A fruit puree extractor with foam separation function

CN224627550UActive Publication Date: 2026-08-14MR DURIAN (GUANGDONG) IND CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-22
Publication Date
2026-08-14

AI Technical Summary

Technical Problem

[0003]为克服现有技术的不足,本实用新型的目的在于提出一种具有泡沫分离功能的果泥提取机,以解决现有技术中提取果泥的过程中存在的果泥内的气泡上浮速度较慢,对果泥的泡沫分离效率较低且不便于及时去除刮板表面残留有的泡沫的问题

Benefits of technology

[0013]有益效果:1、刮板浮在果泥上表面,刮板底面低于果泥上表面的泡沫,隔板阻隔上方的果泥向下落,工人启动超声波振子通过装盛框带动装盛腔内的果泥快速振动,果泥内部的气泡在振动过程中快速向上移动与果泥表面原有的泡沫聚集,从而减少果泥内部的气泡,当果泥内部的气泡减少时,果泥的体积随之减少,刮板在自身重力下随着果泥深度的减小向下移动,以保持浮在果泥上表面,电动滑块带动支架、支撑杆、滑动机构和刮板水平往复移动,刮板水平移动过程中推动果泥表面的泡沫,刮板将泡沫沿着倾斜面斜向上推入分离口内,泡沫通过分离口向下排出,间隔一定时间后,工人控制电动滑块带动支架、支撑杆、滑动机构和刮板反向水平移动,刮板再次推动果泥表面的泡沫通过另一分离口向下排出,如此往复,将果泥表面的泡沫充分分离,并去除果泥内部的气泡,从而高效地提取果泥,以此改善果泥的口感并降低果泥的氧化速度。

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Abstract

This utility model relates to the field of food processing technology, and in particular to a fruit puree extractor with foam separation function. The utility model includes a container frame, a foam separation component, and a horizontal drive component. The container frame includes a container cavity and a separation port, with the container cavity having an open top. A support frame is horizontally slidably mounted above the container frame, and a support rod is rotatably mounted on the support frame. The scraper is hollow or made of lightweight material, so that when fruit puree is filled into the container cavity, the scraper floats on the surface of the fruit puree. Several ultrasonic transducers are mounted on the container frame. During vibration, air bubbles inside the fruit puree move rapidly upwards and aggregate with the existing foam on the surface of the fruit puree, thereby reducing the number of air bubbles inside the fruit puree. The scraper pushes the foam on the surface of the fruit puree downwards through the separation port, thereby improving the texture of the fruit puree and reducing its oxidation rate.
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Description

Technical Field

[0001] This utility model relates to the field of food processing technology, and in particular to a fruit puree extractor with foam separation function. Background Technology

[0002] Fruit puree is a liquid food made from fruit. During the process of crushing fruit and other ingredients into a puree, some air is incorporated into the puree by the high-speed rotating blades, forming air bubbles. When making puree from fruits containing saponins or those with high viscosity, these air bubbles tend to rise to the surface and accumulate, forming foam. This foam cannot dissipate quickly, and both the air bubbles inside and the foam on the surface accelerate oxidation, affecting the flavor and texture of the puree. Current methods involve slowly stirring the puree to encourage the air bubbles to rise. However, the rising speed is relatively slow. The foam is then skimmed off with a spoon or scraper. This process is tedious and inefficient, resulting in low foam separation efficiency. Furthermore, foam residue often remains on the spoon or scraper, requiring manual removal. Often, due to the inability to remove this foam promptly, the foam easily re-adheres to the surface when skimmed off again, further reducing the efficiency of foam separation. Summary of the Invention

[0003] To overcome the shortcomings of the existing technology, the purpose of this utility model is to propose a fruit pulp extractor with foam separation function, so as to solve the problems of slow rising speed of air bubbles in the fruit pulp during the extraction process of the existing technology, low foam separation efficiency of the fruit pulp, and inconvenience in timely removal of residual foam on the scraper surface.

