Guiding-changeable mining conveying equipment
By introducing mobile wheels, electric cylinders, vehicle components and turbine structures into the mining conveying equipment, the problems of difficult to adjust the direction of the conveying equipment and mineral drop are solved, and flexible guidance and stable transportation are achieved.
Patent Information
- Application Number
- CN202422311579.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-09-23
AI Technical Summary
When existing mineral conveying equipment is transporting minerals, it is difficult for the fixed support frame to flexibly adjust the conveying direction, and large-volume minerals are easily dropped from the belt, affecting the conveying effect and safety.
The changeable guided mining conveying equipment is adopted to achieve flexible adjustment of the conveying direction through the combination of mobile wheels, electric cylinders, vehicle components, support components and adjustment components, and improve the conveying stability through electric wheels and anti-slip marks. The belt shape is adjusted using the rotating frame and turbine structure to adapt to minerals of different sizes.
It realizes flexible guidance and adjustment of conveying equipment, improves the conveying effect and safety of large-volume minerals, and enhances the stability and convenience of conveying.
Smart Images

Figure CN223117278U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of mineral transportation, and particularly relates to a mine transportation device with changeable guiding direction. Background Art
[0002] A mine transportation device with changeable guiding direction generally refers to a device that can adjust the transportation direction according to needs. Such a device is very important in the mining industry because the layout inside the mine is complex, and the transportation device needs to be able to flexibly adapt to different working scenarios and transportation paths.
[0003] When the existing transportation device is used for mineral transportation, the existing transportation device often fixes the belt transportation structure through a fixed support frame, and transports minerals through the transportation structure. However, the fixed transportation structure can often only transport minerals from low to high or from high to low, making it difficult to meet the needs of different situations in the mine. Moreover, when a single belt transportation structure transports large-volume minerals, due to the large volume of the minerals and the relatively flat transportation surface of the belt, the large-volume minerals are likely to fall off the belt structure, thus affecting the transportation effect and safety of the device for minerals.
[0004] Therefore, aiming at the problem that when the above-mentioned transportation device is used for mineral transportation, its fixed bearing support is often difficult to flexibly adjust the transportation direction according to the needs of mineral transportation, and when its transportation structure transports larger minerals, the large-volume minerals are likely to fall off the belt structure, a mine transportation device with changeable guiding direction is developed. By installing a rotatable adjustable guiding structure, a gear transmission flipping structure, a belt transportation structure and an electric cylinder support structure on the transportation device, the transportation effect and safety of the device for minerals can be improved, and it can flexibly adjust the transportation direction according to the needs of mineral transportation, and can also improve the convenience of the device during use. Summary of the Utility Model
[0005] In order to overcome the problems that minerals are likely to fall off when the transportation device is used for mineral transportation, and the transportation direction and angle of minerals are difficult to adjust.
[0006] The technical solution of the utility model is: a mine transportation device with changeable guiding direction, which includes moving wheels, electric cylinders and a base, and also includes a carrier assembly, a support assembly and an adjustment assembly. The carrier assembly includes a mounting frame, a bearing frame and a hinge frame. Mounting frames are installed on the left and right sides of the lower end of the bearing frame, a hinge frame is installed at the center of the lower end of the bearing frame, moving wheels are installed on the hinge frame, two groups of electric cylinders are symmetrically installed front and back in the mounting frame, and the lower end of the output unit of the electric cylinder is fixedly connected to the base.
[0007] Preferably, by manually pressing one end of the support table by a worker, the support table is rotated and adjusted with the moving wheel as the fulcrum, and the electric cylinder is used to drive the base to support the adjusted and rotated support table, so as to realize the guiding adjustment of the conveying structure on the support table.
[0008] Preferably, the carrier assembly is provided with moving wheels to assist in its rotational adjustment and guiding, the lower end of the carrier assembly is provided with an electric cylinder to assist in its supporting and positioning, the upper end of the carrier assembly is installed with a support assembly for belt conveyor, and the support assembly is provided with an adjustment assembly to assist the support assembly in preventing different minerals from falling during transportation. During use, the electric cylinder cooperates with the base to provide stable support for the support frame that rotates and adjusts the belt conveying direction, so as to improve the stability during the guiding adjustment of the support frame.
[0009] Preferably, the support assembly includes a support table, electric wheels, support frames, first grooves, second grooves, a belt and anti-slip patterns. The upper end of the carrier frame is fixedly connected with the support table. The inner walls of the left and right ends of the support table are installed with electric wheels. The surface of the electric wheels is provided with a belt. The outer wall of the belt is equidistantly provided with anti-slip patterns around the belt for one week. During use, the electric wheels drive the belt to drive the minerals to rotate and convey stably, and the anti-slip patterns can improve the conveying effect and stability of the belt for the minerals.
