Semi-automatic discharging temporary storage equipment

By designing a semi-automatic feeding and buffering device, and using a rotating mechanism and a baffle mechanism to automatically control the rotation of the baffle, the problems of high labor intensity and material loss at the outlet of the bubble washing machine are solved, and the safe and efficient loading of materials is achieved.

CN223480309UActive Publication Date: 2025-10-28GELGOOG INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202423120656.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-17
Publication Date
2025-10-28
Estimated Expiration
2034-12-17

AI Technical Summary

Technical Problem

Existing bubble washing machines increase the labor intensity of personnel when using baffles to block or release materials at the discharge port, and are prone to causing materials to fly away, resulting in a loss of material utilization and posing safety hazards.

Method used

A semi-automatic material feeding and buffering device was designed, including a buffer bin, a rotating mechanism, and a material blocking mechanism. The rotating shaft drives the baffle to rotate in the buffer bin, realizing automatic blocking and release of materials, reducing the intensity of manual operation, and the limit structure and spring-back structure ensure that the baffle rotates in the correct position.

Benefits of technology

It effectively reduces the labor intensity of personnel, avoids material flying and splashing, improves material utilization and loading efficiency, and ensures operational safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of blanking equipment, in particular to semi-automatic blanking buffering equipment which comprises a buffering bin, a rotating mechanism, a material blocking mechanism and a manual mechanism, the rotating mechanism comprises a rotating shaft rotationally arranged on the buffering bin, the rotating shaft is arranged in the buffering bin in a penetrating mode, the two ends of the rotating shaft penetrate out of the buffering bin, and the material blocking mechanism comprises a baffle. The baffle is located in the temporary storage bin and fixedly arranged on the rotating shaft, the manual mechanism comprises a handheld assembly and a springback structure, the handheld assembly is fixedly connected with one end of the rotating shaft, and the springback structure is arranged between the handheld assembly and the temporary storage bin. The semi-automatic discharging temporary storage equipment is convenient to operate, can effectively reduce the labor intensity of workers and the cost of the workers, effectively prevents materials from bouncing and splashing, improves the maximum utilization rate of the materials and the safety of the workers, and further improves the framing working efficiency of a container basket.
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Description

Technical Field

[0001] This utility model relates to the field of material feeding equipment technology, specifically to a semi-automatic material feeding buffer device. Background Technology

[0002] A bubble cleaning machine is a device that generates a large number of bubbles inside a water tank and uses the bursting force of the bubbles and the tumbling force of the water flow to clean items in the tank at a certain temperature.

[0003] Currently, commonly used bubble washing machines employ a baffle placed below the discharge port to block or allow material to flow through a material basket (or other container). This process requires constant human intervention. Assuming a material filling rate of one basket per minute, a worker working 10 hours a day would need to perform the action twice per basket, resulting in thousands of actions daily. This is time-consuming, labor-intensive, and causes visual fatigue, further increasing the workload. Furthermore, the baffle can sometimes cause material to be thrown around during the blocking or releasing process, potentially injuring nearby workers and severely reducing material utilization. Therefore, a semi-automatic material feeding and buffering device is urgently needed to solve these problems. Utility Model Content

[0004] To address the technical problem of placing a baffle under the discharge port to block or allow material to flow through the material crate (or other container), which increases labor intensity and can cause material to be thrown around by the baffle, severely reducing the maximum utilization rate of materials, this utility model provides a semi-automatic feeding and buffering device. This device is easy to operate, effectively reduces labor intensity and labor costs, prevents material from being thrown around and splashing, improves the maximum utilization rate of materials and personnel safety, and also increases the efficiency of loading containers.

[0005] This utility model provides a semi-automatic feeding and buffering device, including a buffer bin, a rotating mechanism, a blocking mechanism, and a manual mechanism. The rotating mechanism includes a rotating shaft rotatably mounted on the buffer bin, the rotating shaft passing through the buffer bin, and both ends of the rotating shaft extending to the outside of the buffer bin. The blocking mechanism includes a baffle plate located inside the buffer bin and fixedly mounted on the rotating shaft. The manual mechanism includes a handheld component and a spring-loaded structure. The handheld component is fixedly connected to one end of the rotating shaft, and the spring-loaded structure is disposed between the handheld component and the buffer bin.

