Material storage cover and cold drink equipment
By designing an inclined concave guide section and a transition connection section in the storage hood, the problem of solid-liquid mixture retention is solved, ensuring the stirring effect and component protection.
Patent Information
- Application Number
- CN202520109552.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-16
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2035-01-16
AI Technical Summary
The existing front-end structure of the storage hood causes solid-liquid mixtures to stagnate, affecting the mixing effect and potentially damaging the mixing components.
Design a material storage hood, including a cylinder and a discharge assembly. The cylinder is provided with a feeding section, a storage chamber and a flow guide section. The flow guide section is inclined from the upper part of the cylinder towards the discharge assembly and has an inner concave surface. With the design of the transition connection section and the feeding section, the solid-liquid mixture is ensured to flow back smoothly.
It achieves thorough mixing of solid-liquid mixtures, avoids stagnation, improves mixing effect, and protects the mixing components.
Smart Images

Figure CN223681925U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to cold drink equipment technical field especially relates to a material storage cover and cold drink equipment. BACKGROUND
[0002] Cold drink equipment can usually process liquid raw materials into ice-shaped products (such as smoothies, ice cream, etc.), and in the cold drink manufacturing industry, the material storage cover is usually used to store raw materials and provide space for freezing and stirring. In use, first pour beverage, milk and other raw materials into the material storage cover, then the evaporator can freeze the raw materials in the material storage cover, and then the formed solid-liquid mixture (such as smoothies, ice cream, etc.) is stirred in the material storage cover by the stirring assembly to prevent the formation of ice blocks. In this process, the stirring assembly will continuously apply pressure to the solid-liquid mixture, causing the solid-liquid mixture to be extruded at the front end of the material storage cover. Under the action of the extrusion force, the solid-liquid mixture will flow back to the middle part of the material storage cover, forming a cycle. However, most of the existing material storage covers have a vertical structure or a large storage angle at the front end, which causes the solid-liquid mixture to easily accumulate at the front end of the material storage cover, thereby preventing the solid-liquid mixture at the front end of the material storage cover from flowing back, increasing the stirring resistance of the stirring assembly, and affecting the stirring effect or even damaging the stirring assembly. SUMMARY
[0003] The technical problem to be solved by the utility model is to provide a material storage cover that can guide the solid-liquid mixture at the front end of the material storage cover to flow back and ensure the stirring effect.
[0004] To solve the above technical problems, the utility model provides a material storage cover, which comprises a barrel and a discharging assembly arranged on the barrel, the barrel is arranged around the stirring assembly, the barrel is provided with a feeding part and a storage cavity, and the feeding part and the discharging assembly can respectively communicate with the storage cavity.
[0005] The barrel further comprises a flow guide part, the flow guide part is arranged at one end of the barrel close to the discharging assembly, the flow guide part gradually inclines from the upper part of the barrel to the discharging assembly, and the inner wall of the flow guide part forms a concave surface.
[0006] As an improvement of the above scheme, the inner wall of the flow guide part is a concave curved surface.
[0007] As an improvement of the above scheme, the feeding part is arranged at one end of the barrel away from the discharging assembly and located at the upper part of the barrel, the feeding part comprises a feeding port, and the cross section of the feeding part gradually decreases from top to bottom.
[0008] As an improvement of the above scheme, a transition connecting part is arranged between the outer wall of the barrel and the feeding part, and the transition connecting part gradually extends from the outer wall of the barrel to the feeding part.
[0009] As an improvement of the above-mentioned scheme, the transition connection part is an arc transition or an inclined transition or a smooth curved surface.
[0010] As an improvement of the above-mentioned scheme, the width of the transition connection part gradually increases from the outer wall of the barrel to the feeding part.
[0011] As an improvement of the above-mentioned scheme, the cross-sectional outer contour of the barrel is at least partially elliptical or oval.
[0012] As an improvement of the above-mentioned scheme, one end of the barrel near the discharging assembly is provided with a side end face, the discharging assembly is arranged on the side end face, the upper part of the side end face is connected with the lower part of the flow guide part, and the intersection line of the side end face and the flow guide part is a first intersection line.
