Filling inlet filtering structure for rice milk beverage processing

By designing the filling imported filtration structure of multi-layer filtration components and collection components, the problem of filtration slag blockage in rice milk beverage production is solved, efficient filtration and slag collection are achieved, and product purity and production efficiency are improved.

CN223292277UActive Publication Date: 2025-09-02NANJING UNIV OF FINANCE & ECONOMICS
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Patent Information

Application Number
CN202422522974.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-18
Publication Date
2025-09-02
Estimated Expiration
2034-10-18

AI Technical Summary

Technical Problem

The existing rice milk beverage filling import lacks an effective slag collection structure, which leads to the easy blockage of filling equipment and reduces production efficiency.

Method used

A filling inlet filter structure including a multi-layer filter assembly and a collection assembly is designed, and the filter assembly is filtered layer by layer through the filter assembly composed of a first filter tube, a second filter tube, a third filter tube and a filter partition, and the filter slag is effectively collected through the connecting tube and the collection base.

Benefits of technology

It realizes efficient filtration of rice milk beverages, ensures product purity, and effectively avoids filtration slag clogging, improves production efficiency and reduces equipment maintenance costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a filling inlet filtering structure for rice milk beverage processing, which comprises an equipment bracket, a conveying belt for conveying canned bottles and a hydraulic rod fixed on the side surface of the equipment bracket, and an output shaft of the hydraulic rod is fixedly connected with a plurality of groups of canning mechanisms for filling; a filtering assembly composed of a first filtering pipe, a second filtering pipe, a third filtering pipe and a filtering partition plate is arranged, all the parts are tightly attached and sequentially connected, during filling, the filtering assembly can be unfolded along with movement of a top plate, rice milk beverages are filtered layer by layer, the first filtering pipe preliminarily intercepts large particles, and the second filtering pipe preliminarily intercepts the large particles; and subsequent second and third filter pipes and a filter partition plate are used for further refining and filtering, so that fine particles and impurities are effectively intercepted, high-efficiency filtering of the rice milk beverage before filling is realized, the purity of the beverage entering a canned bottle is greatly improved, and the product quality and taste are ensured.
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Description

Technical Field

[0001] The utility model relates to the technical field of filling, in particular to a filling inlet filtering structure for processing rice milk beverages. Background Art

[0002] The filling inlet filtration structure of rice milk beverage processing is a device installed at the filling inlet during the production process of rice milk beverage. It is mainly used to filter the rice milk beverage that is about to enter the filling process. In the production of rice milk beverage, rice milk may contain some fine particles, impurities and other substances. The filtration structure can effectively intercept these impurities to ensure that the rice milk beverage entering the filling process is higher in purity. By filtering the rice milk beverage, the quality of the final product can be improved, allowing consumers to enjoy a rice milk beverage with a more delicate and pure taste. At the same time, the filtration structure continues to work during the filling process, providing reliable quality assurance for the large-scale production of rice milk beverages, ensuring that each bottle of filled rice milk beverage meets high quality standards.

[0003] However, the existing filling inlets are often not equipped with a suitable filter residue collection structure in their structural design. During the production process of rice milk beverages, due to the lack of effective filter residue collection methods, some impurities may gradually accumulate in the filling process. As production continues, the filling equipment is prone to blockage during operation. Once blockage occurs, not only will the production process be forced to be interrupted, greatly reducing production efficiency, but it will also increase the frequency and cost of equipment maintenance.

[0004] Therefore, the utility model provides a filling inlet filtering structure for processing rice milk beverage to solve the above problems. Utility Model Content

[0005] In response to the deficiencies of the prior art, the utility model provides a filling inlet filtering structure for rice milk beverage processing, which solves the above-mentioned problem that there is no suitable filter residue collection structure, which may cause the filling equipment to be easily blocked and reduce production efficiency.