[0006] Furthermore, the handheld assembly includes a rotating fixing sleeve, a support plate, a grip handle, and a limiting structure. The rotating fixing sleeve is disposed at one end of the support plate and is fixedly connected to one end of the rotating shaft. The grip handle is disposed at the other end of the support plate. The limiting structure is disposed on the outer wall of the buffer compartment to limit the grip handle.

[0007] Furthermore, the limiting structure includes a limiting shaft and an arc-shaped limiting plate. The limiting shaft is mounted on the support plate, and the grip handle and the limiting shaft are coaxially aligned. The rotating shaft is rotatably mounted on the buffer chamber via a bearing seat. The arc-shaped limiting plate is mounted on the outer wall of the buffer chamber, and the arc-shaped limiting plate is coaxially aligned with the bearing seat. The arc-shaped limiting plate is provided with an arc-shaped slide rail, and the end of the limiting shaft extends into the arc-shaped slide rail and can move within the arc-shaped slide rail. The limiting shaft and the arc-shaped limiting plate work together to limit the rotation range of the grip handle, effectively preventing labor fatigue when the user rotates the grip handle, and preventing the baffle from rotating excessively and failing to return to a horizontal or vertical state.

[0008] Furthermore, the bottom of the arc-shaped slide is located below the bearing seat, the top of the arc-shaped slide is located to the side of the bearing seat, and the central angle of the arc-shaped slide is 90°.

[0009] Furthermore, the rebound structure includes a fixed plate and a tension spring. The fixed plate is disposed on the outer wall of the buffer compartment and outside the fan-shaped area formed between the arc-shaped slide and the bearing seat. The tension spring is fixedly disposed between the fixed plate and the rotating fixed sleeve.

[0010] Furthermore, hooks are provided at both ends of the tension spring, a first hanging hole is provided on the fixed plate, and a fixing bolt is provided on the rotating fixed sleeve, with a second hanging hole on the fixing bolt. The two hooks are respectively hung on the first hanging hole and the second hanging hole. The tension spring is fixed between the fixed plate and the rotating fixed sleeve by engaging with the hooks at both ends with the first hanging hole on the fixed plate and the second hanging hole on the fixing bolt.

[0011] Furthermore, the buffer compartment includes a first side plate, a second side plate, a third side plate, and a fourth side plate that are fixedly connected, with the first side plate and the third side plate corresponding to each other, and the second side plate and the fourth side plate corresponding to each other. A feeding channel is formed between the first side plate, the second side plate, the third side plate, and the fourth side plate. The rotating shaft is rotatably mounted on the second side plate and the fourth side plate. The middle part of the rotating shaft is located inside the feeding channel, and both ends of the rotating shaft extend to the outside of the feeding channel. The spring-loaded structure is disposed between the handheld component and the fourth side plate.

[0012] Furthermore, the rotating mechanism also includes two bearing seats, which are respectively disposed on the second side plate and the fourth side plate. The second and fourth side plates have through holes at positions corresponding to the bearing seats. Both ends of the rotating shaft pass through the through holes and are rotatably connected to the bearing seats. One end of the rotating shaft passes through the bearing seat and is fixedly connected to the rotating retaining sleeve on the handheld assembly. The bearing seats drive the rotating shaft to rotate.

[0013] Furthermore, the baffle includes a central shaft, a first baffle plate, and a second baffle plate. The first baffle plate is disposed on both sides of the central shaft, and the second baffle plate is disposed at both ends of the central shaft and the first baffle plate. A hollow channel is provided on the central shaft, and the middle part of the rotating shaft passes through the hollow channel. The first baffle plate and the second baffle plate are used to contact the inner wall of the buffer compartment.

[0014] Furthermore, each of the first baffles is uniformly provided with multiple drainage holes along its width. The baffles divide the material feeding channel into two areas. When the material is located above the baffle and in the upper part of the material feeding channel and cannot fall, the water carried by the material can be discharged through the drainage holes first.

