Two-stuffing encrusting machine
By designing a two-filling wrapping machine, it is possible to wrap and cut various fillings for foods such as shortbread, bread, mooncakes and pastries, solving the problems of low production efficiency and filling leakage in existing technologies, and improving the texture of food and production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ANHUI ZHONGLE FOOD MACHINERY
- Filing Date
- 2025-05-22
- Publication Date
- 2026-04-21
AI Technical Summary
In existing technologies, it is difficult to achieve a "filling within a filling" structure with multiple fillings in foods such as shortbread, bread, mooncakes and pastries through artificial means, resulting in low production efficiency and a tendency for fillings to leak out.
Design a two-filling wrapping machine, including a filling feeding mechanism, a wrapping mechanism, a cutting mechanism, and a conveying mechanism. By separately feeding two kinds of fillings and wrapping one kind of filling in the other kind of filling in the wrapping mechanism, the machine is then cut by the cutting mechanism and finally conveyed by the conveying mechanism, which improves the layering effect and production efficiency.
It effectively improves the layering of food fillings, increases the production efficiency of the "filling within a filling" structure, and avoids the problem of filling leakage.
Smart Images

Figure CN224140127U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of food processing equipment, and in particular relates to a two-filling wrapping machine. Background Technology
[0002] Shortbread, bread, mooncakes, and pastries are readily available in the market and can be eaten while chatting or relaxing, or used to temporarily stave off hunger.
[0003] In existing technologies, most pastries, breads, mooncakes, and other baked goods contain only one type of filling or a mixture of multiple fillings. While these foods are simple to make, it's difficult for consumers to experience the layered textures. To enhance this texture, a common method is to manually wrap one filling within another, creating a "filling within a filling" structure. However, this manual process is slow and prone to problems like filling leakage. Therefore, there is an urgent need to research a two-filling wrapping machine to solve these issues. Utility Model Content
[0004] The present invention provides a two-filling wrapping machine, the purpose of which is to solve the technical problems mentioned in the background art.
[0005] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution:
[0006] This utility model is a two-filling wrapping machine, including a machine box; a pair of filling feeding mechanisms are installed side by side on the top of the machine box; the two filling feeding mechanisms are connected by a wrapping mechanism; the wrapping mechanism is located on one side of the machine box; a cutting mechanism is installed below the wrapping mechanism; and a conveying mechanism is installed below the cutting mechanism.
[0007] As a preferred embodiment of this utility model, the filling feeding mechanism includes a filling storage box fixed to the top wall of the machine casing; a pair of discharge cylinders are vertically fixed side by side on one side wall of the filling storage box near the conveying mechanism; the two discharge cylinders are connected by a protective shell at one end away from the filling storage box; the protective shell has a discharge port arranged in one direction; a first spiral rod and a second spiral rod are rotatably connected side by side inside the filling storage box; the second spiral rod is disposed between the first spiral rod and the discharge port; one end of the first spiral rod passes through one discharge cylinder and is inserted into the protective shell; one end of the second spiral rod passes through another discharge cylinder and is inserted into the protective shell, and a first rotating roller is fixedly sleeved on this end of the second spiral rod; a plurality of conveying blades are radially fixed on the circumferential side wall of the first rotating roller.
[0008] As a preferred embodiment of this utility model, a mounting box is provided on one side of the filling box; the mounting box is fixed to the top wall of the machine housing; the other ends of the first spiral rod and the second spiral rod both penetrate through one side wall of the mounting box, and the other ends of the first spiral rod and the second spiral rod are rotatably connected to one side wall of the mounting box; a first gear is fixedly sleeved on the other ends of the first spiral rod and the second spiral rod; the two first gears mesh with each other; a first sprocket is fixedly sleeved on the other end of the second spiral rod; a first motor is provided below the first sprocket; the first motor is fixed inside the machine housing; the output shaft of the first motor is fixedly sleeved on the second sprocket; the second sprocket and the first sprocket are connected by chain drive.
[0009] As a preferred embodiment of this utility model, the filling mechanism includes a vertically arranged outer cylinder; a bracket is fixed to the circumferential side wall of the outer cylinder; the bracket is fixed to one side wall of the machine housing; a pair of coaxially arranged feeding ports are opened on the circumferential side wall of the outer cylinder; the two feeding ports are respectively connected to the discharge ports of two filling feeding mechanisms; a feeding cylinder is coaxially fixed to the lower end of the outer cylinder; the lower end of the feeding cylinder has a vertically arranged first conical outlet; a top cover is horizontally fixed to the upper end of the outer cylinder; an inner cylinder is vertically arranged inside the outer cylinder; the upper end of the inner cylinder is fixed to the top cover; a receiving port is opened on the circumferential side wall of the inner cylinder; the receiving port is connected to a feeding port; the lower end of the inner cylinder has a vertically arranged second conical outlet; the second conical outlet is located inside the first conical outlet; a conveying gap is formed between the lower end of the inner cylinder and the lower end of the feeding cylinder.
[0010] As a preferred embodiment of this utility model, the lower port edge of the outer cylinder is provided with a receiving notch; a rotating ring is coaxially rotatably connected inside the lower port of the outer cylinder; multiple stirring blades are evenly distributed and fixed on the inner circumference of the rotating ring; an external toothed ring corresponding to the receiving notch is fixedly sleeved on the outer circumference of the rotating ring; a second motor is provided on one side of the external toothed ring; a second gear is fixedly sleeved on the output shaft of the second motor; a gear set meshes on the second gear; the gear set passes through the receiving notch and meshes with the external toothed ring.
