A vat and vertical frozen food manufacturing apparatus

CN224734639UActive Publication Date: 2026-09-11GUANGDONG YUMMY INNOVATION TECH CO LTD
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Patent Information

Application Number
CN202522078611.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-26
Publication Date
2026-09-11
Estimated Expiration
2035-09-26

AI Technical Summary

Technical Problem

[0003]在机体预留给料桶向下移动的高度尺寸极其有限的情况下,当制冷蒸发器的下端离开圆柱通道的瞬间,制冷蒸发器的下端低于容腔的开口边缘,从而无法直接从水平方向抽出料桶,倘若在不增加立式冷冻食品制造设备的前提下,只能减小料桶的容腔的高度尺寸,从而造成料桶的容积变小,不利于批量制作冷冻食品

Benefits of technology

当料桶自上往下地移动至桶体的底部接触到阻挡物时,缺口部能够直接构造成用于避让该阻挡物的避让空间,使得料桶可以平移出来;或者,在桶体的底部接触到阻挡物时,缺口部与阻挡物错位,此时料桶无法直接平移,由于缺口部的存在,用户只需将桶体倾斜设置,以使料桶偏摆至缺口部朝向或者接触阻挡物,料桶能够沿着某一方向抽离,在不减小桶体的高度尺寸的情况下能够实现料桶的拆卸、安装和移动。

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Abstract

This utility model discloses a material barrel and a vertical frozen food manufacturing device. The material barrel includes a barrel body with a notch on one side of the bottom. The notch is configured to provide clearance when the barrel body moves downward or tilts. The vertical frozen food manufacturing device includes a body extending vertically, with a horizontally extending cantilever at the top of the body. The cantilever has a downwardly extending refrigeration evaporator, and the material barrel is detachably mounted on the cantilever. The material barrel has an upward-opening cavity. The body has a contact portion facing the bottom of the material barrel. The bottom of the material barrel near the body has a notch. When the bottom of the material barrel abuts against the contact portion, the material barrel can tilt until the notch abuts against the contact portion, so that the lower end of the refrigeration evaporator is higher than the part of the cavity opening edge near the body. Without reducing the height of the material barrel, the notch allows for easy disassembly and installation.
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Description

Technical Field

[0001] This utility model relates to the field of household appliance technology, and in particular to a material tank and a vertical frozen food manufacturing equipment. Background Technology

[0002] In existing vertical snow melting machine structures, the machine body typically adopts a vertical columnar layout. The material tank, refrigeration evaporator, and stirring mechanism extend cantilevered from the top of the machine body to the sides, while the compressor, condenser, and throttling element are housed within the machine body. The material tank is fitted over the refrigeration evaporator and stirring mechanism. A discharge port and a switch for opening and closing the discharge port are located on the bottom side wall of the material tank. In related technologies, to facilitate cleaning of the material tank or accelerate the output of frozen food, the material tank is designed to be fitted over the refrigeration evaporator from bottom to top or detached from the refrigeration evaporator from top to bottom. A quick-release mechanism is provided between the material tank and the top of the machine body. The material tank has an upward-opening cavity. The stirring mechanism includes a stirring impeller rotatably disposed within the cavity. The impeller has a cylindrical channel in its center for inserting and removing the refrigeration evaporator. Under gravity, the stirring impeller abuts against the inner bottom wall of the material tank, at which point the upper end of the impeller is lower than the opening edge of the cavity.

[0003] With extremely limited height dimensions reserved for the material hopper to move downwards in the machine body, the lower end of the evaporator is below the opening edge of the cavity the instant the lower end of the evaporator leaves the cylindrical channel. Therefore, the material hopper cannot be directly pulled out horizontally. If no vertical frozen food manufacturing equipment is added, the height dimension of the material hopper cavity can only be reduced, resulting in a smaller volume of the material hopper, which is not conducive to the mass production of frozen food. Utility Model Content

[0004] In order to overcome the shortcomings of the prior art, one of the objectives of this utility model is to provide a material barrel that helps to move the barrel to a preset position without reducing the height of the barrel body; the other objective is to provide a vertical frozen food manufacturing equipment that enables the disassembly and installation of the material barrel without increasing the height of the machine body or reducing the height of the cavity.

[0005] A material bucket according to a first aspect of the present invention includes: a bucket body having an upward-opening cavity, and a notch on one side of the bottom of the bucket body, wherein the notch is configured to provide clearance space when the bucket body moves downward or when the bucket body sways.