[0015] Compared with the prior art, the present invention has the following beneficial effects:

[0016] The initial position of the baffle in this invention is vertical. At this time, the material discharged from the outlet of the bubble washing machine falls into the container through the space between the baffle and the inner wall of the buffer chamber. When the container is full and a new container needs to be replaced, the baffle activates and temporarily blocks the rotating material inside the buffer chamber. The baffle is in a horizontal state and in contact with the inner wall of the buffer chamber. After the new container is replaced, the baffle activates again, releasing the temporary obstruction of the material, and returns to a vertical state. The handheld component returns to its initial position, and the material can continue to enter the new container. Furthermore, because the baffle rotates inside the buffer chamber, it prevents material from bouncing or splashing. This semi-automatic feeding and buffering device features a compact structure, is easy to operate, effectively reduces labor intensity and labor costs, prevents material from bouncing or splashing, improves the maximum utilization rate of materials and personnel safety, and also increases the efficiency of container loading. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the structure of a semi-automatic feeding and buffering device according to this utility model;

[0018] Figure 2 This is a top view of a semi-automatic feeding and buffering device according to this utility model;

[0019] Figure 3 This is a schematic diagram of the rotating mechanism of this utility model;

[0020] Figure 4 This is a schematic diagram of the structure of the baffle of this utility model;

[0021] Figure 5 This is a schematic diagram of the baffle of this utility model in a vertical position;

[0022] Figure 6This is a schematic diagram of the baffle of this utility model in a horizontal state;

[0023] Figure 7 This is a schematic diagram of the manual mechanism of this utility model;

[0024] The numbers in the attached diagram are:

[0025] 1. Buffer compartment; 11. First side panel; 12. Second side panel; 13. Third side panel; 14. Fourth side panel;

[0026] 2. Rotating mechanism; 21. Rotating shaft; 22. Bearing housing;

[0027] 3. Baffle; 31. Central shaft; 32. First baffle; 33. Second baffle;

[0028] 4. Handheld component; 41. Rotating fixing sleeve; 42. Support plate; 43. Grip handle; 44. Limiting shaft; 45. Arc-shaped limiting plate;

[0029] 5. Rebound structure; 51. Fixing plate; 52. Tension spring. Detailed Implementation

[0030] The present invention will be further described below with reference to the accompanying drawings and specific embodiments.

[0031] like Figures 1-7 As shown, a semi-automatic feeding and buffering device includes a buffer chamber 1, a rotating mechanism 2, a material-blocking mechanism, and a manual mechanism. The rotating mechanism 2 includes a rotating shaft 21 rotatably mounted on the buffer chamber 1, the rotating shaft 21 passing through the buffer chamber 1, and both ends of the rotating shaft 21 extending to the outside of the buffer chamber 1. The material-blocking mechanism includes a baffle 3, which is located inside the buffer chamber 1 and fixedly mounted on the rotating shaft 21. The manual mechanism includes a handheld component 4 and a spring-loaded structure 5. The handheld component 4 is fixedly connected to the end of the rotating shaft 21, and the spring-loaded structure 5 is disposed between the handheld component 4 and the buffer chamber 1. When the handheld component 4 rotates, it drives the rotating shaft 21 to rotate, causing the baffle 3 to rotate inside the buffer chamber 1 to open or close the interior of the buffer chamber 1. In this embodiment, the semi-automatic feeding and buffering device is installed at the outlet of a bubble washing machine, and a container basket is placed below the semi-automatic feeding and buffering device for further transfer of materials (such as fruits and vegetables). Among them, the buffer chamber 1 is installed at the discharge port of the bubble washing machine. The structure of the buffer chamber 1 can be designed according to the size and position of the discharge port, so as to realize the semi-automatic feeding buffer device fixed at the discharge port.

[0032] The usage process of the semi-automatic feeding and buffering device in this embodiment: The initial position of the baffle 3 is vertical. At this time, the material discharged from the outlet of the bubble washing machine falls into the container basket through the space between the baffle 3 and the inner wall of the buffer bin 1.