[0013] As an improvement of the above-mentioned scheme, the side wall of the barrel is provided with a barrel body face, the barrel body face is connected with the upper part of the flow guide part, the intersection line of the barrel body face and the flow guide part is a second intersection line, the number of the second intersection line is two, and the second intersection line is symmetrically and obliquely arranged from the top of the barrel to both sides of the flow guide part.
[0014] As an improvement of the above-mentioned scheme, one end of the two second intersection lines intersects with each other, the other end of the two second intersection lines respectively extends and bends to both sides of the flow guide part and is connected with the two ends of the first intersection line.
[0015] As an improvement of the above-mentioned scheme, the feeding part is arranged at one end of the barrel away from the discharging assembly and is located at the upper part of the barrel, the feeding part comprises a feeding port, and the cross section of the feeding port gradually decreases from top to bottom.
[0016] As an improvement of the above-mentioned scheme, the feeding part further comprises a guide plate, the guide plate is located below the feeding port, one side of the guide plate is connected with the inner wall of the feeding port, and the other side of the guide plate obliquely extends to the storage cavity.
[0017] As an improvement of the above-mentioned scheme, a stirring piece is arranged in the storage cavity, one end of the stirring piece near the discharging assembly is provided with an extrusion end, and the minimum distance between the extrusion end and the side end face is between 3mm and 10mm.
[0018] As an improvement of the above-mentioned scheme, the maximum distance between the outer edge of the spiral part of the stirring piece and the inner wall of the upper part of the barrel ranges from 2mm to 38mm.
[0019] As an improvement of the above-mentioned scheme, the maximum distance between the outer edge of the spiral part of the stirring piece and the inner wall of the lower part of the barrel ranges from 1.5mm to 4mm.
[0020] The maximum distance between the outer edge of the spiral part of the stirring part and the inner wall of the left and right sides of the barrel is between 1.5mm and 6mm.
[0021] As an improvement of the above scheme, the transition connecting part protrudes upward from the surface of the barrel, the feeding part is arranged on the transition connecting part, a feeding cavity is arranged in the transition connecting part, the feeding cavity is in communication with the storage cavity, and the size range of the longitudinal section of the feeding cavity is greater than the size range of the longitudinal section of the storage cavity.
[0022] As an improvement of the above scheme, the discharging assembly comprises a discharging hopper, a handle and a discharging valve, the discharging hopper is arranged on the side end face, a discharging port is arranged on the side end face, the discharging port can be in communication with the discharging hopper, one side of one end of the handle is hinged to the discharging hopper, the other side of the one end of the handle is hinged to the discharging valve, and the handle can drive the discharging valve to rise or fall to open or close the discharging hopper.
[0023] The utility model also provides a cold drink equipment, including the material storage cover as described above.
[0024] The utility model discloses, has following beneficial effect:
[0025] The material storage cover comprises a barrel and a discharging assembly arranged on the barrel, the barrel is arranged on the periphery of a stirring assembly, the stirring assembly can stir raw materials in the barrel, the barrel further comprises a flow guide part arranged at one end of the barrel close to the discharging assembly, the flow guide part gradually inclines from the upper part of the barrel to the discharging assembly, and the inner wall of the flow guide part forms a concave surface. BRIEF DESCRIPTION OF DRAWINGS
[0026] Figure 1 It is the cross section structure schematic diagram of the utility model material storage cover;
[0027] Figure 2 It is the structure schematic diagram of the utility model barrel;
[0028] Figure 3 It is Figure 1 The local enlarged view of A in Fig.
[0029] Figure 4 It is the local cross section structure schematic diagram of the utility model barrel and stirring part;
[0030] Figure 5The utility model discloses the spacing schematic drawing of cylinder and stirring piece. DETAILED DESCRIPTION
[0031] In order to make the purpose, technical scheme and advantage of the utility model more clear, below will combine the drawings to the utility model make further detailed description. Only this declaration, the utility model appears or is about to appear in the text, up, left, right, front, back, inside, outside etc. The orientation words of the utility model in the drawings, it is not the specific limitation of the utility model to the utility model.
