An automatic quantitative conveying device for seasonings used in the production of prepared foods

By designing an automatic quantitative conveying device for seasonings used in pre-prepared food production, the automated and precise quantitative delivery of seasonings is achieved, solving the problem of low efficiency of manual operation and improving production efficiency and product stability.

CN120440649BActive Publication Date: 2025-09-19JIANGSU CHEF SIBAO FOOD CO LTD

Patent Information

Application Number
CN202510946996.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-07-10
Publication Date
2025-09-19
Estimated Expiration
2045-07-10

AI Technical Summary

Technical Problem

The addition of seasonings in prepared food production is mostly done manually, which is inefficient and difficult to accurately control the amount of each seasoning, affecting the stability and consistency of the product.

Method used

An automatic quantitative seasoning delivery device for pre-prepared food production was designed, which includes a feed rack and a quantitative feed mechanism. Through precise mechanical design and linkage mechanism, the automatic and precise quantitative delivery of seasonings can be achieved.

Benefits of technology

It improves production efficiency, reduces manual operation errors, ensures the accurate addition of each seasoning, improves product quality and stability, and solves the problem of seasoning residue.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of pre-prepared food production, and specifically to an automatic quantitative conveying device for seasonings for pre-prepared food production, comprising a discharge rack, wherein the top of the discharge rack is fixedly connected to a quantitative discharge mechanism, wherein the quantitative discharge mechanism comprises a quantitative discharge bottom rack, and the top of the quantitative discharge bottom rack is fixedly connected to a quantitative discharge component. The present invention realizes efficient, precise and automated operation of an automatic quantitative conveying device for seasonings for pre-prepared food production by providing a discharge rack and a quantitative discharge mechanism. Through precise mechanical design and linkage mechanism, the present invention ensures that each seasoning can be accurately received and conveyed to the pre-prepared food production equipment according to a preset amount. The device not only improves production efficiency, but also greatly reduces errors in manual operation, bringing significant technological innovation to the pre-prepared food production industry. In addition, through the ingenious design of triangular abutment plates and reverse triangular abutment plates, the present invention effectively solves the problem of seasoning residue.
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Description

Technical Field

[0001] The present invention relates to the technical field of prepared food production, and more particularly to an automatic quantitative seasoning delivery device for prepared food production. Background Art

[0002] Pre-prepared food refers to food that has been pre-processed, conditioned or cooked, and packaged, stored and transported under specific conditions so that it can be eaten after simple heating or processing before consumption. This type of food is usually convenient, fast, of stable quality, and has a variety of flavors, meeting the needs of modern people for a fast-paced life. In the production process of pre-prepared food, the accurate, fast and automated delivery of seasonings is a key link in improving production efficiency and ensuring food quality.

[0003] According to the patent document: CN116812207B, a food production transportation device and method are disclosed, wherein a food production transportation device comprises two symmetrically arranged fixed cross bars, a conveying mechanism for conveying food raw materials is installed between the two fixed cross bars, a first fixed frame and a second fixed frame are fixedly installed on the top of the two fixed cross bars, a quantitative box for measuring the amount of food discharged is rotatably installed between the two first fixed frames, an inlet and outlet are provided on one side of the quantitative box, a discharge hopper is installed on the top between the two second fixed frames, an L-shaped partition is provided in the discharge hopper, the L-shaped partition is used to separate the discharge hopper into a storage chamber and a discharge chamber, and a quantitative conveying mechanism for conveying food raw materials to the discharge chamber is provided in the storage chamber; the overall structure of the present invention is simple, easy to use, can carry out quantitative conveying of food raw materials, and has a high degree of automation, reduces the labor intensity of workers, improves the use effect, and improves the accuracy of raw material ratio.

[0004] During the production process of prepared foods, appropriate amounts of seasonings need to be added. However, usually a variety of different seasonings need to be added to the seasonings of prepared foods to ensure the taste and quality of the final product. Traditional seasoning addition methods are mostly manual operations, which is not only inefficient but also difficult to accurately control the amount of each seasoning, thereby affecting the stability and consistency of the product. To address this problem, the present invention proposes an automatic quantitative seasoning delivery device for prepared food production, which aims to realize the automated and precise quantitative delivery of seasonings to improve the production efficiency and quality stability of prepared foods. Summary of the Invention

[0005] In order to overcome the above-mentioned defects of the prior art, the present invention provides an automatic quantitative seasoning delivery device for the production of prepared foods. The technical problem to be solved by the present invention is that the seasoning addition method is mostly manual operation, which is not only inefficient but also difficult to accurately control the amount of each seasoning, thereby affecting the stability and consistency of the product.