[0033] When a container is full and a new container needs to be replaced, baffle 3 is activated. Baffle 3 rotates and temporarily blocks the material inside the buffer bin 1. Specifically, a person operates the handheld component 4 to drive the rotating shaft 21 to rotate counterclockwise, which in turn drives the baffle 3 to rotate counterclockwise. At this time, the spring structure 5 is in a stretched state. After the baffle 3 rotates counterclockwise, it is in a horizontal state and contacts the inner wall of the buffer bin 1. The baffle 3 divides the interior of the buffer bin 1 into two areas. The material is located above the baffle 3 and inside the buffer bin 1 and cannot fall. After the new container is replaced, baffle 3 is activated again and the temporary obstruction of the material is lifted. Specifically, a person releases the handheld component 4, and the spring structure 5 retracts under its own elastic force, driving the handheld component 4 and the rotating shaft 21 to rotate clockwise, which in turn drives the baffle 3 to rotate clockwise. After the baffle 3 rotates clockwise, it is in a vertical state again, the handheld component 4 returns to its initial position, and the material can continue to enter the new container. The spring-loaded structure 5 automatically returns the baffle 3 to its initial position, effectively reducing manual labor intensity. It's worth noting that during the rotation of the baffle 3, material can still fall into the container through the space between the baffle 3 and the inner wall of the buffer bin 1. Repeating this process allows for the loading of several container baskets. Furthermore, because the baffle 3 rotates inside the buffer bin 1, material will not bounce or splash.

[0034] The semi-automatic feeding and buffering device in this embodiment has a compact structure and is easy to operate. It can effectively reduce the labor intensity and labor costs of personnel, prevent materials from flying and splashing, improve the maximum utilization rate of materials and personnel safety, and also improve the work efficiency of container loading.

[0035] In one possible implementation, the handheld assembly 4 includes a rotating fixing sleeve 41, a support plate 42, a grip handle 43, and a limiting structure. The rotating fixing sleeve 41 is disposed at one end of the support plate 42 and is fixedly connected to one end of the rotating shaft 21. The grip handle 43 is disposed at the other end of the support plate 42. The limiting structure is disposed on the outer wall of the buffer compartment 1 to limit the grip handle 43. The rotating fixing sleeve 41 and the grip handle 43 are welded to both ends of the support plate 42. When a person operates the grip handle 43, the support plate 42, the rotating fixing sleeve 41, and the rotating shaft 21 rotate counterclockwise, which in turn causes the baffle 3 to rotate counterclockwise. At this time, the spring-loaded structure 5 is in a stretched state, and the baffle 3 is in a horizontal state. When a person releases the grip handle 43, the spring-loaded structure 5 contracts under its own elastic force, causing the grip handle 43, support plate 42, rotating fixed sleeve 41, and rotating shaft 21 to rotate clockwise, which in turn causes the baffle 3 to rotate clockwise, and the baffle 3 is in a vertical position. The function of the limiting structure is to limit the rotation range of the grip handle 43, effectively preventing labor fatigue when the person rotates the grip handle 43, and preventing the baffle 3 from rotating excessively and failing to return to a horizontal or vertical state.

[0036] In one possible implementation, the limiting structure includes a limiting shaft 44 and an arc-shaped limiting plate 45. The limiting shaft 44 is mounted on the support plate 42, and the grip handle 43 is coaxially aligned with the limiting shaft 44. The limiting shaft 44 is welded to the support plate 42, and the grip handle 43 is coaxially aligned with the limiting shaft 44. The rotating shaft 21 is rotatably mounted on the buffer chamber 1 via a bearing seat 22. The arc-shaped limiting plate 45 is mounted on the outer wall of the buffer chamber 1 and is coaxially aligned with the bearing seat 22. Specifically, the arc-shaped limiting plate 45 is mounted on the fourth side plate 14 and is located away from the spring-loaded structure 5. The arc-shaped limiting plate 45 has an arc-shaped slide rail, and the end of the limiting shaft 44 extends into the arc-shaped slide rail and can move within it. The movement trajectory of the limiting shaft 44 is consistent with the arc-shaped slide rail on the arc-shaped limiting plate 45. The grip handle 43 and the limiting shaft 44 are coaxially arranged, and the arc-shaped limiting plate 45 and the bearing seat 22 are coaxially arranged to ensure that when a person operates the grip handle 43 or the spring structure 5 is in action, the grip handle 43, the support plate 42, the rotating fixed sleeve 41 and the rotating shaft 21 rotate synchronously.

