Drying equipment for activated carbon processing and drying method thereof
By designing the extrusion device and the connection device, the problem of difficulty in taking out raw materials in existing drying equipment is solved, and the convenient removal of activated carbon raw materials is achieved, and the efficiency of the equipment is improved.
Patent Information
- Application Number
- CN202510604849.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-12
- Publication Date
- 2025-07-08
AI Technical Summary
During the use of existing drying equipment, it is difficult to remove the activated carbon processing raw materials, and it requires cranes or manual operations, which is troublesome.
A drying device including an extrusion device and a connecting device is designed. By manually controlling the connecting cover and connecting rod, the circular plate is driven to rotate on the inner wall of the rotating cylinder, the rubber ring and spring structure are used to facilitate the extrusion of raw materials, and the disassembly of the conical cylinder and the rotating cylinder is facilitated by the support ring and the connecting device.
It realizes the convenient removal of activated carbon raw materials, reduces the hassle of manual operation, and improves the efficiency of equipment use.
Smart Images

Figure CN120274511A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of drying equipment, and particularly relates to a drying equipment for activated carbon processing and a drying method thereof. Background Art
[0002] A drying device is a device used to dry raw materials in the processing of activated carbon. When using the drying equipment, the raw materials for activated carbon processing are placed inside the rotating cylinder. Then, the electric heating rods raise the temperature of the inner wall of the rotating cylinder, and the motor drives the meshing gears to rotate, so as to realize the rotation of the rotating cylinder, and thus achieve uniform heating of the raw materials.
[0003] The inventor found in daily work that the drying equipment still has at least the following problems: When using the drying equipment, the raw materials for activated carbon processing are placed inside the rotating cylinder. Then, the electric heating rods raise the temperature of the inner wall of the rotating cylinder, and the motor drives the meshing gears to rotate, so as to realize the rotation of the rotating cylinder, and thus achieve uniform heating of the raw materials. However, in the actual use process, because the inside of the rotating cylinder is relatively deep, after drying is completed, it is necessary to use a crane to tilt the rotating cylinder, or use tools to manually take out the raw materials inside the rotating cylinder, which is rather troublesome. Summary of the Invention
[0004] The purpose of the present invention is to solve the deficiencies existing in the prior art, and a drying equipment for activated carbon processing and a drying method thereof are proposed.
[0005] To achieve the above purpose, the present invention adopts the following technical solutions: A drying equipment for activated carbon processing and a drying method thereof, including a support frame, wherein the inner wall of the support frame is provided with a rotating cylinder, one end of the rotating cylinder is provided with a conical cylinder, a connecting cover is sleeved at one end of the conical cylinder away from the rotating cylinder, rectangular blocks are uniformly and fixedly connected to the surface of the rotating cylinder at the end away from the conical cylinder, a connecting frame is fixedly connected to one side of the support frame close to the rectangular blocks, a motor is installed on the top of the connecting frame, a gear is rotatably inserted on one side of the connecting frame, the gear and the motor are connected together through a bearing, the gear and the rectangular blocks are meshed with each other, electric heating rods are arranged in the inner wall of the rotating cylinder, an extrusion device is arranged in the inner wall of the rotating cylinder, a connecting device is arranged on one side of the conical cylinder, the extrusion device includes a circular plate, the circular plate is slidably connected to the inner wall of the rotating cylinder, a connecting rod is fixedly connected to one side of the circular plate close to the rotating cylinder, and the end of the connecting rod away from the circular plate is rotatably inserted on one side of the inner wall of the connecting cover.
[0006] The effects achieved by the above components are as follows: When using the extrusion device, manually control the connection cover to move away from the conical cylinder. In this way, the round plate is driven by the connecting rod to rotate on the inner wall of the rotating cylinder, and then the round plate extrudes the raw materials arranged inside the rotating cylinder, which facilitates taking out the raw materials from the inside of the rotating cylinder.
[0007] Preferably, a first storage groove is formed on the side surface of the round plate. A first rubber ring is arranged on the inner wall of the first storage groove. The inner wall of the first storage groove is uniformly fixedly connected with first damping rods. One end of the first damping rod away from the first storage groove is fixedly connected with the inner wall of the first rubber ring. A first spring is sleeved on the surface of the first damping rod. One end of the first spring is fixedly connected with one side of the inner wall of the first storage groove. One end of the first spring close to the first damping rod is fixedly connected with one side of the inner wall of the first rubber ring. An inclined surface is formed at one end of the first rubber ring away from the first damping rod. The inner wall of the rotating cylinder is uniformly fixedly connected with clamping rings.