[0004] A fruit pulp extractor with foam separation function includes a container frame, a foam separation component and a horizontal drive component. The container frame includes a container cavity and a separation port. The container frame is provided with a container cavity with an open top and a separation port. The foam separation assembly includes a bracket, a support rod, a sliding mechanism, a scraper, and ultrasonic transducers. The bracket is horizontally slidably mounted above the container frame. The support rod is rotatably mounted on the bracket. The scraper is slidably mounted on the support rod via the sliding mechanism, moving towards or away from the support rod. The scraper has a hollow structure or is made of lightweight material, so that when fruit puree is filled into the container cavity, the scraper floats on the surface of the fruit puree. Several ultrasonic transducers are mounted on the container frame. The horizontal drive assembly is suitable for driving the horizontal reciprocating movement of the support.

[0005] The container cavity has two parallel, vertically arranged sidewalls. The horizontal sliding direction of the scraper is parallel to the sidewalls. The top of the container cavity has two inclined surfaces, both of which are perpendicular to the sidewalls. The upper ends of the two inclined surfaces are inclined away from the center of the container frame. Each of the two inclined surfaces has a vertically penetrating separation port. Each of the two separation ports has a guide block whose upper edge is flush with the upper edge of the separation port. The guide block is located in the horizontal sliding direction of the scraper, so that when the scraper moves horizontally back and forth, the bottom end of the scraper moves along the inclined surface.

[0006] It also includes a touch-toggle mechanism, which includes: elastic plates, toggle blocks, stoppers, and a rotating assembly. Several elastic plates are fixedly mounted on a support rod at one end, and toggle blocks are fixedly mounted on the other end of the elastic plates. A sliding mechanism is located in the rotational circumference of the toggle blocks. Two stoppers are fixedly mounted on the bracket. In the rotational circumference of the sliding mechanism, the sliding mechanism is located between the two stoppers. The rotating assembly is suitable for driving the several elastic plates to rotate.

[0007] The rotating assembly includes a drive wheel and a friction frame. The drive wheel is fixedly connected to several elastic plates, and the two friction frames are located at both ends of the horizontal movement range of the drive wheel. When the scraper is above the separation port, the friction frames are in contact with the drive wheel.

[0008] The sliding mechanism includes a guide frame, a slide bar frame, and a locking block. The guide frame is fixedly mounted on the support rod. The slide bar frame is slidably mounted on the guide frame in a direction that is closer to or farther from the support rod. The locking block protrudes horizontally from the top of the slide bar frame to switch between the state of abutting against the guide frame and the state of disengaging from the guide frame.

[0009] Both ends of the lever are rotatably provided with collars, and the outer edge of the collars protrudes radially from the outer edge of the lever.

[0010] The horizontal drive assembly includes a slide rail and an electric slider. The electric slider is slidably mounted on the slide rail, which is parallel to the side wall. A bracket is fixedly mounted on the electric slider.

[0011] Contact strips are fixedly installed on both sides of the bottom end of the scraper, and the contact strips are made of soft material.

[0012] It also includes a discharge mechanism, which includes a discharge frame, a partition and a drive motor. The bottom of the container cavity is connected to the discharge frame. A partition is rotatably provided inside the discharge frame. The partition is fixedly connected to the output shaft of the drive motor.