[0006] In order to solve the above technical problems, the technical solution adopted by the present invention is:

[0007] An automatic quantitative seasoning delivery device for pre-prepared food production includes a feed rack, the top of which is fixedly connected to a quantitative feed mechanism;

[0008] The quantitative feeding mechanism includes a quantitative feeding base frame, and the top of the quantitative feeding base frame is fixedly connected to a quantitative feeding component;

[0009] The quantitative unloading base frame includes an oblique L-shaped connecting plate, both sides of the front side of the bottom of the oblique L-shaped connecting plate are fixedly connected to the material pipe connecting plate, the inner walls of the two material pipe connecting plates are fixedly connected to the material pipes on multiple sides, the rear ends of the plurality of material pipes extend to the rear sides of the two oblique L-shaped connecting plates, and the rear tops of the outer walls of the plurality of material pipes are fixedly connected to convex reinforcement blocks;

[0010] The quantitative blanking assembly includes multiple quantitative blanking connection platforms, the bottoms of multiple quantitative blanking connection platforms are fixedly connected to the rear side of the top of the inclined L-connecting plate, the front sides of the tops of multiple quantitative blanking connection platforms are fixedly connected with a semicircular feeding support plate, the rear sides of multiple quantitative blanking connection platforms are fixedly connected with a tubular blanking frame, the connection points between the rear sides of multiple quantitative blanking connection platforms and the tubular blanking frame are semicircular cross-sections, the front sides and inner walls of the outer walls of multiple tubular blanking frames are hollow designs, the rear bottoms of multiple quantitative blanking connection platforms are fixedly connected with a feed pipe connecting tube, the tops of multiple feed pipe connecting tubes are aligned with the bottoms of multiple tubular blanking frames, the inner walls of multiple feed pipe connecting tubes are fixedly connected to the outer walls of the tops of the rear sides of multiple feed pipes, the left and right sides of the quantitative blanking connection platform are fixedly connected with L-shaped side plates, and the leftmost one is fixedly connected with an L-shaped side plate. The left and right ends of the column transverse rotating rods are fixedly connected to the column connecting cross bar, and the left side of the column transverse rotating rod is fixedly connected to the output end of the motor. The column transverse rotating rods are fixedly connected to the swing rod connecting blocks on both sides of the outer wall of the quantitative blanking connecting platform, and the tops of the multiple groups of swing rod connecting blocks are fixedly connected to the swing rods, the inner tops of the multiple groups of swing rods are fixedly connected to the column transfer short rods, and the inner sides of the multiple groups of column transfer short rods are rotatably connected to the push-pull vertical plates, and the tops and bottoms of the front sides of the multiple groups of push-pull vertical plates are fixedly connected to the semicircular connecting sleeves, and the front sides of the multiple groups of semicircular connecting sleeves are fixedly connected to the tubular material storage frames;

[0011] The unloading rack comprises two unloading rack connecting vertical rods.

[0012] As a further solution of the present invention: the left and right sides of the quantitative unloading connection platform are fixedly connected with L-shaped side panels, the right side of the leftmost L-shaped side panel is fixedly connected with a motor, the rear sides of the outer sides of multiple groups of the L-shaped side panels are fixedly connected with inverted L-shaped connecting side panels, and the inner sides of multiple groups of the inverted L-shaped connecting side panels are fixedly connected to the left and right sides of multiple convex reinforcement blocks.

[0013] As a further solution of the present invention: the rear sides of the bottom inner walls of multiple quantitative unloading connecting platforms are rotatably connected with columnar transverse rods, the left and right ends of multiple columnar transverse rods extend to the outsides of multiple quantitative unloading connecting platforms, the inner ends of multiple columnar transverse rods are fixedly connected with columnar connecting transverse rods, the left side of the leftmost columnar transverse rod is fixedly connected to the output end of the motor, and multiple columnar transverse rods are fixedly connected with swing rod connecting blocks on both sides of the outer wall of the quantitative unloading connecting platform, the tops of multiple groups of swing rod connecting blocks are fixedly connected with swing rods, the inner tops of multiple groups of swing rods are fixedly connected with columnar transfer short rods, the inner sides of multiple groups of columnar transfer short rods are rotatably connected with push-pull vertical plates, the tops and bottoms of the front sides of multiple groups of push-pull vertical plates are fixedly connected with semicircular connecting sleeves, and the front sides of multiple groups of semicircular connecting sleeves are fixedly connected with circular tubular material storage frames.

[0014] As a further solution of the present invention: the bottoms of the multiple circular tubular storage frames are all slidably connected to the tops of the multiple quantitative unloading connection platforms, the middle parts of the inner walls of the multiple semicircular feeding support plates are slidably connected with columnar push-pull rods, the front ends of the multiple columnar push-pull rods extend to the front sides of the multiple semicircular feeding support plates and are fixedly connected with semicircular push-pull plates, the front sides of the outer walls of the multiple semicircular feeding support plates are fixedly connected with connecting sleeves, and the front sides of the outer sides of the multiple connecting sleeves are fixedly connected with storage The storage bin discharge pipe connecting frame, the top inner walls of the multiple storage bin discharge pipe connecting frames are fixedly connected with the storage bin discharge pipes, the bottom ends of the multiple storage bin discharge pipes are aligned with the top of the semicircular feeding support plate, the top ends of the multiple storage bin discharge pipes are fixedly connected with the seasoning storage bin, the left and right sides of the front side of the storage bin discharge pipe connecting frame are fixedly connected with triangular supporting side panels, and the tops of multiple groups of triangular supporting side panels are fixedly connected to the left and right sides of the front side of the bottom of multiple seasoning storage bins.

