Portable belt winding and storing integrated device of mining belt conveyor
By designing a portable tape reel and storage integrated device, portability and safety are achieved through the use of a lever block and gear structure. This solves the problems of large size and inconvenience of carrying existing devices, improves the convenience and aesthetics of handling, and extends the service life.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANXI LIANSHENG XINGYUE COAL CO LTD
- Filing Date
- 2025-08-04
- Publication Date
- 2026-05-26
Smart Images

Figure CN224279387U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of mining belt conveyors, specifically to a portable integrated belt winding and storage device for mining belt conveyors. Background Technology
[0002] Coal mine belt conveyors (also known as coal mine belt conveyors) are specialized equipment used for continuous material transport in coal mining, production, and transfer processes. They are widely used in coal-producing areas such as Shanxi and Inner Mongolia. Their core advantages are large transport capacity, strong environmental adaptability, and long transport distance. Compared with traditional transportation methods, they have the characteristics of low energy consumption and simple maintenance.
[0003] For example, Chinese utility model patent CN211644059U discloses a hydraulic tensioning belt winding integrated device, which includes a belt winding mechanism body, a belt winding frame connected to the belt winding mechanism body, a first groove carved on the belt winding frame, a guide rod slidably connected in the first groove, and a spring connected between the belt winding frame and the guide rod, the spring being located in the first groove. The guide rod includes a guide rod body, a guide wheel and a cutting blade connected to the guide rod body, the guide wheel being located on the side of the guide rod body away from the spring, and the guide wheel and the guide rod body being rotatably connected, the cutting blade being vertically located on the lower side of the guide rod body, and the surface of the guide wheel being covered with an elastic rubber layer, which easily increases the friction between the guide wheel and the belt. This utility model provides a hydraulic tensioning belt winding integrated device, which has the function of guiding and cutting in one step when retrieving the belt, making it convenient for users to perform belt retrieval operations, and also improving work efficiency.
[0004] In coal mining operations, belt conveyors are used to transport coal. These belt conveyors require integrated belt winding and storage devices to wind and store the belt for recycling. However, existing integrated belt winding and storage devices are inconvenient to carry due to their fixed structure and large size, which reduces their portability and affects their performance. Utility Model Content
[0005] The purpose of this utility model is to address the shortcomings of existing technologies by providing a portable integrated belt winding and storage device for mining belt conveyors, thereby improving portability.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a portable integrated belt winding and storage device for a mining belt conveyor, comprising a main body for the integrated belt winding and storage device and a portable mechanism; the portable mechanism is arranged on the main body of the integrated belt winding and storage device; the portable mechanism includes a storage component; the storage component includes a fixed base, a receiving groove, an incomplete gear, a handle, a movable groove, a movable block, a spring A, a fixed groove, a shifting groove, and a shifting block; two fixed bases are symmetrically fixed to the integrated belt winding and storage device. On the base plate of the main body, two receiving slots are formed on opposite sides of the two fixed seats; the incomplete gear is rotatably disposed in the receiving slot via a rotating shaft; the handle is fixedly disposed on the circumferential surface of the incomplete gear; a movable slot is formed in the receiving slot; the movable block is slidably disposed in the movable slot; the two ends of the spring A are fixedly connected to the inner wall of the movable slot and the movable block respectively; a fixed slot is formed on the handle, and the movable block is inserted into the fixed slot; a toggle slot is formed in the movable slot; the toggle block is slidably disposed in the toggle slot and fixedly connected to the movable block.
[0007] Preferably, the side of the movable block away from spring A has a V-shaped structure.
[0008] Preferably, the portable mechanism further includes a sliding component; the sliding component includes a sliding groove, a sliding block, a rack, and a spring B; the receiving groove is provided with a sliding groove; the sliding block is slidably disposed in the sliding groove; the rack is slidably disposed in the receiving groove and fixedly connected to the sliding block, and the rack meshes with an incomplete gear for rotation; the two ends of the spring B are fixedly connected to the inner wall of the sliding groove and the sliding block, respectively.
[0009] Preferably, it also includes a deceleration assembly; the deceleration assembly is arranged on the sliding block.
[0010] Preferably, the deceleration assembly includes a slot, a fixed block, a deceleration groove, a deceleration block, and a spring C; at least one slot is provided in the sliding groove; the fixed block is fixed in the slot; at least one deceleration groove is provided on the sliding block; the deceleration block slides through the deceleration groove; and both ends of the spring C are fixedly connected to the inner wall of the deceleration groove and the deceleration block, respectively.