[0032] Reference Figure 1 And Figure 2 The utility model discloses a kind of material storage cover, including cylinder 1 and be equipped on the discharge assembly 2 of cylinder 1, the cylinder 1 is covered in the periphery of stirring assembly, the cylinder 1 is used to store raw material and provide space for the refrigeration, stirring of raw material, the product such as ice slush, ice cream formed can be stored in the cylinder 1, and the product not discharged can be circulated and moved in the cylinder 1 under the action of stirring assembly. Wherein the cylinder 1 is equipped with feed part 11 and storage cavity 12, the feed part 11 is communicated with the storage cavity 12, beverage, milk etc. Liquid can enter the storage cavity 12 from the feed part 11, and can be refrigerated and stirred in the storage cavity 12, and the sidewall of the storage cavity 12 is equipped with discharge port 121, the discharge assembly 2 can be communicated with the storage cavity 12 by the discharge port 121, the product such as ice slush, ice cream formed can be discharged from the discharge assembly 2 by the discharge port 121, and the discharge assembly 2 controls the opening and closure of discharge passage. In order to make the product formed easily flow in the front end of the cylinder 1, the cylinder 1 also includes guide flow part 13, the guide flow part 13 is set in the cylinder 1 close to one end of the discharge assembly 2, i.e. the front end of the cylinder 1, and the guide flow part 13 is gradually inclined from the upper portion of the cylinder 1 to the direction of the discharge assembly 2, under the guide flow of the guide flow part 13 set in the inclination, the product formed can flow from the side of the discharge assembly 2 to the upper portion of the cylinder 1, without affecting the product from the middle of the cylinder 1 to the discharge assembly 2, and under the action of continuous extrusion force, the product located in the guide flow part 13 can continuously flow back from the upper portion of the cylinder 1 to the middle portion, and then form circulation. Ice cream with smaller particles is easy to stay in smaller corner, but because the inner wall of the guide flow part 13 forms concave surface, the joint of concave surface and the cylinder 1 is more difficult to produce storage corner than the joint of plane and the cylinder 1, so it is more conducive to the smooth flow of ice cream with smaller ice crystal particles, so the utility model in and out material barrel can be suitable for ice slush and ice cream etc. Product simultaneously.
[0033] The utility model embodiment has the advantages that:
[0034] The utility model discloses an embodiment material storage cover is equipped with cylinder 1 and is equipped with the material outlet subassembly 2 of cylinder 1 on, wherein the cylinder 1 cover is equipped with the periphery of stirring subassembly, the stirring subassembly can be in the cylinder 1 to the raw material in freezing is stirred, and the cylinder 1 still includes the flow guide portion 13, the flow guide portion 13 is arranged in the cylinder 1 and is close to one end of material outlet subassembly 2, the flow guide portion 13 gradually inclines from the upper portion of cylinder 1 to the direction of material outlet subassembly 2, the inner wall of flow guide portion 13 forms the inner concave surface, and the flow guide portion 13 of inclining arrangement can guide the solid-liquid mixture formed by raw material to flow back from the front end of material storage cover to the middle part of material storage cover, thereby making subsequent solid-liquid mixture can be fully stirred, guaranteeing the stirring effect.
[0035] Specifically, referring to Figure 1 The inner wall of flow guide portion 13 is a concave continuous curved surface, and the concave continuous curved surface is adopted to make the smooth flow of slush and ice cream back to the upper portion of cylinder 1 from the position of material outlet subassembly 2, which is beneficial to the backflow of solid-liquid mixture and forms the circulation of solid-liquid mixture in cylinder 1.