[0011] As a preferred embodiment of this utility model, the cutting mechanism includes a support plate vertically fixed to one side wall of the chassis and a carrier box fixed inside the chassis; a cutter disc is horizontally fixed on the side of the support plate away from the carrier box; multiple cutters are evenly distributed and rotatably connected on the cutter disc in a circumferential direction; a third motor is fixed on the side wall of the carrier box away from the support plate; a third sprocket is fixedly sleeved on the output shaft of the third motor; a first rotating shaft is horizontally arranged on one side of the third sprocket; the two ends of the first rotating shaft are respectively rotatably connected to the opposite side walls of the carrier box; the first rotating shaft... A fourth sprocket is fixedly mounted; the fourth sprocket is connected to the third sprocket via chain drive; one end of the first rotating shaft passes through the bearing box and is fixedly mounted on the first turntable; a push-pull plate is vertically mounted on the side of the first turntable away from the fourth sprocket; the push-pull plate is slidably connected to the bearing box; an arc-shaped through groove is opened on one side of the push-pull plate; a roller is slidably fitted in the arc-shaped through groove; the roller is fixed at the edge of the first turntable; a transmission rod is fixed parallel to the upper edge of the push-pull plate; one end of the transmission rod slides through one side wall of the machine box and the support plate and is rotatably connected to the cutter.
[0012] As a preferred embodiment of this utility model, the conveying mechanism includes a first roller and a second roller rotatably connected side-by-side to one side wall of the housing, and a third motor fixed inside the housing; multiple third rollers are arranged side-by-side between the first roller and the second roller; one end of each of the multiple third rollers is rotatably connected to one side wall of the housing; a third gear is fixedly mounted on the output shaft of the third motor; a fourth gear meshes with the third gear; the fourth gear is fixedly mounted on one end of a fourth roller parallel to the first roller; one end of the fourth roller is rotatably connected to one side wall of the housing; Fifth rollers are provided on both opposite sides of the fourth roller; one end of each of the two fifth rollers is rotatably connected to one side wall of the machine housing; a sixth roller is provided on the side of the fourth roller closest to the first roller; a swing arm is rotatably connected to one end of the sixth roller; the end of the swing arm away from the sixth roller is rotatably connected to one side wall of the machine housing; a first tension spring is fixed to the end of the swing arm near the sixth roller; the end of the first tension spring away from the swing arm is fixed to one side wall of the machine housing; the first roller, the second roller, multiple third rollers, the fourth roller, the two fifth rollers, and the sixth roller are connected by a conveyor belt.
[0013] As a preferred embodiment of this utility model, a filling pushing mechanism is installed between the two filling feeding mechanisms; the filling pushing mechanism includes a receiving box vertically fixed to the top wall of the machine casing; a second rotating shaft perpendicular to the first spiral rod is horizontally rotatably connected inside the receiving box; the two ends of the second rotating shaft pass through the opposite inner sidewalls of the two filling boxes and are coaxially fixed with second rotating rollers; pushing blades are radially fixed to the circumferential sidewalls of the two second rotating rollers; a third rotating shaft perpendicular to the second rotating shaft is horizontally rotatably connected inside the receiving box; a first helical gear is fixedly sleeved at one end of the third rotating shaft; A second helical gear meshes with the first helical gear; the second helical gear is fixedly sleeved on the outer circumference of the second rotating shaft; the other end of the third rotating shaft passes through the receiving box and is rotatably connected to a side wall of a mounting box, and a fifth gear is fixedly sleeved on this end of the third rotating shaft; a fourth rotating shaft parallel to the third rotating shaft is provided on one side of the fifth gear; the two ends of the fourth rotating shaft are respectively rotatably connected to opposite side walls of a mounting box; a sixth gear meshing with the fifth gear is fixedly sleeved on the fourth rotating shaft; the sixth gear meshes with a first gear inside a mounting box.
[0014] As a preferred embodiment of this utility model, a powder-spreading mechanism is installed above the conveyor belt; the powder-spreading mechanism is located between the first roller and the sixth roller; the powder-spreading mechanism includes a powder box fixed to one side wall of the machine housing; the bottom wall of the powder box is evenly provided with multiple powder-spreading holes; a third rotating roller parallel to the first roller is rotatably connected inside the powder box; multiple mixing rods are radially fixed to the circumferential side wall of the third rotating roller; one end of the third rotating roller is coaxially fixed to the output shaft of a fifth motor; the fifth motor is horizontally fixed inside the machine housing.
[0015] As a preferred embodiment of this utility model, a filling receiving mechanism is installed on the inner side of the conveyor belt; the filling receiving mechanism is located below the filling mechanism; the filling receiving mechanism includes a positioning box fixedly inserted into one side wall of the machine housing and a U-shaped block fixed inside the machine housing; a first through groove is vertically opened on one side wall of the positioning box; a lifting rod is vertically slidably inserted into the top wall of the positioning box; a filling receiving plate is horizontally fixed at the upper end of the lifting rod; the filling receiving plate can be attached to the inner surface of the conveyor belt and can drive the conveyor belt upward towards the filling mechanism; a fifth rotating shaft perpendicular to the first roller is horizontally rotatably connected between the two arms of the U-shaped block; a fifth sprocket is fixedly sleeved on the fifth rotating shaft; a sixth sprocket is connected to the fifth sprocket through chain drive; the sixth sprocket is fixedly sleeved on one end of a sixth rotating shaft; the two ends of the sixth rotating shaft are respectively rotatably connected to... On the opposite side wall of the carrier box; a seventh sprocket is fixedly sleeved on the sixth rotating shaft; the seventh sprocket is connected to an eighth sprocket via chain drive; the eighth sprocket is fixedly sleeved on the output shaft of the third motor; a second turntable is coaxially fixed to one end of the fifth rotating shaft; a first pull rod is connected to the edge of the second turntable via a ball joint; a second pull rod is connected to the end of the first pull rod away from the second turntable via a ball joint; a third pull rod is rotatably connected to the middle of the second pull rod; one end of the third pull rod is connected to one side wall of the chassis; a second through groove is opened along the length direction at the end of the second pull rod away from the first pull rod; a movable column slides through the second through groove; one end of the movable column slides through the first through groove and is fixed to the lifting rod; a second tension spring is fixed to the other end of the movable column; the end of the second tension spring away from the movable column is fixed to one side wall of the chassis.
[0016] In a preferred embodiment of this invention, a side support plate is vertically arranged on the side of the U-shaped block away from the second tension spring; the side support plate is vertically fixed to one side wall of the chassis; a drive cylinder parallel to the first roller is arranged between the side support plate and the U-shaped block; the drive cylinder is rotatably connected to one side wall of the chassis; a stud is threaded into the drive cylinder; a fourth pull rod is rotatably connected to one end of the stud; a fifth pull rod is rotatably connected to one end of the fourth pull rod away from the stud; a sixth pull rod is vertically fixed to one end of the fifth pull rod away from the fourth pull rod; a seventh pull rod is rotatably connected to one end of the sixth pull rod away from the fourth pull rod; a third pull rod is rotatably connected to one end of the third pull rod; and one end of the third pull rod is rotatably connected to one side wall of the chassis.