[0037] When a person operates the handle 43, the support plate 42, the rotating fixed sleeve 41, and the rotating shaft 21 rotate counterclockwise, which in turn causes the baffle 3 to rotate counterclockwise. At this time, the spring-loaded structure 5 is in a stretched state, and the end of the limiting shaft 44 moves in the arc-shaped slide and moves to the top of the arc-shaped slide, while the baffle 3 is in a horizontal state. When the person releases the handle 43, the spring-loaded structure 5 retracts under its own elastic force, causing the handle 43, the support plate 42, the rotating fixed sleeve 41, and the rotating shaft 21 to rotate clockwise. At this time, the end of the limiting shaft 44 moves in the arc-shaped slide and moves to the bottom of the arc-shaped slide, while the baffle 3 is in a vertical state.

[0038] The limiting shaft 44 and the arc-shaped limiting plate 45 work together to limit the rotation range of the grip handle 43, effectively preventing labor fatigue when the person rotates the grip handle 43, and preventing the baffle 3 from rotating excessively and failing to return to the horizontal or vertical state.

[0039] In one possible implementation, the bottom of the arc-shaped slide is located below the bearing seat 22, and the top of the arc-shaped slide is located to the side of the bearing seat 22. The central angle corresponding to the arc-shaped slide is 90°. The limiting shaft 44 and the arc-shaped limiting plate 45 work together to limit the rotation range of the grip handle 43, that is, the rotation range of the grip handle 43 and the baffle 3 is 0° to 90°. Taking the bottom surface of the arc-shaped slide as 0° and the top surface of the arc-shaped slide as 90°, when the baffle 3 is in a horizontal state, the surface of the baffle 3 is at 90°, and the end of the limiting shaft 44 is at the top of the arc-shaped slide; when the baffle 3 is in a vertical state, the surface of the baffle 3 is at 0°, and the end of the limiting shaft 44 is at the bottom of the arc-shaped slide.

[0040] In one possible implementation, the rebound structure 5 includes a fixed plate 51 and a tension spring 52. The fixed plate 51 is disposed on the outer wall of the buffer chamber 1 and located outside the fan-shaped area formed between the arc-shaped slide and the bearing seat 22. The fixed plate 51 is welded to the fourth side plate 14. The tension spring 52 is fixedly disposed between the fixed plate 51 and the rotating fixed sleeve 41. One end of the tension spring 52 is fixedly connected to the fixed plate 51, and the other end of the tension spring 52 is fixedly connected to the rotating fixed sleeve 41. The tension spring 52 is fixed between the fixed plate 51 and the rotating fixed sleeve 41.

[0041] When a person operates the handle 43, the support plate 42, the rotating fixed sleeve 41, and the rotating shaft 21 rotate counterclockwise, which in turn causes the baffle 3 to rotate counterclockwise. At this time, the tension spring 52 is in a stretched state, and the end of the limiting shaft 44 moves in the arc-shaped slide and moves to the top of the arc-shaped slide, while the baffle 3 is in a horizontal state. When the person releases the handle 43, the tension spring 52 contracts under its own elastic force, causing the handle 43, the support plate 42, the rotating fixed sleeve 41, and the rotating shaft 21 to rotate clockwise. At this time, the end of the limiting shaft 44 moves in the arc-shaped slide and moves to the bottom of the arc-shaped slide, while the baffle 3 is in a vertical state.