[0036] Referring to Figure 1 And Figure 3 The feeding portion 11 is arranged at one end of cylinder 1 away from material outlet subassembly 2 and located at the upper portion of cylinder 1, so that the raw material can be fully frozen and stirred after entering, wherein the feeding portion 11 includes a feeding port 111, and the cross section of feeding port 111 gradually decreases from top to bottom, so that the larger feeding port 111 facilitates pouring raw materials, and the constricted feeding port 111 also facilitates concentrating raw materials.
[0037] The transition connecting portion 16 is arranged between the outer wall of cylinder 1 and the feeding portion 11, and is used for forming a transition connection between the feeding portion 11 and the cylinder 1, and gradually extends from the outer wall of cylinder 1 to the feeding port 111, so that the solid-liquid mixture can be accommodated in the transition connecting portion 16 after the raw material is frozen to form a solid-liquid mixture, and gradually pushed forward by stirring from the transition connecting portion 16, and the solid-liquid mixture can be pushed to the discharge port 121.
[0038] In some embodiments, the transition connection 16 is an arc-shaped transition or an inclined transition. The shape of the arc-shaped transition or the inclined transition enables the solid-liquid mixture to gradually move from the position where the feed inlet 111 is located to the middle of the barrel 1 and gradually move to the vicinity of the discharge outlet 121. Further, the surface of the transition connection 16 is a smooth curved surface, which can reduce the friction of the solid-liquid mixture in the transition connection 16, thereby facilitating the movement of the solid-liquid mixture in the transition connection 16, facilitating stirring and pushing, and reducing the occurrence of situations such as piling and stagnation of the solid-liquid mixture in the transition connection 16.
[0039] In some embodiments, the width of the transition connection 16 gradually increases from the outer wall of the barrel 1 to the feed portion 11, and the transition connection 16 forms a gradually concentrated channel away from the feed portion 11, so as to facilitate the concentration of the solid-liquid mixture to move to the middle of the barrel 1.
[0040] In the embodiments of the present application, the cross-sectional outer contour of the barrel 1 is a closed contour composed of regular or irregular smooth curves. The closed contour composed of smooth curves can reduce the friction of the solid-liquid mixture on the inner wall of the barrel 1, thereby reducing the occurrence of situations such as piling and stagnation, facilitating uniform stirring, and improving stirring effect. Preferably, the cross-sectional outer contour of the barrel 1 is at least partially circular or elliptical or oval-like. Oval-like refers to a closed curved figure, a concept with major and minor axes, but there are differences in edge curvature, symmetry, etc. from the standard ellipse.
[0041] Referring to Figure 2 , one end of the barrel 1 near the discharge assembly 2 is provided with a side end face 14, the discharge assembly 2 is arranged on the side end face 14, and the discharge outlet 121 is arranged on the side end face 14. The solid-liquid mixture under pressure will concentrate on the side end face 14, and the upper part of the side end face 14 is connected with the lower part of the flow guide portion 13. In this embodiment, the upper part of the side end face 14 is tangentially connected with the lower part of the flow guide portion 13. Along the junction of the side end face 14 and the flow guide portion 13, the solid-liquid mixture can smoothly transfer from the side end face 14 to the upper part of the barrel 1. The junction line of the side end face 14 and the flow guide portion 13 is a first junction line 141, and the solid-liquid mixture produces a first turning at the first junction line 141, so that the solid-liquid mixture can be transferred from the side end face 14 to the upper part of the barrel 1.
[0042] The side wall of the barrel body 1 is provided with a barrel body surface 15, which is the main body side wall of the barrel body 1, wherein the barrel body surface 15 is connected with the upper part of the flow guide part 13, and in this embodiment, the barrel body surface 15 is tangentially connected with the upper part of the flow guide part 13. The solid-liquid mixture flows along the flow guide part 13 and smoothly moves to the junction of the barrel body surface 15 from the upper part of the flow guide part 13, wherein the junction line of the barrel body surface 15 and the flow guide part 13 is a second junction line 151, and the solid-liquid mixture generates a second turning in the second junction line 151, so that the solid-liquid mixture can flow back to the middle part of the barrel body 1, forming a circulation.