[0015] As a further solution of the present invention: the outer bottoms of multiple groups of the triangular support side plates are fixedly connected to the support side upright plates, the inner tops of multiple groups of the support side upright plates are fixedly connected to the guide side plates, the inner sides of multiple groups of the guide side plates are slidably connected to convex push plates, the rear sides of multiple convex push plates are fixedly connected to multiple springs, the rear ends of multiple groups of springs are fixedly connected to the front sides of multiple storage bin discharge pipe connecting frames, the rear bottoms of multiple convex push plates are fixedly connected to the front ends of multiple columnar push-pull rods, and the front sides of multiple columnar push-pull rods are fixedly connected to triangular abutment plates.

[0016] As a further solution of the present invention: the outer bottoms of multiple groups of triangular support side plates are fixedly connected to support side upright plates, the inner tops of multiple groups of support side upright plates are fixedly connected to guide side plates, the inner sides of multiple groups of guide side plates are slidably connected to convex push plates, the rear sides of multiple convex push plates are fixedly connected to multiple springs, the rear ends of multiple groups of springs are fixedly connected to the front sides of multiple storage bin discharge pipe connecting frames, the rear bottoms of multiple convex push plates are fixedly connected to the front ends of multiple columnar push-pull rods, the middle parts of the front sides of multiple convex push plates are fixedly connected to triangular abutment plate push rods, and the front sides of multiple triangular abutment plate push rods are fixedly connected to the triangular abutment plates.

[0017] As a further solution of the present invention: the rear sides of the two connecting vertical rods of the material loading rack are fixedly connected to two L-shaped horizontal connecting rods, the inner sides of the left and right groups of the L-shaped horizontal connecting rods are fixedly connected to the rear vertical rods, the inner tops of the two rear vertical rods are fixedly connected to the rear sides of the left and right sides of the inclined L-connecting plate, the front and back sides of the inner sides of the left and right groups of the L-shaped horizontal connecting rods are fixedly connected to the L-shaped side panel connecting rods, the inner bottoms of the left and right groups of the L-shaped side panel connecting rods are fixedly connected to the residual material collection frame, the inner tops of the left and right groups of the L-shaped side panel connecting rods are fixedly connected to the L-shaped side panels of the material loading rack, and the front sides of the inner sides of the L-shaped side panels of the two material loading racks are fixedly connected to the hinged side blocks.

[0018] The top ends of the detent plates are respectively arranged on the side of axle up and down and are provided with a pair of lockhole that is formed on the pin of the detent sheet, and the lockhole that is formed on the pin of the detent sheet is formed.

[0019] The beneficial effects of the present invention are:

[0020] The present invention realizes the efficient, precise and automated operation of an automatic quantitative conveying device for seasonings for prepared food production by providing a discharge rack and a quantitative discharge mechanism. Through precise mechanical design and linkage mechanism, the present invention ensures that each seasoning can be accurately received and conveyed to the prepared food production equipment according to a preset amount. The device not only improves production efficiency, but also greatly reduces the error of manual operation, bringing significant technological innovation to the prepared food production industry. In addition, through the ingenious triangular abutment plate and reverse triangular abutment plate design, the present invention effectively solves the problem of seasoning residue and further improves the quality and stability of the product. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 It is a schematic diagram of the main three-dimensional structure of the present invention;

[0022] Figure 2 This is a schematic diagram of the main body three-dimensional separation structure of the present invention;

[0023] Figure 3 It is a schematic diagram of the three-dimensional structure of the quantitative feeding mechanism of the present invention;

[0024] Figure 4 It is a schematic diagram of the three-dimensional separation structure of the quantitative feeding mechanism of the present invention;

[0025] Figure 5 This is a schematic diagram of the three-dimensional structure of the quantitative blanking base frame of the present invention;

[0026] Figure 6 This is a schematic diagram of the three-dimensional structure of the quantitative blanking component of the present invention;

[0027] Figure 7 This is a schematic diagram of the three-dimensional separation structure of the quantitative blanking component of the present invention;

[0028] Figure 8 For the present invention Figure 7 A in the middle is an enlarged structural diagram;

[0029] Figure 9 It is a schematic diagram of the three-dimensional structure of the blanking rack of the present invention;

[0030] Figure 10 It is a schematic diagram of the three-dimensional separation structure of the unloading rack of the present invention.

[0031] In the figure: 1, unloading rack; 11, unloading rack connecting rod; 12, L-shaped horizontal connecting rod; 13, rear vertical rod; 14, L-shaped side plate connecting rod; 15, unloading rack L-shaped side plate; 16, residual material collection frame; 17, hinged side block; 18, main unloading funnel; 19, columnar rotating block; 110, side pressure rod; 111, horizontal pressure rod; 112, guide plate side connecting rod; 113, columnar pressure rod guide plate; 114, columnar Pressure rod; 115, second spring; 116, inverted triangle-shaped support plate; 2, quantitative feeding mechanism; 21, quantitative feeding chassis; 211, inclined L-shaped connecting plate; 212, feed pipe connecting plate; 213, feed pipe; 214, convex reinforcement block; 22, quantitative feeding assembly; 221, quantitative feeding connection platform; 222, semicircular feeding support plate; 223, tubular blanking frame; 224, feed pipe connecting pipe ; 225, L-shaped side panel; 226, motor; 227, inverted L-shaped connecting side panel; 2210, swing rod; 2211, swing rod connecting block; 2212, columnar horizontal rod; 2213, columnar transfer short rod; 2214, push-pull vertical plate; 2215, semicircular connecting sleeve; 2216, circular tubular storage frame; 2217, columnar push-pull rod; 2218, semicircular push-pull plate; 2219, connecting sleeve ; 22110, storage bin discharge pipe connecting frame; 22111, storage bin discharge pipe; 22112, triangular supporting side plate; 22113, supporting side vertical plate; 22114, guide side plate; 22115, spring; 22116, convex push plate; 22117, triangular push rod for the support plate; 22118, triangular support plate; 22119, seasoning storage bin; 22120, columnar connecting cross bar. DETAILED DESCRIPTION

[0032] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments 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.

