Batching device for cheese rod production
By designing slow-drying components and pre-mixing components in the cheese stick production batching device, the problem of uneven mixing effects caused by local accumulation of raw materials is solved, and a more efficient stirring and mixing process is achieved.
Patent Information
- Application Number
- CN202510294916.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-12
- Publication Date
- 2025-05-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing cheese stick production ingredients device is prone to local accumulation of raw materials in the early stage of mixing, resulting in uneven mixing effect, making the mixing leaves difficult to quickly disperse, the mixing time is extended, and the efficiency is reduced.
A batching device is designed, including a slow-discharge assembly and a pre-mix assembly. By slowly discharging and pre-mixing, the stirring time and effect of the raw materials are increased, and the stirring time and effect are slowly entered into the barrel through a plurality of discharge pipes with smaller diameters for formal stirring and mixing.
By slowly discharging and premixing, the mixing effect of the raw materials is improved, the mixing time is reduced, and the overall speed and efficiency of stirring and mixing are improved.
Smart Images

Figure CN120037808A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of cheese stick production, and specifically relates to a batching device for cheese stick production. Background Art
[0002] Cheese sticks are a popular snack food. They are mainly processed by mixing cheese with other raw materials into a stick shape for convenient consumption. During the production and processing of cheese sticks, a batching device is used to ration and mix various raw materials according to a set ratio. A weighing sensor is installed at the bottom of the batching device. When batching, various raw materials are sequentially put into the barrel body and weighed by the weighing sensor at the bottom, and then various raw materials are mixed to complete the batching.
[0003] In the prior art, various raw materials are directly put into the barrel body and then mixed and stirred. However, the mixing effect of such mixing of various raw materials together is poor, and it is easy to have a situation where the raw materials are locally piled up in the barrel body in the initial state. In the initial stage of stirring, the mixing of the raw materials inside the piled-up area mainly depends on the self-gravity penetration and the weak stirring effect of the stirring blades in the initial stage. However, if the pile is too thick, it is difficult for the stirring blades to quickly disperse the raw materials inside, resulting in uneven areas in the initial stage of mixing, reducing the mixing effect and increasing the subsequent mixing time, and reducing the mixing efficiency. For this reason, we propose a batching device for cheese stick production. Summary of the Invention
[0004] The purpose of the present invention is to provide a batching device for cheese stick production to solve the technical problems raised in the above background art.
[0005] To achieve the above purpose, the present invention provides the following technical solution: A batching device for cheese stick production, including a barrel body, an upper cover, and a driving motor arranged on the top of the upper cover. A stirring blade is arranged at the bottom working end of the driving motor. An feeding mechanism is arranged above the barrel body. The feeding mechanism includes:
[0006] A slow feeding component, arranged above the upper cover, for slowly feeding various raw materials;
[0007] A premixing component, arranged on the slow feeding component, for premixing various raw materials entering the slow feeding component.
[0008] Preferably, the slow feeding component includes a premixing cylinder arranged above the upper cover and a bracket fixed on the premixing cylinder. A plurality of feeding barrels are fixedly arranged at the top of the bracket. A plurality of vertical pipes are fixedly arranged at the bottom of the bracket. An inclined pipe is fixedly arranged at the bottom of the vertical pipe. A plurality of discharge pipes are fixedly arranged at the bottom of the premixing cylinder.
[0009] Preferably, an opening and closing member is provided on the vertical pipe. The opening and closing member includes a rod body rotatably provided on the vertical pipe. One end of the rod body is provided with a plugging disc, and the other end of the rod body is fixedly provided with a gear.
[0010] A plurality of support plates are fixedly provided on the outside of the pre-mixing cylinder. A lower toothed ring is rotatably provided on the support plates. A bearing bracket is fixedly provided at the top of the inner wall of the pre-mixing cylinder, and a rotating column is rotatably provided inside the bearing bracket.
[0011] Preferably, a rotating column is rotatably provided at the bottom of the bracket. The outer wall of the rotating column is in contact with the inner wall of the lower toothed ring. A middle transmission belt is sleeved between the bottom of the rotating column and the bottom of the rotating column. A main rod is fixedly provided at the bottom of the rotating column, and a lower transmission belt is sleeved between the bottom of the main rod and the stirring blade.