[0043] Referring to Figure 2 In the embodiment of the utility model, the number of the second junction line 151 is 2, and the two second junction lines 151 are symmetrically and obliquely arranged from the top of the barrel body 1 to the two sides of the flow guide part 13. By arranging two second junction lines 151, the movement of the solid-liquid mixture can be guided from the two symmetric sides of the flow guide part 13, and the oblique arrangement can reduce the space for the solid-liquid mixture with small ice crystal particles such as ice cream to stay in the flow guide part 13, thereby improving the smoothness of the backflow of the solid-liquid mixture.
[0044] Further, one end of each of the two second junction lines 151 meets the other, and the other end of each of the two second junction lines 151 extends and connects with the two ends of the first junction line 141 respectively. Along the backflow direction of the solid-liquid mixture, the two second junction lines 151 converge and meet at the top of the barrel body 1 from the two ends of the first junction line 141 respectively, so that when the solid-liquid mixture moves in the flow guide part 13, it can be concentrated and gathered to the center of the top of the barrel body 1 to form a concentrated backflow route. The overall cross section of the backflow solid-liquid mixture is small, and under the condition of a certain flow rate, the backflow speed of the solid-liquid mixture is improved, the stirring speed of the solid-liquid mixture in the stirring state is also accelerated, and the backflow efficiency and stirring effect are ensured.
[0045] Further, referring to Figure 3 In order to guide the raw materials into the storage cavity 12, the feeding part 11 further comprises a guide plate 112, which is located below the feeding port 111, one side of the guide plate 112 is connected with the inner wall of the feeding port 111, and the other side extends obliquely towards the storage cavity 12. When pouring raw materials, the obliquely arranged guide plate 112 can guide the raw materials to flow quickly into one end of the storage cavity 12. One side of the guide plate 112 extends obliquely away from the discharging assembly 2 to ensure that the distance between the raw materials and the discharging assembly 2 is the farthest, thereby leaving sufficient freezing space and stirring space.
[0046] Referring toFigure 1 and Figure 4 The stirring part 3 is provided in the storage cavity 12, is in a spiral shape, can be stirred by rotation, and is a direct driving component of the solid-liquid mixture movement. An extrusion end 31 is provided at one end of the stirring part 3 close to the discharging assembly 2. The extrusion end 31 is the part of the stirring part 3 closest to the discharging assembly 2. In the extrusion end 31, the stirring part 3 is separated from the solid-liquid mixture. At this time, the driving force for driving the solid-liquid mixture is changed into the extrusion force of the subsequent solid-liquid mixture. The minimum distance H1 between the extrusion end 31 and the side end face 14 is between 3 mm and 10 mm. Exemplarily, the minimum distance H1 between the extrusion end 31 and the side end face 14 includes 3 mm, 3.5 mm, 4 mm, 4.5 mm, 5 mm, 5.5 mm, 6 mm, 6.5 mm, 7 mm, 7.5 mm, 8 mm, 8.5 mm, 9 mm, 9.5 mm or 10 mm, but is not limited thereto. When the minimum distance between the extrusion end 31 and the side end face 14 is less than 3 mm, the solid-liquid mixture is difficult to obtain sufficient backflow space due to insufficient distance between the extrusion end 31 and the side end face 14, which affects the backflow effect. When the minimum distance between the extrusion end 31 and the side end face 14 is greater than 10 mm, the solid-liquid mixture backflows slowly due to the excessive distance between the extrusion end 31 and the side end face 14, and the volume of the barrel 1 is increased.