[0033] like Figure 1-2 As shown, the present invention provides an automatic quantitative conveying device for seasonings for pre-prepared food production, comprising a feed rack 1, a quantitative feed mechanism 2 being fixedly connected to the top of the feed rack 1;

[0034] By setting up the quantitative feeding mechanism 2, the seasoning can be fed in a quantitative manner, avoiding the tedious steps of manually adding seasonings, and the seasoning is directly delivered to the production line of prepared foods through the feeding rack 1, realizing the automation and precision of seasoning addition.

[0035] like Figure 3-8As shown, the quantitative unloading mechanism 2 includes a quantitative unloading base 21, and the top of the quantitative unloading base 21 is fixedly connected to the quantitative unloading component 22. The quantitative unloading base 21 includes an inclined L-shaped connecting plate 211, and both sides of the front side of the bottom of the inclined L-shaped connecting plate 211 are fixedly connected to the material flow pipe connecting plate 212. The inner walls of the two material flow pipe connecting plates 212 are fixedly connected to the material flow pipes 213 on multiple sides. The rear ends of the multiple material flow pipes 213 extend to the rear sides of the two inclined L-shaped connecting plates 211, and the rear tops of the outer walls of the multiple material flow pipes 213 are fixedly connected to the convex reinforcement blocks 214. The quantitative unloading component 22 includes a plurality of quantitative unloading connecting platforms 221, and the bottoms of the plurality of quantitative unloading connecting platforms 221 are fixedly connected to the rear of the top of the inclined L-shaped connecting plate 211. The top front sides of the multiple quantitative material cutting connection platforms 221 are fixedly connected with a semicircular material feeding support plate 222, the rear sides of the multiple quantitative material cutting connection platforms 221 are fixedly connected with a tubular blanking frame 223, the joints between the rear sides of the multiple quantitative material cutting connection platforms 221 and the tubular blanking frame 223 are semicircular cross-sections, the front sides and inner walls of the outer walls of the multiple tubular blanking frames 223 are hollow designs, the rear bottoms of the multiple quantitative material cutting connection platforms 221 are fixedly connected with a material feeding pipe connecting tube 224, the tops of the multiple material feeding pipe connecting tubes 224 are aligned with the bottoms of the multiple tubular blanking frames 223, the inner walls of the multiple material feeding pipe connecting tubes 224 are fixedly connected to the outer walls of the tops of the rear sides of the multiple material feeding pipes 213, the quantitative material cutting connection platforms The left and right sides of 221 are fixedly connected with L-shaped side panels 225, the right side of the leftmost L-shaped side panel 225 is fixedly connected with a motor 226, the rear sides of the outer sides of multiple groups of L-shaped side panels 225 are fixedly connected with inverted L-shaped connecting side panels 227, the inner sides of multiple groups of inverted L-shaped connecting side panels 227 are fixedly connected to the left and right sides of multiple convex reinforcement blocks 214, the rear sides of the bottom of the inner wall of multiple quantitative blanking connection platforms 221 are rotatably connected with columnar transverse rods 2212, the left and right ends of multiple columnar transverse rods 2212 are extended to the outer sides of multiple quantitative blanking connection platforms 221, the inner ends of multiple columnar transverse rods 2212 are fixedly connected with columnar connecting cross rods 22120, and the left side of the leftmost columnar transverse rod 2212 is fixedly connected to the motor 226. At the output end, multiple columnar transverse rotating rods 2212 are fixedly connected to swing rod connecting blocks 2211 on both sides of the outer wall of the quantitative unloading connecting platform 221, and the tops of multiple groups of swing rod connecting blocks 2211 are fixedly connected to the swing rod 2210, and the inner tops of multiple groups of swing rods 2210 are fixedly connected to columnar transfer short rods 2213, and the inner sides of multiple groups of columnar transfer short rods 2213 are rotatably connected to push-pull vertical plates 2214, and the tops and bottoms of the front sides of multiple groups of push-pull vertical plates 2214 are fixedly connected to semicircular connecting sleeves 2215, and the front sides of multiple groups of semicircular connecting sleeves 2215 are fixedly connected to circular tubular material storage frames 2216, and the bottoms of multiple circular tubular material storage frames 2216 are all slidably connected to the tops of multiple quantitative unloading connecting platforms 221.The middle parts of the inner walls of the multiple semicircular feeding support plates 222 are all slidably connected with columnar push-pull rods 2217, the front ends of the multiple columnar push-pull rods 2217 extend to the front sides of the multiple semicircular feeding support plates 222 and are fixedly connected with semicircular push-pull plates 2218, the front sides of the outer walls of the multiple semicircular feeding support plates 222 are all fixedly connected with connecting sleeves 2219, the front sides of the outer sides of the multiple connecting sleeves 2219 are all fixedly connected with the storage bin discharge pipe connecting frame 22110, the top inner walls of the multiple storage bin discharge pipe connecting frames 22110 are all fixedly connected with the storage bin discharge pipe 22111, and the bottom ends of the multiple storage bin discharge pipes 22111 are all connected to the semicircular feeding support plates 222. The tops of the material support plates 222 are aligned, the tops of the multiple storage bin discharge pipes 22111 are fixedly connected to the seasoning storage bin 22119, the left and right sides of the front side of the storage bin discharge pipe connecting frame 22110 are fixedly connected to the triangular support side plates 22112, the tops of the multiple groups of triangular support side plates 22112 are fixedly connected to the left and right sides of the front side of the bottom of the multiple seasoning storage bins 22119, the outer bottoms of the multiple groups of triangular support side plates 22112 are fixedly connected to the support side vertical plates 22113, the inner tops of the multiple groups of support side vertical plates 22113 are fixedly connected to the guide side plates 22114, and the inner tops of the multiple groups of guide side plates 22114 The sides are all slidably connected with convex push plates 22116, the rear sides of multiple convex push plates 22116 are fixedly connected with multiple springs 22115, the rear ends of multiple groups of springs 22115 are fixedly connected to the front sides of multiple storage bin discharge pipe connecting frames 22110, the rear bottoms of multiple convex push plates 22116 are all fixedly connected to the front ends of multiple columnar push-pull rods 2217, the front sides of multiple columnar push-pull rods 2217 are fixedly connected with triangular abutment plates 22118, the outer bottoms of multiple groups of triangular support side plates 22112 are fixedly connected with support side vertical plates 22113, and the inner tops of multiple groups of support side vertical plates 22113 are fixedly connected with guide The inner sides of the guide side plates 22114 and the multiple groups of guide side plates 22114 are all slidably connected with convex push plates 22116, the rear sides of the multiple convex push plates 22116 are all fixedly connected with multiple springs 22115, the rear ends of the multiple groups of springs 22115 are all fixedly connected to the front sides of the multiple storage bin discharge pipe connecting frames 22110, the rear bottoms of the multiple convex push plates 22116 are all fixedly connected to the front ends of the multiple columnar push-pull rods 2217, the middle parts of the front sides of the multiple convex push plates 22116 are all fixedly connected with triangular abutment plate push rods 22117, and the front sides of the multiple triangular abutment plate push rods 22117 are all fixedly connected with triangular abutment plates 22118;