[0017] This utility model has the following beneficial effects:
[0018] This invention introduces a method that involves feeding two different fillings into two separate filling supply mechanisms, which then transport the two fillings to a filling-wrapping mechanism. The filling-wrapping mechanism wraps one filling inside the other, and a cutting mechanism separates the fillings from the filling-wrapping mechanism. Finally, a conveying mechanism transports the separated fillings. This method not only effectively improves the layering of fillings in pastries, bread, mooncakes, and other foods, but also increases the production efficiency of foods with a "filling within a filling" structure, while also preventing problems such as filling leakage.
[0019] Of course, any product implementing this utility model does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description
[0020] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0021] Figure 1 This is a schematic diagram of the structure of a two-filling stuffing machine according to the present invention.
[0022] Figure 2 for Figure 1 The main view of the structure.
[0023] Figure 3 for Figure 1 A structural side view.
[0024] Figure 4 This is a schematic diagram showing the connection between the filling feeding mechanism, the filling wrapping mechanism, and the filling pushing mechanism of this utility model.
[0025] Figure 5 for Figure 4 Top view of the structure.
[0026] Figure 6 for Figure 4 The structural bottom view.
[0027] Figure 7 This is a schematic diagram showing the connection between the filling feeding mechanism and the filling pushing mechanism of this utility model.
[0028] Figure 8 This is a schematic diagram of the filling feeding mechanism of this utility model.
[0029] Figure 9 This is a schematic diagram of the filling mechanism of this utility model.
[0030] Figure 10 for Figure 9 The main view of the structure.
[0031] Figure 11 This is a schematic diagram of the connection between the rotating ring and the second motor of this utility model.
[0032] Figure 12 This is a schematic diagram of the cutting mechanism of this utility model.
[0033] Figure 13 This is a schematic diagram of the connection between the cutter head and the push-pull plate of this utility model.
[0034] Figure 14 This is a schematic diagram showing the relative positions of the third motor, the first rotating shaft, and the sixth rotating shaft of this utility model.
[0035] Figure 15 This is a schematic diagram of the conveying mechanism of this utility model.
[0036] Figure 16 This is a schematic diagram of the connection between the fourth and fifth rollers of this utility model.
[0037] Figure 17 This is a schematic diagram of the powder-spreading mechanism of this utility model.
[0038] Figure 18 for Figure 17 The main view of the structure.
[0039] Figure 19 This is a schematic diagram of the filling receiving mechanism of this utility model.
[0040] Figure 20 This is a schematic diagram of the connection between the fifth rotating shaft and the second tie rod of this utility model.
[0041] Figure 21 This is a schematic diagram of the connection between the drive cylinder and the seventh tie rod of this utility model.
[0042] The attached diagram lists the components represented by each number as follows:
[0043] 1-Chassis, 2-Filling mechanism, 3-Filling wrapping mechanism, 4-Cutting mechanism, 5-Conveying mechanism, 6-Filling pushing mechanism, 7-Powdering mechanism, 8-Filling receiving mechanism, 201-Filling storage box, 202-Discharge cylinder, 203-Protective shell, 204-Discharge port, 205-First screw rod, 206-Second screw rod, 207-First rotating roller, 208-Conveying blade, 209-Mounting box, 210-First gear, 211-First sprocket, 212-First motor, 213-Second sprocket, 301-Outer cylinder, 302-Bracket, 303-Inlet, 304-Discharge cylinder, 305-First conical outlet, 306-Top cover 307-Inner cylinder, 308-Feeding port, 309-Second conical outlet, 310-Feeding gap, 311-Accommodation notch, 312-Rotating ring, 313-Agitating blade, 314-External gear ring, 315-Second motor, 316-Second gear, 317-Gear set, 401-Support plate, 402-Carrier box, 403-Cutter disc, 404-Cutter, 405-Third motor, 406-Third sprocket, 407-First rotating shaft, 408-Fourth sprocket, 409-First turntable, 410-Push-pull plate, 411-Arc-shaped through groove, 412-Roller, 413-Transmission rod, 501-First roller, 502-Second roller 503-Fourth Motor, 504-Third Roller, 505-Third Gear, 506-Fourth Gear, 507-Fourth Roller, 508-Fifth Roller, 509-Sixth Roller, 510-Swing Arm, 511-First Tension Spring, 512-Conveyor Belt, 601-Receiving Box, 602-Second Shaft, 603-Second Roller, 604-Pushing Blade, 605-Third Shaft, 606-First Helical Gear, 607-Second Helical Gear, 608-Fifth Gear, 609-Fourth Shaft, 610-Sixth Gear, 701-Powder Box, 702-Powder Sprinkler Hole, 703-Third Roller, 704-Mixing Rod, 705-Fifth... Motor, 801-Positioning box, 802-U-shaped block, 803-First through slot, 804-Lifting rod, 805-Fill receiving plate, 806-Fifth rotating shaft, 807-Fifth sprocket, 808-Sixth sprocket, 809-Sixth rotating shaft, 810-Seventh sprocket, 811-Eighth sprocket, 812-Second turntable, 813-First pull rod, 814-Second pull rod, 815-Third pull rod, 816-Second through slot, 817-Moving column, 818-Second tension spring, 819-Side support plate, 820-Drive cylinder, 821-Stud, 822-Fourth pull rod, 823-Fifth pull rod, 824-Sixth pull rod, 825-Seventh pull rod. Detailed Implementation
[0044] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.