[0047] Referring to Figure 5The spiral part of the stirring piece 3 is the part for stirring the solid-liquid mixture, and is in a spiral shape as a whole, capable of stirring and pushing the solid-liquid mixture by rotating. In some embodiments, the maximum distance H2 between the outer edge of the spiral part of the stirring piece 3 and the inner wall of the upper part of the barrel 1 ranges between 2 mm and 38 mm. Specifically, the maximum distance H2 between the outer edge of the spiral part of the stirring piece 3 and the inner wall of the upper part of the barrel 1 includes 2 mm, 2.5 mm, 3 mm, 3.5 mm, 4 mm, 4.5 mm, 5 mm, 5.5 mm, 6 mm, 6.5 mm, 7 mm, 7.5 mm, 8 mm, 8.5 mm, 9 mm, 9.5 mm, 10 mm, 10.5 mm, 11 mm, 11.5 mm, 12 mm, 12.5 mm, 13 mm, 13.5 mm, 14 mm, 14.5 mm, 15 mm, 15.5 mm, 16 mm, 16.5 mm, 17 mm, 17.5 mm, 18 mm, 18.5 mm, 19 mm, 19.5 mm, 20 mm, 20.5 mm, 21 mm, 21.5 mm, 22 mm, 22.5 mm, 23 mm, 23.5 mm, 24 mm, 24.5 mm, 25 mm, 25.5 mm, 26 mm, 26.5 mm, 27 mm, 27.5 mm, 28 mm, 28.5 mm, 29 mm, 29.5 mm, 30 mm, 30.5 mm, 31 mm, 31.5 mm, 32 mm, 32.5 mm, 33 mm, 33.5 mm, 34 mm, 34.5 mm, 35 mm, 35.5 mm, 36 mm, 36.5 mm, 37 mm, or 37.5 mm, but not limited thereto. When the maximum distance between the outer edge of the spiral part of the stirring piece 3 and the inner wall of the upper part of the barrel 1 is less than 2 mm, the volume is small, and the outer edge of the spiral part of the stirring piece 3 needs to maintain a certain distance from the inner wall of the upper part of the barrel 1 to reserve as large a containing space as possible and leave space for the backflow of the solid-liquid mixture. When the maximum distance between the outer edge of the spiral part of the stirring piece 3 and the inner wall of the upper part of the barrel 1 is greater than 38 mm, the volume is too large, the stirring piece 3 cannot thoroughly stir the solid-liquid mixture, and problems such as material accumulation and stagnation are prone to occur.
[0048] In some embodiments, the maximum distance H3 between the outer edge of the spiral portion of the stirring element 3 and the inner wall of the lower portion of the barrel 1 is in the range of 1.5 mm to 4 mm. Exemplarily, the maximum distance H3 between the outer edge of the spiral portion of the stirring element 3 and the inner wall of the lower portion of the barrel 1 includes 1.5 mm, 2 mm, 2.5 mm, 3 mm, 3.5 mm, or 4 mm, but is not limited thereto. The outer edge of the spiral portion of the stirring element 3 is close to the inner wall of the lower portion of the barrel 1, and the lower portion of the barrel 1 is prone to retaining the solid-liquid mixture due to the effect of gravity. Therefore, it is necessary to minimize the distance between the inner wall of the barrel 1 and the outer edge of the spiral portion of the stirring element 3, so as to facilitate the stirring element 3 to scrape off the solid-liquid mixture on the inner wall of the lower portion of the barrel 1 as much as possible, and prevent the material from being retained. When the maximum distance between the outer edge of the spiral portion of the stirring element 3 and the inner wall of the lower portion of the barrel 1 is greater than 4 mm, the stirring element 3 cannot thoroughly stir the solid-liquid mixture in the lower portion of the barrel 1, and when the maximum distance between the outer edge of the spiral portion of the stirring element 3 and the inner wall of the lower portion of the barrel 1 is less than 1.5 mm, the distance between the stirring element 3 and the inner wall of the barrel 1 is too small, which affects the movement of the solid-liquid mixture and hinders the rotation of the stirring element 3.