[0011] Preferably, the fixed block is provided with an inclined surface A, the dimension of the fixed block near the movable groove is larger than the dimension of the fixed block away from the movable groove, and the deceleration block is provided with an inclined surface B, with the inclined surface A and the inclined surface B in sliding contact.
[0012] Preferably, the elastic strength of spring C is less than that of spring B.
[0013] Compared with the prior art, the beneficial effects of this utility model are:
[0014] 1. This utility model features a portable mechanism. By actuating the actuating block, it slides within the actuating groove, causing the movable block to slide within both the movable and fixed grooves. This causes spring A to contract under pressure until the side of the actuating block contacts the inner wall of the actuating groove. At this point, the movable block moves out of the fixed groove, and under the elastic force of spring B, the sliding block slides within the sliding groove, causing the rack to slide within the receiving groove. The rack then meshes with the incomplete gear, causing it to rotate. This incomplete gear, via a rotating shaft, drives the handle to rotate within the receiving groove until the side of the handle contacts the inner wall of the receiving groove. The integrated tape and storage device can then be moved using the handle. Compared to existing technologies, this utility model has a simple and reasonable structure and ingenious design. The handle not only facilitates the movement of the integrated tape and storage device, improving its portability, but also allows for easy storage, enhancing the overall aesthetics.
[0015] 2. By setting a deceleration component, when the sliding block slides in the sliding groove, the elastic strength of spring C is less than that of spring B, causing the inclined surface B of the deceleration block to press against the inclined surface A of the fixed block, so that the deceleration block slides in the deceleration groove. This causes spring C to contract under force, and the force generated by the contraction of spring C can cancel out the force generated by the contraction of spring B, thereby slowing down the rotation of the incomplete gear and the handle, preventing the handle from turning too fast and causing damage, and thus improving the service life of this utility model. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0017] Figure 2 This is a cross-sectional view of the overall structure of this utility model;
[0018] Figure 3 This is a cross-sectional view of the fixing base structure of this utility model;
[0019] Figure 4 This is a partially disassembled sectional view of the present invention.
[0020] Figure 5 For the present utility model Figure 2 Enlarged view of point A in the middle;
[0021] Figure 6 For the present utility model Figure 2 Enlarged diagram of point B in the middle.
[0022] In the picture:
[0023] 1. Main body of the integrated tape reel and storage device; 2. Portable mechanism; 3. Storage component; 4. Sliding component; 5. Deceleration component; 301. Fixed base; 302. Receiving groove; 303. Incomplete gear; 304. Handle; 305. Movable groove; 306. Movable block; 307. Spring A; 308. Fixed groove; 309. Actuating groove; 310. Actuating block; 401. Sliding groove; 402. Sliding block; 403. Rack; 404. Spring B; 501. Empty groove; 502. Fixed block; 503. Deceleration groove; 504. Deceleration block; 505. Spring C. Detailed Implementation
[0024] 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.
[0025] Please see Figures 1 to 6Because the portion above the base plate of the existing integrated tape storage device body 1 can rotate, it is inconvenient to move the integrated tape storage device body 1 through this part in order to ensure the accuracy of its use. Furthermore, due to the height of this part, the distance between the integrated tape storage device body 1 and the ground is short when lifting it, which could easily cause injury to workers and pose a safety hazard. Therefore, this utility model provides a technical solution: a portable integrated tape storage device for a mining belt conveyor, comprising a tape storage device body 1 for a mining belt conveyor and a portable mechanism 2; the portable mechanism 2 is arranged on the integrated tape storage device body 1; the portable mechanism 2 includes a storage component 3; the storage component 3 includes a fixed base 301, a receiving groove 302, an incomplete gear 303, a handle 304, a movable groove 305, a movable block 306, a spring A307, and a fixed... Fixed groove 308, actuating groove 309, and actuating block 310; two fixed seats 301 are symmetrically fixedly connected to the base plate of the integrated tape winding and storage device body 1; two receiving grooves 302 are opened on opposite sides of the two fixed seats 301; an incomplete gear 303 is rotatably disposed in the receiving groove 302 via a rotating shaft; a handle 304 is fixedly connected to the circumferential surface of the incomplete gear 303; a movable groove 305 is opened in the receiving groove 302; a movable block 306 slides through the movable groove 305; spring The two ends of the spring A307 are fixedly connected to the inner wall of the movable groove 305 and the movable block 306, respectively; the handle 304 is provided with a fixed groove 308, and the movable block 306 is inserted into the fixed groove 308; the movable groove 305 is provided with a toggle groove 309; the toggle block 310 slides through the toggle groove 309 and is fixedly connected to the movable block 306; the side of the movable block 306 away from the spring A307 has a V-shaped structure to facilitate the insertion of the movable block 306 into the fixed groove 308;
[0026] The portable mechanism 2 also includes a sliding component 4; the sliding component 4 includes a sliding groove 401, a sliding block 402, a rack 403 and a spring B404; the sliding groove 401 is provided in the receiving groove 302; the sliding block 402 is slidably inserted into the sliding groove 401; the rack 403 is slidably disposed in the receiving groove 302 and fixedly connected to the sliding block 402, and the rack 403 meshes with the incomplete gear 303 to rotate; the two ends of the spring B404 are fixedly connected to the inner wall of the sliding groove 401 and the sliding block 402 respectively.