[0045] Example 1:
[0046] Please see Figure 1-3 As shown, this utility model is a two-filling wrapping machine, including a machine housing 1; a pair of filling feeding mechanisms 2 are mounted side by side on the top of the machine housing 1; the two filling feeding mechanisms 2 are connected by a wrapping mechanism 3; the wrapping mechanism 3 is located on one side of the machine housing 1; a cutting mechanism 4 is installed below the wrapping mechanism 3; and a conveying mechanism 5 is installed below the cutting mechanism 4. In use, two different fillings are respectively put into the two filling feeding mechanisms 2, which then convey the two fillings to the wrapping mechanism 3. The wrapping mechanism 3 then wraps one filling inside the other filling. The cutting mechanism 4 then cuts the filling coming out of the wrapping mechanism 3, and finally the conveying mechanism 5 conveys the cut filling. This not only effectively improves the layering of fillings in foods such as pastries, bread, mooncakes, and cakes, but also increases the production efficiency of foods with a "filling within a filling" structure, while also avoiding problems such as filling leakage.
[0047] Example 2:
[0048] Based on Example 1, as follows Figure 4-8As shown, the filling feeding mechanism 2 includes a filling storage box 201 bolted to the top wall of the casing 1; a pair of discharge cylinders 202 are vertically welded side by side to one side wall of the filling storage box 201 near the conveying mechanism 5; the two discharge cylinders 202 are connected to one end away from the filling storage box 201 by a protective shell 203; the protective shell 203 and the discharge cylinders 202 are bolted together; the protective shell 203 has a discharge port 204 arranged to one side; a first spiral rod 205 and a second spiral rod 206 are rotatably connected side by side inside the filling storage box 201; the second spiral rod 206 is disposed between the first spiral rod 205 and the discharge port 204; one end of the first spiral rod 205 passes through one discharge cylinder 202 and is inserted into the protective shell 203; one end of the second spiral rod 206 passes through the other discharge cylinder 202 and is inserted into the protective shell 203, and the end of the second spiral rod 206 is keyed to a first rotating roller 207; the circumferential side wall diameter of the first rotating roller 207 is... Multiple conveying blades 208 are bolted to the machine housing 1; a mounting box 209 is provided on one side of the filling storage box 201; the mounting box 209 is bolted to the top wall of the machine housing 1; the other end of the first spiral rod 205 and the other end of the second spiral rod 206 both penetrate through one side wall of the mounting box 209, and the other ends of the first spiral rod 205 and the second spiral rod 206 are rotatably connected to one side wall of the mounting box 209; the other ends of the first spiral rod 205 and the second spiral rod 206 are keyed to a first gear 210; the two first gears 210 mesh with each other; the other end of the second spiral rod 206 is keyed to a first sprocket 211; a first motor 212 is provided below the first sprocket 211; the first motor 212 is bolted to the machine housing 1; the output shaft of the first motor 212 is keyed to a second sprocket 213; the second sprocket 213 and the first sprocket 211 are connected by chain drive. In use, the filling is poured into the filling storage box 201. The first motor 212 drives the first screw rod 205 and the second screw rod 206 to rotate synchronously via the second sprocket 213, the first sprocket 211 and the first gear 210. This causes the filling in the storage box 201 to be transported to the protective shell 203 through the discharge cylinder 202. Then, the first roller 207 drives the conveying blade 208 to rotate, thereby transporting the filling in the protective shell 203 to the discharge port 204, thus realizing continuous delivery of the filling and effectively improving the delivery efficiency of the filling.
[0049] Among them, such as Figure 4-5 and Figure 7As shown, a pushing mechanism 6 is installed between the two filling feeding mechanisms 2; the pushing mechanism 6 includes a receiving box 601 vertically bolted to the top wall of the machine housing 1; a second rotating shaft 602 perpendicular to the first spiral rod 205 is horizontally rotatably connected inside the receiving box 601; the two ends of the second rotating shaft 602 pass through the opposite inner sidewalls of the two filling boxes 201 and are coaxially bolted to second rotating rollers 603; the second rotating shaft 602 is rotatably connected to the filling box 201; pushing blades 604 are radially bolted to the circumferential sidewalls of the two second rotating rollers 603; a third rotating shaft 605 perpendicular to the second rotating shaft 602 is horizontally rotatably connected inside the receiving box 601; a first helical gear 606 is keyed to one end of the third rotating shaft 605. A second helical gear 607 meshes with a first helical gear 606; the second helical gear 607 is keyed to the outer periphery of a second rotating shaft 602; the other end of a third rotating shaft 605 extends out of a receiving box 601 and is rotatably connected to a side wall of a mounting box 209, and a fifth gear 608 is keyed to this end of the third rotating shaft 605; a fourth rotating shaft 609 parallel to the third rotating shaft 605 is provided on one side of the fifth gear 608; both ends of the fourth rotating shaft 609 are rotatably connected to opposite side walls of a mounting box 209; a sixth gear 610 meshes with the fifth gear 608 on the fourth rotating shaft 609; the sixth gear 610 meshes with a first gear 210 inside a mounting box 209. In use, the first gear 210 drives the sixth gear 610 to rotate, which in turn drives the second rollers 603 to rotate synchronously via the fifth gear 608, the third shaft 605, the first helical gear 606, the second helical gear 607, and the second shaft 602. The lower linear velocity direction of the second rollers 603 is set in the same direction as the conveying direction of the filling by the first screw rod 205, thereby accelerating the entry of the filling into the protective shell 203 through the pusher blades 604, further improving the conveying efficiency of the filling.
