Elevator for transporting plastic granules

By combining support guide wheels, a rotary motor, and meshing gears, the conveying angle is adjusted, solving the problem of shutdown caused by changes in the target container position in existing elevators, achieving seamless transportation, and improving equipment efficiency.

CN224312604UActive Publication Date: 2026-06-02YANGQUAN SENKO MATERIAL RECYCLING CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
YANGQUAN SENKO MATERIAL RECYCLING CO LTD
Filing Date
2025-08-13
Publication Date
2026-06-02

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Abstract

This utility model provides a lifting machine for transporting plastic particles, relating to the field of loading and unloading device technology. It includes a moving feeding assembly and a power output mechanism. The moving feeding assembly has a fixedly inserted rotating processing component on its inner top side, and a bolt-assembled power output mechanism is located at the top of the rotating processing component. The power output mechanism includes a top cover, a gearbox, a drive motor, a transmission gear set, a transmission shaft, and a spiral auger. The top cover is located at the top of the rotating processing component, and the gearbox is located above the top cover. This utility model mainly utilizes the supporting guide wheels on the frame, in conjunction with the rotating motor and meshing gears, to enable the gear ring, rotating column, and annular groove to effectively adjust the conveying angle during product output. This allows the equipment to maintain its operating efficiency without needing to stop operating when the target container changes.
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Description

Technical Field

[0001] This utility model relates to the field of elevator technology, and in particular to an elevator for transporting plastic particles. Background Technology

[0002] Hoists are large mechanical devices that transport objects by changing their potential energy, such as mine hoists and dam hoists. In a broader sense, elevators, overhead cranes, winches, jacks, hoists, gate hoists, etc. can all be called hoists. Hoists generally refer to large mechanical devices with high power and strong lifting capacity.

[0003] Existing elevators, such as those described in CN202410806090.7 which relates to the field of plastic transport technology and particularly to an elevator for transporting plastic particles, include a body, a feed hopper fixedly installed on one side of the body with its bottom end extending into the body, and a discharge hopper fixedly embedded in the top of the body. A conveying mechanism for intermittently lifting plastic particles to the top is provided inside the body, and the conveying mechanism includes transmission belts located on both sides inside the body. However, in the above-mentioned technology, the output end is unidirectional. Therefore, this utility model proposes an elevator for transporting plastic particles to solve the problems existing in the prior art. This elevator requires time to adjust the position of the target container during transport, necessitating a stop during this process, which affects the lifting efficiency of the equipment. Utility Model Content

[0004] To address the aforementioned issues, this utility model proposes a lifting machine for transporting plastic particles. This concrete aerated block finished product loading and unloading device mainly utilizes the supporting guide wheels on the frame in conjunction with a rotating motor and meshing gears to enable the gear ring, rotating column, and annular groove to effectively adjust the conveying angle during product output. This allows the equipment to maintain its operating efficiency without needing to stop operating during changes in the target container.

[0005] To achieve the purpose of this utility model, the utility model is achieved through the following technical solution: a lifting machine for transporting plastic particles, including a moving feeding component and a power output mechanism, wherein a rotating processing component is fixedly inserted on the inner top side of the moving feeding component, and a power output mechanism with bolts is provided at the top of the rotating processing component.

[0006] The power output mechanism includes a top cover, a gearbox, a drive motor, a transmission gear set, a drive shaft, and a spiral auger. The top cover is located at the top of the rotating processing component. The gearbox is located above the top cover, and the drive motor is located below one end of the gearbox. The output end of the drive motor is equipped with a transmission gear set, and the output end of the transmission gear set is equipped with a drive shaft. A spiral auger is located on the outer side of the drive shaft.

[0007] In a preferred embodiment of this utility model, the spiral auger has a spiral strip-like structure.

[0008] In a preferred embodiment of the present invention, the mobile feeding assembly includes a moving wheel, a wheel seat, a pneumatic pressure reducing pad, a carriage plate, a bolt washer, a lower column box, an outer arc shell, and an inner arc shell. A wheel seat is provided above the moving wheel, and a pneumatic pressure reducing pad is provided below the inner end of the wheel seat. A carriage plate is provided above the wheel seat.

[0009] In a preferred embodiment of this utility model, a lower pillar box is bolted to the top of the vehicle panel via a bolt washer, and an outer arc shell is provided on the upper side of the lower pillar box, while an inner arc shell is provided on the inner side of the lower pillar box.

[0010] In a preferred embodiment of this utility model, the rotating processing component includes six sets of frames, an open duct, a slotted column, a pair of frames, a support guide wheel, a rotary motor, a meshing gear, a gear ring, a rotating column, an annular groove, an inclined tube, and an output guide plate. The six sets of frames are inserted into the upper part of the inner end of the lower column box. An open duct is provided above the six sets of frames, and a bolt-assembled slotted column is provided above the open duct. The two ends of the slotted column are provided with a pair of frames for mounting the support guide wheel, and a rotary motor is provided on the inner bottom side of the pair of frames. A meshing gear is provided at the output end of the rotary motor.

