Automatic discharging device for mushroom can production

CN224645947UActive Publication Date: 2026-08-18BIYANG BILLION HEALTH FOOD CO LTD
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Patent Information

Application Number
CN202521767018.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-19
Publication Date
2026-08-18
Estimated Expiration
2035-08-19

AI Technical Summary

Technical Problem

[0006]针对多个料斗及对应的喂料设备在车间内并行排布,占据了大量的生产场地,导致车间空间利用率低下,并且设备购置较多,增加初期的投资成本以及后续的设备维护成本的问题,本实用新型提供一种菌菇罐头生产用的自动下料装置

Benefits of technology

1、本实用新型通过利用长隔板、短隔板、导料板一、导料板二和引导板构成的物理分隔结构,在输送带上方划分出输送通道一、输送通道二和输送通道三,使输送带上的食用菌能够根据预设路径被可靠地引导分流,将食用菌多通道同步输送,分别为三条输送线供料,大幅减少了设备占地面积,显著提高了生产车间的空间利用效率。

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Abstract

The utility model discloses an automatic unloading device for mushroom can production relates to edible fungus can processing field, including stock bin, conveyer belt, speed reducer motor and two parallelly arranged side plates, a plurality of supporting rollers are rotatably installed between two side plates, and the conveyer belt is sleeved on a plurality of supporting rollers, and the speed reducer motor is fixedly installed on the outside of any side plate, and the output shaft is connected with the roller shaft of the supporting roller of end portion, the utility model discloses a physical separation structure that utilizes long baffle, short baffle, guide plate no.
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Description

Technical Field

[0001] This utility model belongs to the field of edible fungi canning, specifically relating to an automatic feeding device for the production of canned mushrooms. Background Technology

[0002] In the large-scale production of canned edible fungi, the continuity and efficiency of the processing flow are crucial. Among these, the stable and efficient transportation and distribution of the selected and cleaned edible fungi to the subsequent canning process is a key step.

[0003] The current industry standard for production is to configure multiple parallel canning lines. Each canning line is typically equipped with independent conveying equipment and a dedicated hopper. Each hopper also requires a feeding device to meet the needs of simultaneous operation across multiple lines.

[0004] However, the parallel arrangement of multiple hoppers and corresponding feeding equipment in the workshop occupies a large amount of production space, resulting in low workshop space utilization. Furthermore, the large number of equipment purchases increases the initial investment cost as well as subsequent equipment maintenance costs.

[0005] Therefore, we propose an automatic feeding device for the production of canned mushrooms to solve the above problems. Utility Model Content

[0006] In view of the problems that multiple hoppers and corresponding feeding equipment are arranged in parallel in the workshop, occupying a large amount of production space, resulting in low workshop space utilization, and that the purchase of a lot of equipment increases the initial investment cost and subsequent equipment maintenance cost, this utility model provides an automatic feeding device for mushroom canning production.

[0007] The solution adopted by this utility model to solve its technical problem is: an automatic feeding device for the production of canned mushrooms, including a hopper, a conveyor belt, a reduction motor and two parallel side plates, multiple idlers are rotatably installed between the two side plates, the conveyor belt is fitted on the multiple idlers, the reduction motor is fixedly installed on the outer side of any one of the side plates, and its output shaft is connected to the roller shaft of the end idler. The front side plate is provided with discharge port three and discharge port two; The hopper is installed on top of the two side plates, and its bottom outlet corresponds to the conveyor belt. It also includes a baffle, a guide plate, a guide plate one, and a guide plate two. The baffle is welded and fixed between the two side plates and is located at the beginning of the conveyor belt. Long partitions and short partitions are welded and fixed on the side of the baffle. The long partitions and short partitions are arranged parallel to each other on the upper surface of the conveyor belt. A conveying channel one is formed between the long partition and the rear side plate. A guide plate one is welded and fixed between the short partition and the front side plate. A guide plate two is welded and fixed between the long partition and the front side plate. A conveying channel two is formed between the long partition, the short partition, the guide plate one, and the guide plate two. The conveying channel two is connected to the discharge port two. The guide plate is welded and fixed between the short partition and the front side plate, forming a conveying channel three between the short partition, the guide plate and the front side plate, and the conveying channel three is connected to the discharge port three.