[0050] Example 3:
[0051] Based on Example 2, as follows Figure 4-6 and Figure 9-11As shown, the filling mechanism 3 includes a vertically arranged outer cylinder 301; a bracket 302 is welded to the circumferential side wall of the outer cylinder 301; the bracket 302 is bolted to one side wall of the housing 1; a pair of coaxially arranged feeding ports 303 are opened on the circumferential side wall of the outer cylinder 301; the two feeding ports 303 are respectively connected to the discharge ports 204 of the two filling feeding mechanisms 2; a feeding cylinder 304 is coaxially bolted to the lower end of the outer cylinder 301; the lower end of the feeding cylinder 304 has... The outer cylinder 301 has a vertically arranged first conical outlet 305; a top cover 306 is horizontally bolted to the upper end of the outer cylinder 301; an inner cylinder 307 is vertically arranged inside the outer cylinder 301; the upper end of the inner cylinder 307 is bolted to the top cover 306; a material receiving port 308 is opened on the circumferential side wall of the inner cylinder 307; the material receiving port 308 is connected to a feed port 303; the lower end of the inner cylinder 307 has a vertically arranged second conical outlet 309; the second conical... Outlet 309 is located inside the first conical outlet 305; a conveying gap 310 is formed between the lower end of the inner cylinder 307 and the lower end of the feeding cylinder 304; a receiving notch 311 is provided at the lower port edge of the outer cylinder 301; a rotating ring 312 is coaxially rotatably connected inside the lower port of the outer cylinder 301; multiple stirring blades 313 are evenly welded to the inner circumference of the rotating ring 312; an external gear ring 314 corresponding to the receiving notch 311 is keyed to the outer circumference of the rotating ring 312; a second motor 315 is provided on one side of the external gear ring 314; the second motor 315 is bolted to the top wall of the housing 1; a second gear 316 is keyed to the output shaft of the second motor 315; a conventional gear set 317 of the art meshes on the second gear 316; the gear set 317 is composed of multiple spur gears, and adjacent spur gears mesh with each other; the gear set 317 passes through the receiving notch 311 and meshes with the external gear ring 314. In use, one filling feeding mechanism 2 conveys the filling into the inner cylinder 307 through a feed inlet 303 and a receiving inlet 308, while another filling feeding mechanism 2 conveys the filling into the gap between the inner cylinder 307 and the outer cylinder 301 through another feed inlet 303. The second motor 315 drives the stirring blades 313 on the rotating ring 312 to rotate in a circular motion via the second gear 316, gear set 317 and outer gear ring 314, thereby conveying the filling in the gap between the inner cylinder 307 and the outer cylinder 301 downwards. Then, as the filling in the inner cylinder 307 is discharged from the second conical outlet 309, the filling in the gap between the inner cylinder 307 and the outer cylinder 301 is also discharged to the second conical outlet 309 through the conveying gap 310. This allows one type of filling to be wrapped inside another, effectively improving the layering of the filling and thus increasing the appeal of the food.
[0052] Example 4:
[0053] Based on Example 3, as follows Figure 12-14As shown, the cutting mechanism 4 includes a support plate 401 vertically bolted to one side wall of the housing 1 and a carrier box 402 bolted inside the housing 1; a ring-shaped cutter head 403 is horizontally bolted to one side of the support plate 401 away from the carrier box 402; multiple cutters 404 are evenly distributed and rotatably connected to the cutter head 403 along the ring direction; the connection structure between the cutters 404 and the cutter head 403 is a conventional design in the art, for example, refer to Chinese Patent No. CN114747603B; a third motor 405 is bolted to one side wall of the carrier box 402 away from the support plate 401; a third sprocket 406 is keyed to the output shaft of the third motor 405; a first rotating shaft 407 is horizontally arranged on one side of the third sprocket 406; the two ends of the first rotating shaft 407 are respectively rotatably connected to the carrier box 402. On the opposite side wall of 2; a fourth sprocket 408 is keyed to the first rotating shaft 407; the fourth sprocket 408 and the third sprocket 406 are connected by chain drive; one end of the first rotating shaft 407 passes through the bearing box 402 and is keyed to the first turntable 409; a push-pull plate 410 is vertically arranged on the side of the first turntable 409 away from the fourth sprocket 408; the push-pull plate 410 is slidably connected to the bearing box 402; an arc-shaped through groove 411 is opened on one side of the push-pull plate 410; the arc-shaped through groove 411 is C-shaped; a roller 412 is slidably fitted in the arc-shaped through groove 411; the roller 412 is bolted to the edge of the first turntable 409; a transmission rod 413 is bolted parallel to the upper edge of the push-pull plate 410; one end of the transmission rod 413 slides through one side wall of the machine box 1 and the support plate 401 and is rotatably connected to the cutter 404. In use, the filling discharged through the filling mechanism 3 passes through the inner hole of the cutter disc 403 in a columnar shape. The third motor 405 drives the push-pull plate 410 to move back and forth via the third sprocket 406, the fourth sprocket 408, the first rotating shaft 407, the first turntable 409, and the roller 412. This causes the transmission rod 413 to drive multiple cutters 404 to converge or open synchronously on the cutter disc 403. Each cutter 404 can cut the columnar filling passing through the inner hole of the cutter disc 403 into multiple filling pieces, thereby realizing the cutting process of the filling and effectively improving the production efficiency of the filling.
[0054] Example 5:
[0055] Based on Example 4, as follows Figure 15-16As shown, the conveying mechanism 5 includes a first roller 501 and a second roller 502 rotatably connected side-by-side to one side wall of the housing 1, and a third motor 405 bolted inside the housing 1; multiple third rollers 504 are arranged side-by-side between the first roller 501 and the second roller 502; one end of each of the multiple third rollers 504 is rotatably connected to one side wall of the housing 1; a third gear 505 is keyed to the output shaft of the third motor 405; a fourth gear 506 meshes with the third gear 505; the fourth gear 506 is keyed to one end of a fourth roller 507 parallel to the first roller 501; one end of the fourth roller 507 is rotatably connected to one side wall of the housing 1; fifth rollers are arranged on opposite sides of the fourth roller 507. Roller 508; one end of each of the two fifth rollers 508 is rotatably connected to one side wall of the housing 1; a sixth roller 509 is provided on the side of the fourth roller 507 near the first roller 501; one end of the sixth roller 509 is rotatably connected to a rocker arm 510; the end of the rocker arm 510 away from the sixth roller 509 is rotatably connected to one side wall of the housing 1; a first tension spring 511 is bolted to the end of the rocker arm 510 near the sixth roller 509; the end of the first tension spring 511 away from the rocker arm 510 is bolted to one side wall of the housing 1; the first roller 501, the second roller 502, the multiple third rollers 504, the fourth roller 507, the two fifth rollers 508, and the sixth roller 509 are connected by a conveyor belt 512. In use, the third motor 405 drives the fourth roller 507 to rotate via the third gear 505 and the fourth gear 506, which causes the conveyor belt 512 to move, thereby conveying the fillings that fall on the conveyor belt 512, effectively improving the conveying efficiency of the fillings.