[0012] Preferably, the pre-mixing assembly includes a stirring rod bracket fixed to the bottom of the rotating column. An L-shaped screw rod is fixedly provided at the bottom of the stirring rod bracket. An installation ring is sleeved on the L-shaped screw rod. A plurality of rubber plates are fixedly provided on the outside of the installation ring. A blocking disc is fixedly provided on the outside of the L-shaped screw rod, and a nut is threadedly connected to the outer side of the end of the L-shaped screw rod.
[0013] Preferably, a sediment prevention member is provided inside the feeding bucket. The sediment prevention member includes an upper rod bracket fixed to the top of the rotating column and a secondary toothed ring rotatably provided on the inner wall of the top of the feeding bucket. A T-shaped column is fixedly provided on the inner wall of the secondary toothed ring, and an upper toothed ring is fixedly provided on the top of the upper rod bracket.
[0014] Preferably, a fixing ring is provided on the outside of the T-shaped column. Two lower stirring frames are fixedly provided at the bottom of the fixing ring. An L-shaped column is fixedly provided on the top of the fixing ring. An installation spring is sleeved on the outside of the T-shaped column.
[0015] Preferably, a stirring member is provided on the upper cover. The stirring member includes a fixing cylinder fixed to the upper cover and a stirring frame slidably provided inside the barrel body. An upper disc is fixedly provided on the outside of the stirring frame, and a connecting spring is fixedly provided between the upper disc and the fixing cylinder.
[0016] Preferably, a plurality of tapered columns are fixedly provided on the outer wall of the lower toothed ring, and the top of the stirring frame is in contact with the outer surface of the tapered column.
[0017] Preferably, a flip cover is rotatably provided on the barrel body through two hinge combinations. A plurality of support columns are fixedly provided at the bottom of the barrel body. A weighing sensor is provided at the bottom of the support column, and a discharge valve is further provided at the bottom of the barrel body.
[0018] Compared with the prior art, the beneficial effects of the present invention are:
[0019] (1) Through the designed feeding mechanism of the present invention, during use, various raw materials are sequentially placed into different feeding barrels, and then by opening or closing the blocking plate, the raw materials in the feeding barrels slowly enter the pre-mixing cylinder through the vertical pipes. Then, through the pre-mixing assembly, various raw materials entering the pre-mixing cylinder are stirred and mixed in advance. Then, through multiple discharge pipes with smaller diameters, the raw materials in the pre-mixing cylinder slowly enter the barrel body for formal stirring and mixing, enabling various raw materials to enter the barrel body in small amounts and multiple times for mixing, increasing the stirring and mixing effect, reducing the mixing time of various raw materials, and improving the overall speed of stirring and mixing.
[0020] (2) Through the designed anti-sediment component of the present invention, during use, it can agitate the raw materials placed in the feeding barrels, improving the smoothness of raw material transportation. When a part of the feeding barrels contains liquid raw materials, it can agitate the liquid raw materials to prevent sediment from forming at the bottom of the feeding barrels, which may affect the concentration of the liquid transported into the pre-mixing cylinder. When a part of the feeding barrels contains granular raw materials, it can agitate the granular raw materials to prevent blockage at the bottom of the feeding barrels, which may affect the flow rate of powder and granular raw materials into the pre-mixing cylinder, improving the pre-mixing effect of the raw materials entering the pre-mixing cylinder and facilitating use.