[0006] The vertical frozen food manufacturing equipment according to the embodiments of this utility model has at least the following beneficial effects: When the bucket moves from top to bottom and contacts an obstacle at the bottom, the notch can directly create a clearance space to avoid the obstacle, allowing the bucket to be moved horizontally. Alternatively, when the bottom of the bucket contacts an obstacle, the notch is misaligned with the obstacle, and the bucket cannot be moved horizontally directly. Due to the presence of the notch, the user only needs to tilt the bucket so that the notch faces or contacts the obstacle, and the bucket can be pulled out in a certain direction. This allows for the disassembly, installation, and movement of the bucket without reducing its height.

[0007] In some embodiments of this utility model, one side of the bottom of the barrel is recessed upward to form the notch, and the notch is inclined from top to bottom toward the middle of the bottom of the barrel.

[0008] A vertical frozen food manufacturing apparatus according to a second aspect of the present invention includes: a body extending vertically, a horizontally extending cantilever portion at the top of the body, a downwardly extending refrigeration evaporator on the cantilever portion, a material barrel detachably mounted on the cantilever portion, the material barrel having an upward-opening cavity, the material barrel being fitted onto the outside of the refrigeration evaporator from bottom to top or away from the refrigeration evaporator from top to bottom, the body having a contact portion facing the bottom of the material barrel, and a notch portion on the bottom of the material barrel near the body. When the bottom of the material barrel abuts against the contact portion, the material barrel can be tilted so that the notch portion abuts against the contact portion, so that the lower end of the refrigeration evaporator is higher than the part of the cavity opening edge near the body.

[0009] The vertical frozen food manufacturing equipment according to the embodiments of this utility model has at least the following beneficial effects: When the material bucket moves from top to bottom until its bottom abuts against the contact part of the machine body, the lower end of the refrigeration evaporator is lower than the opening of the cavity. Therefore, the material bucket cannot be directly separated from the refrigeration evaporator by translation. Due to the presence of the notch, the user only needs to tilt the material bucket so that it swings until the notch abuts against the contact part of the machine body. At this point, the lower end of the refrigeration evaporator is higher than the edge of the cavity opening near the machine body. The user only needs to translate the material bucket away from the machine body to completely remove the refrigeration evaporator from the top of the cavity. This allows for the disassembly and installation of the material bucket without increasing the height of the machine body or decreasing the height of the cavity, which is beneficial for a more compact design in the vertical direction of the vertical frozen food manufacturing equipment.

[0010] In some embodiments of this utility model, the overhanging portion extends to the left, the notch portion is recessed upward from the lower end of the material barrel, and the depth of the notch portion increases from left to right.

[0011] In some embodiments of this utility model, the bottom plate of the material barrel has two downwardly extending support plates formed on its outline edge. The two support plates are arranged face to face in the front-back direction. A first surrounding plate that extends upward and surrounds the right side of the two support plates is connected. The two ends of the first surrounding plate define the notch between the two support plates.

[0012] In some embodiments of this utility model, the first enclosure plate has transition connecting plates between both ends and the two support plates. The lower end of the support plate is a plane, and the lower end of the transition connecting plate is inclined upward in the direction from left to right. The lower end of the support plate and the transition connecting plate have rounded corners.

[0013] In some embodiments of this utility model, the bottom plate of the material barrel, the first surrounding plate and the two supporting plates form an open-faced cavity, and the notch is located on the outer periphery of the cavity.

[0014] In some embodiments of this utility model, the bottom of the material barrel is provided with a discharge port communicating with the cavity and a switching mechanism for opening and closing the discharge port on the side opposite to the notch. The discharge port penetrates the bottom plate of the material barrel vertically, and the switching mechanism protrudes downward from the bottom plate of the material barrel and is located below the notch.

[0015] In some embodiments of this utility model, the bottom of the machine body is provided with a water receiving tray located directly below the refrigeration evaporator, and the upper surface of the water receiving tray constitutes the contact portion.

[0016] In some embodiments of this utility model, a stirring impeller is rotatably arranged inside the material barrel, and a cylindrical channel arranged vertically is provided in the middle of the stirring impeller. The refrigeration evaporator is adapted to the cylindrical channel. A drive shaft passing through the axial direction of the refrigeration evaporator is rotatably arranged in the overhang. The lower ends of the stirring impeller and the drive shaft are detachably connected. The material barrel is detachably connected to the opening edge of the cavity and the overhang through a rotating buckle mechanism.