[0010] Preferably, seven groups of support frames are fixedly connected to the inner wall of the support table at equal intervals. The left and right ends of the support frames are provided with front and rear symmetric first grooves penetrating through them, and the centers of the left and right ends of the support frames are provided with second grooves penetrating through them. During use, the first turbine and the second turbine can be limited and installed through the support frames, the first grooves and the second grooves, so as to improve their stability during operation.
[0011] Preferably, the adjustment assembly includes a rotating frame, auxiliary wheels, a first turbine, a first limiting bolt, a motor, a transmission rod, a second turbine and a second limiting bolt. The left and right ends of the second turbine are fixedly connected with the second limiting bolt, and the second limiting bolt is rotatably installed in the second groove. Seven second turbines are fixedly connected to the outer wall of the transmission rod at equal intervals along the inner wall of the support frame. During use, the rotation of the second turbine can drive the two first turbines to perform rotational and tooth-like transmission.
[0012] Preferably, the right end of the transmission rod is fixedly connected with a motor, and the motor is installed on the support frame near the right end of the support table. During use, the motor drives the transmission rod to rotate to provide power for the seven groups of second turbines.
[0013] Preferably, the first turbine is divided into seven groups. The front and rear ends of the first turbine are fixedly connected with first limit bolts. The first limit bolts are rotatably installed in the first groove body. One end of the first limit bolts away from each other is fixedly connected with a rotating frame. An auxiliary wheel is rotatably installed on the inner wall of the rotating frame. The outer wall of the auxiliary wheel is in fit with the inner wall of the belt. The second turbine is engaged with two first turbines. When in use, the second turbine can drive two groups of first turbines to drive the auxiliary wheels on the rotating frame to rotate and adjust at different angles, so as to lift the front and rear sides of the belt to make the belt in a bucket shape, so as to improve the effect of the belt for conveying minerals of different sizes.
[0014] The beneficial effects of the present utility model are as follows:
[0015] 1. By manually pressing one end of the support platform by a worker, the support platform rotates and adjusts with the moving wheel as a fulcrum, and the electric cylinder is cooperated to drive the base to support the adjusted and rotated support platform, so as to realize the guiding adjustment of the conveying structure on the support platform;
[0016] 2. The second turbine can drive two groups of first turbines to drive the auxiliary wheels on the rotating frame to rotate and adjust at different angles, so as to lift the front and rear sides of the belt to make the belt in a bucket shape, so as to improve the effect of the belt for conveying minerals of different sizes;
[0017] 3. Driving the belt by the electric wheel can drive the minerals to rotate and convey stably, and the anti-slip pattern can improve the conveying effect and stability of the belt for the minerals. Description of the Drawings
[0018] Figure 1 Shown is a three-dimensional structural schematic diagram of the mine conveying equipment with variable orientation of the present utility model;
[0019] Figure 2 Shown is a three-dimensional structural exploded schematic diagram of the mine conveying equipment with variable orientation of the present utility model;
[0020] Figure 3 Shown is a three-dimensional structural exploded schematic diagram of the carrier assembly, moving wheel, electric cylinder, and base of the mine conveying equipment with variable orientation of the present utility model;
[0021] Figure 4 Shown is a three-dimensional structural exploded schematic diagram of the support assembly of the mine conveying equipment with variable orientation of the present utility model;
[0022] Figure 5 Shown is a first three-dimensional structural exploded schematic diagram of the adjustment assembly of the mine conveying equipment with variable orientation of the present utility model;
[0023] Figure 6The figure shows a second three-dimensional structural split schematic diagram of the adjustment component of the mine conveying equipment with variable guidance of the present utility model;
[0024] Figure 7 The figure shows an enlarged schematic diagram of part A of the mine conveying equipment with variable guidance of the present utility model.
[0025] Explanation of reference numerals: 101 - mounting frame, 102 - carrier frame, 103 - hinge frame, 201 - support platform, 202 - electric wheel, 203 - support frame, 204 - first groove body, 205 - second groove body, 206 - belt, 207 - anti-slip pattern, 301 - rotating frame, 302 - auxiliary wheel, 303 - first turbine, 304 - first limit bolt, 305 - motor, 306 - transmission rod, 307 - second turbine, 308 - second limit bolt, 4 - moving wheel, 5 - electric cylinder, 6 - base. Detailed implementation mode
[0026] The present utility model will be further described below in conjunction with the drawings and embodiments.
