Discharging structure of single-mass connecting rod conveyor
By designing a single-body connecting rod conveyor discharge structure including discharge groove and guide inclined plate, the problem that the existing conveyor cannot meet the needs of specific particle size materials and poor discharge flowability is solved, and the smoothness and flexibility of discharge are achieved.
Patent Information
- Application Number
- CN202421972298.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-14
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2034-08-14
AI Technical Summary
The existing FZS type single body connecting rod vibration conveyor cannot meet the conveying needs of materials of specific particle sizes, and there is a problem of poor flowability (medium plugging) when discharged.
A single body connecting rod conveyor discharge structure is designed, including a discharge section opened in the rear section of the conveyor tank and a discharge assembly connected to the discharge section. The discharge assembly consists of a discharge groove and a guide inclined plate. The inclined angle of the guide inclined plate is 30-70°, so that the material is smoothly transported from the conveying groove to the entrance of the crushing device.
It effectively avoids the poor flowability (material blockage) of the material caused by the discharge method at the bottom of the original conveyor, realizes the smoothness of the discharge, meets the conveying needs of materials with a specific particle size, and the discharge components can be switched freely.
Smart Images

Figure CN222886533U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a structure of a vibrating conveyor, in particular to a discharging structure of a single-mass connecting rod conveyor. Background Art
[0002] The FZS single-mass connecting rod vibrating conveyor mainly consists of a conveying trough 1´, a main vibration plate spring 2´, a driving mechanism 3´, a chassis 4´, and a connecting rod driven by the driving mechanism and a connecting rod spiral spring cooperating with the connecting rod, etc. ( Figure 1 ) During the operation of the conveyor, the driving mechanism 3´ makes the end of the connecting rod move reciprocally, and the connecting rod drives the conveying trough 1´ to move reciprocally through the connecting rod spiral spring (not shown in the figure) at its end, so that the material is continuously thrown up and jumps forward along the vibration direction to achieve the purpose of conveying the material; it applies the resonance principle of mechanical vibration. Since the material jumps forward in a parabolic trajectory during the conveying process, the wear of the trough is slight; its structural features are: simple and compact structure, few lubrication points, and the lubrication points do not contact the material, so it is convenient to install, has a small maintenance workload, good sealing performance, and little impact on environmental pollution. However, when there are specific particle size requirements for the material to be conveyed, the existing conventional FZS single-mass connecting rod vibrating conveyor cannot meet the requirements. For this reason, it is usually necessary to design a subsequent crushing device to crush the output material again. And due to the unreasonable design of the original equipment outlet, it will also cause the problem of poor flowability (blockage) of the material during discharging after being connected to the equipment. Summary of the Invention
[0003] The technical problem to be solved by the utility model is to provide a discharging structure of a single-mass connecting rod conveyor with a simple structure and smooth discharging, so as to meet the conveying requirements of materials with specific particle sizes.
[0004] To solve the above technical problem, the discharging structure of the single-mass connecting rod conveyor of the utility model includes a discharging section opened at the rear section of the conveying trough and a discharging assembly connected to the discharging section. The discharging assembly includes a discharging trough connected to the conveying trough and a discharging hopper connected to the open end on the side of the discharging trough. A guiding inclined plate for conveying the material output from the discharging trough into the discharging hopper is arranged in the discharging trough. The hopper outlet of the discharging hopper is lower than the hopper inlet of the discharging hopper and directly connects the hopper outlet to the crushing device. Through the guiding inclined plate, the material can be smoothly conveyed from the conveying trough into the inlet of the crushing device.
[0005] The discharging hopper extends obliquely downward from the open end on the side of the discharging trough.
[0006] The hopper inlet of the discharging hopper is connected to the bottom of the discharging trough.
[0007] The inclination angle of the guiding inclined plate is 30 - 70°.
[0008] The discharge assembly is connected to the discharge section through a connecting flange.
[0009] The inclination angle of the discharge hopper is 25 - 50°.