[0013] Beneficial effects: 1. The scraper floats on the surface of the fruit puree, with its bottom surface lower than the foam on the surface. A partition prevents the fruit puree from falling downwards. The worker activates an ultrasonic transducer, which drives the fruit puree inside the container to vibrate rapidly through the container frame. During vibration, air bubbles inside the puree move upwards quickly and aggregate with the existing foam on the surface, thus reducing the number of air bubbles. As the number of air bubbles decreases, the volume of the puree decreases. The scraper, under its own weight, moves downwards as the depth of the puree decreases to maintain its position on the surface. An electric slider drives the bracket, support rod, and slide... The moving mechanism and scraper move horizontally back and forth. During the horizontal movement of the scraper, the foam on the surface of the fruit puree is pushed upward along the inclined surface into the separation port. The foam is discharged downward through the separation port. After a certain interval, the worker controls the electric slider to drive the bracket, support rod, sliding mechanism and scraper to move horizontally in the opposite direction. The scraper pushes the foam on the surface of the fruit puree downward through another separation port. This process is repeated to fully separate the foam on the surface of the fruit puree and remove the air bubbles inside the fruit puree, thereby efficiently extracting the fruit puree, improving the taste of the fruit puree and reducing the oxidation rate of the fruit puree.

[0014] 2. When the scraper moves obliquely upward along the upper edge of the guide block, it pushes the foam obliquely upward along the inclined surface into the separation port. The transmission wheel drives the transmission components, elastic plate, and paddle to rotate. When one of the paddles rotates, it pushes the guide frame, slide bar frame, scraper, and support rod to rotate, causing the scraper to rotate a certain angle away from the upper edge of the guide block. The scraper separates from the upper edge of the guide block. Then, one of the paddles separates from the guide frame. Under its own gravity, the scraper rotates in the opposite direction and touches the upper edge of the guide block again. At this time, a small amount of foam remaining on the scraper surface detaches from the scraper surface due to its own inertia. The next paddle pushes the guide frame to rotate, thereby driving the scraper to rotate. The scraper touches the upper edge of the guide block again. This process is repeated to reduce the amount of foam remaining on the scraper surface, preventing this foam from being carried back into the fruit pulp surface by the scraper. This allows for more thorough and efficient separation of foam in the fruit pulp, further improving the efficiency of fruit pulp extraction. Attached Figure Description

[0015] Figure 1 This is a first three-dimensional structural diagram of the foam separation component, horizontal drive component, and touch-toggle mechanism of this utility model.

[0016] Figure 2 This is a second three-dimensional structural diagram of the foam separation component, horizontal drive component, and touch-toggle mechanism of this utility model.

[0017] Figure 3 This is a three-dimensional structural diagram of the ultrasonic transducer and discharge mechanism of this utility model.

[0018] Figure 4 This utility model Figure 2 A magnified three-dimensional structural diagram at point A in the middle.

[0019] Figure 5 This is a three-dimensional structural diagram of the foam separation component and the touch-toggle mechanism of this utility model.

[0020] Figure 6 This is a partial three-dimensional structural diagram of the foam separation component and the touch-toggle mechanism of this utility model.

[0021] Figure 7 This is a partial three-dimensional structural diagram of the foam separation component of this utility model.

[0022] Figure 8 This is a partial three-dimensional structural diagram of the touch-toggle mechanism of this utility model.

[0023] Figure 9 This is a three-dimensional structural diagram of the working state of the present invention when separating foam.

[0024] Reference numerals: 10-loading frame, 11-loading cavity, 111-side wall, 112-inclined surface, 12-separation port, 121-guide block, 13-discharge mechanism, 131-discharge frame, 132-partition, 133-drive motor, 20-foam separation component, 21-bracket, 22-support rod, 23-sliding mechanism, 231-guide frame, 232-slide bar frame, 2321-clamping block, 24-scraper, 241-contact strip, 25-ultrasonic transducer, 30-horizontal drive component, 31-slide rail, 32-mounting bracket, 33-electric slider, 40-touch actuation mechanism, 41-transmission component, 42-elastic sheet, 43-pushing block, 431-ring, 44-stop component, 45-rotating component, 451-transmission wheel, 452-friction frame. Detailed Implementation

[0025] The present invention will be further described below with reference to the accompanying drawings and specific embodiments. It should be noted that, without conflict, the various embodiments or technical features described below can be arbitrarily combined to form new embodiments.