[0008] The effects achieved by the above components are as follows: When the round plate moves away from the inside of the rotating cylinder, the first spring squeezes the first rubber ring in the direction away from the first storage groove, and then the first rubber ring is squeezed against the inner wall of the rotating cylinder, which facilitates squeezing out the raw materials on the surface of the rotating cylinder. When the round plate moves away from the rotating cylinder, the first rubber ring squeezes the inclined side of the clamping ring, which facilitates squeezing out the raw materials from the rotating cylinder. When the round plate returns to the inner wall of the rotating cylinder, the inclined surface of the first rubber ring is squeezed, and then the first rubber ring is received inside the first storage groove, which avoids the raw materials being brought back into the inside of the rotating cylinder to a certain extent.
[0009] Preferably, positioning rings are uniformly fixedly connected to the inner wall of one end of the conical cylinder close to the connection cover. A support ring is arranged on the inner walls of the two positioning rings. The support ring is sleeved on the surface of the connecting rod. A second storage groove is formed on one side of the support ring. A second rubber ring is slidably connected to the inner wall of the second storage groove. A rubber cylinder is fixedly connected to the surface of one end of the second rubber ring away from the second storage groove. Second damping rods are uniformly fixedly connected to one side of the inner wall of the second storage groove. One end of the second damping rod away from the second storage groove is fixedly connected with the inner wall of the second rubber ring. A second spring is sleeved on the surface of the second damping rod. One end of the second spring is fixedly connected with one side of the inner wall of the second storage groove. One end of the second spring close to the second damping rod is fixedly connected with the inner wall of the second rubber ring.
[0010] The effects achieved by the above components are as follows: The second spring squeezes the second rubber ring in the direction away from the second storage groove, so that the rubber cylinder is squeezed inside the two positioning rings. In this way, the connecting rod can be supported in the middle of the conical cylinder through the support ring, the second rubber ring and the rubber cylinder, which facilitates moving the connecting rod away from the inside of the conical cylinder.
[0011] Preferably, connecting ropes are fixedly connected to the inner walls of the second rubber rings. One end of each connecting rope away from the second rubber ring slidably penetrates and is inserted into one side of the inner wall of the second receiving groove. One end of the connecting rope away from the second rubber ring is fixedly connected to a moving ring, and the moving ring is slidably sleeved on the surface of the connecting rod close to the connection cover.
[0012] The effects achieved by the above components are as follows: Manually control the moving ring to move towards the connection cover on the surface of the connecting rod, and then pull the second rubber ring towards the inner wall of the second receiving groove through the connecting rope, so as to facilitate the storage of the second rubber ring inside the second receiving groove, so that the support ring can be away from the inside of the two positioning rings.
[0013] Preferably, the connecting device includes a limiting block. A support ring is fixedly connected to one side of the rotating cylinder close to the conical cylinder, and the other support ring is fixedly connected to one side of the conical cylinder close to the rotating cylinder. A fixing groove is formed in one side of the conical cylinder. A fixing strip is slidably connected to the inner wall of the fixing groove. One end of the fixing strip away from the fixing groove is fixedly connected to one side of the rotating cylinder close to the conical cylinder. A third damping rod is fixedly connected to the top of the support frame. The top of the third damping rod is fixedly connected to a first L-shaped plate. One end of the first L-shaped plate away from the third damping rod is arranged on one side of the support ring fixed to one side of the conical cylinder close to the conical cylinder. A third spring is sleeved on the surface of the third damping rod. The top of the third spring is fixedly connected to the bottom of the first L-shaped plate, and one end of the third spring close to the third damping rod is fixedly connected to the top of the support frame.
[0014] The effects achieved by the above components are as follows: When using the connecting device, manually slide the fixing strip into the fixing groove, pull the first L-shaped plate towards the support frame through the third spring, and then arrange one end of the first L-shaped plate away from the third damping rod on one side of the support ring fixed to one side of the conical cylinder close to the conical cylinder, so that the two support rings are closely attached together, thereby facilitating the connection of the conical cylinder and the rotating cylinder. Reverse operation facilitates the separation of the conical cylinder and the rotating cylinder, so as to facilitate the removal of the raw materials from the inside of the drying device.