[0021] (3) Through the designed agitating member of the present invention, when the various raw materials in the barrel body are stirred and mixed by the stirring blades, the stirring frame can move up and down to agitate and mix the various raw materials in the barrel body again. The up and down movement of the stirring frame stirs the raw materials on different height planes, cooperating with the fixed plane stirring of the stirring blades, further increasing the mixing effect of various raw materials. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 is a schematic structural diagram of the present invention;
[0023] Figure 2 is a schematic bottom view structural diagram of the present invention;
[0024] Figure 3 is a schematic cross-sectional structural diagram of the barrel body of the present invention;
[0025] Figure 4 is a schematic bottom view structural diagram of the support of the present invention;
[0026] Figure 5 is a schematic structural diagram of the feeding barrel of the present invention;
[0027] Figure 6 is a schematic structural diagram of the auxiliary gear ring and the upper gear ring of the present invention;
[0028] Figure 7 is a schematic structural diagram of the L-shaped column of the present invention;
[0029] Figure 8Schematic structural diagram of the rotating column and bearing bracket of the present invention;
[0030] Figure 9 Schematic cross-sectional structural diagram of the vertical pipe of the present invention;
[0031] Figure 10 Schematic cross-sectional structural diagram of the pre-mixing cylinder of the present invention;
[0032] Figure 11 Schematic structural diagram of the stirring rod bracket of the present invention;
[0033] Figure 12 Schematic structural diagram of the connection between the rubber plate and the mounting ring of the present invention;
[0034] In the figure: 100, barrel body; 101, driving motor; 102, upper cover; 103, flip cover; 104, support pillar; 105, weighing sensor; 106, stirring blade; 200, pre-mixing cylinder; 201, main rod; 202, bracket; 203, discharging bucket; 204, inclined pipe; 205, lower gear ring; 206, lower transmission belt; 208, discharging pipe; 209, vertical pipe; 210, support plate; 211, gear; 212, middle transmission belt; 213, rotating column; 214, rotating column; 215, bearing bracket; 216, rod body; 217, plugging disc; 218, stirring rod bracket; 219, rubber plate; 220, L-shaped screw; 221, retaining disc; 222, mounting ring; 223, nut; 300, fixed cylinder; 301, upper disc; 302, connecting spring; 303, stirring frame; 304, conical column; 400, upper gear ring; 401, upper rod bracket; 402, fixing ring; 403, T-shaped column; 404, lower stirring frame; 406, auxiliary gear ring; 407, mounting spring; 408, L-shaped column. Detailed implementation manners
[0035] The technical solutions of the present invention will be clearly and completely described below in conjunction with the embodiments. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without making creative efforts shall fall within the protection scope of the present invention.
[0036] Embodiment 1
[0037] Please refer to Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 8 , Figure 9 , Figure 10 , Figure 11 and Figure 12, the present invention provides a technical solution: a batching device for cheese stick production, including a barrel body 100, an upper cover 102, and a driving motor 101 arranged on the top of the upper cover 102. A stirring blade 106 is arranged at the bottom working end of the driving motor 101. An inlet feeding mechanism is arranged above the barrel body 100, and the inlet feeding mechanism includes a slow feeding component and a pre-mixing component;
[0038] The slow feeding component includes a pre-mixing cylinder 200 arranged above the upper cover 102 and a bracket 202 fixed on the pre-mixing cylinder 200. A plurality of feeding barrels 203 are fixedly arranged at the top of the bracket 202. A plurality of vertical pipes 209 are fixedly arranged at the bottom of the bracket 202. An inclined pipe 204 is fixedly arranged at the bottom of the vertical pipe 209, and the end of the inclined pipe 204 extends into the interior of the pre-mixing cylinder 200. A plurality of discharge pipes 208 are fixedly arranged at the bottom of the pre-mixing cylinder 200. The discharge pipes 208 can reduce the speed of the mixed raw materials located in the pre-mixing cylinder 200 passing through the discharge pipes 208 and reaching the lower barrel body 100, thereby increasing the stirring time and effect among various raw materials that previously entered the barrel body 100. And the bottom of the discharge pipe 208 passes through the interior of the upper cover 102 and extends into the interior of the barrel body 100;
[0039] An opening and closing member is arranged on the vertical pipe 209. The opening and closing member includes a rod body 216 rotatably arranged on the vertical pipe 209. A blocking plate 217 is arranged at one end of the rod body 216. By rotating the blocking plate 217, the raw materials in the feeding barrel 203 can enter the pre-mixing cylinder 200 intermittently, increasing the mixing of various raw materials entering the pre-mixing cylinder 200 in small amounts through a stirring rod frame 218 and a rubber plate 219, and increasing the mixing effect. A gear 211 is fixedly arranged at the other end of the rod body 216;
[0040] A plurality of support plates 210 are fixedly arranged on the outside of the pre-mixing cylinder 200. A lower toothed ring 205 is rotatably arranged on the support plates 210. The gear 211 meshes with the lower toothed ring 205. A bearing bracket 215 is fixedly arranged at the top of the inner wall of the pre-mixing cylinder 200. The bearing bracket 215 supports a rotating column 214. A rotating column 214 is rotatably arranged inside the bearing bracket 215;
[0041] A rotating column 213 is rotatably arranged at the bottom of the bracket 202. The outer wall of the rotating column 213 contacts the inner wall of the lower toothed ring 205. The rotation of the rotating column 213 drives the rotation of the lower toothed ring 205. A middle transmission belt 212 is sleeved between the bottom of the rotating column 213 and the bottom of the rotating column 214. A main rod 201 is fixedly arranged at the bottom of the rotating column 213. A lower transmission belt 206 is sleeved between the bottom of the main rod 201 and the stirring blade 106.