[0049] In some embodiments, the maximum distance H4 between the outer edge of the spiral portion of the stirring element 3 and the inner wall of the left and right sides of the barrel 1 is in the range of 1.5 mm to 6 mm. Exemplarily, the maximum distance H4 between the outer edge of the spiral portion of the stirring element 3 and the inner wall of the left and right sides of the barrel 1 includes 1.5 mm, 2 mm, 2.5 mm, 3 mm, 3.5 mm, 4 mm, 5 mm, 5.5 mm, or 6 mm, but is not limited thereto. Since the solid-liquid mixture on the left and right sides of the barrel 1 moves downward under the action of gravity, the distance between the outer edge of the spiral portion of the stirring element 3 and the inner wall of the left and right sides of the barrel 1 can be appropriately maintained to accommodate more solid-liquid mixture. When the maximum distance between the outer edge of the spiral portion of the stirring element 3 and the inner wall of the left and right sides of the barrel 1 is less than 1.5 mm, the distance between the stirring element 3 and the inner wall of the barrel 1 is too small, which affects the movement of the solid-liquid mixture and hinders the rotation of the stirring element 3; when the maximum distance between the outer edge of the spiral portion of the stirring element 3 and the inner wall of the left and right sides of the barrel 1 is greater than 6 mm, the volume is too large, the stirring element 3 cannot thoroughly stir the solid-liquid mixture, and problems such as material accumulation and retention are prone to occur.
[0050] In addition, the transition connecting part 16 protrudes upward from the surface of the barrel 1, the feeding part 11 is arranged on the transition connecting part 16, due to the upward protrusion of the transition connecting part 16, the position of the feeding part 11 is improved, which is more convenient for pouring raw materials, and meanwhile, the space for accommodating raw materials is enlarged. The transition connecting part 16 is internally provided with a feeding cavity 161, the feeding cavity 161 is communicated with the storage cavity 12, when raw materials are poured, the raw materials first enter the feeding cavity 161 and then enter the storage cavity 12, wherein the size range of the longitudinal section of the feeding cavity 161 is greater than the size range of the longitudinal section of the storage cavity 12, so that the volume of raw materials and solid-liquid mixtures that can be accommodated by the barrel 1 is increased.
[0051] In the discharging assembly 2, the discharging assembly 2 comprises a discharging hopper 21, a handle 22 and a discharging valve 23, the discharging hopper 21 is arranged on the side end face 14, the discharging port 121 can be communicated with the discharging hopper 21, one side of one end of the handle 22 is hingedly connected with the discharging hopper 21, the other side of one end of the handle 22 is hingedly connected with the discharging valve 23, the handle 22 can swing relative to the discharging hopper 21, in the process of swinging of the handle 22, the handle 22 can drive the discharging valve 23 to rise or fall to open or close the discharging hopper 21, so as to achieve the effect of discharging or closing the discharging hopper 21.
[0052] The utility model embodiment further discloses a cold drink equipment (not shown in the drawing), in the utility model cold drink equipment embodiment, the cold drink equipment includes the storage cover and stirring subassembly as described above, wherein the storage cover includes barrel 1 and discharging assembly 2, the stirring subassembly includes stirring piece 3, the stirring piece 3 sets up in the barrel 1, can stir the solid-liquid mixture formed in the barrel 1. The barrel 1 further includes guide part 13, the guide part 13 gradually inclines from the upper portion of the barrel 1 to the direction of the discharging assembly 2, the inner wall of the guide part 13 forms the inner concave surface, in the process of stirring, the slush or ice cream formed during stirring moves to the end of the barrel 1 close to the discharging assembly 2, then by the guide of the guide part 13 arranged in the inclination, it can flow back to the middle part of the barrel 1, and because the inner wall of the guide part 13 is the inner concave surface, the inner concave surface is more favorable for the ice cream with smaller ice crystal particles to flow on the wall surface, therefore, the slush and ice cream can flow back smoothly, and can be suitable for slush products and ice cream products at the same time.
[0053] The above is the preferred embodiment of the utility model, it should be pointed out, for ordinary technical personnel in this technical field, under the premise of not departing from the principle of the utility model, can make a number of improvements and refinements, these improvements and refinements also be considered as the protection scope of the utility model.