[0011] In a preferred embodiment of the present invention, the output end of the meshing gear is provided with a toothed ring, and a rotating column is provided on the inner side of the toothed ring. An annular groove is provided at the bottom end of the rotating column, and an inclined tube is provided at the upper output end of the rotating column. An output guide plate is provided on the outer side of one end of the inclined tube.

[0012] The beneficial effects of this utility model are as follows:

[0013] This invention mainly utilizes the supporting guide wheels on the frame, in conjunction with a rotary motor and meshing gears, to enable the gear ring, rotating column, and annular groove to effectively adjust the conveying angle during product output. This allows the equipment to maintain its operating efficiency without interrupting operation when the target container changes. Attached Figure Description

[0014] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0015] Figure 2 This is a bottom-view three-dimensional structural diagram of the present invention;

[0016] Figure 3 This is a cross-sectional three-dimensional structural diagram of the present invention;

[0017] Figure 4 This is a three-dimensional structural diagram of the rotating processing component of this utility model;

[0018] Figure 5 This is a three-dimensional structural diagram of the power output mechanism of this utility model.

[0019] The components include: 1. Moving feed assembly; 101. Moving wheel; 102. Wheel seat; 103. Pneumatic pressure relief pad; 104. Car plate; 105. Bolt washer; 106. Lower column box; 107. Outer arc shell; 108. Inner arc shell; 2. Rotating processing component; 201. Six-piece frame; 202. Open duct; 203. Channel column; 204. Frame pair; 205. Support guide wheel; 206. Rotary motor; 207. Meshing gear; 208. Gear ring; 209. Rotating column; 2010. Annular groove; 2011. Inclined tube; 2012. Output guide plate; 3. Power output mechanism; 301. Top cover; 302. Gearbox; 303. Drive motor; 304. Transmission gear set; 305. Transmission shaft; 306. Spiral auger. Detailed Implementation

[0020] To deepen the understanding of this utility model, the following detailed description will be provided in conjunction with embodiments. These embodiments are only used to explain this utility model and do not constitute a limitation on the scope of protection of this utility model.

[0021] according to Figure 1-5 As shown, this embodiment proposes a lifting machine for transporting plastic particles, including a moving feeding assembly 1 and a power output mechanism 3. The inner top side of the moving feeding assembly 1 is provided with a fixedly inserted rotating processing component 2, and the top of the rotating processing component 2 is provided with a bolt-assembled power output mechanism 3.

[0022] The power output mechanism 3 includes a top cover 301, a gearbox 302, a drive motor 303, a transmission gear set 304, a transmission shaft 305, and a spiral auger 306. The top cover 301 is located at the top of the rotating processing component 2. The gearbox 302 is located above the top cover 301, and the drive motor 303 is located below one end of the gearbox 302. The output end of the drive motor 303 is provided with the transmission gear set 304, and the output end of the transmission gear set 304 is provided with the transmission shaft 305. The spiral auger 306 is located on the outer side of the transmission shaft 305.

[0023] The spiral auger 306 has a spiral plate-like structure.

[0024] In this embodiment, the drive motor 303 then outputs power to run, causing the transmission gear set 304 on the gearbox 302 to mesh and run, thereby causing the transmission shaft 305 to drive the auger 306 to rotate.

[0025] The mobile feeding assembly 1 includes a moving wheel 101, a wheel seat 102, a pneumatic pressure relief pad 103, a carriage plate 104, a bolt washer 105, a lower column box 106, an outer arc shell 107, and an inner arc shell 108. The wheel seat 102 is provided above the moving wheel 101, and the pneumatic pressure relief pad 103 is provided below the inner end of the wheel seat 102. The carriage plate 104 is provided above the wheel seat 102.

[0026] In this embodiment, when in use, the moving wheel 101 below the outer end of the wheel seat 102 outputs its operation, causing the wheel seat 102 to move the device to a suitable position, and the pneumatic pressure relief pad 103 outputs its operation so that the device can be mounted at the processing location.

[0027] A lower pillar box 106 is bolted to the top of the vehicle panel 104 via a bolt washer 105, and an outer arc shell 107 is provided on the upper side of the lower pillar box 106, and an inner arc shell 108 is provided on the inner side of the lower pillar box 106.

[0028] In this embodiment, a sufficient amount of material is then placed into the outer arc shell 107 on the upper side of the lower column box 106, so that the material is input into the inner arc shell 108 on the inner side of the lower column box 106 under the action of the inclined plane, and input into the lower part of the open duct 202.

[0029] The rotating processing component 2 includes six sets of frames 201, an open duct 202, a slotted column 203, a pair of frames 204, a support guide wheel 205, a rotary motor 206, a meshing gear 207, a gear ring 208, a rotating column 209, an annular groove 2010, an inclined tube 2011, and an output guide plate 2012. The six sets of frames 201 are inserted into the upper part of the inner end of the lower column box 106. An open duct 202 is provided above the six sets of frames 201, and a slotted column 203 with bolts is provided above the open duct 202. A pair of frames 204 for mounting the support guide wheel 205 is provided at both ends of the slotted column 203, and a rotary motor 206 is provided on the inner bottom side of the pair of frames 204. A meshing gear 207 is provided at the output end of the rotary motor 206.