[0042] Embodiment Two
[0043] On the basis of Embodiment One, please refer to Figure 1 , Figure 2, Figure 4 , Figure 5 , Figure 11 and Figure 12 , the premixing assembly includes a stirring rod holder 218 fixed to the bottom of the rotating column 214. A L-shaped screw rod 220 is fixedly arranged at the bottom of the stirring rod holder 218. An installation ring 222 is sleeved on the L-shaped screw rod 220. A plurality of rubber plates 219 are fixedly arranged on the outside of the installation ring 222. The bottom of the rubber plate 219 contacts the inner wall bottom of the premixing cylinder 200, and can scrape the raw materials towards the top of the discharge pipe 208, so that the raw materials will not accumulate in the premixing cylinder 200. When the rubber plate 219 contacting the inner wall bottom of the premixing cylinder 200 is severely worn due to the friction of the inner wall bottom of the premixing cylinder 200, loosen the nut 223, and then rotate the installation ring 222 to make the remaining intact rubber plates 219 on the outside of the installation ring 222 continue to contact the inner wall bottom of the premixing cylinder 200, which can reduce the replacement time and replacement frequency of the rubber plate 219. A retaining disc 221 is fixedly arranged on the outside of the L-shaped screw rod 220. A nut 223 is threadedly connected to the outer side of the end of the L-shaped screw rod 220. By tightening the nut 223, the installation ring 222 can be located between the retaining disc 221 and the nut 223 to fix the installation ring 222.
[0044] Through the designed feeding mechanism of the present invention, during use, a variety of raw materials are sequentially placed into different feeding barrels 203, and then the raw materials in the feeding barrel 203 slowly enter the premixing cylinder 200 through the vertical pipe 209 by opening or closing the blocking disc 217. Then, the premixing assembly premixes and stirs in advance the various raw materials entering the premixing cylinder 200. Some of the main raw materials of the various raw materials added to the feeding barrel 203, such as cheese and cheese in the form of liquid after being preheated and melted in advance, the powdery raw material is milk powder, and the granular raw material is white sugar. These raw materials enter the premixing cylinder 200 and after being stirred and mixed, the milk powder melts in the melted liquid cheese and cheese. The white sugar is stirred and melted and mixed with the melted liquid cheese and cheese. At this time, the mixed raw materials are still in a liquid state. Then, the raw materials in the premixing cylinder 200 slowly enter the barrel body 100 through a plurality of discharge pipes 208 with smaller diameters for formal stirring and mixing, so that the various raw materials enter the barrel body 100 in small amounts and multiple times for mixing, increasing the stirring and mixing effect, reducing the mixing time of the various raw materials, and improving the overall speed of stirring and mixing.
[0045] In summary, various different raw materials are sequentially placed into the corresponding feeding buckets 203, and then the driving motor 101 is started. The driving motor 101 drives the stirring blades 106 below to rotate. When the stirring blades 106 rotate, they drive the main rod 201 and the rotating column 213 above the main rod 201 to rotate through the lower transmission belt 206. The rotating column 213 drives the lower toothed ring 205 to rotate, and at the same time drives the rotating column 214 to rotate through the middle transmission belt 212. At this time, the lower toothed ring 205 drives multiple groups of gears 211 engaged with it to rotate. The gears 211 drive the rod body 216 and the plug 217 located at the end of the rod body 216 to rotate. At this time, the plug 217 is opened, and then the liquid or granular and powdery raw materials in the feeding bucket 203 enter the pre-mixing cylinder 200 from the vertical pipe 209 through the inclined pipe 204. Then, when the plug 217 continues to rotate, it will close. At this time, the plug 217 is in a horizontal state, and the vertical pipe 209 is blocked by the plug 217. At this time, the raw materials in each feeding bucket 203 will no longer enter the pre-mixing cylinder 200. Repeating this way can intermittently open the plug 217, so that the raw materials in the feeding bucket 203 intermittently enter the pre-mixing cylinder 200. While the plug 217 