[0008] Preferably, a base plate is welded to the bottom of the side plate, and the same frame is welded to the bottom of the two base plates.

[0009] Preferably, support frames are welded and fixed to the front and rear sides of the hopper, and the bottom end of the support frame is welded and fixed to the upper surface of the base plate.

[0010] Preferably, a feeding trough is welded and fixed to the discharge port three and discharge port two respectively.

[0011] Compared with the prior art, the beneficial effects of this utility model are: 1. This utility model utilizes a physical separation structure consisting of long partitions, short partitions, guide plate one, guide plate two, and guide plate to divide the conveyor belt into conveyor channel one, conveyor channel two, and conveyor channel three. This allows the edible fungi on the conveyor belt to be reliably guided and diverted according to a preset path, enabling the edible fungi to be transported synchronously through multiple channels and to supply materials to three conveyor lines. This significantly reduces the equipment footprint and greatly improves the space utilization efficiency of the production workshop.

[0012] 2. This utility model installs the hopper above the conveyor belt, allowing the edible fungi in the hopper to fall directly onto conveyor channels one, two, and three for distributed transport. Attached Figure Description

[0013] Figure 1 This is one of the three-dimensional structural schematic diagrams of this utility model; Figure 2 This is the second three-dimensional structural schematic diagram of the present invention; Figure 3 This is a top view of the structure of the present invention in use.

[0014] In the diagram: 1. Hopper, 2. Support frame, 31. Base plate, 32. Side plate, 33. Conveyor belt, 34. Gear motor, 35. Frame, 41. Long partition, 42. Guide plate one, 43. Guide plate two, 44. Guide plate, 45. Short partition, 46. Baffle, 5. Discharge chute, 6. Conveyor line. Detailed Implementation

[0015] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0016] Please see Figure 1-3 This utility model provides a technical solution for an automatic feeding device for the production of canned mushrooms: Example 1: according to Figure 1-3 As shown, it includes a hopper 1, a conveyor belt 33, a geared motor 34, and two parallel side plates 32. The bottom of the side plates 32 is welded and fixed to a base plate 31, and the bottom of the two base plates 31 is welded and fixed to the same frame 35.

[0017] Multiple idlers are arranged between the two side plates 32. Bearings are fitted on the roller shafts at both ends of the idlers. The bearings at both ends are installed on the two side plates 32 respectively. Under the action of the bearings, the idlers can rotate stably. The conveyor belt 33 is fitted on the multiple idlers. The geared motor 34 is fixedly installed on the outer side of any side plate 32. Its output shaft is connected to the roller shaft of the end idler. The geared motor 34 drives the corresponding idler to rotate, so that the conveyor belt 33 can run and transport edible fungi.

[0018] The front side plate 32 has a discharge port 3 and a discharge port 2, and a discharge trough 5 is welded and fixed on the discharge port 3 and the discharge port 2 respectively.

[0019] The hopper 1 is installed on top of the two side plates 32, and its bottom outlet corresponds to the conveyor belt 33, so that the edible fungi in the hopper 1 fall directly onto the conveyor belt 33. Support frames 2 are welded and fixed on the front and rear sides of the hopper 1 respectively. The bottom end of the support frame 2 is welded and fixed to the upper surface of the bottom plate 31 to further reinforce the hopper 1 and ensure the stability of the hopper 1 during use.

[0020] It also includes a baffle 46, a guide plate 44, a first guide plate 42, and a second guide plate 43. The baffle 46 is welded and fixed between the two side plates 32 and is located at the beginning of the conveyor belt 33 to prevent the edible fungi falling from the hopper 1 from falling out of the conveyor belt 33. The side of the baffle 46 is welded and fixed with a long partition 41 and a short partition 45. The long partition 41 and the short partition 45 are arranged in parallel on the upper surface of the conveyor belt 33.