[0010] After adopting the above structure, by providing a discharge assembly composed of a discharge chute and a discharge hopper connected to the open end on the side of the discharge chute, it can effectively avoid the problem that the inclination angle of the discharge pipe is insufficient in the original bottom discharge mode of the conveyor, resulting in poor flowability of the material (blockage). Thus, it can be directly connected to the crushing device to meet the requirements of specific particle size transportation. In particular, by providing a guide inclined plate in the discharge chute, the purpose of changing the running direction of the material and enabling the material to smoothly enter the discharge hopper can be achieved. In addition, the discharge assembly is connected to the discharge section through a flange, and different discharge assemblies and even different discharge chutes can be replaced according to needs to achieve the purpose of free switching. Description of the Drawings
[0011] Figure 1 It is a schematic installation structure diagram of the discharge structure of the single-body connecting rod conveyor of the present invention;
[0012] Figure 2 It is a schematic front view structure diagram of the discharge structure of the single-body connecting rod conveyor of the present invention;
[0013] Figure 3 It is a schematic side view structure diagram of the discharge structure of the single-body connecting rod conveyor of the present invention;
[0014] Figure 4 It is a schematic top view structure diagram of the discharge structure of the single-body connecting rod conveyor of the present invention. Detailed Description of the Invention
[0015] The following further elaborates on the discharge structure of the single-body connecting rod conveyor of the present invention in conjunction with the drawings and specific embodiments.
[0016] As shown in the figure, the discharge structure of the single-body connecting rod conveyor of the present invention includes a discharge section 1 opened at the rear section of the conveying trough and a discharge assembly 2 connected to the discharge section. The discharge assembly includes a discharge chute 3 connected to the discharge section of the conveying trough through a connecting flange and a discharge hopper 4 connected to the open end on the side of the discharge chute. It can be seen from the figure that the hopper inlet of the discharge hopper 4 is connected to the bottom of the discharge chute. A guide inclined plate 5 is provided in the discharge chute 3 for conveying the material output from the discharge chute into the discharge hopper 4. The inclination angle of the guide inclined plate with respect to the feeding direction is 30 - 70°, preferably 35°. The hopper outlet of the discharge hopper 4 lower thanThe hopper inlet of the discharge hopper. As can be seen from the figure, the discharge hopper 4 extends obliquely downward from the open end on the side of the discharge chute, so that the hopper outlet can be directly connected to the inlet of the crushing device. Among them, the inclination angle between the said discharge hopper 4 and the bottom surface of the discharge chute is 25-50°, preferably 30°. Through the guide chute, the material can be smoothly conveyed from the conveying chute into the inlet of the crushing device.
[0017] During implementation, the discharge section 1 at the rear section of the conveying chute in the present utility model is a connecting position for discharging, that is: a vacant position for installing the discharge assembly is opened in the rear section of the conveying chute. Fixed flanges are provided at both the front and rear ends of the discharge section 1, and a connecting flange is provided at one end of the discharge assembly. Thus, the discharge assembly can be connected to the fixed flange at the front end of the discharge section 1 through the connecting flange, solving the contradiction that the height, distance position, etc. problems generated during the on-site installation of the later-added equipment and the FZS type single-mass connecting rod vibrating conveyor cannot feed normally. Thus, with a small investment, the transformation project can be successfully completed. In addition, even when the discharge assembly does not need to be installed, the original discharge chute can also be installed, and the purpose of freely replacing the discharge assembly and the original conveying chute can be achieved.
[0018] Certainly, the above description is not a limitation of the present utility model, and the present utility model is not limited to the above examples. Changes, modifications, additions or substitutions made by those skilled in the art within the scope of the essence of the present utility model should also belong to the protection scope of the present utility model.
Claims
1. A single-body connecting rod conveyor discharging structure, characterized in that: The invention comprises a discharge section (1) provided at the rear section of a conveying trough and a discharge assembly (2) connected to the discharge section, wherein the discharge assembly comprises a discharge trough (3) connected to the conveying trough and a discharge hopper (4) connected to the side opening end of the discharge trough, wherein the discharge trough (3) is provided with a guide inclined plate (5) for conveying the material outputted from the discharge trough to the discharge hopper (4), wherein the hopper outlet of the discharge hopper (4) is lower than the hopper inlet of the discharge hopper and the hopper outlet is directly connected to the crushing device, and the material can be smoothly conveyed from the conveying trough to the inlet of the crushing device through the guide inclined plate.
2. The single-mass connecting rod conveyor discharging structure according to claim 1 is characterized in that: The discharge hopper (4) extends obliquely downward from the opening end of the side of the discharge trough.
3. The single-mass connecting rod conveyor discharging structure according to claim 1 or 2, characterized in that: The hopper inlet of the discharge hopper (4) is connected to the bottom of the discharge trough.
4. The single-mass connecting rod conveyor discharging structure according to claim 3 is characterized in that: The inclination angle of the material guiding inclined plate is 30-70°.
5. The single-mass connecting rod conveyor discharging structure according to claim 1, 2 or 4, characterized in that: The discharge assembly is connected to the discharge section (1) via a connecting flange.
6. The single-mass connecting rod conveyor discharging structure according to claim 2 is characterized in that: The inclination angle of the discharge hopper (4) is 25-50°.