Granular material and stuffing fusion device
By designing a fusion device for granular materials and stuffing, and using structures such as filling cutters and conveyor belts, the precise fusion of granular materials and stuffing is achieved, solving the problem of uneven fusion in the existing technology, and improving the flavor uniformity of stuffed foods.
Patent Information
- Application Number
- CN202422403435.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-30
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-09-30
AI Technical Summary
The prior art is difficult to ensure the precise fusion of granular materials and fillings every time the filling is filled, resulting in uneven flavors of the stuffed foods.
A fusion device for granular materials and fillings is designed, including a filling cutting seat, a vertical filling channel, a first and second filling channels, and a material storage tank body. Through the cooperation of the conveyor belt and push plate, the precise push of the granular materials and the integration with the filling is achieved.
The precise integration of granular materials and fillings is achieved, ensuring that each filling-packed food contains a granular material, improving the flavor uniformity of the food.
Smart Images

Figure CN223080946U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the processing technology of stuffed foods, and particularly relates to a device for fusing granular materials and stuffing. Background Art
[0002] When injecting stuffing for food stuffing equipment such as dumplings, wontons, and shumai, a push rod and an injection pump are used for injection. Currently, in order to make the stuffing of stuffed foods more flavorful, granular materials such as shrimps need to be fused into the stuffing. The utility model patent with the publication number CN203302244U, a granular stuffing injection device, realizes the quantitative injection of granular stuffing through the cooperation of an injection piston and a quantitative piston, while the shrimps are pre-fused in the stuffing hopper, which cannot ensure the accuracy of one granular material for one stuffed food. Content of the Utility Model
[0003] Aiming at the problems in the prior art, the utility model provides a device for fusing granular materials and stuffing, aiming to ensure that only one granular material and stuffing are fused each time.
[0004] A device for fusing granular materials and stuffing includes a stuffing cutting seat, on which vertical stuffing discharge channels are distributed. A first stuffing inlet channel communicating with the stuffing discharge channels is arranged on the front side surface of the stuffing cutting seat. A second stuffing inlet channel is arranged on the rear side surface of the stuffing cutting seat. The second stuffing inlet channel is of a linear structure. The discharge port of the second stuffing inlet channel is communicated with the stuffing discharge channels. The feed port of the second stuffing inlet channel is located on the side surface of the stuffing cutting seat. A material holding tank body is fixedly arranged at the rear of the stuffing cutting seat. An opening is provided on the upper, front, and rear sides of the material holding tank body. The bottom of the holding tank is flush with the feed port of the second stuffing inlet channel. The front opening of the holding tank corresponds to and is communicated with the feed port of the second stuffing inlet channel. A material push rod is arranged at the rear opening of the holding tank, and the material push rod is used to push the granular materials in the holding tank into the stuffing discharge channels.
[0005] Further: The discharge port of the second stuffing inlet channel in the stuffing discharge channels corresponds to the discharge port of the first stuffing inlet channel.
[0006] Further: A pressing block is arranged directly above the holding tank. The pressing block is arranged to be lifted and lowered and is driven by a lifting mechanism. When the pressing block descends to the bottom of the holding tank, the lower end surface of the pressing block and the bottom of the holding tank form a conveying channel, and the two ends of the conveying channel respectively coincide with the front and rear openings of the holding tank.
[0007] Further: The cross-section of the conveying channel is circular or square.
[0008] Further, a conveyor belt is provided at the rear side of the material holding tank. The conveying direction of the conveyor belt is set along the left - right direction of the material holding tank. The upper belt surface of the conveyor belt corresponds to the notch of the holding tank up and down. A push plate is provided at the rear side of the conveyor belt. The lower side edge of the push plate is flush with the upper belt surface of the conveyor belt. The push plate is driven by a second telescopic mechanism and is arranged to move back and forth along the front - rear direction of the conveyor belt. The granular material is placed on the upper belt surface of the conveyor belt and moves along with the upper belt surface. When the granular material moves to the position of the holding tank, the push plate pushes the granular material from the upper belt surface into the holding tank, and makes the granular material fall into the holding tank.
[0009] The beneficial effects of the present utility model: By providing a second stuffing inlet channel at the rear side of the stuffing cutting seat and cooperating with the material holding tank to feed granular materials, the stuffing in the first stuffing inlet channel and the granular materials can be fused in the stuffing discharge channel. The structure is simple and compact, and is easy to implement. Description of the Drawings
[0010] Figure 1 is the schematic side - view structure diagram of the present utility model;
[0011] Figure 2 is the schematic top - view structure diagram of the present utility model;
[0012] Figure 3 is the schematic structure diagram of the material holding tank body in the present utility model;
[0013] Figure 4 is the position - relationship diagram of the material holding tank body, conveyor belt and pressing block in the present utility model. Detailed Embodiments
[0014] The following will describe the present utility model in detail with reference to the drawings. The embodiments of the present utility model will be described in detail below. The examples of the embodiments are shown in the drawings, where the same or similar reference numerals represent the same or similar elements or elements with the same or similar functions from beginning to end. The embodiments described below with reference to the drawings are exemplary and are only used to explain the present utility model, and should not be construed as limiting the present utility model. The orientation terms such as left, middle, right, up, and down in the embodiments of the present utility model are only relative concepts to each other or are referenced based on the normal use state of the product, and should not be considered as restrictive.