rotates to open and close, the rotating column 214 rotates to drive the stirring rod frame 218 below to rotate, and then can drive structures such as the L-shaped screw 220 and the rubber plate 219 below the stirring rod frame 218 to rotate. At this time, the stirring rod frame 218 and the rubber plate 219 can stir various raw materials entering the pre-mixing cylinder 200. At the same time, the rubber plate 219 contacts the inner wall bottom of the pre-mixing cylinder 200, scraping and stirring and mixing the raw materials at the inner wall bottom, increasing the stirring effect. Driven by the rotation and stirring of the stirring rod frame 218 and the rubber plate 219, the raw materials in the pre-mixing cylinder 200 flow into the lower barrel 100 from multiple discharge pipes 208 with smaller diameters. Since the diameters of the discharge pipes 208 are smaller, the mixed raw materials will also slowly enter the barrel 100, so that various raw materials enter the barrel 100 in small amounts and multiple times, increasing the stirring and mixing effect, reducing the mixing time of various raw materials, and improving the overall speed of stirring and mixing. Moreover, since the mounting rings 222 on the multiple rubber plates 219 are sleeved outside the L-shaped screw 220, when the rubber plate 219 in contact with the inner wall bottom of the pre-mixing cylinder 200 is worn, the nut 223 on the L-shaped screw 220 is rotated counterclockwise to loosen it, and then the mounting ring 222 outside the L-shaped screw 220 is rotated around the L-shaped screw 220 so that other rubber plates 219 on the mounting ring 222 contact the inner wall bottom of the pre-mixing cylinder 200 downward, and the worn rubber plate 219 no longer contacts the inner wall bottom of the pre-mixing cylinder 200. There is no need to frequently replace the worn rubber plate 219, which improves the total service time of the rubber plate 219 and increases the effect of scraping and stirring and mixing the raw materials at the inner wall bottom of the pre-mixing cylinder 200.
[0046] Embodiment III
[0047] Based on the second embodiment, please refer to Figure 1 , Figure 2 , Figure 4 , Figure 5 , Figure 6 and Figure 7 , an anti-settling member is provided inside the feeding bucket 203. The anti-settling member includes an upper rod frame 401 fixed to the top of the rotating column 214 and a secondary gear ring 406 rotatably arranged on the inner wall of the top of the feeding bucket 203. A T-shaped column 403 is fixedly arranged on the inner wall of the secondary gear ring 406. An upper gear ring 400 is fixedly arranged on the top of the upper rod frame 401, and the upper gear ring 400 meshes with the secondary gear ring 406;
[0048] A fixing ring 402 is arranged outside the T-shaped column 403. The fixing ring 402 can reciprocate on the T-shaped column 403. Two groups of lower stirring frames 404 are fixedly arranged at the bottom of the fixing ring 402. An L-shaped column 408 is fixedly arranged at the top of the fixing ring 402. The end of the L-shaped column 408 is a spherical structure, which is convenient for contacting the outer wall of the upper gear ring 400, and one end of the L-shaped column 408 can contact the outer wall of the upper gear ring 400. An installation spring 407 is sleeved outside the T-shaped column 403. The telescoping of the installation spring 407 can facilitate the movement of the fixing ring 402 and the lower stirring frames 404 located below the fixing ring 402, and both ends of the installation spring 407 are fixedly connected to the other end of the T-shaped column 403 and the fixing ring 402 respectively.
[0049] Through the designed anti-settling member of the present invention, the raw materials put into the feeding bucket 203 can be stirred during use, improving the smoothness of raw material transportation. When part of the material in the feeding bucket 203 is liquid, the liquid raw materials can be stirred to prevent precipitation at the bottom of the feeding bucket 203 from affecting the liquid concentration transported into the pre-mixing cylinder 200. When part of the material in the feeding bucket 203 is granular raw materials, the granular raw materials can be stirred to prevent blockage at the bottom of the feeding bucket 203, which affects the flow rate of powder and granular raw materials into the pre-mixing cylinder 200, improving the pre-mixing effect of the raw materials entering the pre-mixing cylinder 200 and facilitating use.