[0015] Preferably, a rotating ring is rotatably sleeved on the surface of the support ring fixed to one side of the conical cylinder. A support plate is fixedly connected to the bottom of the rotating ring. A third receiving groove is formed in one side of the support frame. A sliding strip is slidably connected to the inner wall of the third receiving groove. One end of the sliding strip away from the third receiving groove is fixedly connected to one side of the support plate away from the conical cylinder.
[0016] The effects achieved by the above components are as follows: Since the rotating ring is rotatably sleeved on the surface of the support ring, when the conical cylinder is driven to rotate, the support plate will not affect the rotation of the conical cylinder. Thus, when the conical cylinder moves away from the rotating cylinder, the sliding bar slides on the inner wall of the third storage groove in the direction away from the support frame, which facilitates the placement of the conical cylinder on one side of the support frame.
[0017] Preferably, a rotating rod is uniformly and fixedly connected to the top of the inner wall of the third storage groove. A roller is rotatably sleeved on the surface of the rotating rod. The roller is arranged at the bottom of the sliding bar. A limiting groove is formed in the bottom of the sliding bar. The inner wall of the limiting groove is slidably connected to a limiting block. One end of the limiting block is fixedly connected to one side of the support frame.
[0018] The effects achieved by the above components are as follows: When the sliding bar slides on the inner wall of the third storage groove, the roller is driven to rotate, which facilitates the sliding of the sliding bar on the inner wall of the third storage groove. The limiting block can well limit the sliding bar inside the third storage groove.
[0019] Preferably, a rectangular groove is formed in one side of the support frame close to the conical cylinder. A sliding rod is fixedly connected to the inner wall of the rectangular groove. A second L-shaped plate is slidably sleeved on the surface of the sliding rod. A fourth spring is sleeved on the surface of the sliding rod. The bottom of the fourth spring is fixedly connected to the bottom of the inner wall of the rectangular groove. One end of the fourth spring close to the sliding rod is fixedly connected to the bottom of the second L-shaped plate.
[0020] The effects achieved by the above components are as follows: The second L-shaped plate is squeezed towards the support ring by the fourth spring, so that one end of the second L-shaped plate away from the sliding rod is arranged on one side of the support ring fixed to the conical cylinder close to the conical cylinder, so that the two support rings can be well attached to each other.
[0021] A drying method for activated carbon processing, using the drying equipment for activated carbon processing.
[0022] In the present invention, by setting an extrusion device, when using the extrusion device, manually control the connecting cover to move away from the conical cylinder. In this way, the connecting rod drives the circular plate to rotate on the inner wall of the rotating cylinder, so that the circular plate extrudes the raw materials arranged inside the rotating cylinder, which facilitates the removal of the raw materials from the inside of the rotating cylinder. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 is a three-dimensional structural diagram of the present invention; Figure 2 is a three-dimensional structural diagram of the gear in the present invention; Figure 3 is a three-dimensional structural diagram of the clamping ring in the present invention; Figure 4Schematic three-dimensional structure diagram of the moving ring in the present invention; Figure 5 Schematic three-dimensional structure diagram of the first L-shaped plate in the present invention; Figure 6 Schematic three-dimensional structure diagram of the support plate in the present invention; Figure 7 is Figure 6 the enlarged view at position A in
[0024] Legend: 1, support frame; 2, rotating cylinder; 3, conical cylinder; 4, connecting cover; 5, rectangular block; 6, connecting frame; 7, motor; 8, extrusion device; 801, circular plate; 802, connecting rod; 803, first receiving groove; 804, first rubber ring; 805, first damping rod; 806, first spring; 807, inclined surface; 808, clamping ring; 809, positioning ring; 810, support ring; 811, second receiving groove; 812, second rubber ring; 813, rubber cylinder; 814, second damping rod; 815, second spring; 816, connecting rope; 817, moving ring; 9, connecting device; 901, fixing groove; 902, fixing strip; 903, support ring; 904, limiting block; 905, rotating rod; 906, first L-shaped plate; 907, third damping rod; 908, third spring; 909, roller; 910, support plate; 911, sliding strip; 912, third receiving groove; 913, rectangular groove; 914, sliding rod; 915, second L-shaped plate; 916, fourth spring; 917, limiting groove; 918, rotating ring; 10, gear; 11, electric heating rod. Detailed implementation manners