[0015] A device for fusing granular materials and stuffing, as Figure 1As shown in the figure, it includes a stuffing cutting base 6. Vertical stuffing discharge channels 62 are distributed on the stuffing cutting base 6. A first stuffing inlet channel 61 communicating with the stuffing discharge channels 62 is formed on the front side surface of the stuffing cutting base 6. The structure of the stuffing cutting base 6 can refer to a new type of stuffing shell with the publication number CN210184351U; a second stuffing inlet channel 63 is formed on the rear side surface of the stuffing cutting base. The second stuffing inlet channel 63 is a straight structure. The discharge port of the second stuffing inlet channel 63 communicates with the stuffing discharge channels 62, and the feed port of the second stuffing inlet channel 63 is located on the side surface of the stuffing cutting base 6; combined with Figure 2 and Figure 3 As shown in the figure, a material holding tank body 5 is fixedly arranged at the rear of the stuffing cutting base 6. A holding tank 51 with openings at the upper, front, and rear is arranged on the material holding tank body 5. The bottom of the holding tank 51 is flush with the feed port of the second stuffing inlet channel 63. The opening in front of the holding tank 51 corresponds to and communicates with the feed port of the second stuffing inlet channel 63. A material push rod 7 is arranged at the opening at the rear of the holding tank 51. The material push rod 7 is used to push the granular material in the holding tank 51 into the stuffing discharge channels 62. The material push rod 7 is driven by a first telescopic mechanism 31 and is arranged to move back and forth along the front-rear direction of the holding tank 51. The first telescopic mechanism 31 is fixedly connected to a fixed seat 3, and the fixed seat 3 can be integrally arranged with the material holding tank body 5.
[0016] Among them, the discharge port of the second stuffing inlet channel 63 in the stuffing discharge channels 62 corresponds to the discharge port of the first stuffing inlet channel 61, so that the granular material can be directly fused with the stuffing when entering the stuffing discharge channels 62. In other embodiments, when the discharge port of the second stuffing inlet channel 63 in the stuffing discharge channels is staggered up and down with the discharge port of the first stuffing inlet channel 61, the granular material and the stuffing can be mutually extruded and fused under the action of a stuffing push rod (not shown in the figure) when falling. Combined with Figure 4 As shown in the figure, in order to adjust the position or shape of the granular material in the holding tank 51 so that the granular material can smoothly enter the second stuffing inlet channel 63, a pressing block 12 is arranged directly above the holding tank 51. The pressing block 12 is arranged to move up and down and is driven by a lifting mechanism 11. When the pressing block 12 descends to the bottom of the holding tank 51, the lower end surface of the pressing block 12 and the bottom of the holding tank 51 form a transfer channel. The cross-section of the transfer channel is circular or square, and both ends of the transfer channel coincide with the openings in front of and behind the holding tank 51.
[0017] In addition, for the convenience of feeding granular materials, a conveyor belt 4 is provided at the rear side of the material storage tank 5. The conveying direction of the conveyor belt 4 is set along the left-right direction of the material storage tank 5. The upper belt surface of the conveyor belt 4 corresponds to the notch of the storage tank 51 up and down. The material push rod 7 is located below the upper belt surface and there is no interference between the two. A push plate 21 is provided at the rear side of the conveyor belt 4. The lower side edge of the push plate 21 is flush with the upper belt surface of the conveyor belt 4. The push plate 21 is driven by a second telescopic mechanism 22 and is arranged to move back and forth along the front-rear direction of the conveyor belt 4. The granular materials are placed on the upper belt surface of the conveyor belt 4 and move along with the upper belt surface. When the granular materials move to the position of the storage tank 51, the push plate 21 pushes the granular materials from the upper belt surface into the storage tank 51, and the granular materials fall into the storage tank 51.
[0018] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principle of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A fusion device for granular materials and fillings, comprising a filling cutting base, on which vertical filling discharge channels are distributed, and a first filling inlet channel communicating with the filling discharge channels is arranged on the front side surface of the filling cutting base, characterized in that: A second stuffing inlet channel is provided on the rear side surface of the stuffing cutting base. The second stuffing inlet channel is a straight structure. The discharge port of the second stuffing inlet channel is communicated with the stuffing discharge channel. The feed port of the second stuffing inlet channel is located on the side surface of the stuffing cutting base. A material holding trough is fixedly arranged at the rear of the stuffing cutting base. The material holding trough is provided with a holding trough with openings at the upper, front and rear. The bottom of the holding trough is flush with the feed port of the second stuffing inlet channel. The opening in front of the holding trough corresponds to and is communicated with the feed port of the second stuffing inlet channel. A material push rod is arranged at the opening at the rear of the holding trough. The material push rod is used to push the granular material in the holding trough into the stuffing discharge channel.
2. The fusion device for particulate materials and fillings according to claim 1, characterized in that: The discharge port of the second stuffing inlet channel in the stuffing discharge channel corresponds to the discharge port of the first stuffing inlet channel.
3. The fusion device for particulate materials and fillings according to claim 1, characterized in that: A pressing block is arranged directly above the holding trough. The pressing block is arranged to be lifted and lowered and is driven by a lifting mechanism. When the pressing block descends to the bottom of the holding trough, the lower end face of the pressing block forms a conveying channel with the bottom of the holding trough. The two ends of the conveying channel coincide with the openings in front of and behind the holding trough respectively.
4. The fusion device for particulate materials and fillings according to claim 3, characterized in that: The cross section of the conveying channel is circular or square.
5. The fusion device for particulate material and filling according to claim 1, characterized in that: A conveyor belt is arranged at the rear of the material holding trough. The conveying direction of the conveyor belt is arranged along the left-right direction of the material holding trough. The upper belt surface of the conveyor belt corresponds to the trough opening of the holding trough up and down. A push plate is arranged at the rear of the conveyor belt. The lower side edge of the push plate is flush with the upper belt surface of the conveyor belt. The push plate is driven by a second telescopic mechanism and is arranged to move back and forth along the front-rear direction of the conveyor belt.
Citation Information
Patent Citations
Particle stuffing filling device
CN203302244U
Novel stuffing shell
CN210184351U