[0017] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0018] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0019] Figure 1 This is a schematic diagram of the structure of the material barrel when it moves downward to abut against the contact part in one embodiment of the vertical frozen food manufacturing equipment of this utility model; Figure 2 yes Figure 1 A schematic diagram of the material bucket when it tilts to the point where the notch abuts against the contact portion in the embodiment; Figure 3 This is a schematic diagram of the structure of one embodiment of the material bucket of this utility model; Figure 4 yes Figure 3 A structural decomposition diagram.

[0020] Figure label: Body 100; Overhang 110; Refrigeration evaporator 200; Material tank 300; Cavity 310; Notch 320; Support plate 330; First enclosure 340; Transition connecting plate 350; Threaded pipe 360; Second enclosure 370; Rotary guide groove 371; Angle positioning part 372; Switching mechanism 400; Switch plate 410; Discharge port 411; Fan-shaped plate 412; Paddle plate 413; Guide protrusion 414; Bushing part 420; Nut sleeve 430; Cylindrical surface 431; Water receiving tray 500; Agitator impeller 600; Cylindrical channel 610. Detailed Implementation

[0021] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.

[0022] In the description of this utility model, it should be understood that the directional descriptions, such as the terms "up," "down," "front," "back," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0023] In the description of this utility model, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. If "first" or "second" is used in the description, it is only for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.

[0024] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0025] See Figure 3 and Figure 4 A material bucket 300 includes: a bucket body having an upward-opening cavity 310, and a notch 320 on one side of the bottom of the bucket body, wherein the notch 320 is configured to provide clearance space when the bucket body moves downward or when the bucket body sways.

[0026] When the material bucket 300 moves from top to bottom and contacts an obstacle at the bottom of the bucket, the notch 320 can be directly configured as a clearance space to avoid the obstacle, allowing the material bucket 300 to be moved horizontally. Alternatively, when the bottom of the bucket contacts an obstacle, the notch 320 is misaligned with the obstacle, and the material bucket 300 cannot be moved horizontally directly. Due to the presence of the notch 320, the user only needs to tilt the bucket so that the material bucket 300 is tilted so that the notch 320 faces or contacts the obstacle, and the material bucket 300 can be pulled out in a certain direction. The disassembly, installation and movement of the material bucket 300 can be achieved without reducing the height of the bucket.

[0027] See Figure 3 In some embodiments of this utility model, one side of the bottom of the barrel is recessed upward to form the notch 320, and the notch 320 is inclined downward toward the middle of the bottom of the barrel. That is, the depth of the notch 320 gradually decreases from one edge of the lower end of the barrel to the middle of the lower end of the barrel. When the barrel 300 moves downward until the notch 320 abuts against an obstruction, the barrel 300 can slide downward along the inclined direction of the notch 320 so that the barrel 300 smoothly leaves the preset position.

[0028] See Figures 1 to 3This utility model discloses a vertical frozen food manufacturing equipment, comprising: a body 100 extending vertically, a horizontally extending cantilever portion 110 at the top of the body 100, a downwardly extending refrigeration evaporator 200 on the cantilever portion 110, and a detachable material tank 300 having an upward-opening cavity 310. The material tank 300 is fitted around the refrigeration evaporator 200 from bottom to top or from top to bottom. The refrigeration evaporator 200 is opened. The body 100 is provided with a contact portion facing the bottom of the material tank 300. The bottom of the material tank 300 is provided with a notch 320 on the side near the body 100. When the bottom of the material tank 300 abuts against the contact portion, the material tank 300 can be tilted so that the notch 320 abuts against the contact portion, so that the lower end of the refrigeration evaporator 200 is higher than the part of the opening edge of the cavity 310 near the body 100.

[0029] When the material hopper 300 moves from top to bottom until its bottom abuts against the contact portion of the machine body 100, the lower end of the refrigeration evaporator 200 is lower than the opening of the cavity 310. Therefore, the material hopper 300 cannot be directly separated from the refrigeration evaporator 200 by translation. Due to the presence of the notch 320, the user only needs to tilt the material hopper 300 so that it swings until the notch 320 abuts against the contact portion of the machine body 100. At this point, the lower end of the refrigeration evaporator 200 is higher than the edge of the opening of the cavity 310 near the machine body 100. The user only needs to translate the material hopper 300 away from the machine body 100 to completely remove the refrigeration evaporator 200 from the top of the cavity 310. Without increasing the height of the machine body 100 or decreasing the height of the cavity 310, the material hopper 300 can be disassembled and installed, which is beneficial for a more compact design in the vertical frozen food manufacturing equipment.