Claims
1. A stocker cover characterized by comprising: The device comprises a barrel and a discharging assembly arranged on the barrel, the barrel is arranged on the periphery of a stirring assembly, the barrel is provided with a feeding part and a storage cavity, and the feeding part and the discharging assembly can respectively communicate with the storage cavity. The barrel further comprises a flow guide part arranged at one end of the barrel close to the discharging assembly, the flow guide part is gradually inclined from the upper part of the barrel to the discharging assembly, and the inner wall of the flow guide part forms a concave surface.
2. The stocker cover according to claim 1, characterized by The inner wall of the flow guide part is a concave curved surface.
3. The stocker cover according to claim 1, characterized by The feeding part is arranged at one end of the barrel away from the discharging assembly and located at the upper part of the barrel, the feeding part comprises a feeding port, and the cross section of the feeding port gradually decreases from top to bottom.
4. The stocker cover according to claim 1, wherein A transition connecting part is arranged between the outer wall of the barrel and the feeding part, and the transition connecting part gradually extends from the outer wall of the barrel to the feeding part.
5. The stocker cover according to claim 4, wherein The transition connecting part is an arc transition, an inclined transition or a smooth curved surface.
6. The stocker according to claim 4 or 5, characterized by The width of the transition connecting part gradually increases from the outer wall of the barrel to the feeding part.
7. The stocker cover according to claim 1, wherein The outer contour of the cross section of the barrel is at least partially elliptical or similar to an ellipse.
8. The stocker cover according to claim 1, wherein One end of the barrel close to the discharging assembly is provided with a side end face, the discharging assembly is arranged on the side end face, the upper part of the side end face is connected with the lower part of the flow guide part, and the intersection line of the side end face and the flow guide part is a first intersection line.
9. The stocker cover according to claim 8, characterized by The side wall of the barrel is provided with a barrel body surface, the barrel body surface is connected with the upper part of the flow guide part, the intersection line of the barrel body surface and the flow guide part is a second intersection line, the number of the second intersection line is two, and the second intersection line is symmetrically and inclinedly arranged from the top of the barrel to both sides of the flow guide part.
10. The stocker cover according to claim 9, wherein One end of the two second intersection lines intersects with each other, and the other end of the two second intersection lines respectively bends and extends to both sides of the flow guide part and is connected with the two ends of the first intersection line.
11. The stocker cover according to claim 3, wherein The feeding part further comprises a guide plate, the guide plate is located below the feeding port, one side of the guide plate is connected with the inner wall of the feeding port, and the other side of the guide plate is inclinedly extended to the storage cavity.
12. The stocker cover according to claim 8, wherein A stirring part is arranged in the storage cavity, one end of the stirring part close to the discharging assembly is provided with an extruding end, and the minimum distance between the extruding end and the side end face is between 3mm and 10mm.
13. The stocker cover according to claim 12, wherein The maximum distance between the outer edge of the spiral part of the stirring part and the inner wall of the upper part of the barrel ranges from 2mm to 38mm.
14. The stocker cover according to claim 12, wherein The maximum distance between the outer edge of the spiral part of the stirring part and the inner wall of the lower part of the barrel ranges from 1.5mm to 4mm.
15. The stocker cover according to claim 12, wherein The maximum distance between the outer edge of the spiral part of the stirring part and the inner wall of the left and right sides of the barrel ranges from 1.5mm to 6mm.
16. The stocker cover according to claim 4, wherein The transition connecting part protrudes upward from the surface of the barrel, the feeding part is arranged on the transition connecting part, the transition connecting part is provided with a feeding cavity, the feeding cavity communicates with the storage cavity, and the size range of the longitudinal section of the feeding cavity is greater than the size range of the longitudinal section of the storage cavity.
17. The stocker cover according to claim 8, wherein The discharge assembly comprises a discharge hopper, a handle and a discharge valve, the discharge hopper is arranged on the side end face, the side end face is provided with a discharge port, the discharge port can communicate with the discharge hopper, one side of one end of the handle is hinged to the discharge hopper, the other side of one end of the handle is hinged to the discharge valve, and the handle can drive the discharge valve to rise or fall to open or close the discharge hopper.
18. A cold beverage apparatus, characterized by A storage cover as claimed in any one of claims 1 to 17.