[0042] In one possible implementation, hooks are provided at both ends of the tension spring 52, a first hanging hole is provided on the fixing plate 51, and a fixing bolt is provided on the rotating fixing sleeve 41, with a second hanging hole on the fixing bolt. The two hooks are respectively hung on the first hanging hole and the second hanging hole. The tension spring 52 is fixedly connected between the fixing plate 51 and the rotating fixing sleeve 41 by hooking the hooks at both ends with the first hanging hole on the fixing plate 51 and the second hanging hole on the fixing bolt. After long-term use, the tension spring 52 can be easily replaced, ensuring that the elasticity of the tension spring 52 can always drive the handle 43, the support plate 42, the rotating fixing sleeve 41, and the rotating shaft 21 to rotate. The tension spring 52 allows the handle 43 and the baffle 3 to automatically return to their initial positions, effectively reducing manual labor intensity.

[0043] In one possible implementation, the buffer compartment 1 includes a first side plate 11, a second side plate 12, a third side plate 13, and a fourth side plate 14 fixedly connected, with the first side plate 11 and the third side plate 13 corresponding to each other, and the second side plate 12 and the fourth side plate 14 corresponding to each other. A feeding channel is formed between the first side plate 11, the second side plate 12, the third side plate 13, and the fourth side plate 14. A rotating shaft 21 is rotatably mounted on the second side plate 12 and the fourth side plate 14, with the middle part of the rotating shaft 21 located inside the feeding channel and both ends of the rotating shaft 21 extending outside the feeding channel. A spring-loaded structure 5 is disposed between the handheld assembly 4 and the fourth side plate 14. When the handheld assembly 4, located outside the feeding channel, rotates, it drives the rotating shaft 21 to rotate, causing the baffle 3 to rotate inside the feeding channel to open or close the feeding channel. The first side plate 11, the second side plate 12, the third side plate 13, and the fourth side plate 14 can be welded together as a single unit. Material discharged from the outlet of the bubble washing machine falls into the container basket through the feeding channel. After the baffle 3 is rotated counterclockwise, it is in a horizontal position, dividing the feeding channel into two areas. The material is located above the baffle 3 and in the upper part of the feeding channel, preventing it from falling. After the baffle 3 is rotated clockwise, it is in a vertical position, and the handheld component 4 returns to its initial position, allowing the material to continue entering the container basket through the feeding channel.

[0044] Furthermore, the first side plate 11 includes a guide plate, a first vertical plate, and a first inclined plate fixedly connected between the guide plate and the first vertical plate and arranged at an angle. The guide plate is used to connect with the discharge port of the bubble washing machine. The second side plate 12 includes a second vertical plate, a third vertical plate, and a second inclined plate fixedly connected between the second and third vertical plates and arranged at an angle. The structure of the fourth side plate 14 is the same as that of the second side plate 12. In this embodiment, the structure of the buffer chamber 1 is designed according to the size and position of the discharge port, and the upper width of the discharge channel is greater than the lower width of the discharge channel to ensure that the material discharged from the discharge port of the bubble washing machine can quickly enter the discharge channel, and the discharge channel can discharge material evenly.

[0045] In one possible implementation, the rotating mechanism 2 further includes two bearing seats 22, which are respectively disposed on the second side plate 12 and the fourth side plate 14. Through holes are provided on the second side plate 12 and the fourth side plate 14 at positions corresponding to the bearing seats 22. Both ends of the rotating shaft 21 pass through the through holes and are rotatably connected to the bearing seats 22. The two ends of the rotating shaft 21 are also fixedly connected to the bearings inside the bearing seats 22, thus enabling rotation. The bearings in the bearing seats 22 and the rotating shaft 21 are overfitted and coaxial. One end of the rotating shaft 21 passes through the bearing seat 22 and is fixedly connected to the rotating fixing sleeve 41 on the handheld assembly 4. The bearing seats 22 drive the rotating shaft 21 to rotate.