[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: a filling inlet filtration structure for rice milk beverage processing, comprising an equipment support, a conveyor belt for conveying canned bottles, and a hydraulic rod fixed to the side of the equipment support, wherein the output shaft of the hydraulic rod is fixedly connected to multiple groups of canning mechanisms for filling;

[0007] The canning mechanism includes a support fixedly connected to the output shaft of the hydraulic rod by a threaded bolt, the support is provided with a liquid inlet for conveying liquid, and the interior of the support is fixedly connected to a delivery pipe connected to the liquid inlet, a limit tube is sleeved on the outer side of the delivery pipe, and a top plate larger than the bottle mouth of the canning bottle is provided at the bottom of the limit tube, so that the top plate moves upward on the delivery pipe when it contacts the canning bottle, the support and the limit tube are fixedly connected by an elastic component, so that the limit tube is reset after displacement, a liquid outlet is provided at the bottom of the delivery pipe, and a filter component for filtering is provided at the front end of the liquid outlet;

[0008] The filter assembly includes a first filter tube and a filter baffle fixed to the bottom of the delivery pipe near the liquid outlet. The first filter tube is movably connected to the inside of the sleeve at the bottom of the top plate through a limit block, and the inside of the sleeve is provided with a movable groove matching the limit block. The inside of the first filter tube is also movably connected to the second filter tube and the third filter tube, and the filter baffle is movably connected to the inside of the third filter tube so that the filter assembly can be expanded downward when the limit tube rises.

[0009] Preferably: the canning mechanism also includes a collecting assembly for collecting filter residue, the collecting assembly includes a connecting pipe movably connected to the bottom of the top plate, the outer side of the connecting pipe is fixedly connected to a collecting base for collecting filter residue, and a slag discharge trough for facilitating the outflow of filter residue is provided between the collecting base and the connecting pipe, so that when the limiting tube descends, the filter assembly expands upward and the filter residue flows into the slag discharge trough.

[0010] Preferably, a rubber gasket for reducing the downward pressure of the canning mechanism is fixedly connected to the bottom of the top plate so that the canned bottles will not deviate on the conveyor belt.

[0011] Preferably: the first filter tube, the second filter tube, the third filter tube and the filter partition are tightly fitted together, and the outer sides of the second filter tube, the third filter tube and the filter partition are fixedly connected with movable blocks and internally arranged slide grooves to prevent the second filter tube, the third filter tube and the filter partition from falling out of each other.

[0012] Preferably, the collecting assembly is engaged with the sleeve at the bottom of the top plate through a threaded groove, so that the collecting assembly can be quickly replaced when the filter residue is full.

[0013] Preferably, the tops of the second filter tube, the third filter tube and the filter partition are all provided with matching arc surfaces, so that the filter residue on the inner walls of the second filter tube, the third filter tube and the filter partition can be scraped off when the filter assembly rises in the reverse direction.

[0014] The utility model provides a filling inlet filtering structure for rice milk beverage processing. Compared with the existing technology, it has the following advantages:

[0015] (1) The filling inlet filtering structure of the rice milk beverage processing is provided with a filtering assembly consisting of a first filter tube, a second filter tube, a third filter tube and a filter partition, and each part is tightly fitted and orderly connected. When filling, the filtering assembly can be expanded with the movement of the top plate to filter the rice milk beverage layer by layer. The first filter tube initially intercepts large particles, and the subsequent second and third filter tubes and filter partitions further refine the filtration, effectively intercepting fine particles and impurities, thereby achieving efficient filtration of the rice milk beverage before filling, greatly improving the purity of the beverage entering the canned bottle, and ensuring product quality and taste.

[0016] (2) The filling inlet filtering structure of the rice milk beverage processing is connected to the pipe, the collecting base and the slag discharge groove. When the filter assembly is reset after canning, the scraped filter residue can be collected in the collecting base, and the collecting assembly can be quickly replaced through the threaded groove. At the same time, the elastic assembly is compressed when the top plate is displaced, and can drive the limit pipe to reset after canning is completed. This design realizes the effective collection of filter residue, avoids the filter residue clogging the equipment, and ensures the stable operation of the canning mechanism, reduces the equipment maintenance cost, and improves production efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a schematic diagram of the overall structure of the utility model;

[0018] Figure 2 This is a three-dimensional diagram of the canning mechanism of the utility model;

[0019] Figure 3 This is a cross-sectional view of the collecting assembly structure of the present utility model;

[0020] Figure 4 This is a three-dimensional diagram of the filter assembly structure of the utility model;

[0021] Figure 5 This is a detailed structural diagram of the filter assembly of the present invention.