[0030] In this embodiment, the rotary motors 206 at both ends of the slotted column 203 then output power to drive the output end to run, so that after the rotary motors 206 output power, they drive the meshing gears 207 to output power, and then the gear ring 208 rotates to drive a suitable orientation angle.

[0031] The output end of the meshing gear 207 is provided with a gear ring 208, and a rotating column 209 is provided on the inner side of the gear ring 208. The bottom end of the rotating column 209 is provided with an annular groove 2010. The upper output end of the rotating column 209 is provided with a slanted tube 2011, and an output guide plate 2012 is provided on the outer side of one end of the slanted tube 2011.

[0032] In this embodiment, the rotation of the spiral auger 306 causes the material to be input into the open duct 202, and then into the trough column 203 and the rotating column 209, and finally output to the target location through the inclined tube 2011 and the output guide plate 2012.

[0033] The working principle of this aerated concrete block loading and unloading device is as follows: During use, the moving wheels 101 below the outer end of the wheel seat 102 move the device to a suitable position, allowing the pneumatic pressure relief pad 103 to mount the device at the processing location. Then, the rotary motors 206 at both ends of the grooved column 203 drive the output end, causing the rotary motors 206 to drive the meshing gear 207, which in turn rotates the gear ring 208 to achieve a suitable orientation angle. Finally, the outer arc shell 107 on the upper side of the lower column box 106... Sufficient material is placed in the inclined plane, allowing it to enter the inner arc shell 108 on the inner side of the lower column box 106 and then into the lower part of the open duct 202. The drive motor 303 then outputs power, causing the transmission gear set 304 on the gearbox 302 to mesh and drive the transmission shaft 305, which in turn drives the auger 306 to rotate. The rotation of the auger 306 causes the material to enter the open duct 202, which then feeds into the channel column 203 and finally into the rotating column 209. The material is then output to the target location via the inclined tube 2011 and the output guide plate 2012.

[0034] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A lifting machine for transporting plastic particles, comprising a moving feeding assembly (1) and a power output mechanism (3), characterized in that: The inner top side of the moving feed assembly (1) is provided with a fixedly inserted rotating processing component (2), and the top of the rotating processing component (2) is provided with a bolt-assembled power output mechanism (3). The power output mechanism (3) includes a top cover (301), a gearbox (302), a drive motor (303), a transmission gear set (304), a transmission shaft (305), and a spiral auger (306). The top cover (301) is located at the top of the rotating processing component (2). The gearbox (302) is located above the top cover (301), and the drive motor (303) is located below one end of the gearbox (302). The output end of the drive motor (303) is provided with a transmission gear set (304), and the output end of the transmission gear set (304) is provided with a transmission shaft (305). The spiral auger (306) is located on the outer side of the transmission shaft (305).

2. The elevator for transporting plastic particles according to claim 1, characterized in that: The spiral auger (306) has a spiral plate-like structure.

3. The elevator for transporting plastic particles according to claim 1, characterized in that: The mobile feeding assembly (1) includes a moving wheel (101), a wheel seat (102), a pneumatic pressure relief pad (103), a car plate (104), a bolt washer (105), a lower column box (106), an outer arc shell (107), and an inner arc shell (108). The wheel seat (102) is provided above the moving wheel (101), and the pneumatic pressure relief pad (103) is provided below the inner end of the wheel seat (102). The car plate (104) is provided above the wheel seat (102).

4. The elevator for transporting plastic particles according to claim 3, characterized in that: The lower pillar box (106) is bolted to the upper part of the vehicle panel (104) via a bolt washer (105), and an outer arc shell (107) is provided on the upper side of the lower pillar box (106), and an inner arc shell (108) is provided on the inner side of the lower pillar box (106).

5. The elevator for transporting plastic particles according to claim 3, characterized in that: The rotating processing component (2) includes six sets of frames (201), an open duct (202), a slotted column (203), a pair of frames (204), a support guide wheel (205), a rotary motor (206), a meshing gear (207), a gear ring (208), a rotating column (209), an annular groove (2010), an inclined tube (2011), and an output guide plate (2012). The six sets of frames (201) are inserted into the upper part of the inner end of the lower column box (106). An open duct (202) is provided above the six sets of frames (201), and a slotted column (203) with bolts is provided above the open duct (202). A pair of frames (204) for mounting the support guide wheel (205) is provided at both ends of the slotted column (203), and a rotary motor (206) is provided on the inner bottom side of the pair of frames (204). A meshing gear (207) is provided at the output end of the rotary motor (206).

6. The elevator for transporting plastic particles according to claim 5, characterized in that: The output end of the meshing gear (207) is provided with a toothed ring (208), and a rotating column (209) is provided on the inner side of the toothed ring (208). An annular groove (2010) is provided at the bottom end of the rotating column (209). An inclined tube (2011) is provided at the upper output end of the rotating column (209), and an output guide plate (2012) is provided on the outer side of one end of the inclined tube (2011).