[0025] Example 1, as Figures 1-7 shown, a drying device for activated carbon processing and its drying method, the inner wall of the support frame 1 is provided with a rotating cylinder 2, one end of the rotating cylinder 2 is provided with a conical cylinder 3, the end of the conical cylinder 3 away from the rotating cylinder 2 is sleeved with a connecting cover 4, the surface of the end of the rotating cylinder 2 away from the conical cylinder 3 is evenly fixedly connected with rectangular blocks 5, one side of the support frame 1 close to the rectangular blocks 5 is fixedly connected with a connecting frame 6, the top of the connecting frame 6 is installed with a motor 7, one side of the connecting frame 6 is rotatably inserted with a gear 10, the gear 10 and the motor 7 are connected together through a bearing, the gear 10 and the rectangular blocks 5 are meshed with each other, an electric heating rod 11 is arranged in the inner wall of the rotating cylinder 2, an extrusion device 8 is arranged in the inner wall of the rotating cylinder 2, a connecting device 9 is arranged on one side of the conical cylinder 3. When using the drying device, the raw materials for activated carbon processing are placed into the interior of the rotating cylinder 2, and then the electric heating rod 11 raises the temperature of the inner wall of the rotating cylinder 2, and the meshed gear 10 is driven to rotate by the motor 7, so as to realize the rotation of the rotating cylinder 2, and thus the raw materials are evenly heated well.
[0026] Referring to Figure 3 andFigure 4, the extrusion device 8 includes a circular plate 801 which is slidably connected to the inner wall of the rotating cylinder 2. A connecting rod 802 is fixedly connected to one side of the circular plate 801 close to the rotating cylinder 2. The end of the connecting rod 802 away from the circular plate 801 is rotatably inserted into one side of the inner wall of the connecting cover 4. When using the extrusion device 8, manually control the connecting cover 4 to move away from the conical cylinder 3. In this way, the circular plate 801 is driven by the connecting rod 802 to rotate on the inner wall of the rotating cylinder 2, and then the circular plate 801 extrudes the raw material arranged inside the rotating cylinder 2, which is convenient for taking out the raw material from the inside of the rotating cylinder 2. A first receiving groove 803 is formed on the side surface of the circular plate 801. A first rubber ring 804 is arranged on the inner wall of the first receiving groove 803. First damping rods 805 are evenly fixedly connected to the inner wall of the first receiving groove 803. The end of the first damping rod 805 away from the first receiving groove 803 is fixedly connected to the inner wall of the first rubber ring 804. A first spring 806 is sleeved on the surface of the first damping rod 805. One end of the first spring 806 is fixedly connected to one side of the inner wall of the first receiving groove 803, and the end of the first spring 806 close to the first damping rod 805 is fixedly connected to one side of the inner wall of the first rubber ring 804. An inclined surface 807 is formed at the end of the first rubber ring 804 away from the first damping rod 805. Positioning rings 808 are evenly fixedly connected to the inner wall of the rotating cylinder 2. When the circular plate 801 moves away from the inside of the rotating cylinder 2, the first spring 806 squeezes the first rubber ring 804 in the direction away from the first receiving groove 803, and then the first rubber ring 804 is pressed against the inner wall of the rotating cylinder 2, which is convenient for squeezing out the raw material on the surface of the rotating cylinder 2. When the circular plate 801 moves away from the rotating cylinder 2, the inclined side of the first rubber ring 804 is pressed against the positioning ring 808, which is convenient for extruding the raw material out of the rotating cylinder 2. When the circular plate 801 returns to the inner wall of the rotating cylinder 2, the inclined surface 807 of the first rubber ring 804 is pressed, and then the first rubber ring 804 is received inside the first receiving groove 803, which to a certain extent avoids the raw material being brought back into the inside of the rotating cylinder 2. Positioning rings 809 are evenly fixedly connected to the inner wall of one end of the conical cylinder 3 close to the connecting cover 4. A support ring 810 is arranged inside the two positioning rings 809. The support ring 810 is sleeved on the surface of the connecting rod 802. A second receiving groove 811 is formed on one side of the support ring 810. A second rubber ring 812 is slidably connected to the inner wall of the second receiving groove 811. A rubber cylinder 813 is fixedly connected