame (15). The front side of the threaded rod (16) is connected to the middle rear side of the screw pan (17). The right side of the slider (8) is connected to the left side of the internal threaded frame (18). The inner wall of the internal threaded frame (18) is screwed to the outer wall of the threaded rod (16).

4. The material uniformity detection probe for a raw material mixing apparatus according to claim 3, characterized by: It also includes a corrugated sleeve (19), and the outer sides of the threaded rods (16) on the front and rear sides of the internal threaded frame (18) are respectively connected to the inner ends of a set of corrugated sleeves (19).

5. A material uniformity detection probe for a raw material mixing equipment according to claim 1, characterized in that: The clamping mechanism includes a clamping sleeve (20), a clamping rod (21), a spring (22), and a pull plate (23). The outer middle part of each set of sleeves (5) is connected to the inner side of a set of clamping sleeves (20). The inner wall of the clamping sleeve (20) is slidably connected to the outer wall of the clamping rod (21). The outer end of the clamping rod (21) is connected to the middle part of the inner end of the pull plate (23). The outer side of the clamping sleeve (20) at the outer end of the sleeve (5) is connected to the outer side of the inner end of the pull plate (23) by a spring (22).

6. A material uniformity detection probe for a raw material mixing equipment according to claim 5, characterized in that: It also includes a brush (24), and the inner sides of the sliding sleeve (5) are respectively connected to the inner ends of a set of brushes (24).

Citation Information

Patent Citations

  • Fermentation tank for liquid fertilizer

    CN214400298U