[0022] In the figure, 1. equipment bracket; 2. conveyor belt; 3. canning bottle; 4. hydraulic rod; 5. canning mechanism; 51. support; 52. threaded bolt; 53. liquid inlet; 54. elastic component; 55. conveying pipe; 56. liquid outlet; 57. filter assembly; 571. first filter tube; 572. limit block; 573. second filter tube; 574. third filter tube; 575. filter partition; 58. limit tube; 59. top plate; 510. collecting assembly; 5101. collecting base; 5102. connecting pipe; 5103. slag trough. DETAILED DESCRIPTION

[0023] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0024] Example 1:

[0025] See also Figures 1 to 5 A filling inlet filtration structure for processing rice milk beverages, comprising an equipment support 1, a conveyor belt 2 for conveying canned bottles 3, and a hydraulic rod 4 fixed to the side of the equipment support 1, wherein the output shaft of the hydraulic rod 4 is fixedly connected to a plurality of canning mechanisms 5 for filling;

[0026] The canning mechanism 5 includes a support 51 fixedly connected to the output shaft of the hydraulic rod 4 by a threaded bolt 52. The support 51 is provided with a liquid inlet 53 for conveying liquid, and a delivery pipe 55 that is connected to the liquid inlet 53 is fixedly connected to the interior of the support 51. The delivery pipe 55 is sheathed with a limit tube 58, and the bottom of the limit tube 58 is provided with a top plate 59 that is larger than the bottle mouth of the canned bottle 3, so that the top plate 59 moves upward on the delivery pipe 55 when it contacts the canned bottle 3. The support 51 and the limit tube 58 are fixedly connected by an elastic component 54 to reset the limit tube 58 after displacement. The bottom of the delivery pipe 55 is provided with a liquid outlet 56, and the front end of the liquid outlet 56 is provided with a filter component 57 for filtering.

[0027] The filter assembly 57 includes a first filter tube 571 and a filter baffle 575 fixed to the bottom of the conveying pipe 55 near the liquid outlet 56. The first filter tube 571 is movably connected to the inside of the sleeve at the bottom of the top plate 59 through a limit block 572, and the sleeve is provided with a movable groove that matches the limit block 572. The inside of the first filter tube 571 is also movably connected to the second filter tube 573 and the third filter tube 574, and the filter baffle 575 is movably connected to the inside of the third filter tube 574, so that the filter assembly 57 is downwardly expanded when the limit tube 58 rises. A rubber gasket for reducing the downward pressure of the canning mechanism 5 is fixedly connected to the bottom of the top plate 59 to prevent the canned bottles 3 from deviating on the conveyor belt 2. The first filter tube 571 and the second filter The filter tube 573, the third filter tube 574 and the filter partition 575 fit tightly together, and the outer sides of the second filter tube 573, the third filter tube 574 and the filter partition 575 are fixedly connected with movable blocks and internally arranged slide grooves to prevent the second filter tube 573, the third filter tube 574 and the filter partition 575 from falling out of each other. The tops of the second filter tube 573, the third filter tube 574 and the filter partition 575 are all provided with matching arc surfaces to scrape off the filter residue on the inner walls of the second filter tube 573, the third filter tube 574 and the filter partition 575 when the filter assembly 57 rises in the reverse direction. The hydraulic rod 4 drives the canning mechanism 5 to move downward. When the top plate 59 of the canning mechanism 5 contacts the canned bottle 3, due to the bottle of the canned bottle 3 The opening is smaller than the top plate 59. The top plate 59 is subjected to the resistance from the canned bottle 3, and thus moves upward on the delivery pipe 55. During this process, the elastic component 54 is compressed. It is connected between the support 51 and the limiting tube 58. As the top plate 59 moves upward, the limiting tube 58 moves upward relative to the support 51, so that the elastic component 54 is compressed. The elastic component 54 plays a role of buffering and resetting. At the same time, as the top plate 59 rises, the first filter tube 571 moves upward along the movable groove inside the bottom sleeve of the top plate 59 through the limiting block 572. The rise of the first filter tube 571 drives the second filter tube 573 and the third filter tube 574 as well as the filter partition 575 to move upward because they are tightly fitted and have corresponding connections. The outer sides of the second filter tube 573, the third filter tube 574 and the filter partition 575 are fixedly connected with movable blocks and internally arranged slide grooves to prevent them from falling out of each other, so that the filter assembly 57 is expanded downward to form an effective filtering channel. At the same time, the rice milk beverage enters the delivery pipe 55 from the liquid inlet 53, and then passes through the first filter tube 571, the second filter tube 573, the third filter tube 574 and the filter partition 575 in sequence. The first filter tube 571 performs preliminary interception of larger particles, the second filter tube 573 and the third filter tube 574 further refine the filtration, and the filter partition 575 screens smaller impurities, thereby ensuring that the rice milk beverage flowing into the canned bottle 3 from the liquid outlet 56 has higher purity.