[0027] Please refer to Figures 1-3 , the present utility model provides an embodiment: a mine conveying equipment with variable guidance, including a moving wheel 4, an electric cylinder 5 and a base 6, and further including a carrier assembly, a support assembly and an adjustment assembly. The carrier assembly includes a mounting frame 101, a carrier frame 102 and a hinge frame 103. Mounting frames 101 are installed on the left and right sides of the lower end of the carrier frame 102, and a hinge frame 103 is installed at the center of the lower end of the carrier frame 102. A moving wheel 4 is installed on the hinge frame 103. Two groups of electric cylinders 5 symmetrically arranged front and rear are installed in the mounting frame 101. The lower end of the output unit of the electric cylinder 5 is fixedly connected with the base 6. By manually pressing one end of the support platform 201 by a worker, the support platform 201 is rotated and adjusted with the moving wheel 4 as a fulcrum, and the electric cylinder 5 is cooperated to drive the base 6 to support the rotated and adjusted support platform 201, so as to realize the guiding adjustment of the conveying structure on the support platform 201. A moving wheel 4 for assisting in the rotation and adjustment guidance is arranged on the carrier assembly, an electric cylinder 5 for assisting in the auxiliary support and positioning is arranged at the lower end of the carrier assembly, and a support assembly for belt conveyor is installed at the upper end of the carrier assembly. An adjustment assembly for assisting the support assembly to prevent different minerals from falling during transportation is arranged in the support assembly. During use, the electric cylinder 5 and the base 6 can provide stable support for the support frame 203 for rotating and adjusting the conveying direction of the belt 206, so as to improve the stability of the support frame 203 during the guiding adjustment.
[0028] Please refer to Figure 4, in this embodiment, the support assembly includes a support table 201, electric wheels 202, support frames 203, first troughs 204, second troughs 205, a belt 206, and anti-slip patterns 207. The upper end of the carrier frame 102 is fixedly connected to the support table 201. Electric wheels 202 are installed on the inner walls at the left and right ends of the support table 201. The surface of the electric wheels 202 is provided with a belt 206. Anti-slip patterns 207 are equidistantly arranged around the outer wall of the belt 206 for one week. When in use, the electric wheels 202 drive the belt 206 to drive the minerals to rotate and convey stably, and the anti-slip patterns 207 can improve the conveying effect and stability of the belt 206 for the minerals. Seven groups of support frames 203 are fixedly connected to the inner wall of the support table 201 at equal intervals. The left and right ends of the support frames 203 are penetrated with symmetric front and rear first troughs 204, and the centers of the left and right ends of the support frames 203 are penetrated with second troughs 205. When in use, the first turbine 303 and the second turbine 307 can be limited and installed through the support frames 203, the first troughs 204, and the second troughs 205 to improve their operating stability.
[0029] Please refer to Figures 5-7 , in this embodiment, the adjustment assembly includes a rotating frame 301, auxiliary wheels 302, a first turbine 303, first limit bolts 304, a motor 305, a transmission rod 306, a second turbine 307, and second limit bolts 308. Second limit bolts 308 are fixedly connected to the left and right ends of the second turbine 307. The second limit bolts 308 are rotatably installed in the second troughs 205. Seven second turbines 307 are fixedly connected to the outer wall of the transmission rod 306 at equal intervals along the inner wall of the support frame 203. When in use, the rotation of the second turbine 307 can drive two first turbines 303 to perform a rotational tooth-like transmission. The right end of the transmission rod 306 is fixedly connected to a motor 305. The motor 305 is installed on the support frame 203 near the right end of the support table 201. When in use, the motor 305 drives the transmission rod 306 to rotate to provide power for the seven groups of second turbines 307. The first turbines 303 are divided into seven groups. First limit bolts 304 are fixedly connected to the front and rear ends of the first turbine 303. The first limit bolts 304 are rotatably installed in the first troughs 204. The mutually remote ends of the first limit bolts 304 are fixedly connected to a rotating frame 301. An auxiliary wheel 302 is rotatably installed on the inner wall of the rotating frame 301. The outer wall of the auxiliary wheel 302 is in contact with the inner wall of the belt 206. The second turbine 307 is engaged with two first turbines 303. When in use, the second turbine 307 can drive two groups of first turbines 303 to drive the auxiliary wheels 302 on the rotating frame 301 to rotate and adjust at different angles, so as to lift the front and rear sides of the belt 206 to make the belt 206 in a bucket shape, so as to improve the conveying effect of the belt 206 for minerals of different sizes.