[0056] Among them, such as Figure 17-18 As shown, a powder-spreading mechanism 7 is installed above the conveyor belt 512; the powder-spreading mechanism 7 is located between the first roller 501 and the sixth roller 509; the powder-spreading mechanism 7 includes a powder box 701 bolted to one side wall of the housing 1; a plurality of powder-spreading holes 702 are evenly distributed on the bottom wall of the powder box 701; a third rotating roller 703 parallel to the first roller 501 is rotatably connected inside the powder box 701; a plurality of mixing rods 704 are radially bolted to the circumferential side wall of the third rotating roller 703; one end of the third rotating roller 703 is coaxially fixed to the output shaft of a fifth motor 705; the fifth motor 705 is horizontally bolted inside the housing 1. In use, flour or starch is poured into the powder box 701, and the fifth motor 705 drives the third roller 703 to rotate, so that the flour or starch in the powder box 701 is sprinkled onto the conveyor belt 512 through the powdering hole 702. This can prevent the fillings that fall onto the conveyor belt 512 from sticking to the conveyor belt 512, and effectively improve the conveying effect of the fillings.
[0057] Example 6:
[0058] Based on Example 5, as follows Figures 19-20As shown, a filling receiving mechanism 8 is installed on the inner side of the conveyor belt 512; the filling receiving mechanism 8 is located below the filling mechanism 3; the filling receiving mechanism 8 includes a positioning box 801 fixedly inserted into one side wall of the housing 1 and a U-shaped block 802 bolted to the housing 1; a first through groove 803 is vertically opened on one side wall of the positioning box 801; a lifting rod 804 is vertically slidably inserted into the top wall of the positioning box 801; a filling receiving plate 805 is horizontally bolted to the upper end of the lifting rod 804; the filling receiving plate 805 can interact with the conveyor belt 512. The inner surfaces of the two parts are attached together, which can drive the conveyor belt 512 upward towards the filling mechanism 3; the two arms of the U-shaped block 802 are horizontally rotatably connected to a fifth rotating shaft 806 perpendicular to the first roller 501; a fifth sprocket 807 is keyed to the fifth rotating shaft 806; the fifth sprocket 807 is connected to a sixth sprocket 808 through chain drive; the sixth sprocket 808 is keyed to one end of a sixth rotating shaft 809; the two ends of the sixth rotating shaft 809 are respectively rotatably connected to the opposite side walls of the bearing box 402; the sixth rotating shaft 809... A seventh sprocket 810 is keyed to shaft 809; the seventh sprocket 810 is connected to an eighth sprocket 811 via chain drive; the eighth sprocket 811 is keyed to the output shaft of the third motor 405; a second turntable 812 is coaxially bolted to one end of the fifth rotating shaft 806; a first pull rod 813 is connected to the edge of the second turntable 812 via a ball joint; a second pull rod 814 is connected to the end of the first pull rod 813 away from the second turntable 812 via a ball joint; a third pull rod 815 is rotatably connected to the middle of the second pull rod 814. One end of the third pull rod 815 is connected to a side wall of the chassis 1; the end of the second pull rod 814 away from the first pull rod 813 is provided with a second through groove 816 along its length; a movable column 817 is slidably inserted in the second through groove 816; one end of the movable column 817 slides through the first through groove 803 and is bolted to the lifting rod 804; the other end of the movable column 817 is bolted to a second tension spring 818; the end of the second tension spring 818 away from the movable column 817 is bolted to a side wall of the chassis 1. In use, the third motor 405 drives the lifting rod 804 up and down via the eighth sprocket 811, the seventh sprocket 810, the sixth rotating shaft 809, the sixth sprocket 808, the fifth sprocket 807, the fifth rotating shaft 806, the second turntable 812, the second pull rod 814, the third pull rod 815, and the movable column 817. This causes the filling receiving plate 805 to come into contact with the inner surface of the conveyor belt 512, which in turn drives the conveyor belt 512 upward toward the filling mechanism 3. When the cutting mechanism 4 completes one cut of the columnar filling, the distance between the conveyor belt 512 and the cutting mechanism 4 is closest. At this time, the filling falls onto the conveyor belt 512. Then, the filling receiving plate 805 moves downward and separates from the conveyor belt 512, causing the upper section of the conveyor belt 512 to return to a horizontal state. Then, the conveyor belt 512 transports the filling that has fallen onto it. The above actions are repeated to realize the receiving and transport of multiple fillings, effectively avoiding problems such as the filling breaking due to falling heavily onto the conveyor belt 512.
[0059] Among them, such as Figure 19 and Figure 21 As shown, a side support plate 819 is vertically arranged on the side of the U-shaped block 802 away from the second tension spring 818; the side support plate 819 is vertically bolted to one side wall of the housing 1; a drive cylinder 820 parallel to the first roller 501 is arranged between the side support plate 819 and the U-shaped block 802; the drive cylinder 820 is rotatably connected to one side wall of the housing 1; a stud 821 is threaded into the drive cylinder 820; one end of the stud 821 is rotatably connected to a fourth pull rod 822; the end of the fourth pull rod 822 away from the stud 821 is rotatably connected to... There is a fifth pull rod 823; the end of the fifth pull rod 823 away from the fourth pull rod 822 is rotatably connected to one side wall of the side support plate 819, and the end of the fifth pull rod 823 away from the fourth pull rod 822 is vertically fixed to a sixth pull rod 824; the end of the sixth pull rod 824 away from the fourth pull rod 822 is rotatably connected to a seventh pull rod 825; the end of the seventh pull rod 825 away from the sixth pull rod 824 is rotatably connected to the other end of the third pull rod 815; one end of the third pull rod 815 is rotatably connected to one side wall of the housing 1. In use, by manually rotating the drive cylinder 820, the stud 821 is driven by the fourth pull rod 822, the fifth pull rod 823, the sixth pull rod 824 and the seventh pull rod 825 to drive the third pull rod 815 to rotate up and down, thereby realizing the manual adjustment of the stroke of the lifting rod 804, which not only effectively ensures the use effect of the filling receiving mechanism 8, but also ensures the conveying effect of the filling.
[0060] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the utility model to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of this utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.