[0027] This utility model, through the provision of a portable mechanism 2, allows the actuating block 310 to slide within the actuating groove 309 by actuating the actuating block 310. This causes the movable block 306 to slide within the movable groove 305 and the fixed groove 308, resulting in the spring A307 being compressed until the side of the actuating block 310 contacts the inner wall of the actuating groove 309. At this point, the movable block 306 moves out of the fixed groove 308, and under the elastic force of the spring B404, the sliding block 402 slides within the sliding groove 401, causing the rack 403 to slide within the receiving groove 302, thus allowing the rack 403 to engage with the incomplete... The full gear 303 meshes and rotates, causing the incomplete gear 303 to drive the handle 304 to rotate within the receiving groove 302 via the rotating shaft until the side of the handle 304 contacts the inner wall of the receiving groove 302. At this point, the main body 1 of the tape winding and storage device can be moved through the handle 304. Compared with the prior art, the present invention has a simple and reasonable structure and ingenious design. The handle 304 not only facilitates the movement of the main body 1 of the tape winding and storage device, improving its portability, but also allows the handle 304 to be stored, improving the overall aesthetics.
[0028] As a preferred embodiment, it also includes a deceleration assembly 5; the deceleration assembly 5 is arranged on the sliding block 402; the deceleration assembly 5 includes a slot 501, a fixed block 502, a deceleration groove 503, a deceleration block 504, and a spring C505; the sliding groove 401 has a slot 501; the fixed block 502 is fixedly connected to the slot 501; the sliding block 402 has a deceleration groove 503; the deceleration block 504 slides through the deceleration groove 503; the two ends of the spring C505 are fixedly connected to the inner wall of the deceleration groove 503 and the deceleration block 504, respectively; the fixed block 502 is provided with an inclined surface A, the dimension of the fixed block 502 near the movable groove 305 is larger than the dimension of the fixed block 502 away from the movable groove 305, the deceleration block 504 is provided with an inclined surface B, and the inclined surface A and the inclined surface B are in sliding contact; the elastic strength of the spring C505 is less than the elastic strength of the spring B404.
[0029] This invention, by setting a deceleration component 5, allows the sliding block 402 to slide within the sliding groove 401. Because the elastic strength of spring C505 is less than that of spring B404, the inclined surface B of the deceleration block 504 presses against the inclined surface A of the fixed block 502, causing the deceleration block 504 to slide within the deceleration groove 503. This causes spring C505 to contract under pressure, and the force generated by the contraction of spring C505 can cancel out the force generated by the contraction of spring B404. This effectively slows down the rotation of the incomplete gear 303 and the handle 304, preventing damage caused by excessively fast rotation of the handle 304, thereby improving the service life of this invention.
[0030] Working principle: In use, the actuating block 310 is moved, causing it to slide within the actuating groove 309. This causes the movable block 306 to slide within the movable groove 305 and the fixed groove 308, resulting in the spring A307 being compressed until the side of the actuating block 310 contacts the inner wall of the actuating groove 309. At this point, the movable block 306 moves out of the fixed groove 308, and under the elastic force of the spring B404, the sliding block 402 slides within the sliding groove 401, causing the rack 403 to move within the groove. The sliding block 402 slides within the groove 302, causing the rack 403 to mesh and rotate with the incomplete gear 303. The incomplete gear 303 then drives the handle 304 to rotate within the receiving groove 302 via a rotating shaft. When the sliding block 402 slides within the sliding groove 401, because the elastic strength of spring C505 is less than that of spring B404, the inclined surface B of the deceleration block 504 presses against the inclined surface A of the fixed block 502, causing the deceleration block 504 to slide within the deceleration groove 503. This causes spring C505 to contract under force, thus... The force generated when spring C505 contracts can cancel out the force generated when spring B404 contracts, thus slowing down the rotation of the incomplete gear 303 and handle 304 and preventing the handle 304 from rotating too fast and causing damage. This continues until the side of the handle 304 contacts the inner wall of the receiving groove 302. At this point, the main body 1 of the tape winding and storage device can be moved through the handle 304. After being moved to a suitable position, the incomplete gear 303 is driven by the handle 304 to rotate in the opposite direction in the receiving groove 302 through the rotating shaft. This causes the rack 403 to slide in the opposite direction in the receiving groove 302, and the sliding block 402 to slide in the opposite direction in the sliding groove 401. This causes the spring B404 to be stretched until the side of the rack 403 contacts the inner wall of the receiving groove 302. At this point, the actuating block 310 is released, and under the elastic force of spring A307, the movable block 306 will be inserted into the fixed groove 308, fixing the position of the handle 304 in the receiving groove 302.