[0036] The inner wall of each seasoning storage bin 22119 stores different seasonings, the unloading space inside each storage bin unloading tube 22111 is different, and the storage amount of each tubular storage frame 2216 is different. When quantitative unloading is required, the motor 226 is started first, and the output end of the motor 226 drives the leftmost columnar horizontal rotating rod 2212 to rotate. Since the inner ends of multiple columnar horizontal rotating rods 2212 are interconnected through the columnar connecting cross rod 22120, the multiple columnar horizontal rotating rods 2212 will rotate synchronously, thereby driving multiple swing rod connecting blocks 2211 and swing rod 2210 to swing. The inner top of the swing rod 2210 is rotatably connected to the push-pull vertical plate 2214 through the columnar transfer short rod 2213. Therefore, the swing of the swing rod 2210 will drive the push-pull vertical plate 2214 to move back and forth. The front side of the semicircular connecting sleeve 2215 is fixedly connected to the tubular storage frame 2216, so the forward and backward movement of the push-pull vertical plate 2214 will drive the tubular storage frame 2216 to slide on the top of the quantitative unloading connecting platform 221. When the motor 226 controls the tubular storage frame 2216 to move forward, the front sides of multiple motors 226 move to fit with the rear sides of multiple connecting sleeves 2219, and when the multiple tubular storage frames 2216 move toward one side of the multiple connecting sleeves 2219, they will push the semicircular push-pull plate 2218 to move backward, and push the convex push plate 22116 to move forward through the columnar push-pull rod 2217 and stretch the spring 22115. When the convex push plate 22116 moves forward, it pushes the triangular support plate 22118 to move forward through the triangular support plate push rod 22117.

[0037] When the tubular storage frame 2216 moves to the bottom of the storage bin discharge pipe 22111, the valve of the storage bin discharge pipe 22111 is opened, and the seasoning falls from the storage bin discharge pipe 22111 into the tubular storage frame 2216. Since the discharge space inside each storage bin discharge pipe 22111 is different, the storage amount in each tubular storage frame 2216 is also different, realizing the quantitative discharge of different seasonings. Subsequently, the motor 226 continues to rotate, rotating the tubular storage frame 2216 to the inner wall of the tubular blanking frame 223, and passing through the tubular blanking frame 223. The shaped blanking frame 223 discharges the seasoning on the inner wall of the circular tubular storage frame 2216 to the inner wall of the feeding pipe connecting tube 224, and discharges it into the feeding pipe 213 through the feeding pipe connecting tube 224, driving the circular tubular storage frame 2216 to move backward. At this time, the spring 22115 rebounds, pushing the convex push plate 22116 to move backward, and then drives the triangular support plate 22118 to move backward through the triangular support plate push rod 22117. The semicircular push-pull plate 2218 loses its thrust and is also reset to the front side under the action of the spring, preparing for the next quantitative discharge.