to the surface of the end of the second rubber ring 812 away from the second receiving groove 811. Second damping rods 814 are evenly fixedly connected to one side of the inner wall of the second receiving groove 811. The end of the second damping rod 814 away from the second receiving groove 811 is fixedly connected to the inner wall of the second rubber ring 812. A second spring 815 is sleeved on the surface of the second damping rod 814. One end of the second spring 815 is fixedly connected to one side of the inner wall of the second receiving groove 811, and the end of the second spring 815 close to the second damping rod 814 is fixedly connected to the inner wall of the second rubber ring 812.The second rubber ring 812 is squeezed away from the second storage groove 811 by the second spring 815, so that the rubber cylinder 813 is squeezed inside the two positioning rings 809. In this way, the connecting rod 802 can be supported in the middle of the conical cylinder 3 by the support ring 810, the second rubber ring 812 and the rubber cylinder 813, which facilitates keeping the connecting rod 802 away from the inside of the conical cylinder 3. Connecting ropes 816 are fixedly connected to the inner walls of the second rubber ring 812. One end of the connecting rope 816 away from the second rubber ring 812 slidably penetrates and is inserted into one side of the inner wall of the second storage groove 811. One end of the connecting rope 816 away from the second rubber ring 812 is fixedly connected to a moving ring 817. The moving ring 817 is slidably sleeved on the surface of the connecting rod 802 close to the connection cover 4. Manually control the moving ring 817 to move towards the connection cover 4 on the surface of the connecting rod 802, and then pull the second rubber ring 812 towards the inner wall of the second storage groove 811 through the connecting rope 816, which facilitates storing the second rubber ring 812 inside the second storage groove 811, so that the support ring 810 can be away from the inside of the two positioning rings 809.,
[0027] Refer to Figures 5 to 7, the connecting device 9 includes a limiting block 904. One side of the rotating cylinder 2 close to the conical cylinder 3 is fixedly connected with a support ring 903, and the other support ring 903 and one side of the conical cylinder 3 close to the rotating cylinder 2 are fixedly connected. A fixing groove 901 is formed on one side of the conical cylinder 3, and a fixing strip 902 is slidably connected to the inner wall of the fixing groove 901. One end of the fixing strip 902 away from the fixing groove 901 is fixedly connected with one side of the rotating cylinder 2 close to the conical cylinder 3. The top of the support frame 1 is fixedly connected with a third damping rod 907, and the top of the third damping rod 907 is fixedly connected with a first L-shaped plate 906. One end of the first L-shaped plate 906 away from the third damping rod 907 is arranged on the side of the support ring 903 fixed on one side of the conical cylinder 3 close to the conical cylinder 3. A third spring 908 is sleeved on the surface of the third damping rod 907. The top of the third spring 908 is fixedly connected with the bottom of the first L-shaped plate 906, and one end of the third spring 908 close to the third damping rod 907 is fixedly connected with the top of the support frame 1. When using the connecting device 9, manually slide the fixing strip 902 into the fixing groove 901, and pull the first L-shaped plate 906 in the direction close to the support frame 1 through the third spring 908. Then, arrange one end of the first L-shaped plate 906 away from the third damping rod 907 on the side of the support ring 903 fixed on one side of the conical cylinder 3 close to the conical cylinder 3, so that the two support rings 903 are closely attached together, thereby facilitating the connection of the conical cylinder 3 and the rotating cylinder 2. Reverse operation is convenient for separating the conical cylinder 3 and the rotating cylinder 2, so that it is convenient to take out the raw materials from the inside of the drying device. A rotating ring 918 is rotatably sleeved on the surface of the support ring 903 fixed on one side of the conical cylinder 3. The bottom of the rotating ring 918 is fixedly connected with a support plate 910. A third receiving groove 912 is formed on one side of the support frame 1, and a sliding strip 911 is slidably connected to the inner wall of the third receiving groove 912. One end of the sliding strip 911 away from the third receiving groove 912 is fixedly connected with the side of the support plate 910 away from the conical cylinder 3. Since the rotating ring 918 is rotatably sleeved on the surface of the support ring 903, when the conical cylinder 3 is driven to rotate, the support plate 910 will not affect the rotation of the conical cylinder 3. Then, when the conical cylinder 3 is away from the rotating