Claims
1. A two-patty patty forming machine characterized by, Includes chassis (1); A pair of filling feeding mechanisms (2) are installed side by side on the top of the machine box (1); the two filling feeding mechanisms (2) are connected by a filling wrapping mechanism (3); the filling wrapping mechanism (3) is located on one side of the machine box (1); a cutting mechanism (4) is installed below the filling wrapping mechanism (3); a conveying mechanism (5) is installed below the cutting mechanism (4).
2. A machine for making two filled pastries according to claim 1, characterized in that, The filling feeding mechanism (2) includes a filling storage box (201) fixed to the top wall of the machine box (1); a pair of discharge cylinders (202) are vertically fixed side by side on one side wall of the filling storage box (201) near the conveying mechanism (5); the two discharge cylinders (202) are connected to each other through a protective shell (203) at one end away from the filling storage box (201); the protective shell (203) has a discharge port (204) arranged on one side; a first screw rod (205) and a second screw rod (206) are rotatably connected side by side inside the filling storage box (201); The second screw rod (206) is disposed between the first screw rod (205) and the discharge port (204); one end of the first screw rod (205) passes through a row of material cylinders (202) and is inserted into the protective housing (203); one end of the second screw rod (206) passes through another row of material cylinders (202) and is inserted into the protective housing (203), and the second screw rod (206) is fixedly sleeved with a first rotating roller (207); a plurality of conveying blades (208) are radially fixed on the circumferential sidewall of the first rotating roller (207).
3. A two-filling wrapping machine according to claim 2, characterized in that, A mounting box (209) is provided on one side of the filling storage box (201); the mounting box (209) is fixed to the top wall of the machine casing (1); the other end of the first spiral rod (205) and the other end of the second spiral rod (206) both penetrate through one side wall of the mounting box (209), and the other end of the first spiral rod (205) and the other end of the second spiral rod (206) are rotatably connected to one side wall of the mounting box (209); the other end of the first spiral rod (205) and the other end of the second spiral rod (206) The other end of each is fixedly fitted with a first gear (210); the two first gears (210) mesh with each other; the other end of the second spiral rod (206) is fixedly fitted with a first sprocket (211); a first motor (212) is provided below the first sprocket (211); the first motor (212) is fixed inside the housing (1); the output shaft of the first motor (212) is fixedly fitted with a second sprocket (213); the second sprocket (213) and the first sprocket (211) are connected by chain drive.
4. A machine for making a two-patty sandwich according to claim 2 or 3, characterized in that The filling mechanism (3) includes a vertically arranged outer cylinder (301); a bracket (302) is fixed to the circumferential side wall of the outer cylinder (301); the bracket (302) is fixed to one side wall of the machine housing (1); a pair of coaxially arranged feeding ports (303) are opened on the circumferential side wall of the outer cylinder (301); the two feeding ports (303) are respectively connected to the discharge ports (204) of the two filling feeding mechanisms (2); a feeding cylinder (304) is coaxially fixed to the lower end of the outer cylinder (301); the lower end of the feeding cylinder (304) has a vertically arranged first conical outlet (305); the upper end of the outer cylinder (301) has a water... A top cover (306) is fixedly mounted on the outer cylinder (301); an inner cylinder (307) is vertically mounted inside the outer cylinder (301); the upper end of the inner cylinder (307) is fixed to the top cover (306); a material receiving port (308) is provided on the circumferential side wall of the inner cylinder (307); the material receiving port (308) is connected to a feed port (303); the lower end of the inner cylinder (307) has a vertically mounted second conical outlet (309); the second conical outlet (309) is located inside the first conical outlet (305); a material conveying gap (310) is formed between the lower end of the inner cylinder (307) and the lower end of the feed cylinder (304).
5. A machine for making two filled pastries according to claim 4, characterized in that, The lower port edge of the outer cylinder (301) is provided with a receiving notch (311); a rotating ring (312) is coaxially rotatably connected inside the lower port of the outer cylinder (301); a plurality of stirring blades (313) are evenly distributed and fixed on the inner circumference of the rotating ring (312); an external toothed ring (314) corresponding to the receiving notch (311) is fixedly sleeved on the outer circumference of the rotating ring (312); a second motor (315) is provided on one side of the external toothed ring (314); a second gear (316) is fixedly sleeved on the output shaft of the second motor (315); a gear set (317) meshes on the second gear (316); the gear set (317) passes through the receiving notch (311) and meshes with the external toothed ring (314).
6. A machine for making two filled pastries according to claim 5, characterized in that, The cutting mechanism (4) includes a support plate (401) vertically fixed to one side wall of the housing (1) and a carrier box (402) fixed inside the housing (1); a cutter disc (403) is horizontally fixed on one side of the support plate (401) away from the carrier box (402); a plurality of cutters (404) are evenly distributed and rotatably connected on the cutter disc (403) along a circumferential direction; a third motor (405) is fixed on one side wall of the carrier box (402) away from the support plate (401); a third sprocket (406) is fixedly sleeved on the output shaft of the third motor (405); a first rotating shaft (407) is horizontally arranged on one side of the third sprocket (406); the two ends of the first rotating shaft (407) are respectively rotatably connected to the opposite side walls of the carrier box (402); a fourth sprocket (408) is fixedly sleeved on the first rotating shaft (407); the third The fourth sprocket (408) and the third sprocket (406) are connected by chain drive; one end of the first rotating shaft (407) passes through the bearing box (402) and is fixedly fitted with the first turntable (409); a push-pull plate (410) is vertically arranged on the side of the first turntable (409) away from the fourth sprocket (408); the push-pull plate (410) is slidably connected to the bearing box (402); an arc-shaped through groove (411) is opened on one side of the push-pull plate (410); a roller (412) is slidably fitted in the arc-shaped through groove (411); the roller (412) is fixed at the edge of the first turntable (409); a transmission rod (413) is fixed parallel to the upper edge of the push-pull plate (410); one end of the transmission rod (413) slides through one side wall of the machine box (1) and the support plate (401) and is rotatably connected to the cutter (404).