[0046] In one possible implementation, the baffle 3 includes a central shaft 31, a first baffle plate 32, and a second baffle plate 33. The first baffle plate 32 is disposed on both sides of the central shaft 31, and the second baffle plate 33 is disposed at both ends of the central shaft 31 and the first baffle plate 32. A hollow channel is provided on the central shaft 31, and the middle part of the rotating shaft 21 passes through the hollow channel. The first baffle plate 32 and the second baffle plate 33 are in contact with the inner wall of the buffer compartment 1. The central shaft 31 and the rotating shaft 21 are coaxially arranged and are fitted together. The central shaft 31, the two first baffle plates 32, and the second baffle plate 33 can be welded together as a single unit.

[0047] When baffle 3 rotates counterclockwise, it is in a horizontal position, with the two first baffles 32 and the second baffle 33 contacting the inner wall of the buffer bin 1. Baffle 3 divides the discharge channel into two areas, with the material positioned above baffle 3 and in the upper part of the discharge channel, preventing it from falling. When baffle 3 rotates clockwise, it is in a vertical position, with the two second baffles 33 contacting the inner wall of the buffer bin 1, allowing the material to continue entering the container through the discharge channel.

[0048] As one possible implementation, each of the first baffles 32 is provided with a plurality of drainage holes evenly distributed along its width. The baffles 3 divide the feeding channel into two areas. When the material is located above the baffles 3 and in the upper part of the feeding channel and cannot fall, the water carried by the material can be discharged through the drainage holes first.

[0049] Working process of semi-automatic feeding and buffering equipment:

[0050] The initial position of baffle 3 is vertical. At this time, the material discharged from the outlet of the bubble washing machine falls into the container through the feeding channel. When the container is full of material and a new container needs to be replaced, the person operates the handle 43 to drive the support plate 42, the rotating fixed sleeve 41 and the rotating shaft 21 to rotate counterclockwise, which in turn drives the baffle 3 to rotate counterclockwise. The tension spring 52 is in a stretched state, and the end of the limiting shaft 44 moves in the arc-shaped slide and moves to the top of the arc-shaped slide. The baffle 3 is in a horizontal state, and the two first baffle plates 32 and the second baffle plate 33 are in contact with the inner wall of the buffer bin 1. The baffle 3 divides the feeding channel into two areas. The material is located above the baffle 3 and in the upper part of the feeding channel and cannot fall.

[0051] After the new container is installed, the person releases the handle 43, causing the tension spring 52 to contract under its own elasticity. This causes the handle 43, support plate 42, rotating fixed sleeve 41, and rotating shaft 21 to rotate clockwise. The end of the limiting shaft 44 moves in the arc-shaped slide and to the bottom of the arc-shaped slide, the baffle 3 is in a vertical position, the handle 43 returns to its initial position, and the material can continue to enter the new container. The above process is repeated to load several containers.

[0052] The embodiments described above are merely preferred embodiments of this utility model and are only used to explain this utility model. They are not intended to limit the scope of implementation of this utility model. For those skilled in the art, other implementation methods can be easily made by substitution or modification based on the technical content disclosed in this specification. Therefore, all changes and improvements made to the principles and process conditions of this utility model should be included within the scope of the patent application of this utility model.

Claims

1. A semi-automatic feeding and buffering device, characterized in that, The device includes a buffer chamber (1), a rotating mechanism (2), a material blocking mechanism, and a manual mechanism. The rotating mechanism (2) includes a rotating shaft (21) rotatably mounted on the buffer chamber (1). The rotating shaft (21) passes through the buffer chamber (1), and both ends of the rotating shaft (21) extend to the outside of the buffer chamber (1). The material blocking mechanism includes a baffle (3), which is located inside the buffer chamber (1) and fixedly mounted on the rotating shaft (21). The manual mechanism includes a handheld component (4) and a spring-loaded structure (5). The handheld component (4) is fixedly connected to one end of the rotating shaft (21), and the spring-loaded structure (5) is disposed between the handheld component (4) and the buffer chamber (1).

2. The semi-automatic feeding and buffering device according to claim 1, characterized in that, The handheld assembly (4) includes a rotating fixing sleeve (41), a support plate (42), a grip handle (43), and a limiting structure. The rotating fixing sleeve (41) is disposed at one end of the support plate (42) and is fixedly connected to one end of the rotating shaft (21). The grip handle (43) is disposed at the other end of the support plate (42). The limiting structure is disposed on the outer wall of the buffer compartment (1) to limit the grip handle (43).