[0026] In the description of this utility model, it should be understood that the terms "center", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation 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.

[0027] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.

[0028] 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; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0029] like Figures 1-7 and Figure 9 As shown, a fruit puree extractor with foam separation function includes a container frame 10, a foam separation component 20 and a horizontal drive component 30. The container frame 10 includes a container cavity 11 and a separation port 12. The container frame 10 is provided with a container cavity 11 with an open top and a separation port 12. like Figures 3-7 and Figure 9 As shown, the foam separation assembly 20 includes a bracket 21, a support rod 22, a sliding mechanism 23, a scraper 24, and ultrasonic transducers 25. The bracket 21 is horizontally slidably disposed above the container frame 10. The support rod 22 is rotatably disposed on the bracket 21. The scraper 24 is slidably disposed on the support rod 22 via the sliding mechanism 23, moving towards or away from the support rod 22. The scraper 24 has a hollow structure or is made of lightweight material. The density of the foam on the surface of the fruit puree is less than that of the scraper 24, and the density of the fruit puree is greater than that of the scraper 24, so that when fruit puree is filled into the container cavity 11, the scraper 24 floats on the surface of the fruit puree. Several ultrasonic transducers 25 are disposed on the container frame 10. The container cavity 11 is provided with two parallel, vertically arranged sidewalls 111. The horizontal sliding direction of the scraper 24 is parallel to the sidewalls 111. The gap between the scraper 24 and the sidewalls 111 is 1-3 mm. The top of the container cavity 11 is provided with two inclined surfaces 112. Both inclined surfaces 112 are perpendicular to the sidewalls 111. The upper ends of the two inclined surfaces 112 are inclined away from the center of the container frame 10. Each of the two inclined surfaces 112 is provided with a vertically penetrating separation port 12. Each of the two separation ports 12 is provided with a guide block 121 whose upper edge is flush with the upper edge of the separation port 12. The guide block 121 is located in the horizontal sliding direction of the scraper 24, so that when the scraper 24 moves horizontally back and forth, the bottom end of the scraper 24 moves along the inclined surface 112.

[0030] like Figures 1-5 As shown, the horizontal drive assembly 30 is adapted to drive the bracket 21 to move horizontally reciprocally. The horizontal drive assembly 30 includes: a slide rail 31, a mounting bracket 32, and an electric slider 33. The slide rail 31 is fixedly mounted on the container frame 10 via the mounting bracket 32. The electric slider 33 is slidably mounted on the slide rail 31. The slide rail 31 is arranged parallel to the side wall 111. The bracket 21 is fixedly mounted on the electric slider 33.

[0031] like Figures 4-7 As shown, the sliding mechanism 23 includes: a guide frame 231, a slide bar frame 232, and a locking block 2321. The guide frame 231 is fixedly mounted on the support rod 22. The slide bar frame 232 is slidably mounted on the guide frame 231 in a direction close to or away from the support rod 22. The locking block 2321 protrudes horizontally from the top of the slide bar frame 232 to switch between abutting the guide frame 231 and disengaging from the guide frame 231.

[0032] like Figure 1 , Figure 2 , Figure 3 and Figure 9 As shown, it also includes a discharge mechanism 13, which includes a discharge frame 131, a partition 132 and a drive motor 133. The bottom end of the container cavity 11 is connected to the discharge frame 131. The partition 132 is rotatably provided inside the discharge frame 131. The partition 132 is fixedly connected to the output shaft of the drive motor 133.