[0030] See Figure 1 and Figure 2In some embodiments of this utility model, the cantilever portion 110 extends to the left, and the notch portion 320 is recessed upward from the lower end of the material bucket 300, with the depth of the notch portion 320 increasing from left to right. It can be understood that when the cantilever portion 110 extends to the left, the notch portion 320 is located on the right side of the lower end of the material bucket 300, close to the side of the machine body 100. When the material bucket 300 is pulled downwards until its bottom contacts the contact portion of the machine body 100, the user tilts the upper right side of the material bucket 300 towards the machine body 100 at a certain angle. At this time, the notch portion 320 is directly opposite the contact portion of the machine body 100, and the lower end of the refrigeration evaporator 200 is higher than the right side of the opening edge of the cavity 310, allowing the material bucket 300 to be moved horizontally to the left. Since the material barrel 300 only needs to tilt at a small angle, the depth of the notch 320 increases from left to right, which helps to make more contact with the contact part of the machine body 100 and improves the support stability.

[0031] See Figure 3 and Figure 4 In some embodiments of this utility model, the bottom plate of the material bucket 300 has two downwardly extending support plates 330 formed on its contour edge. The two support plates 330 are arranged face-to-face in the front-back direction. A first surrounding plate 340 extending upward and surrounding the two support plates 330 is connected between their right sides. The two ends of the first surrounding plate 340 define the notch portion 320 between the two support plates 330. The above structure can form the notch portion 320 and provide support for the contact portion with very little material. When the material bucket 300 sways, it rotates around the fulcrum at the position where the support plate 330 contacts the contact portion. The whole composed of the first surrounding plate 340 and the two support plates 330 has a certain mechanical strength. Moreover, space is reserved on the left side of the two support plates 330 for a material outlet and a switching mechanism 400, or space is reserved to increase the volume of the material bucket 300.

[0032] See Figure 3 and Figure 4 In some embodiments of this utility model, transition connecting plates 350 are provided between both ends of the first enclosure plate 340 and the two support plates 330. The lower end of the support plate 330 is flat, and the lower end of the transition connecting plate 350 is inclined upward in a left-to-right direction. The lower end of the support plate 330 and the transition connecting plate 350 have rounded corners. It can be understood that the flat lower end of the support plate 330 is beneficial to increasing the contact area between the support plate 330 and the machine body 100, and is also beneficial to stably place the material bucket 300 on the table. When the upper right side of the material bucket 300 tilts towards the machine body 100, the rounded corners act as fulcrums, which helps the material bucket 300 to tilt smoothly.

[0033] Referring to Figure 3, in some embodiments of this utility model, the bottom plate of the material barrel 300, the first surrounding plate 340 and the two supporting plates 330 form an open-faced cavity. The notch 320 is located on the outer periphery of the cavity, which helps to reduce material usage and lower costs. For injection-molded parts, it also makes it less likely to cause injection shrinkage.

[0034] See Figure 4 In some embodiments of this utility model, the bottom of the material tank 300, on the side opposite to the notch 320, is provided with a discharge port communicating with the cavity 310 and a switching mechanism 400 for opening and closing the discharge port. The discharge port penetrates the bottom plate of the material tank 300 vertically, and the switching mechanism 400 protrudes downward from the bottom plate of the material tank 300 and is located below the notch 320. It should be noted that when a large amount of frozen food needs to be discharged quickly, the material tank 300 can be directly removed for easy transfer or pouring of the frozen food. When a small amount of frozen food needs to be discharged, the discharge port can be opened using the switching mechanism 400, and the frozen food can flow out under the action of gravity and stirring force, thus realizing two different discharge methods to meet different usage needs. When the material tank 300 moves downward, the switching mechanism 400 first contacts the contact part of the machine body 100, and the arrangement of the switching mechanism 400 and the notch 320 makes full use of the bottom space of the material tank 300.