[0030] When working, first, push the support table 201 to move the device to the area where transportation is required. According to the need of the transportation direction, press one end of the support table 201 to make the other end tilt up. Then start the electric cylinder 5, and the electric cylinder 5 drives the base 6 to move downward and make the base 6 contact the ground to support the support table 201 after rotation adjustment;
[0031] Next, start the motor 305 according to the size of the minerals to be transported. The motor 305 drives the second turbine 307 to rotate, so as to drive the two first turbines 303 to rotate, and the two rotating frames 301 drive the auxiliary wheels 302 to adjust the rotation of the front and rear ends of the belt 206, so that the belt 206 is in a bucket shape;
[0032] Finally, start the electric wheel 202. The electric wheel 202 drives the bucket-shaped belt 206 to cooperate with the seven groups of auxiliary wheels 302 to assist in driving the belt 206, so as to stably transport the minerals.
[0033] Through the above steps, by pressing the support table 201, it rotates and adjusts with the moving wheel 4 as the fulcrum, and cooperates with the electric cylinder 5 and the base 6 to support it, so as to guide and adjust the conveying structure on it. And the motor 305 drives the transmission rod 306 to make the second turbine 307 drive the two first turbines 303 to rotate, so as to adjust the rotation of the auxiliary wheels 302 on the rotating frame 301 according to the size of the minerals, so as to lift the front and rear sides of the belt 206 to make the belt 206 in a bucket shape, solving the problems that the minerals are easy to fall when the conveying equipment is used for mineral transportation, and the transportation direction and angle of the minerals are difficult to adjust.
[0034] The above has described in detail the embodiments of the present invention in conjunction with the drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the purpose of the present invention.
Claims
1. A mine conveying device with variable orientation, comprising a moving wheel (4), an electric cylinder (5) and a base (6), characterized in that: It further includes a vehicle component, a support component and an adjustment component. The vehicle component includes a mounting frame (101), a bearing frame (102), and a hinge frame (103). The mounting frames (101) are installed on the left and right sides of the lower end of the bearing frame (102), and the hinge frame (103) is installed at the center of the lower end of the bearing frame (102). A moving wheel (4) is installed on the hinge frame (103), and two sets of electric cylinders (5) that are symmetrically arranged front and back are installed in the mounting frame (101). The lower end of the output unit of the electric cylinder (5) is fixedly connected to a base (6).
2. The changeable-direction mine conveying equipment according to claim 1, wherein: The vehicle component is provided with a moving wheel (4) to assist in rotational adjustment and guidance. The lower end of the vehicle component is provided with an electric cylinder (5) to assist in supporting and positioning it. The upper end of the vehicle component is installed with a support component for belt conveyor transportation. The support component is provided with an adjustment component to assist the support component in preventing different minerals from falling during transportation.
3. The variable-direction mine conveying equipment according to claim 2, wherein: The support component includes a support table (201), electric wheels (202), support frames (203), a first groove body (204), a second groove body (205), a belt (206) and anti-slip patterns (207). The support table (201) is fixedly connected to the upper end of the bearing frame (102). Electric wheels (202) are installed on the inner walls of the left and right ends of the support table (201). A belt (206) is arranged on the surface of the electric wheels (202), and anti-slip patterns (207) are arranged equidistantly around the outer wall of the belt (206) for one week.
4. The variable-direction mine conveying equipment according to claim 3, characterized in that: Seven groups of support frames (203) that are equidistantly distributed are fixedly connected to the inner wall of the support table (201). First groove bodies (204) that are symmetrically arranged front and back are penetrated and opened at the left and right ends of the support frames (203), and second groove bodies (205) are penetrated and opened at the centers of the left and right ends of the support frames (203).
5. The changeable-direction mine conveying equipment according to claim 4, characterized in that: The adjustment component includes a rotating frame (301), auxiliary wheels (302), first turbines (303), first limit bolts (304), a motor (305), a transmission rod (306), second turbines (307) and second limit bolts (308). Second limit bolts (308) are fixedly connected to the left and right ends of the second turbine (307), and the second limit bolts (308) are rotatably installed in the second groove body (205). Seven second turbines (307) that are equidistantly distributed along the inner wall of the support frame (203) are fixedly connected to the outer wall of the transmission rod (306).
6. The changeable-direction mine conveying equipment according to claim 5, characterized in that: A motor (305) is fixedly connected to the right end of the transmission rod (306), and the motor (305) is installed on the support frame (203) near the right end of the support table (201).
7. The variable-direction mine conveying equipment according to claim 6, characterized in that: The first turbines (303) are divided into seven groups. First limit bolts (304) are fixedly connected to the front and back ends of the first turbine (303), and the first limit bolts (304) are rotatably installed in the first groove body (204). The ends of the first limit bolts (304) that are away from each other are fixedly connected to the rotating frame (301). An auxiliary wheel (302) is rotatably installed on the inner wall of the rotating frame (301). The outer wall of the auxiliary wheel (302) is in contact with the inner wall of the belt (206). The first turbine (303) is engaged with two second turbines (307).