[0033] The worker controls the drive motor 133 to drive the partition 132 to rotate to a horizontal position. Then, the worker pours the fruit puree into the container cavity 11. Because the density of the foam on the surface of the fruit puree is much smaller than that of the scraper 24, and the density of the fruit puree is much larger than that of the scraper 24, the scraper 24 floats on the surface of the fruit puree, and the bottom of the scraper 24 is lower than the foam on the surface of the fruit puree. The partition 132 prevents the fruit puree above from falling downwards. The worker starts the ultrasonic transducer 25 to drive the fruit puree in the container cavity 11 to vibrate rapidly through the container frame 10. During the vibration, the air bubbles inside the fruit puree move upward rapidly and combine with the original foam on the surface of the fruit puree. The process of collecting and reducing air bubbles inside the fruit puree leads to a decrease in its volume. The scraper 24, under its own weight, moves downwards as the depth of the puree decreases, maintaining its position on the surface. The worker controls the electric slider 33 to move horizontally back and forth. The electric slider 33 drives the bracket 21, support rod 22, sliding mechanism 23, and scraper 24 to move horizontally back and forth. During this horizontal movement, the scraper 24 pushes away the foam on the surface of the puree. The scraper 24 experiences resistance from the surface of the puree, the inclined surface 112, and the upper edge of the guide block 121. The lower end of the scraper 24... Inclined in the opposite direction to the movement of scraper 24, the locking block 2321 abuts against the guide frame 231. The support rod 22 drives the scraper 24 to move through the guide frame 231 and the slide rod frame 232. When the scraper 24 moves to contact the inclined surface 112, the scraper 24 moves obliquely upward along the upper edge of the inclined surface 112 and the guide block 121. The scraper 24 pushes the foam obliquely upward along the inclined surface 112 into the separation port 12. The foam is discharged downward through the separation port 12. After a certain interval, the worker controls the electric slider 33 to drive the bracket 21, support rod 22, sliding mechanism 23 and The scraper 24 moves horizontally in the opposite direction and tilts to the other side. The scraper 24 pushes the foam on the surface of the fruit puree downward through another separation port 12. This process is repeated to fully separate the foam on the surface of the fruit puree and remove air bubbles inside the fruit puree, thereby efficiently extracting the fruit puree, improving the taste of the fruit puree and reducing the oxidation rate of the fruit puree. Then, the worker controls the drive motor 133 to drive the partition 132 to rotate to a vertical position. The fruit puree in the holding cavity 11, after the foam has been removed, is discharged downward through the discharge frame 131. Then, the worker turns off the ultrasonic transducer 25 and the electric slider 33.

[0034] like Figure 1 , Figure 2 , Figure 4 , Figure 5 , Figure 6 and Figure 8As shown, more preferably, it also includes a touch-toggle mechanism 40, which includes: a transmission member 41, elastic plates 42, toggle blocks 43, stoppers 44, and a rotating assembly 45. The transmission member 41 is fixedly disposed at one end of the support rod 22. One end of several elastic plates 42 is fixedly disposed on the support rod 22 through the transmission member 41. The other end of several elastic plates 42 is fixedly disposed with a toggle block 43. Two stoppers 44 are fixedly disposed on the bracket 21. In the rotational circumference of the sliding mechanism 23, the sliding mechanism 23 is located between the two stoppers 44. The rotating assembly 45 is adapted to drive the several elastic plates 42 to rotate.

[0035] like Figure 1 , Figure 2 , Figure 4 , Figure 5 , Figure 6 and Figure 8 As shown, the rotating assembly 45 includes a drive wheel 451 and a friction frame 452. The drive wheel 451 is fixedly connected to a plurality of elastic plates 42. Two friction frames 452 are located at both ends of the horizontal movement range of the drive wheel 451. When the scraper 24 is located above the separation port 12, the friction frame 452 contacts the drive wheel 451.