7. A machine for making two filled pastries according to claim 6, characterized in that, The conveying mechanism (5) includes a first roller (501) and a second roller (502) rotatably connected side-by-side to one side wall of the housing (1), and a third motor (405) fixed inside the housing (1); a plurality of third rollers (504) are arranged side-by-side between the first roller (501) and the second roller (502); one end of each of the plurality of third rollers (504) is rotatably connected to one side wall of the housing (1); a third gear (505) is fixedly sleeved on the output shaft of the third motor (405); a fourth gear (506) meshes with the third gear (505); the fourth gear (506) is fixedly sleeved on one end of a fourth roller (507) parallel to the first roller (501); one end of the fourth roller (507) is rotatably connected to one side wall of the housing (1); and fifth rollers are arranged on opposite sides of the fourth roller (507). (508); One end of each of the two fifth rollers (508) is rotatably connected to one side wall of the housing (1); A sixth roller (509) is provided on the side of the fourth roller (507) near the first roller (501); One end of the sixth roller (509) is rotatably connected to a swing rod (510); The end of the swing rod (510) away from the sixth roller (509) is rotatably connected to one side wall of the housing (1); A first tension spring (511) is fixed to the end of the swing rod (510) near the sixth roller (509); The end of the first tension spring (511) away from the swing rod (510) is fixed to one side wall of the housing (1); The first roller (501), the second roller (502), the multiple third rollers (504), the fourth roller (507), the two fifth rollers (508) and the sixth roller (509) are connected by a conveyor belt (512).
8. A two-filling wrapping machine according to claim 7, characterized in that, A filling-pushing mechanism (6) is installed between the two filling feeding mechanisms (2); the filling-pushing mechanism (6) includes a receiving box (601) vertically fixed to the top wall of the machine housing (1); a second rotating shaft (602) perpendicular to the first spiral rod (205) is horizontally rotatably connected inside the receiving box (601); the two ends of the second rotating shaft (602) respectively penetrate the opposite inner sidewalls of the two filling boxes (201) and are coaxially fixed with second rotating rollers (603); the circumferential sidewalls of the two second rotating rollers (603) are radially fixed with pushing blades (604); a third rotating shaft (605) perpendicular to the second rotating shaft (602) is horizontally rotatably connected inside the receiving box (601); a first helical gear (606) is fixedly sleeved on one end of the third rotating shaft (605); a second helical gear (606) meshes with the first helical gear (606). A helical gear (607); the second helical gear (607) is fixedly sleeved on the outer periphery of the second rotating shaft (602); the other end of the third rotating shaft (605) passes through the receiving box (601) and is rotatably connected to a side wall of a mounting box (209), and a fifth gear (608) is fixedly sleeved on this end of the third rotating shaft (605); a fourth rotating shaft (609) parallel to the third rotating shaft (605) is provided on one side of the fifth gear (608); the two ends of the fourth rotating shaft (609) are respectively rotatably connected to the opposite side walls of a mounting box (209); a sixth gear (610) meshing with the fifth gear (608) is fixedly sleeved on the fourth rotating shaft (609); the sixth gear (610) meshes with a first gear (210) inside a mounting box (209).
9. A machine for making a two-filling sausage according to claim 7 or 8, characterised in that, A powder-spreading mechanism (7) is installed above the conveyor belt (512); the powder-spreading mechanism (7) is located between the first roller (501) and the sixth roller (509); the powder-spreading mechanism (7) includes a powder box (701) fixed on one side wall of the machine housing (1); the bottom wall of the powder box (701) is evenly provided with multiple powder-spreading holes (702); the powder box (701) is rotatably connected to a third rotating roller (703) parallel to the first roller (501); the circumferential side wall of the third rotating roller (703) is radially fixed with multiple mixing rods (704); one end of the third rotating roller (703) is coaxially fixed on the output shaft of a fifth motor (705); the fifth motor (705) is horizontally fixed inside the machine housing (1).
10. A machine for making two filled pastries according to claim 9, characterized in that, The inner side of the conveyor belt (512) is equipped with a filling receiving mechanism (8); the filling receiving mechanism (8) is located below the filling mechanism (3); the filling receiving mechanism (8) includes a positioning box (801) fixedly inserted into one side wall of the machine housing (1) and a U-shaped block (802) fixed inside the machine housing (1); a first through groove (803) is vertically opened on one side wall of the positioning box (801); a lifting rod (804) is vertically slidably inserted into the top wall of the positioning box (801); a filling receiving plate (805) is horizontally fixed at the upper end of the lifting rod (804); the filling receiving plate (805) can interact with the conveyor belt (512). The inner surfaces of the U-shaped block (802) are in contact and can drive the conveyor belt (512) upward towards the filling mechanism (3); the two arms of the U-shaped block (802) are horizontally rotatably connected to a fifth rotating shaft (806) perpendicular to the first roller (501); a fifth sprocket (807) is fixedly sleeved on the fifth rotating shaft (806); the fifth sprocket (807) is connected to a sixth sprocket (808) through chain drive; the sixth sprocket (808) is fixedly sleeved on one end of a sixth rotating shaft (809); the two ends of the sixth rotating shaft (809) are respectively rotatably connected to the opposite side walls of the bearing box (402); the first A seventh sprocket (810) is fixedly sleeved on a sixth rotating shaft (809); the seventh sprocket (810) is connected to an eighth sprocket (811) via chain drive; the eighth sprocket (811) is fixedly sleeved on the output shaft of a third motor (405); a second turntable (812) is coaxially fixed to one end of a fifth rotating shaft (806); a first pull rod (813) is connected to the edge of the second turntable (812) via a ball joint; a second pull rod (814) is connected to the end of the first pull rod (813) away from the second turntable (812) via a ball joint; a third pull rod is rotatably connected to the middle of the second pull rod (814). 815); one end of the third pull rod (815) is connected to one side wall of the chassis (1); the end of the second pull rod (814) away from the first pull rod (813) is provided with a second through groove (816) along the length direction; a movable column (817) is slidably inserted in the second through groove (816); one end of the movable column (817) slides through the first through groove (803) and is fixed to the lifting rod (804); the other end of the movable column (817) is fixed with a second tension spring (818); the end of the second tension spring (818) away from the movable column (817) is fixed to one side wall of the chassis (1).
Citation Information
Patent Citations
A stuffing machine
CN114747603B