[0038] like Figure 9-10As shown, the rear sides of the two material unloading rack connecting rods 11 are fixedly connected to two L-shaped horizontal connecting rods 12, the inner sides of the left and right groups of L-shaped horizontal connecting rods 12 are fixedly connected to the rear vertical rods 13, the inner tops of the two rear vertical rods 13 are fixedly connected to the rear sides of the left and right sides of the inclined L connecting plate 211, the front and rear sides of the inner sides of the left and right groups of L-shaped horizontal connecting rods 12 are fixedly connected to the L-shaped side panel connecting rods 14, the inner bottoms of the left and right groups of L-shaped side panel connecting rods 14 are fixedly connected to the residual material collection frame 16, the tops of the inner sides of the left and right groups of L-shaped side panel connecting rods 14 are fixedly connected to the material unloading rack L-shaped side panels 15, the front sides of the inner sides of the two material unloading rack L-shaped side panels 15 are fixedly connected to the hinged side blocks 17, the inner sides of the two hinged side blocks 17 are rotatably connected to the total material unloading funnel 18, the middle parts of the left and right sides of the total material unloading funnel 18 are fixedly connected to the columnar rotating blocks 19, and the outer ends of the two columnar rotating blocks 19 are rotated The tops of the multiple column pressure rods 114 extend to the tops of the column pressure rod guide plates 113 and the outer walls are all sleeved with second springs 115. The tops of the multiple column pressure rods 114 are fixedly connected to the inverted triangular support plates 116. The rear side of the inverted triangular support plates 116 fits with the front side of the triangular support plates 22118. The rear side of the total unloading funnel 18 is fixedly connected to the front side of the multiple material passage pipes 213.

[0039] When the triangular support plate 22118 moves to the front side, the tubular storage frame 2216 is receiving the material at the bottom of the storage bin discharge pipe 22111, and because the angle of the front side of the triangular support plate 22118 is opposite to the angle of the rear side of the inverted triangular support plate 116, the triangular support plate 22118 moves to the front side and pushes the inverted triangular support plate 116 to move toward the top, pressing the multiple columnar pressure rods 114 to move downward, thereby causing the total discharge funnel 18 to flip downward, and discharge the seasoning remaining on the inner wall of the total discharge funnel 18 to the inner wall of the residual material collection frame 16, to avoid waste caused by seasoning residue or affecting the accuracy of next use. When the triangular support plate 22118 moves to the rear side, the tubular storage frame 2216 is discharging the material on the inner wall of the tubular blanking frame 223. At this time, the second spring 11 Due to its own elasticity, the inverted triangular support plate 116 is pushed upward, thereby driving the multiple columnar pressure rods 114 to slide and move upward on the inner wall of the columnar pressure rod guide plate 113. At the same time, the transverse pressure rod 111 is pulled upward by the columnar pressure rod 114. The side pressure rod 110 is connected to the main discharge funnel 18 through the columnar rotating block 19, so that the main discharge funnel 18 gradually returns to its initial position. Since the rear side of the main discharge funnel 18 is connected to the multiple feeding pipes 213, when the main discharge funnel 18 gradually returns to its initial position, the main discharge funnel 18 conveys the seasoning to the inner wall of the main discharge funnel 18 through the multiple feeding pipes 213, and then conveys the seasoning to the corresponding prepared food production equipment through the discharge port of the main discharge funnel 18, thereby realizing automatic quantitative delivery of the seasoning.

[0040] Working principle of the present invention: When in use, first start the motor 226. Through the drive of the motor 226, a series of precise mechanical linkages are realized. Driven by the push-pull vertical plate 2214, the circular tubular storage frame 2216 accurately slides to the bottom of the storage bin discharge pipe 22111, ensuring that each seasoning can be accurately taken according to the preset amount. As the circular tubular storage frame 2216 gradually moves to the bottom of the storage bin discharge pipe 22111, the storage bin discharge pipe is opened. The valve 22111 is opened accurately, allowing the seasoning to flow into the tubular storage frame 2216. At the same time, it pushes the semicircular push-pull plate 2218 to move backward, and pushes the convex push plate 22116 to move forward through the columnar push-pull rod 2217 and stretches the spring 22115. When the convex push plate 22116 moves forward, it pushes the triangular push plate 22118 to move forward through the triangular push plate push rod 22117. At this time, the triangular push plate 22118 and the reverse push plate 22118 are in contact. The triangular abutment plates 116 interact with each other, so that the total discharge funnel 18 flips over in time, effectively cleaning the residual seasonings, ensuring the cleanliness and efficiency of the discharge process. As the motor 226 continues to rotate, the tubular storage frame 2216 is accurately guided into the tubular blanking frame 223 after completing the material reception. During this process, the spring 22115 rebounds, driving the convex push plate 22116 and the semicircular push-pull plate 2218 to reset. At the same time, the total discharge funnel 18 returns to its original position under the action of the second spring 115, ready to receive the seasonings from the feed pipe 213. After the tubular storage frame 2216 completes the material reception and is guided into the tubular blanking frame 223, the seasonings inside the tubular storage frame 2216 are discharged into the feed pipe connecting pipe 224, and then flow into the feed pipe 213. Subsequently, these seasonings are accurately distributed to the pre-prepared food production equipment through the total discharge funnel 18, completing the entire automatic quantitative delivery process.