[0036] When the electric slider 33 drives the bracket 21, support rod 22, sliding mechanism 23 and scraper 24 to move horizontally, the support rod 22 drives the transmission component 41, elastic plate 42, lever block 43 and transmission wheel 451 to move horizontally, and the bracket 21 drives the stop component 44 to move horizontally. When the scraper 24 moves obliquely upward along the upper edge of the guide block 121, the scraper 24 has pushed the foam obliquely upward along the inclined surface 112 into the separation port 12. Then the transmission wheel 451 contacts one of the friction frames 452, and the electric slider 33 continues to move the foam. During translational movement, the transmission wheel 451 rolls along the top surface of one of the friction frames 452. The transmission wheel 451 drives the transmission component 41, the elastic plate 42, and the lever 43 to rotate. When one of the levers 43 rotates, it pushes the guide frame 231, the slide bar frame 232, the scraper 24, and the support rod 22 to rotate, causing the scraper 24 to rotate a certain angle away from the upper edge of the guide block 121. The scraper 24 separates from the upper edge of the guide block 121, and then the guide frame 231 contacts one of the abutment members 44, preventing the lever 43 from moving further away from the guide frame 231. 1. The drive wheel 451 continues to rotate, and the elastic sheet 42 connected to one of the paddle blocks 43 deforms. After one of the paddle blocks 43 slides a certain distance along the surface of the guide frame 231, it separates from the guide frame 231. The scraper 24 rotates in the opposite direction under its own weight and touches the upper edge of the guide block 121 again. At this time, a small amount of foam remaining on the surface of the scraper 24 detaches from the surface of the scraper 24 due to its own inertia. The next paddle block 43 then pushes the guide frame 231 to rotate, thereby driving the scraper 24 to rotate. The scraper 24 touches the upper edge of the guide block 121 again, and repeats this process to reduce the foam remaining on the surface of the scraper 24, so as to prevent the foam from being carried into the surface of the fruit pulp by the scraper 24 again, thereby separating the foam in the fruit pulp more fully and efficiently, and further improving the efficiency of fruit pulp extraction. When the electric slider 33 drives the bracket 21, support rod 22, sliding mechanism 23 and scraper 24 to move horizontally in the opposite direction, the transmission wheel 451 contacts another friction frame 452, and the transmission wheel 451 drives the transmission component 41, elastic plate 42 and lever 43 to rotate in the opposite direction.

[0037] like Figure 6 and Figure 8 As shown, more preferably, both ends of the lever 43 are rotatably provided with collars 431, and the outer edge of the collars 431 protrudes radially from the outer edge of the lever 43.

[0038] The lever 43 contacts the guide frame 231 through the collar 431, thereby reducing the friction between the lever 43 and the guide frame 231 when the lever 43 slides along the surface of the guide frame 231.

[0039] like Figure 6 , Figure 7 and Figure 9 As shown, more preferably, contact strips 241 are fixedly provided on both sides of the bottom end of the scraper 24, and the contact strips 241 are made of soft material.

[0040] As the scraper 24 moves obliquely upward along the inclined surface 112, the scraper 24 contacts the inclined surface 112 through the contact strip 241. The contact strip 241 can fit more fully with the inclined surface 112, thereby reducing the amount of foam leaking out from the gap between the scraper 24 and the inclined surface 112, thus further improving the separation efficiency of foam in the fruit puree.

[0041] The above embodiments are merely preferred embodiments of this utility model and should not be construed as limiting the scope of protection of this utility model. Any non-substantial changes and substitutions made by those skilled in the art based on this utility model shall fall within the scope of protection claimed by this utility model.

Claims

1. A fruit puree extractor with foam separation function, characterized in that, It includes a container frame (10), a foam separation component (20) and a horizontal drive component (30). The container frame (10) includes a container cavity (11) and a separation port (12). The container frame (10) is provided with a container cavity (11) with an open top and a separation port (12). The foam separation component (20) includes a bracket (21), a support rod (22), a sliding mechanism (23), a scraper (24), and an ultrasonic transducer (25). The bracket (21) is horizontally slidably disposed above the container frame (10). The support rod (22) is rotatably disposed on the bracket (21). The scraper (24) is slidably disposed on the support rod (22) via the sliding mechanism (23) in a direction closer to or further away from the support rod (22). The scraper (24) adopts a hollow structure or is made of lightweight material, so that when fruit puree is filled into the container cavity (11), the scraper (24) floats on the surface of the fruit puree. Several ultrasonic transducers (25) are disposed on the container frame (10). The horizontal drive assembly (30) is adapted to drive the support (21) to move horizontally back and forth.