[0035] See Figure 3 and Figure 4 In some embodiments of this utility model, a threaded tube 360 ​​is provided at the center of the bottom of the material barrel 300, the switching mechanism 400 includes a switching plate 410, the switching plate 410 is provided with a bushing portion 420 movably sleeved on the threaded tube 360, the switching plate 410 has a discharge port 411 corresponding to the discharge port, the switching plate 410 can rotate around the axial direction of the threaded tube 360 ​​so that the discharge port 411 at least partially coincides with the discharge port, and a nut sleeve 430 is provided on the outside of the threaded tube 360, the threaded tube 360 ​​or the nut sleeve 430 has a cylindrical surface 431 that mates with the inner peripheral wall of the bushing portion 420.

[0036] The switch plate 410 can rotate axially around the threaded tube 360 ​​to misalign the discharge port 411 with the outlet, thus preventing material discharge. The switch plate 410 can also rotate axially around the threaded tube 360 ​​to at least partially overlap the discharge port 411 with the outlet, allowing material discharge. When cleaning the outlet and switch plate 410 is required, the user simply unscrews the nut sleeve 430 from the threaded tube 360 ​​and then pulls the bushing 420 out of the threaded tube 360 ​​to separate the switch plate 410 from the barrel, thus exposing the entire outlet position. This allows the user to directly clean the outlet and clean the switch plate 410 separately, facilitating the cleaning of residual raw materials and preventing bacterial growth. The cylindrical surface 431 is smooth, and the bushing 420 is annular. The diameter of the cylindrical surface 431 and the inner diameter of the bushing 420 are identical.

[0037] See Figure 3 and Figure 4 In some embodiments of this utility model, the switch plate 410 includes a fan-shaped plate 412 and a lever 413 protruding from the outer peripheral wall of the fan-shaped plate 412. The discharge port 411 penetrates the fan-shaped plate 412. The bottom plate of the material barrel 300 has a downwardly extending second enclosure 370 formed on its contour edge. The outer peripheral wall of the second enclosure 370 is recessed with a rotation guide groove 371. The lever 413 has a guide protrusion 414 that elastically engages with the rotation guide groove 371. The rotation guide groove 371 has several angle positioning parts 372 that cooperate with the guide protrusion 414. It can be understood that the user only needs to place their finger against the lever 413 and make a circular motion around the outer periphery of the material barrel 300 to rotate the switch plate 410, thereby aligning the discharge port 411 with the discharge port or misaligning the discharge port 411 with the discharge port, making the operation convenient. The rotating guide groove 371 and the guide protrusion 414 work together to guide the rotation of the sector plate 412. The guide protrusion 414 works with the angle positioning part 372 to position the angle of the switch plate 410, which helps to align the discharge port 411 with the discharge port in the case of blind operation.

[0038] See Figure 1 and Figure 2 In some embodiments of this utility model, the bottom of the body 100 is provided with a water receiving tray 500 located directly below the refrigeration evaporator 200, and the upper surface of the water receiving tray 500 constitutes the contact portion. It is understood that the refrigeration evaporator 200 generates cooling energy to cool the raw materials in the material container 300. At this time, the surface temperature of the material container 300 is lower than that of the outside air. The outside air adheres to the outer surface of the material container 300 and liquefies into water droplets. When the water droplets fall, they can fall into the water receiving tray 500. The water receiving tray 500 can also be used to receive the material container 300, and the notch 320 of the material container 300 abuts against the water receiving tray 500 and makes a swaying motion.

[0039] See Figure 1 and Figure 4 In some embodiments of this utility model, a stirring impeller 600 is rotatably disposed inside the material barrel 300. A cylindrical channel 610 arranged vertically is provided in the middle of the stirring impeller 600. The refrigeration evaporator 200 is adapted to the cylindrical channel 610. A drive shaft passing through the axial direction of the refrigeration evaporator 200 is rotatably disposed on the overhang 110. The lower ends of the stirring impeller 600 and the drive shaft are detachably connected. The material barrel 300 is detachably connected to the overhang 110 at the opening edge of the cavity 310 via a rotating snap-fit ​​mechanism.

[0040] After the frozen food preparation is completed, the rotating locking mechanism is rotated in the opposite direction to grasp the material container 300 and move it downwards. The material container 300 and the stirring impeller 600 move downwards relative to the refrigeration evaporator 200 as a whole. Then, the material container 300 is tilted so that the notch 320 abuts against the contact part of the machine body 100, and the material container 300 can be moved away from the machine body 100 to completely separate it from the refrigeration evaporator 200. Similarly, when installing the material container 300, it is necessary to first preset an inclined angle so that one side of the opening edge of the cavity 310 can be moved to align the refrigeration evaporator 200 with the cylindrical channel 610. Then, the material container 300 is deflected so that the cylindrical channel 610 is arranged vertically. Next, the material container 300 is lifted from bottom to top, and then the material container 300 is fixed to the cantilever part 110 by rotating the locking mechanism. At this time, the stirring impeller 600 and the lower end of the drive shaft are connected. Without increasing the height of the machine body 100 or reducing the height of the cavity 310, the above structure makes it easy to assemble and disassemble the material hopper 300, and the construction is simple.