[0041] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.

Claims

1. An automatic quantitative conveying device for seasonings for pre-prepared food production, comprising a feed rack (1), characterized in that: A quantitative unloading mechanism (2) is fixedly connected to the top of the unloading rack (1); The quantitative discharging mechanism (2) comprises a quantitative discharging base frame (21), and a quantitative discharging component (22) is fixedly connected to the top of the quantitative discharging base frame (21); The quantitative unloading base frame (21) comprises an oblique L-shaped connecting plate (211), both sides of the bottom front side of the oblique L-shaped connecting plate (211) are fixedly connected to a material passage connecting plate (212), multiple sides of the inner walls of the two material passage connecting plates (212) are fixedly connected to material passages (213), the rear ends of the plurality of material passages (213) extend to the rear sides of the two oblique L-shaped connecting plates (211), and the rear tops of the outer walls of the plurality of material passages (213) are fixedly connected to convex reinforcement blocks (214); The quantitative blanking assembly (22) includes a plurality of quantitative blanking connection platforms (221), the bottoms of the plurality of quantitative blanking connection platforms (221) are fixedly connected to the rear side of the top of the inclined L-shaped connection plate (211), the front sides of the tops of the plurality of quantitative blanking connection platforms (221) are fixedly connected to a semicircular feeding support plate (222), the rear sides of the plurality of quantitative blanking connection platforms (221) are fixedly connected to a circular tubular blanking frame (223), the connection points between the rear sides of the plurality of quantitative blanking connection platforms (221) and the circular tubular blanking frame (223) are all semicircular cross-sections, and the plurality of circular tubular blanking frames (223) are fixedly connected to the semicircular cross-sections. 23) The front side and the inner wall of the outer wall are both hollowed out, and the bottom of the rear side of the plurality of quantitative material discharge connection platforms (221) are fixedly connected with the material pipe connection pipe (224), and the top of the plurality of material pipe connection pipes (224) are aligned with the bottom of the plurality of circular tubular blanking frames (223). The inner walls of the plurality of material pipe connection pipes (224) are fixedly connected to the outer wall of the top of the rear side of the plurality of material pipes (213). The left and right sides of the quantitative material discharge connection platform (221) are fixedly connected with L-shaped side plates (225), and the right side of the leftmost L-shaped side plate (225) is fixedly connected with a motor. (226), the rear sides of the bottom of the inner wall of the plurality of said quantitative material discharging connection platforms (221) are all rotatably connected with a columnar transverse rod (2212), the left and right ends of the plurality of said columnar transverse rods (2212) are all extended to the outside of the plurality of quantitative material discharging connection platforms (221), the inner ends of the plurality of said columnar transverse rods (2212) are all fixedly connected with a columnar connecting transverse rod (22120), the left side of the leftmost columnar transverse rod (2212) is fixedly connected to the output end of the motor (226), and the plurality of said columnar transverse rods (2212) are all fixedly connected on both sides of the outer wall of the quantitative material discharging connection platform (221). There is a swing rod connecting block (2211), the tops of multiple groups of the swing rod connecting blocks (2211) are fixedly connected to the swing rod (2210), the inner tops of multiple groups of the swing rods (2210) are fixedly connected to the columnar transfer short rods (2213), the inner sides of multiple groups of the columnar transfer short rods (2213) are rotatably connected to the push-pull vertical plates (2214), the tops and bottoms of the front sides of multiple groups of the push-pull vertical plates (2214) are fixedly connected to the semicircular connecting sleeves (2215), and the front sides of multiple groups of the semicircular connecting sleeves (2215) are fixedly connected to the circular tubular material storage frames (2216); The blanking rack (1) comprises two blanking rack connecting uprights (11).

2. The automatic quantitative seasoning delivery device for pre-prepared food production according to claim 1, characterized in that: The rear sides of the outer sides of the multiple groups of L-shaped side panels (225) are all fixedly connected to the inverted L-shaped connecting side panels (227), and the inner sides of the multiple groups of inverted L-shaped connecting side panels (227) are all fixedly connected to the left and right sides of the multiple convex reinforcement blocks (214).

3. The automatic quantitative seasoning delivery device for pre-prepared food production according to claim 1, characterized in that: The bottoms of the plurality of circular tubular storage frames (2216) are all slidably connected to the tops of the plurality of quantitative unloading connection platforms (221), the middle parts of the inner walls of the plurality of semicircular feeding support plates (222) are all slidably connected to columnar push-pull rods (2217), the front ends of the plurality of columnar push-pull rods (2217) extend to the front sides of the plurality of semicircular feeding support plates (222) and are all fixedly connected to the semicircular push-pull plates (2218), the front sides of the outer walls of the plurality of semicircular feeding support plates (222) are all fixedly connected to the connecting sleeves (2219), the front sides of the outer sides of the plurality of connecting sleeves (2219) are all fixedly connected to the storage bin unloading pipe connecting frames (22110), and the plurality of The top inner walls of the storage bin discharge pipe connecting frames (22110) are fixedly connected with storage bin discharge pipes (22111), the bottom ends of the plurality of storage bin discharge pipes (22111) are aligned with the top of the semicircular feeding support plate (222), the top ends of the plurality of storage bin discharge pipes (22111) are fixedly connected with the seasoning storage bin (22119), the left and right sides of the front side of the storage bin discharge pipe connecting frame (22110) are fixedly connected with triangular support side plates (22112), and the tops of the plurality of groups of triangular support side plates (22112) are fixedly connected to the left and right sides of the front bottom sides of the plurality of seasoning storage bins (22119).