2. The fruit puree extractor having a foam separation function according to claim 1, wherein, The container cavity (11) is provided with two parallel, vertically arranged sidewalls (111). The horizontal sliding direction of the scraper (24) is parallel to the sidewalls (111). The top of the container cavity (11) is provided with two inclined surfaces (112). Both inclined surfaces (112) are perpendicular to the sidewalls (111). The upper ends of the two inclined surfaces (112) are inclined away from the center of the container frame (10). Both inclined surfaces (112) are provided with vertically penetrating separation ports (12). Both separation ports (12) are provided with guide blocks (121) whose upper edges are flush with the upper edge of the separation port (12). The guide blocks (121) are located in the horizontal sliding direction of the scraper (24), so that when the scraper (24) moves horizontally back and forth, the bottom end of the scraper (24) moves along the inclined surface (112).

3. The fruit puree extractor having a foam separation function according to claim 2, characterized in that, It also includes a touch-toggle mechanism (40), which includes: elastic sheet (42), toggle block (43), stop member (44) and rotating component (45). One end of several elastic sheets (42) is fixedly mounted on the support rod (22), and the other end of several elastic sheets (42) is fixedly mounted with a toggle block (43). The sliding mechanism (23) is located in the rotational circumferential direction of the toggle block (43). Two stop members (44) are fixedly mounted on the bracket (21). In the rotational circumferential direction of the sliding mechanism (23), the sliding mechanism (23) is located between the two stop members (44). The rotating component (45) is adapted to drive the several elastic sheets (42) to rotate.

4. The fruit puree extractor having a foam separation function according to claim 3, characterized in that, The rotating assembly (45) includes a drive wheel (451) and a friction frame (452). The drive wheel (451) is fixedly connected to a plurality of elastic plates (42). The two friction frames (452) are located at both ends of the horizontal movement range of the drive wheel (451). When the scraper (24) is located above the separation port (12), the friction frame (452) contacts the drive wheel (451).

5. The fruit puree extractor having a foam separation function according to claim 1, wherein The sliding mechanism (23) includes: a guide frame (231), a slide bar frame (232), and a locking block (2321). The guide frame (231) is fixedly mounted on the support rod (22). The slide bar frame (232) is slidably mounted on the guide frame (231) in a direction close to or away from the support rod (22). The locking block (2321) protrudes horizontally from the top of the slide bar frame (232) to switch between abutting against the guide frame (231) and disengaging from the guide frame (231).

6. The fruit puree extractor having a foam separation function according to claim 3, wherein Both ends of the lever (43) are rotatably provided with collars (431), and the outer edge of the collars (431) protrudes radially from the outer edge of the lever (43).

7. The fruit puree extractor having a foam separation function according to claim 2, wherein The horizontal drive assembly (30) includes a slide rail (31) and an electric slider (33). The electric slider (33) is slidably disposed on the slide rail (31). The slide rail (31) is disposed parallel to the side wall (111). A bracket (21) is fixedly disposed on the electric slider (33).

8. The fruit puree extractor having a foam separation function according to claim 1, wherein The scraper (24) has contact strips (241) fixedly installed on both sides of its bottom end. The contact strips (241) are made of soft material.

9. The fruit puree extractor having a foam separation function according to claim 1, wherein It also includes a discharge mechanism (13), which includes a discharge frame (131), a partition (132) and a drive motor (133). The bottom end of the container cavity (11) is connected to the discharge frame (131). The partition (132) is rotatably provided on the inner side of the discharge frame (131). The partition (132) is fixedly connected to the output shaft of the drive motor (133).