cylinder 2, the sliding strip 911 slides on the inner wall of the third receiving groove 912 in the direction away from the support frame 1, so that it is convenient to arrange the conical cylinder 3 on one side of the support frame 1. The top of the inner wall of the third receiving groove 912 is uniformly fixedly connected with a rotating rod 905, and a roller 909 is rotatably sleeved on the surface of the rotating rod 905. The roller 909 is arranged at the bottom of the sliding strip 911. A limiting groove 917 is formed at the bottom of the sliding strip 911, and the inner wall of the limiting groove 917 is slidably connected with the limiting block 904. One end of the limiting block 904 is fixedly connected with one side of the support frame 1. When the sliding strip 911 slides on the inner wall of the third receiving groove 912, the roller 909 is driven to rotate, thereby facilitating the sliding of the sliding strip 911 on the inner wall of the third receiving groove 912. The limiting block 904 can well limit the sliding strip 911 inside the third receiving groove 912.On one side of the support frame 1 close to the conical cylinder 3, a rectangular groove 913 is formed. A sliding rod 914 is fixedly connected to the inner wall of the rectangular groove 913. A second L-shaped plate 915 is slidably sleeved on the surface of the sliding rod 914. A fourth spring 916 is sleeved on the surface of the sliding rod 914. The bottom of the fourth spring 916 is fixedly connected to the bottom of the inner wall of the rectangular groove 913. One end of the fourth spring 916 close to the sliding rod 914 is fixedly connected to the bottom of the second L-shaped plate 915. By squeezing the second L-shaped plate 915 in the direction close to the support ring 903 through the fourth spring 916, one end of the second L-shaped plate 915 away from the sliding rod 914 is arranged on the side of the support ring 903 fixed to the conical cylinder 3 close to the conical cylinder 3, so that the two support rings 903 can be well attached to each other.
[0028] Working principle: When using the drying equipment, place the raw materials for activated carbon processing inside the rotating cylinder 2. Then, the electric heating rod 11 raises the temperature of the inner wall of the rotating cylinder 2, and the motor 7 drives the meshing gears 10 to rotate, thus realizing the rotation of the rotating cylinder 2, and then well realizing the uniform heating of the raw materials. When using the extrusion device 8, manually control the connection cover 4 to move away from the conical cylinder 3. In this way, the connecting rod 802 drives the circular plate 801 to rotate on the inner wall of the rotating cylinder 2, and then the circular plate 801 extrudes the raw materials arranged inside the rotating cylinder 2, which is convenient for taking out the raw materials from the inside of the rotating cylinder 2. Among them, when the circular plate 801 moves away from the inside of the rotating cylinder 2, the first spring 806 squeezes the first rubber ring 804 in the direction away from the first receiving groove 803, and then the first rubber ring 804 squeezes against the inner wall of the rotating cylinder 2, which is convenient for squeezing out the raw materials on the surface of the rotating cylinder 2. When the circular plate 801 moves away from the rotating cylinder 2, the first rubber ring 804 squeezes the inclined side of the clamping ring 808, which is convenient for squeezing out the raw materials from the rotating cylinder 2. When the circular plate 801 returns to the inner wall of the rotating cylinder 2, the inclined surface 807 of the first rubber ring 804 is squeezed, and then the first rubber ring 804 is received inside the first receiving groove 803, which avoids the raw materials being brought back into the inside of the rotating cylinder 2 to a certain extent. The second spring 815 squeezes the second rubber ring 812 in the direction away from the second receiving groove 811, so that the rubber cylinder 813 is squeezed inside the two positioning rings 809. In this way, the connecting rod 802 can be supported in the middle of the conical cylinder 3 through the support ring 810, the second rubber ring 812 and the rubber cylinder 813, which is convenient for the connecting rod 802 to move away from the inside of the conical cylinder 3. Manually control the moving ring 817 to move on the surface of the connecting rod 802 in the direction close to the connection cover 4, and then pull the second rubber ring 812 towards the inner wall of the second receiving groove 811 through the connecting rope 816, which is convenient for receiving the second rubber ring 812 inside the second receiving groove 811, so that the support ring 810 can move away from the inside of the two positioning rings 809. When using the connecting device 9, manually slide the fixing strip 902 into the fixing groove 901, and the third spring 908 pulls the first L-shaped