[0031] The above is the entire working process of the device, and all contents not described in detail in this specification are existing technologies known to those skilled in the art.
[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 portable integrated belt winding and storage device for a mining belt conveyor, characterized in that, The device includes a main body (1) for a belt conveyor and a portable mechanism (2); the portable mechanism (2) is arranged on the main body (1); the portable mechanism (2) includes a storage component (3); the storage component (3) includes a fixed base (301), a receiving groove (302), an incomplete gear (303), a handle (304), a movable groove (305), a movable block (306), a spring A (307), a fixed groove (308), a shifting groove (309), and a shifting block (310); two fixed bases (301) are symmetrically fixed on the bottom plate of the main body (1); two receiving grooves (302) are opened on opposite sides of the two fixed bases (301); The incomplete gear (303) is rotatably disposed in the receiving groove (302) via a rotating shaft; the handle (304) is fixedly disposed on the circumferential surface of the incomplete gear (303); a movable groove (305) is provided in the receiving groove (302); the movable block (306) is slidably disposed in the movable groove (305); the two ends of the spring A (307) are fixedly connected to the inner wall of the movable groove (305) and the movable block (306) respectively; a fixed groove (308) is provided on the handle (304), and the movable block (306) is inserted into the fixed groove (308); a toggle groove (309) is provided in the movable groove (305); the toggle block (310) is slidably disposed in the toggle groove (309) and fixedly connected to the movable block (306).
2. The portable integrated belt winding and storage device for a mining belt conveyor according to claim 1, characterized in that, The movable block (306) has a V-shaped structure on the side away from spring A (307).
3. A portable integrated belt winding and storage device for a mining belt conveyor according to claim 1, characterized in that, The portable mechanism (2) further includes a sliding assembly (4); the sliding assembly (4) includes a sliding groove (401), a sliding block (402), a rack (403), and a spring B (404); the sliding groove (401) is provided in the receiving groove (302); the sliding block (402) slides through the sliding groove (401); the rack (403) slides in the receiving groove (302) and is fixedly connected to the sliding block (402), and the rack (403) meshes and rotates with the incomplete gear (303); the two ends of the spring B (404) are fixedly connected to the inner wall of the sliding groove (401) and the sliding block (402) respectively.
4. A portable integrated belt winding and storage device for a mining belt conveyor according to claim 3, characterized in that, It also includes a deceleration assembly (5); the deceleration assembly (5) is arranged on the sliding block (402).
5. A portable integrated belt winding and storage device for a mining belt conveyor according to claim 4, characterized in that, The deceleration assembly (5) includes a slot (501), a fixing block (502), a deceleration groove (503), a deceleration block (504), and a spring C (505); at least one slot (501) is provided in the sliding groove (401); the fixing block (502) is fixed in the slot (501); at least one deceleration groove (503) is provided on the sliding block (402); the deceleration block (504) slides through the deceleration groove (503); the two ends of the spring C (505) are fixedly connected to the inner wall of the deceleration groove (503) and the deceleration block (504) respectively.
6. A portable integrated belt winding and storage device for a mining belt conveyor according to claim 5, characterized in that, The fixed block (502) is provided with an inclined surface A. The dimension of the fixed block (502) near the movable groove (305) is larger than the dimension of the fixed block (502) away from the movable groove (305). The deceleration block (504) is provided with an inclined surface B. The inclined surface A and the inclined surface B are in sliding contact.
7. A portable integrated belt winding and storage device for a mining belt conveyor according to claim 5, characterized in that, The elastic strength of spring C (505) is less than that of spring B (404).