[0028] Example 2:

[0029] See also Figures 1 to 5 , this embodiment provides a technical solution based on the first embodiment: the canning mechanism 5 also includes a collecting assembly 510 for collecting filter residues, the collecting assembly 510 includes a connecting pipe 5102 movably connected to the bottom of the top plate 59, and a collecting base 5101 for collecting filter residues is fixedly connected to the outer side of the connecting pipe 5102, and a slag discharge groove 5103 for facilitating the outflow of filter residues is opened between the collecting base 5101 and the connecting pipe 5102, so that when the limiting pipe 58 is lowered, the filter assembly 57 is expanded upward and the filter residue flows into the slag discharge groove 5103, and the collecting assembly 510 is engaged with the sleeve at the bottom of the top plate 59 through a threaded groove, so that the collecting assembly 510 can be quickly replaced when the filter residue is full. After the filling is completed, the hydraulic rod 4 drives the canning mechanism 5 to move upward, and the top plate 59 leaves the canning bottle 3. At this time, the compressed elastic component 54 will drive the limit tube 58 to return to the initial position due to its own elastic recovery force. At the same time, the filter component 57 is expanded upward. During the expansion process, the second filter tube 573, the third filter tube 574 and the arc surface on the top of the filter partition 575 scrape off the filter residue on the inner wall. The scraped filter residue flows into the collection base 5101 through the residue discharge groove 5103, thereby realizing the collection of the filter residue. When the filter residue in the collection component 510 is full, the collection component 510 can be quickly replaced through the threaded groove, ensuring the continuous and effective operation of the entire filtering and collection system.

[0030] Meanwhile, the contents not described in detail in this specification belong to the prior art known to those skilled in the art.

[0031] Working principle: When working, first the conveyor belt 2 transports the canned bottle 3 to the designated position. This process ensures that the canned bottle 3 can accurately reach the filling area. Then the hydraulic rod 4 drives the canning mechanism 5 to move downward. When the top plate 59 of the canning mechanism 5 contacts the canned bottle 3, since the bottle mouth of the canned bottle 3 is smaller than the top plate 59, the top plate 59 is subjected to the resistance from the canned bottle 3, and thus moves upward on the conveying pipe 55. During this process, the elastic component 54 is compressed. It is connected between the support 51 and the limiting tube 58. As the top plate 59 moves upward, the limiting tube 58 moves upward relative to the support 51, causing the elastic component 54 to move upward. The component 54 is compressed, and the elastic component 54 plays a role of buffering and resetting. At the same time, as the top plate 59 rises, the first filter tube 571 moves upward along the movable groove inside the bottom sleeve of the top plate 59 through the limit block 572. The rise of the first filter tube 571 drives the second filter tube 573 and the third filter tube 574 and the filter partition 575 to move upward. Because they are tightly fitted and have corresponding connection structures, the outer sides of the second filter tube 573, the third filter tube 574 and the filter partition 575 are fixedly connected with the movable block and the internal sliding groove to avoid mutual separation, so that the filter components 57 is expanded downward to form an effective filtering channel. At the same time, the rice milk beverage enters the delivery pipe 55 from the liquid inlet 53, and then passes through the first filter tube 571, the second filter tube 573, the third filter tube 574 and the filter partition 575 in sequence. The first filter tube 571 performs a preliminary interception on larger particles, the second filter tube 573 and the third filter tube 574 further refine the filtration, and the filter partition 575 screens smaller impurities, thereby ensuring that the rice milk beverage flowing from the liquid outlet 56 into the canned bottle 3 has a higher purity. When the canning is completed, the hydraulic rod 4 drives the canning mechanism 5 to move upward, and the top The plate 59 leaves the canned bottle 3. At this time, the compressed elastic component 54 will drive the limit tube 58 to return to the initial position due to its own elastic restoring force. At the same time, the filter component 57 is expanded upward. During the expansion process, the second filter tube 573, the third filter tube 574 and the arc surface on the top of the filter partition 575 scrape off the filter residue on the inner wall. The scraped filter residue flows into the collection base 5101 through the residue discharge groove 5103, thereby realizing the collection of the filter residue. When the filter residue in the collection component 510 is full, the collection component 510 can be quickly replaced through the threaded groove, ensuring the continuous and effective operation of the entire filtering and collection system.