plate 906 in the direction close to the support frame 1, and then the end of the first L-shaped plate 906 away from the third damping rod 907 is arranged on the side of the fixed support ring 903 close to the conical cylinder 3 on one side of the conical cylinder 3. The fourth spring 916 squeezes the second L-shaped plate 915 in the direction close to the support ring 903, and then the end of the second L-shaped plate 915 away from the sliding rod 914 is arranged on the side of the fixed support ring 903 close to the conical cylinder 3 on one side of the conical cylinder 3. In this way, the two support rings 903 can be well attached together, and the two support rings 903 are attached together, which is convenient for connecting the conical cylinder 3 and the rotating cylinder 2 together. Reverse operation is convenient for separating the conical cylinder 3 and the rotating cylinder 2, which is convenient for taking out the raw materials from the inside of the drying device. Because the rotating ring 918 is rotatably sleeved on the surface of the support ring 903,When the conical cylinder 3 is driven to rotate, the support plate 910 will not affect the rotation of the conical cylinder 3. Therefore, when the conical cylinder 3 moves away from the rotating cylinder 2, the sliding bar 911 slides along the inner wall of the third receiving groove 912 in a direction away from the support frame 1. When the sliding bar 911 slides along the inner wall of the third receiving groove 912, the roller 909 is driven to rotate, which facilitates the sliding of the sliding bar 911 along the inner wall of the third receiving groove 912. The limiting block 904 can well limit the sliding bar 911 inside the third receiving groove 912, so as to facilitate the arrangement of the conical cylinder 3 on one side of the support frame 1.
[0029] It should be noted that all the damping rods in this case are telescopic dampers, which can absorb energy during the telescopic process. The rubber used in the rubber products mentioned in this case is natural rubber. Natural rubber begins to soften at 130-140 degrees Celsius, while the drying temperature of the raw materials in the activated carbon processing is usually set between 60-90 degrees Celsius. Therefore, rubber can be used.
Claims
1. A drying device for activated carbon processing, comprising a support frame (1), characterized in that: The inner wall of the support frame (1) is provided with a rotating cylinder (2). One end of the rotating cylinder (2) is provided with a conical cylinder (3). A connecting cover (4) is sleeved on the end of the conical cylinder (3) far from the rotating cylinder (2). The surface of the end of the rotating cylinder (2) far from the conical cylinder (3) is evenly and fixedly connected with rectangular blocks (5). A connecting frame (6) is fixedly connected to the side of the support frame (1) close to the rectangular blocks (5). A motor (7) is installed on the top of the connecting frame (6). A gear (10) is rotatably inserted on one side of the connecting frame (6). The gear (10) and the motor (7) are connected together through a bearing. The gear (10) and the rectangular blocks (5) are meshed with each other. An electric heating rod (11) is arranged in the inner wall of the rotating cylinder (2). An extrusion device (8) is arranged in the inner wall of the rotating cylinder (2). A connecting device (9) is arranged on one side of the conical cylinder (3). The extrusion device (8) includes a circular plate (801). The circular plate (801) is slidably connected with the inner wall of the rotating cylinder (2). One side of the circular plate (801) close to the rotating cylinder (2) is fixedly connected with a connecting rod (802). The end of the connecting rod (802) far from the circular plate (801) is rotatably inserted into one side of the inner wall of the connecting cover (4).
2. The drying device for activated carbon processing according to claim 1, wherein: A first storage groove (803) is formed in the side surface of the circular plate (801). The inner wall of the first storage groove (803) is provided with a first rubber ring (804). The inner wall of the first storage groove (803) is evenly and fixedly connected with first damping rods (805). The ends of the first damping rods (805) far from the first storage groove (803) are fixedly connected with the inner wall of the first rubber ring (804). A first spring (806) is sleeved on the surface of the first damping rods (805). One end of the first spring (806) is fixedly connected with one side of the inner wall of the first storage groove (803). The end of the first spring (806) close to the first damping rod (805) is fixedly connected with one side of the inner wall of the first rubber ring (804). An inclined surface (807) is formed at the end of the first rubber ring (804) far from the first damping rod (805). The inner wall of the rotating cylinder (2) is evenly and fixedly connected with clamping rings (808).