3. The semi-automatic feeding and buffering device according to claim 2, characterized in that, The limiting structure includes a limiting shaft (44) and an arc-shaped limiting plate (45). The limiting shaft (44) is mounted on the support plate (42), and the grip handle (43) and the limiting shaft (44) are coaxially arranged. The rotating shaft (21) is rotatably mounted on the buffer chamber (1) through the bearing seat (22). The arc-shaped limiting plate (45) is mounted on the outer wall of the buffer chamber (1), and the arc-shaped limiting plate (45) and the bearing seat (22) are coaxially arranged. An arc-shaped slide is provided on the arc-shaped limiting plate (45). The end of the limiting shaft (44) extends into the arc-shaped slide and can move in the arc-shaped slide.

4. The semi-automatic feeding and buffering device according to claim 3, characterized in that, The bottom of the arc-shaped slide is located below the bearing seat (22), the top of the arc-shaped slide is located on the side of the bearing seat (22), and the central angle of the arc-shaped slide is 90°.

5. The semi-automatic feeding and buffering device according to claim 3, characterized in that, The rebound structure (5) includes a fixed plate (51) and a tension spring (52). The fixed plate (51) is disposed on the outer wall of the buffer compartment (1) and outside the fan-shaped area formed between the arc-shaped slide and the bearing seat (22). The tension spring (52) is fixedly disposed between the fixed plate (51) and the rotating fixed sleeve (41).

6. The semi-automatic feeding and buffering device according to claim 5, characterized in that, Both ends of the tension spring (52) are provided with hooks, the fixing plate (51) is provided with a first hanging hole, the rotating fixing sleeve (41) is provided with a fixing bolt and the fixing bolt is provided with a second hanging hole, and the two hooks are respectively hung on the first hanging hole and the second hanging hole.

7. The semi-automatic feeding and buffering device according to claim 1, characterized in that, The buffer compartment (1) includes a first side plate (11), a second side plate (12), a third side plate (13), and a fourth side plate (14) that are fixedly connected. The first side plate (11) and the third side plate (13) correspond to each other, and the second side plate (12) and the fourth side plate (14) correspond to each other. A feeding channel is formed between the first side plate (11), the second side plate (12), the third side plate (13), and the fourth side plate (14). The rotating shaft (21) is rotatably disposed on the second side plate (12) and the fourth side plate (14). The middle part of the rotating shaft (21) is located inside the feeding channel, and the two ends of the rotating shaft (21) extend to the outside of the feeding channel. The spring structure (5) is disposed between the handheld component (4) and the fourth side plate (14).

8. The semi-automatic feeding and buffering device according to claim 7, characterized in that, The rotating mechanism (2) also includes two bearing seats (22), which are respectively disposed on the second side plate (12) and the fourth side plate (14). The second side plate (12) and the fourth side plate (14) are provided with through holes at positions corresponding to the bearing seats (22). The two ends of the rotating shaft (21) pass through the through holes and are rotatably connected to the bearing seats (22). One end of the rotating shaft (21) passes through the bearing seat (22) and is fixedly connected to the rotating fixing sleeve (41) on the handheld assembly (4).

9. The semi-automatic feeding and buffering device according to claim 1, characterized in that, The baffle (3) includes a central shaft (31), a first baffle (32) and a second baffle (33). The first baffle (32) is disposed on both sides of the central shaft (31), and the second baffle (33) is disposed at both ends of the central shaft (31) and the first baffle (32). A hollow channel is provided on the central shaft (31), and the middle part of the rotating shaft (21) passes through the hollow channel. The first baffle (32) and the second baffle (33) are in contact with the inner wall of the buffer chamber (1).

10. The semi-automatic feeding and buffering device according to claim 9, characterized in that, Each of the first baffles (32) has a plurality of drainage holes evenly provided along its width direction.