4. The automatic quantitative seasoning delivery device for pre-prepared food production according to claim 3, characterized in that: The outer bottoms of multiple groups of triangular support side plates (22112) are fixedly connected to support side vertical plates (22113), the inner tops of multiple groups of support side vertical plates (22113) are fixedly connected to guide side plates (22114), the inner sides of multiple groups of guide side plates (22114) are slidably connected to convex push plates (22116), the rear sides of multiple convex push plates (22116) are fixedly connected to multiple springs (22115), the rear ends of multiple groups of springs (22115) are fixedly connected to the front sides of multiple storage bin discharge pipe connecting frames (22110), the rear bottoms of multiple convex push plates (22116) are fixedly connected to the front ends of multiple columnar push-pull rods (2217), and the front sides of multiple columnar push-pull rods (2217) are fixedly connected to triangular abutment plates (22118).

5. The automatic quantitative seasoning delivery device for pre-prepared food production according to claim 4, characterized in that: The outer bottoms of the multiple groups of triangular support side plates (22112) are fixedly connected to the support side vertical plates (22113), the inner tops of the multiple groups of support side vertical plates (22113) are fixedly connected to the guide side plates (22114), the inner sides of the multiple groups of guide side plates (22114) are slidably connected to the convex push plates (22116), the rear sides of the multiple convex push plates (22116) are fixedly connected to the multiple springs (22115), the multiple groups of springs ( The rear ends of the plurality of convex push plates (22116) are fixedly connected to the front sides of the plurality of storage bin discharge pipe connection frames (22110), the rear bottom ends of the plurality of convex push plates (22116) are fixedly connected to the front ends of the plurality of columnar push-pull rods (2217), the front middle parts of the plurality of convex push plates (22116) are fixedly connected to triangular abutment plate push rods (22117), and the front sides of the plurality of triangular abutment plate push rods (22117) are fixedly connected to triangular abutment plates (22118).

6. The automatic quantitative seasoning delivery device for pre-prepared food production according to claim 1, characterized in that: The rear sides of the two material rack connecting vertical rods (11) are fixedly connected to two L-shaped horizontal connecting rods (12), the inner sides of the left and right groups of the L-shaped horizontal connecting rods (12) are fixedly connected to the rear vertical rods (13), the inner tops of the two rear vertical rods (13) are fixedly connected to the rear sides of the left and right sides of the inclined L connecting plate (211), the front and rear sides of the inner sides of the left and right groups of the L-shaped horizontal connecting rods (12) are fixedly connected to the L-shaped side plate connecting rods (14), the inner bottoms of the left and right groups of the L-shaped side plate connecting rods (14) are fixedly connected to the residual material collection frame (16), the inner tops of the left and right groups of the L-shaped side plate connecting rods (14) are fixedly connected to the material rack L-shaped side plates (15), and the front sides of the inner sides of the two material rack L-shaped side plates (15) are fixedly connected to the hinged side blocks (17).

7. The automatic quantitative seasoning delivery device for pre-prepared food production according to claim 6, characterized in that: The inner sides of the two hinged side blocks (17) are rotatably connected to the total feeding funnel (18), the middle parts of the left and right sides of the total feeding funnel (18) are fixedly connected to the columnar rotating blocks (19), the outer ends of the two columnar rotating blocks (19) are rotatably connected to the side pressure rods (110), the tops of the inner sides of the two side pressure rods (110) are fixedly connected to the transverse pressure rods (111), the inner tops of the two feeding rack connecting vertical rods (11) are fixedly connected to the guide plate side connecting rods (112), the front sides of the inner sides of the two guide plate side connecting rods (112) are fixedly connected to the columnar pressure rod guide plates (113), the columnar pressure rod guide plates (113) are fixedly connected to the guide plate side connecting rods (113), and the columnar pressure rod guide plates (113) are fixedly connected to the guide plate side connecting rods (113). 13) Multiple sides of the inner wall are slidably connected to columnar pressure rods (114), the bottom ends of multiple columnar pressure rods (114) are fixedly connected to multiple sides of the top of the transverse pressure rod (111), the top ends of multiple columnar pressure rods (114) extend to the top of the columnar pressure rod guide plate (113) and the outer wall is covered with a second spring (115), the top ends of multiple columnar pressure rods (114) are fixedly connected to an inverted triangular support plate (116), the rear side of the inverted triangular support plate (116) is in contact with the front side of the triangular support plate (22118), and the rear side of the total discharge funnel (18) is fixedly connected to the front side of multiple material passages (213).

Citation Information

Patent Citations

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    CN116812207B

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