3. A drying device for activated carbon processing according to claim 1, characterized in that: The inner wall of one end of the conical cylinder (3) close to the connection cover (4) is uniformly and fixedly connected with a positioning ring (809). A support ring (810) is arranged on the inner walls of the two positioning rings (809). The support ring (810) is sleeved on the surface of the connecting rod (802). A second storage groove (811) is formed on one side of the support ring (810). A second rubber ring (812) is slidably connected to the inner wall of the second storage groove (811). A rubber cylinder (813) is fixedly connected to the surface of the second rubber ring (812) away from the second storage groove (811). A second damping rod (814) is uniformly and fixedly connected to one side of the inner wall of the second storage groove (811). The end of the second damping rod (814) away from the second storage groove (811) is fixedly connected to the inner wall of the second rubber ring (812). A second spring (815) is sleeved on the surface of the second damping rod (814). One end of the second spring (815) is fixedly connected to one side of the inner wall of the second storage groove (811). The end of the second spring (815) close to the second damping rod (814) is fixedly connected to the inner wall of the second rubber ring (812).
4. A drying device for activated carbon processing according to claim 3, characterized in that: A connecting rope (816) is fixedly connected to the inner wall of the second rubber ring (812). The end of the connecting rope (816) away from the second rubber ring (812) slidably penetrates and is inserted into one side of the inner wall of the second storage groove (811). A moving ring (817) is fixedly connected to the end of the connecting rope (816) away from the second rubber ring (812). The moving ring (817) is slidably sleeved on the surface of the connecting rod (802) on the side close to the connection cover (4).
5. A drying device for activated carbon processing according to claim 1, characterized in that: The connecting device (9) includes a limit block (904). A support ring (903) is fixedly connected to one side of the rotating cylinder (2) close to the conical cylinder (3). The other support ring (903) is fixedly connected to one side of the conical cylinder (3) close to the rotating cylinder (2). A fixing groove (901) is formed on one side of the conical cylinder (3). A fixing strip (902) is slidably connected to the inner wall of the fixing groove (901). The end of the fixing strip (902) away from the fixing groove (901) is fixedly connected to one side of the rotating cylinder (2) close to the conical cylinder (3). A third damping rod (907) is fixedly connected to the top of the support frame (1). A first L-shaped plate (906) is fixedly connected to the top of the third damping rod (907). The end of the first L-shaped plate (906) away from the third damping rod (907) is arranged on the side of the support ring (903) fixed to one side of the conical cylinder (3) close to the conical cylinder (3). A third spring (908) is sleeved on the surface of the third damping rod (907). The top of the third spring (908) is fixedly connected to the bottom of the first L-shaped plate (906). The end of the third spring (908) close to the third damping rod (907) is fixedly connected to the top of the support frame (1).
6. The drying equipment for activated carbon processing according to claim 1, characterized in that: On one side of the conical cylinder (3), a rotating ring (918) is rotatably sleeved on the surface of the fixed support ring (903). A support plate (910) is fixedly connected to the bottom of the rotating ring (918). A third storage groove (912) is formed on one side of the support frame (1). A sliding strip (911) is slidably connected to the inner wall of the third storage groove (912). One end of the sliding strip (911) away from the third storage groove (912) is fixedly connected to one side of the support plate (910) away from the conical cylinder (3).
7. A drying device for activated carbon processing according to claim 6, characterized in that: On the top of the inner wall of the third storage groove (912), rotating rods (905) are uniformly fixedly connected. A roller (909) is rotatably sleeved on the surface of the rotating rod (905). The roller (909) is arranged at the bottom of the sliding strip (911). A limiting groove (917) is formed at the bottom of the sliding strip (911). A limiting block (904) is slidably connected to the inner wall of the limiting groove (917). One end of the limiting block (904) is fixedly connected to one side of the support frame (1).
8. A drying device for activated carbon processing according to claim 1, characterized in that: A rectangular groove (913) is formed on one side of the support frame (1) close to the conical cylinder (3). A sliding rod (914) is fixedly connected to the inner wall of the rectangular groove (913). A second L-shaped plate (915) is slidably sleeved on the surface of the sliding rod (914). A fourth spring (916) is sleeved on the surface of the sliding rod (914). The bottom of the fourth spring (916) is fixedly connected to the bottom of the inner wall of the rectangular groove (913). One end of the fourth spring (916) close to the sliding rod (914) is fixedly connected to the bottom of the second L-shaped plate (915).
9. A drying method for activated carbon processing, characterized in that: The drying equipment for activated carbon processing according to any one of claims 1-8 is adopted.