[0050] In summary, when the rotating column 214 rotates, it drives the upper rod frame 401 above to rotate. The upper rod frame 401 drives the upper toothed ring 400 to rotate, which in turn drives multiple groups of secondary toothed rings 406 engaged with it to rotate. Subsequently, the rotating secondary toothed ring 406 drives the T-shaped column 403 to rotate. At this time, the fixed ring 402, the L-shaped column 408, and two groups of lower stirring frames 404 below can be driven by the T-shaped column 403 to rotate. At this time, the lower stirring frames 404 can stir the liquid, powder, or granular raw materials in the feeding barrel 203. At the same time, during the stirring process, the end of the rotating L-shaped column 408 touches the upper toothed ring 400. At this time, the L-shaped column 408 moves away from the secondary toothed ring 406, driving the fixed ring 402 to move. At this time, the mounting spring 407 starts to compress under the influence of the movement and extrusion of the fixed ring 402. When the fixed ring 402 moves, it drives the lower stirring frame 404 below to move accordingly. Then, when the end of the L-shaped column 408 leaves the upper toothed ring 400, the mounting spring 407 resets, pushing the fixed ring 402 to move towards the secondary toothed ring 406, thereby driving the lower stirring frame 404 below to move accordingly, so that the lower stirring frame 404 moves towards or away from the secondary toothed ring 406 while rotating with the secondary toothed ring 406, increasing the stirring effect and avoiding the precipitation of liquid raw materials at the bottom of the inner wall of the feeding barrel 203, the blockage of the inner wall bottom of the feeding barrel 203 by powder and granular raw materials, and the situation where it is difficult for the raw materials to enter the premixing cylinder 200 through the vertical pipe 209.
[0051] Embodiment 4
[0052] On the basis of Embodiment 3, please refer to Figure 1 、 Figure 2 and Figure 3 . A stirring member is provided on the upper cover 102. The stirring member includes a fixed cylinder 300 fixed on the upper cover 102 and a stirring frame 303 slidably arranged inside the barrel body 100. The bottom of the stirring frame 303 is a spherical structure, which is convenient for contacting the conical column 304. The top of the stirring frame 303 passes through the inside of the fixed cylinder 300. An upper disc 301 is fixedly arranged outside the stirring frame 303. A connecting spring 302 is fixedly arranged between the upper disc 301 and the fixed cylinder 300. The connecting spring 302 is sleeved on the stirring frame 303.
[0053] Multiple groups of conical columns 304 are fixedly arranged on the outer wall of the lower toothed ring 205. The top of the stirring frame 303 contacts the outer surface of the conical column 304.
[0054] In the present invention, through the designed stirring member, during the process of stirring and mixing various raw materials located in the barrel body 100 by the stirring blade 106, the stirring frame 303 can move up and down to stir and mix the various raw materials located in the barrel body 100 again. The up and down movement of the stirring frame 303 stirs the raw materials on different height planes, cooperating with the fixed plane stirring of the stirring blade 106, further enhancing the mixing effect of various raw materials.
[0055] In summary, when the lower gear ring 205 rotates during operation, it drives multiple sets of tapered columns 304 on the outer wall to rotate accordingly. Then, when the tapered columns 304 come into contact with the spherical structure at the top of the lower stirring frame 303, the stirring frame 303 moves downward. The stirring frame 303 drives the upper disk 301 to move. At this time, the connecting spring 302 is compressed under the extrusion of the upper disk 301. Subsequently, when the tapered columns 304 no longer contact the spherical structure at the top of the stirring frame 303, the connecting spring 302 resets and pushes the upper disk 301 upward. At this time, the up and down movement of the stirring frame 303 can stir the various raw materials in the barrel body 100 in the up and down direction, cooperating with the planar stirring of the stirring blade 106, further enhancing the mixing effect of various raw materials. The stirring blade 106 can only rotate and stir at a fixed height and fixed planar position and cannot move up and down.
[0056] In this embodiment, the barrel body 100 is rotatably provided with a flip cover 103 through two sets of hinges. By opening the flip cover 103, the stirring and mixing effect of various raw materials located in the barrel body 100 can be checked at any time. Multiple sets of support columns 104 are fixedly arranged at the bottom of the barrel body 100, and a weighing sensor 105 is arranged at the bottom of the support columns 104. The weighing sensor 105 can weigh various raw materials put into the batching device. A discharge valve is also arranged at the bottom of the barrel body 100. After the discharge valve is opened, the stirred and mixed raw materials located in the barrel body 100 can be discharged.
[0057] The above embodiments are only used to illustrate the technical method of the present invention and not to limit it. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical method of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical method of the present invention.
Claims
1. A batching device for cheese stick production, comprising a barrel (100), an upper cover (102), and a driving motor (101) arranged on the top of the upper cover (102), wherein a stirring blade (106) is arranged at the bottom working end of the driving motor (101), characterized in that: A feeding mechanism is arranged above the barrel (100), and the feeding mechanism comprises: A material slow-discharging component is disposed above the upper cover (102) and is used for slowly discharging a variety of raw materials; The premixing component is arranged on the slow-release material component and is used for premixing various raw materials entering the slow-release material component.