[0041] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0042] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.

Claims

1. A hopper (300) characterized in that, include: The barrel has an upward-opening cavity (310) and a notch (320) on one side of the bottom of the barrel, wherein the notch (320) is configured to provide clearance when the barrel moves downward or when the barrel sways.

2. The material bucket (300) according to claim 1, characterized in that: The bottom of the barrel is recessed on one side to form the notch (320), which is inclined from top to bottom toward the middle of the bottom of the barrel.

3. A vertical frozen food manufacturing equipment, characterized in that, include: A vertically extending body (100) has a horizontally extending overhang (110) at its top. The overhang (110) has a downwardly extending refrigeration evaporator (200). A detachable feed hopper (300) is mounted on the overhang (110). The feed hopper (300) has an upward-opening cavity (310). The feed hopper (300) is fitted around the refrigeration evaporator (200) from bottom to top or from top to bottom away from the refrigeration evaporator (200). The body (100) is provided with a contact portion facing the bottom of the material tank (300). The bottom of the material tank (300) is provided with a notch (320) on the side near the body (100). When the bottom of the material tank (300) abuts against the contact portion, the material tank (300) can be tilted so that the notch (320) abuts against the contact portion, so that the lower end of the refrigeration evaporator (200) is higher than the part of the opening edge of the cavity (310) near the body (100).

4. The vertical frozen food manufacturing equipment according to claim 3, characterized in that: The overhang (110) extends to the left, and the notch (320) is recessed upward from the lower end of the bucket (300). The depth of the notch (320) increases from left to right.

5. A vertical frozen food manufacturing equipment according to claim 4, characterized in that: The bottom plate of the material barrel (300) has two downwardly extending support plates (330) formed on its outline edge. The two support plates (330) are arranged face to face in the front-back direction. A first surrounding plate (340) extends upward and surrounds the right side of the two support plates (330). The notch (320) is defined between the two ends of the first surrounding plate (340) and the two support plates (330).

6. The vertical frozen food manufacturing equipment according to claim 5, characterized in that: The first enclosure (340) has transition connecting plates (350) at both ends and between the two support plates (330). The lower end of the support plate (330) is flat, and the lower end of the transition connecting plate (350) is inclined upward in the direction from left to right. The lower end of the support plate (330) and the transition connecting plate (350) have rounded corners.

7. A vertical frozen food manufacturing equipment according to claim 5, characterized in that: The bottom plate of the material bucket (300), the first surrounding plate (340) and the two supporting plates (330) form an open-faced cavity, and the notch (320) is located on the outer periphery of the cavity.

8. A vertical frozen food manufacturing equipment according to claim 3, characterized in that: The bottom of the material barrel (300) is provided with a discharge port communicating with the cavity (310) on the side opposite to the notch (320) and a switch mechanism (400) for opening and closing the discharge port. The discharge port penetrates the bottom plate of the material barrel (300) vertically, and the switch mechanism (400) protrudes downward from the bottom plate of the material barrel (300) and is located below the notch (320).

9. A vertical frozen food manufacturing equipment according to claim 3, characterized in that: The bottom of the body (100) is provided with a water receiving tray (500) located directly below the refrigeration evaporator (200), and the upper surface of the water receiving tray (500) constitutes the contact portion.

10. A vertical frozen food manufacturing equipment according to claim 3, characterized in that: A stirring impeller (600) is rotatably disposed inside the material tank (300). A cylindrical channel (610) arranged vertically is provided in the middle of the stirring impeller (600). The refrigeration evaporator (200) is adapted to the cylindrical channel (610). A drive shaft passing through the axial direction of the refrigeration evaporator (200) is rotatably disposed on the extension part (110). The lower ends of the stirring impeller (600) and the drive shaft are detachably connected. The material tank (300) is detachably connected to the extension part (110) at the opening edge of the cavity (310) through a rotating buckle mechanism.