[0032] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0033] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A filling inlet filtering structure for processing rice milk beverages, comprising an equipment support (1), a conveyor belt (2) for conveying canned bottles (3), and a hydraulic rod (4) fixed to the side of the equipment support (1), characterized in that: The output shaft of the hydraulic rod (4) is fixedly connected to a plurality of canning mechanisms (5) for filling; The canning mechanism (5) comprises a support (51) fixedly connected to the output shaft of the hydraulic rod (4) through a threaded bolt (52); a liquid inlet (53) for conveying liquid is provided on the support (51); a delivery pipe (55) connected to the liquid inlet (53) is fixedly connected inside the support (51); a limiting pipe (58) is sleeved on the outer side of the delivery pipe (55); a top plate (59) larger than the bottle mouth of the canned bottle (3) is provided at the bottom of the limiting pipe (58), so that the top plate (59) moves upward on the delivery pipe (55) when contacting the canned bottle (3); an elastic component (54) is fixedly connected between the support (51) and the limiting pipe (58), so that the limiting pipe (58) is reset after displacement; a liquid outlet (56) is provided at the bottom of the delivery pipe (55), and a filter component (57) for filtering is provided at the front end of the liquid outlet (56); The filter assembly (57) comprises a first filter tube (571) and a filter baffle (575) fixed to the bottom of the delivery tube (55) near the liquid outlet (56); the first filter tube (571) is movably connected to the inside of the sleeve at the bottom of the top plate (59) through a limit block (572); and a movable groove matching the limit block (572) is provided inside the sleeve; the inside of the first filter tube (571) is also movably connected to a second filter tube (573) and a third filter tube (574), and the filter baffle (575) is movably connected to the inside of the third filter tube (574), so that the filter assembly (57) is downwardly expanded when the limit tube (58) rises.

2. The filling inlet filtering structure for rice milk beverage processing according to claim 1, characterized in that: The canning mechanism (5) further comprises a collecting assembly (510) for collecting filter residues, the collecting assembly (510) comprising a connecting pipe (5102) movably connected to the bottom of the top plate (59), a collecting base (5101) for collecting filter residues being fixedly connected to the outer side of the connecting pipe (5102), and a slag discharge trough (5103) for facilitating the outflow of filter residues being provided between the collecting base (5101) and the connecting pipe (5102), so that when the limiting pipe (58) is lowered, the filter assembly (57) is expanded upwards and the filter residue flows into the slag discharge trough (5103).

3. The filling inlet filtering structure for processing rice milk beverage according to claim 1, characterized in that: A rubber gasket for reducing the downward pressure of the canning mechanism (5) is fixedly connected to the bottom of the top plate (59) so that the canned bottles (3) will not deviate on the conveyor belt (2).

4. The filling inlet filtering structure for processing rice milk beverage according to claim 1, characterized in that: The first filter tube (571), the second filter tube (573), the third filter tube (574) and the filter partition (575) are tightly fitted together, and the outer sides of the second filter tube (573), the third filter tube (574) and the filter partition (575) are fixedly connected with movable blocks and internally arranged sliding grooves to prevent the second filter tube (573), the third filter tube (574) and the filter partition (575) from falling out of each other.

5. The filling inlet filtering structure for processing rice milk beverage according to claim 2, characterized in that: The collecting assembly (510) is engaged and connected with the bottom sleeve of the top plate (59) via a threaded groove, so that the collecting assembly (510) can be quickly replaced when the filter residue is full.

6. The filling inlet filtering structure for processing rice milk beverage according to claim 1, characterized in that: The tops of the second filter tube (573), the third filter tube (574) and the filter partition (575) are all provided with matching arc surfaces so that the filter residue on the inner walls of the second filter tube (573), the third filter tube (574) and the filter partition (575) can be scraped off when the filter assembly (57) rises in the reverse direction.