2. A batching device for cheese stick production according to claim 1, characterized in that: The slow-release assembly comprises a premixing barrel (200) arranged above the upper cover (102) and a bracket (202) fixed on the premixing barrel (200), a plurality of discharge barrels (203) are fixedly arranged on the top of the bracket (202), a plurality of vertical pipes (209) are fixedly arranged on the bottom of the bracket (202), an inclined pipe (204) is fixedly arranged on the bottom of the vertical pipe (209), and a plurality of discharge pipes (208) are fixedly arranged on the bottom of the premixing barrel (200).
3. A batching device for cheese stick production according to claim 2, characterized in that: The vertical tube (209) is provided with an opening and closing member, and the opening and closing member comprises a rod body (216) rotatably arranged on the vertical tube (209), a blocking disk (217) is arranged at one end of the rod body (216), and a gear (211) is fixedly arranged at the other end of the rod body (216); A plurality of groups of support plates (210) are fixedly arranged outside the premixing barrel (200), a lower gear ring (205) is rotatably arranged on the support plate (210), a bearing frame (215) is fixedly arranged on the top of the inner wall of the premixing barrel (200), and a rotating column (214) is rotatably arranged inside the bearing frame (215).
4. A batching device for cheese stick production according to claim 3, characterized in that: A rotating column (213) is rotatably arranged at the bottom of the bracket (202), the outer wall of the rotating column (213) contacts the inner wall of the lower gear ring (205), a middle transmission belt (212) is sleeved between the rotating column (213) and the bottom of the rotating column (214), a main rod (201) is fixedly arranged at the bottom of the rotating column (213), and a lower transmission belt (206) is sleeved between the bottom of the main rod (201) and the stirring blade (106).
5. The batching device for cheese stick production according to claim 3, characterized in that: The premixing assembly comprises a stirring rod frame (218) fixed at the bottom of a rotating column (214); an L-shaped screw (220) is fixedly arranged at the bottom of the stirring rod frame (218); a mounting ring (222) is sleeved on the L-shaped screw (220); a plurality of groups of rubber plates (219) are fixedly arranged outside the mounting ring (222); a baffle (221) is fixedly arranged outside the L-shaped screw (220); and a nut (223) is threadedly connected to the outer side of the end of the L-shaped screw (220).
6. The batching device for cheese stick production according to claim 3, characterized in that: An anti-sedimentation component is arranged inside the discharge barrel (203), and the anti-sedimentation component includes an upper rod frame (401) fixed on the top of the rotating column (214) and a secondary gear ring (406) rotatably arranged on the inner wall of the top of the discharge barrel (203), a T-shaped column (403) is fixedly arranged on the inner wall of the secondary gear ring (406), and an upper gear ring (400) is fixedly arranged on the top of the upper rod frame (401).
7. A batching device for cheese stick production according to claim 6, characterized in that: A fixing ring (402) is arranged outside the T-shaped column (403), two groups of lower stirring frames 4 (04) are fixedly arranged at the bottom of the fixing ring (402), an L-shaped column (408) is fixedly arranged at the top of the fixing ring (402), and a mounting spring (407) is sleeved outside the T-shaped column (403).
8. The batching device for cheese stick production according to claim 3, characterized in that: The upper cover (102) is provided with a stirring member, and the stirring member comprises a fixed cylinder (300) fixed on the upper cover (102) and a stirring frame (303) slidably arranged inside the barrel body (100), an upper plate (301) is fixedly arranged outside the stirring frame (303), and a connecting spring (302) is fixedly arranged between the upper plate (301) and the fixed cylinder (300).
9. A batching device for cheese stick production according to claim 8, characterized in that: A plurality of groups of conical columns (304) are fixedly provided on the outer wall of the lower gear ring (205), and the top of the stirring frame (303) is in contact with the outer surface of the conical columns (304).
10. The batching device for cheese stick production according to claim 1, characterized in that: The barrel body (100) is provided with a flip cover (103) which is rotatable by two sets of flaps, the bottom of the barrel body (100) is fixedly provided with a plurality of sets of pillars (104), the bottom of the pillars (104) is provided with a weighing sensor (105), and the bottom of the barrel body (100) is also provided with a discharge valve.