[0021] A conveying channel one is formed between the long partition 41 and the rear side plate 32. The first guide plate 42 is welded and fixed between the short partition 45 and the front side plate 32. The second guide plate 43 is welded and fixed between the long partition 41 and the front side plate 32. The second conveying channel is formed between the long partition 41, the short partition 45, the first guide plate 42 and the second guide plate 43. The second conveying channel is connected to the second discharge port. The guide plate 44 is welded and fixed between the short partition plate 45 and the front side plate 32. The short partition plate 45, the guide plate 44 and the front side plate 32 form a conveying channel three. The conveying channel three is connected to the discharge port three. The conveying channel one, conveying channel two and conveying channel three are divided above the conveyor belt 33, so that the edible fungi on the conveyor belt 33 can be reliably guided and diverted according to the preset path, and the edible fungi are conveyed synchronously through multiple channels to supply materials to the three conveyor lines 6. This greatly reduces the equipment footprint and significantly improves the space utilization efficiency of the production workshop.

[0022] In practical use, the automatic feeding device for the production of mushroom canned goods of this utility model first starts the reduction motor 34 and the feeding equipment. The feeding equipment transports the edible fungi into the silo 1. The edible fungi in the silo 1 fall directly onto the first conveyor channel, the second conveyor channel and the third conveyor channel. The reduction motor 34 drives the corresponding idler rollers to rotate, so that the conveyor belt 33 can run. The edible fungi on the conveyor belt 33 can be reliably guided and diverted according to the preset path. As the conveyor belt 33 continues to operate, the edible fungi in the first conveyor channel are directly transported to the end and fall onto the corresponding conveyor line 6. The edible fungi in the second conveyor channel are discharged from the second outlet and fall onto the corresponding conveyor line 6. The edible fungi in the third conveyor channel are discharged from the third outlet and fall onto the corresponding conveyor line 6.

Claims

1. An automatic feeding device for the production of canned mushrooms, comprising a hopper, a conveyor belt, a geared motor, and two parallel side plates, wherein multiple idlers are rotatably mounted between the two side plates, the conveyor belt is fitted onto the multiple idlers, and the geared motor is fixedly mounted on the outer side of any one of the side plates, and its output shaft is connected to the roller shaft of the end idler. The front side plate is provided with discharge port three and discharge port two; The bunker is installed on the top of the two side plates, and the bottom discharge port corresponds to the conveying belt, characterized in that: It also includes a baffle, a guide plate, a guide plate one, and a guide plate two. The baffle is welded and fixed between the two side plates and located at the beginning of the conveyor belt. Long partitions and short partitions are welded and fixed on the side of the baffle. The long partitions and short partitions are arranged parallel to each other on the upper surface of the conveyor belt. A conveying channel one is formed between the long partition and the rear side plate. A guide plate one is welded and fixed between the short partition and the front side plate. A guide plate two is welded and fixed between the long partition and the front side plate. A conveying channel two is formed between the long partition, the short partition, the guide plate one, and the guide plate two. The conveying channel two is connected to the discharge port two. The guide plate is welded and fixed between the short partition and the front side plate, forming a conveying channel three between the short partition, the guide plate and the front side plate, and the conveying channel three is connected to the discharge port three.

2. The automatic discharging device for canned mushroom production according to claim 1, characterized in that: A base plate is welded and fixed to the bottom of the side plate, and the same frame is welded and fixed to the bottom of the two base plates.

3. The automatic discharging device for canned mushroom production according to claim 2, characterized in that: Support frames are welded and fixed to the front and rear sides of the hopper, and the bottom end of the support frame is welded and fixed to the upper surface of the base plate.

4. The automatic discharging device for canned mushroom production according to claim 1, characterized in that: The discharge port 3 and discharge port 2 are respectively welded and fixed with a feeding trough.